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WO2014043902A1 - 下行控制信息传输的方法、网络侧设备及用户设备 - Google Patents

下行控制信息传输的方法、网络侧设备及用户设备 Download PDF

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Publication number
WO2014043902A1
WO2014043902A1 PCT/CN2012/081782 CN2012081782W WO2014043902A1 WO 2014043902 A1 WO2014043902 A1 WO 2014043902A1 CN 2012081782 W CN2012081782 W CN 2012081782W WO 2014043902 A1 WO2014043902 A1 WO 2014043902A1
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Prior art keywords
aggregation level
epdcch candidates
candidates corresponding
control channel
epdcch
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PCT/CN2012/081782
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English (en)
French (fr)
Inventor
李元杰
唐臻飞
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Huawei Technologies Co Ltd
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Huawei Technologies Co Ltd
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Priority to JP2015532265A priority Critical patent/JP6139686B2/ja
Priority to CN201280027919.9A priority patent/CN103828463B/zh
Priority to EP12884819.9A priority patent/EP2892295B1/en
Priority to BR112015006254-7A priority patent/BR112015006254B1/pt
Priority to MX2015003623A priority patent/MX347782B/es
Priority to RU2015114802/07A priority patent/RU2588600C1/ru
Application filed by Huawei Technologies Co Ltd filed Critical Huawei Technologies Co Ltd
Priority to PCT/CN2012/081782 priority patent/WO2014043902A1/zh
Publication of WO2014043902A1 publication Critical patent/WO2014043902A1/zh
Priority to US14/663,061 priority patent/US9814031B2/en
Anticipated expiration legal-status Critical
Priority to ZA2015/02189A priority patent/ZA201502189B/en
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signalling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation

Definitions

  • the present invention relates to the field of communications technologies, and in particular, to a method for downlink control information transmission, a network side device, and a user equipment. Background technique
  • the control region of the Physical Downlink Control (hereinafter referred to as PDCCH) is composed of a logically divided Control Channel Element (CCE), where the CCE is to the Resource Element (CRM).
  • CCE Control Channel Element
  • RE Resource Element
  • the mapping referred to as RE uses a completely interlaced approach.
  • DCI Downlink Control Information
  • a DCI for a User Equipment (hereinafter referred to as UE) can be transmitted in N consecutive CCEs. The possible value of the N is 1, 2, 4, and 8 is called the CCE aggregation level.
  • the UE performs blind detection on the PDCCH in the control region to search whether there is a PDCCH for the PDCCH.
  • Blind detection that is, using the UE's Radio Network Temporary Identity (RNTI) to decode different DCI formats and CCE aggregation levels. If the decoding is correct, the DCI for the UE is received.
  • the specific time-frequency resource location of each PDCCH is determined by blind detection, thereby implementing PDCCH reception, completing high-level signaling scheduling information reading and corresponding information reception such as system information.
  • the current protocol specifies the number of blind detections of PDCCHs of different aggregation levels. This requirement ensures that the blind detection of the PDCCH by the UE does not exceed the maximum number of blind detections.
  • E-PDCCH enhanced physical downlink control channel
  • the E-PDCCH has two transmission modes: continuous localized transmission in the frequency domain and distributed transmission (distributed) in the frequency domain, which are applied to different scenarios.
  • the localized transmission mode is used for the base station to obtain the more accurate channel information that the UE feeds back, and the neighbor cell interference does not change very strongly with the subframe.
  • the base station selects the CSI according to the UE feedback.
  • a good quality continuous frequency resource transmits E-PDCCH to the terminal, and performs precoding/beamforming processing to improve transmission performance.
  • the E-DPCCH needs to be transmitted in a distributed manner, that is, the resources are discontinuously transmitted using the frequency, thereby obtaining the diversity gain.
  • the UE needs to perform blind detection on the signaling carried by the E-PDCCH to receive the E-PDCCH transmitted for the UE, and the detection of the E-PDCCH also satisfies the requirement of not exceeding the maximum number of blind detections, and the number of blind detections Corresponding to the number of physical control channel candidates, the number of control physical channel candidates is determined, that is, the number of blind detections is determined.
  • the UE is configured to detect both the E-DPCCH in the centralized mapping mode and the E-DPCCH in the distributed mapping mode.
  • the UE detecting the E-DPCCH in two modes may cause blind detection. The number of times exceeds the maximum number of blind detections, which results in a long blind detection time of the UE, which affects the processing of other service data of the UE. Summary of the invention
  • the embodiment of the invention provides a method for transmitting downlink control information, a network side device and a user equipment, so as to transmit downlink control information without increasing the number of blind detections.
  • the embodiment of the present invention provides a method for transmitting downlink control information, including: a network side device selects an aggregation level of a physical control channel set in a transmission subframe;
  • the network side device sends downlink control information on the physical control channel candidate corresponding to the selected number.
  • the aggregation level of the physical control channel set in the selected transmission subframe is to be detected, including:
  • the minimum aggregation level to be detected of the physical control channel set is 2; the PRB pair of the physical control channel set When the number of REs is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the minimum aggregation level of the physical control channel set to be detected is 2; the subframe is not a normal subframe of a normal CP length, and is not a special subframe configured as 3, 4, 8, or a PRB pair can be used for
  • the number of REs of the physical control channel is greater than X
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • the number of channel candidates including:
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected.
  • the number of the EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects The sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level of 8, the network side device selects the number and distribution of EPDCCH candidates corresponding to the centralized mapping mode The sum of the number of EPDCCH candidates corresponding to the mapping mode is 2; for the aggregation level is 16, the network side device selects the centralized mapping mode corresponding to
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the number of candidate EPDCCHs corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 to be 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 of the network side device is 0, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 of the network side device is 3, and the aggregation level 8 and the aggregation level 16 are selected.
  • the number of EPDCCH candidates is 1; for the distributed mapping mode, the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 of the network side device is 3, and the EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 are selected.
  • the number is 1; or,
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 0, the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 32 to be 0.
  • the number of the EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the sum of the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 of the network side device is 6; ,
  • the network side device selects the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the network side device selects the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the network side device selects the centralized mapping mode aggregation level 16 and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the number of the EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects a centralized mapping mode corresponding to The sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 to be 0; In the mapping mode, the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 0, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2; or
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 of the network side device is 3, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1;
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 of the network side device is 3, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the network side device selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 0, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • the selecting the centralized mapping manner and the distributed mapping manner respectively The number of EPDCCH candidates corresponding to each aggregation level, including:
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 16 to be 0.
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the aggregation level and the number of EPDCCH candidates corresponding to the 'J 1 And is 6; or,
  • the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other J 2 And is 6; or,
  • the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the aggregation level of the EPDCCH candidate corresponding to the aggregation level. And 2; or,
  • the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level 16 of the distributed mapping mode, and the aggregation level of the EPDCCH candidate corresponding to the aggregation level J 8 And for 2.
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected, including:
  • the network side device selects the aggregation level 2 corresponding to
  • the number of EPDCCH candidates is 6, the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; for the distributed mapping mode, the network side device selects 6 EPDCCH candidates.
  • the number of EPDCCH candidates corresponding to the aggregation level 2 is 6 and the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the aggregation level is selected.
  • the number of corresponding EPDCCH candidates is 2; for the distributed mapping mode, the network side device selects to allocate 2 EPDCCH candidates to at least one aggregation level; or, for the centralized mapping mode, the network side device selects aggregation level 1
  • the number of corresponding EPDCCH candidates is 6, the number of EPDCCH candidates corresponding to aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to aggregation level 4 is 2; for distributed mapping mode, The network side device selects to allocate the six EPDCCH candidates to the at least one aggregation level.
  • the network side device selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and selects the EPDCCH corresponding to the aggregation level 2.
  • the number of candidates is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; for the distributed mapping mode, the network side device selects to allocate 2 EPDCCH candidates to at least one aggregation level.
  • the number of candidates including:
  • the number of physical control channel candidates corresponding to the aggregation level to be detected of the physical control channel set is selected, including:
  • the physical control channel set is a centralized mapping mode, and the number of physical control channel candidates corresponding to the aggregation level is determined by the physical control channel set for the same aggregation level.
  • the number of physical control channel candidates corresponding to the aggregation level is selected by the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of physical control channel candidates corresponding to the aggregation level to be detected of the physical control channel set is selected, including:
  • the number of physical control channel candidates corresponding to the aggregation level is selected according to the number of PRBs of the physical control channel set, and the physical control channel candidate is used.
  • the number is proportional to the number of PRBs;
  • the number of physical control channel candidates corresponding to the aggregation level is selected according to the number of PRBs of the physical control channel set, and the physical control channel candidate is used for the same aggregation level.
  • the number is proportional to the number.
  • the physical control channel set is a distributed mapping mode
  • the number of PRBs included in the physical control channel set is 8
  • the physical control channel candidate with the aggregation level of the physical control channel set is 1. The number is 0;
  • the aggregation level of the physical control channel set is 1 and 2
  • the sending the downlink control information on the control channel candidate of the control channel set includes:
  • the network side device sends the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and is sent by the EPDCCH candidate corresponding to the distributed mapping mode, and the SI-RNTI and the RA- are deleted.
  • the downlink control information scrambled by the RNTI other than the RNTI scrambling is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • sending downlink control information on the control channel candidate of the control channel set includes:
  • the network side device sends the downlink control information including the cross-carrier scheduling command to the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the downlink of the cross-carrier scheduling instruction.
  • the control information is transmitted on the EPDCCH candidate corresponding to another mode.
  • sending downlink control information on the control channel candidate of the control channel set includes:
  • the network side device sends the downlink control information of the format 0 and/or the format 1A to the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and passes the downlink control information of the format 2C to the centralized corresponding candidate EPDCCH.
  • sending downlink control information on the control channel candidate of the control channel set includes:
  • the network side device sends an EPDCCH whose aggregation level is greater than or equal to the set value on the EPDCCH candidate corresponding to the distributed mapping mode, and the EPDCCH whose aggregation level is smaller than the set value corresponds to the centralized mapping mode.
  • EPDCCH candidates are sent.
  • the embodiment of the present invention provides a method for transmitting downlink control information, including: determining, by a user equipment, an aggregation level of a physical control channel set in a transmission subframe, and determining, according to the aggregation level, the aggregation level Number of physical control channel candidates;
  • the determining, by the determining, the aggregation level of the physical control channel set in the transmission subframe includes:
  • the minimum aggregation level to be detected of the physical control channel set is 2; the PRB pair of the physical control channel set When the number of REs is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical control channel is the normal subframe of the normal CP length or the special subframe configured as 3, 4, 8 and the number of REs available for the physical control channel in one PRB pair is less than X.
  • the minimum aggregation level to be detected by the set is 2; the subframe is not a normal subframe of the normal CP length, and is not a special subframe configured as 3, 4, 8, or an RE that can be used for a physical control channel in a PRB pair.
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • determining, by the aggregation level, the number of physical control channel candidates corresponding to the aggregation level including:
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is determined separately.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level is 4, the user equipment determines the centralized type Mapping method
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level of 8, the user equipment determines the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH candidates corresponding to the distributed mapping mode The sum of the number is 2; for the aggregation level is 16, the user equipment determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2. Further, the determining the number of candidate EPDCCHs corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 0;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 1;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 32 is 0.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 are 6; or
  • the user equipment determines that the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 are 6; or
  • the user equipment determines the aggregation of the centralized mapping mode.
  • the sum of the number of EPDCCH candidates corresponding to the aggregation level 32 and the aggregation level 8 of the level 8 and the distribution mapping mode is 2;
  • the user equipment determines that the aggregation level of the aggregation mode 16 and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 16 are 2.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 2;
  • the user equipment determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 0; The user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines the aggregation level 4 and The number of EPDCCH candidates corresponding to aggregation level 8 is 1; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 16 is 0.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode 16, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 1 is 6; Or,
  • the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; Or,
  • the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; Or,
  • the user equipment determines the aggregation level of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the determining the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode respectively includes:
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and determines the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; a distributed mapping mode, the user equipment determines to allocate 6 EPDCCH candidates to at least one aggregation level; or For the centralized mapping mode, the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 is 2. a distributed mapping mode, the user equipment determines to allocate two EPDCCH candidates to at least one aggregation level; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; a distributed mapping mode, the user equipment determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the distributed mapping mode, the user equipment determines to allocate two EPDCCH candidates to at least one aggregation level.
  • determining, according to the aggregation level, the number of physical control channel candidates corresponding to the aggregation level including:
  • the determining the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected includes:
  • the number of physical control channel candidates corresponding to the aggregation level is determined by the number of PRBs of the physical control channel set;
  • the number of physical control channel candidates corresponding to the aggregation level is determined by the number of PRBs of the physical control channel set.
  • the determining the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected includes:
  • the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set, and the physical control channel candidate is used.
  • the number is proportional to the number of the PRBs; for the physical control channel set is a distributed mapping mode, for the same aggregation level, the root And determining, according to the number of PRBs of the physical control channel set, the number of physical control channel candidates corresponding to the aggregation level, where the number of the physical control channel candidates is proportional to the number.
  • the physical control channel set is a distributed mapping mode
  • the number of PRBs included in the physical control channel set is 8
  • the physical control channel candidate with the aggregation level of the physical control channel set is 1. The number is 0;
  • the physical control channel set is a distributed mapping mode, if the number of PRBs included in the physical control channel set is 16, the physical control channel candidate of the physical control channel set is 1 and 2 The number is 0.
  • the receiving the downlink control information on the control channel candidate of the control channel set includes:
  • the user equipment receives the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and is received by the EPDCCH candidate corresponding to the distributed mapping mode, and the SI-RNTI and the RA-RNTI are deleted.
  • the downlink control information scrambled by other RNTIs other than the scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • receiving the downlink control information on the control channel candidate of the control channel set includes:
  • the user equipment receives the downlink control information that includes the cross-carrier scheduling instruction on the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the downlink control of the cross-carrier scheduling instruction.
  • the information is received on the EPDCCH candidate corresponding to another mode.
  • receiving the downlink control information on the control channel candidate of the control channel set includes:
  • the user equipment receives the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and passes the downlink control information of the format 2C through the centralized corresponding candidate EPDCCH.
  • receiving the downlink control information on the control channel candidate of the control channel set includes:
  • the user equipment sets an EPDCCH whose aggregation level is greater than or equal to a set value in the distribution.
  • the EPDCCH candidate corresponding to the type mapping method is received, and the EPDCCH whose aggregation level is smaller than the set value is received by the EPDCCH candidate corresponding to the centralized mapping method.
  • an embodiment of the present invention provides a network side device, including:
  • a selection module configured to select an aggregation level to be detected of a physical control channel set in the transmission subframe
  • a sending module configured to send downlink control information on a physical control channel candidate corresponding to the selected number.
  • the selecting module is specifically configured to: when the number of REs that can be used for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is The minimum aggregation level of the physical control channel set to be detected is 1 when the number of REs in the PRB pair of the physical control channel set is greater than or equal to the threshold X; or
  • the physical control channel is the normal subframe of the normal CP length or the special subframe configured as 3, 4, 8 and the number of REs available for the physical control channel in one PRB pair is less than X.
  • the minimum aggregation level to be detected by the set is 2; the subframe is not a normal subframe of the normal CP length, and is not a special subframe configured as 3, 4, 8, or an RE that can be used for a physical control channel in a PRB pair.
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • the selecting module is specifically configured to divide the physical control channel set into two sets, one set corresponding to a centralized mapping manner of a physical control channel, and another set corresponding to a distributed physical control channel Mapping method
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the selection module selects centralized Mapping method The sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level is 16, the selection module selects the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH candidates corresponding to the distributed mapping mode The sum of the numbers is 2.
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; or
  • the selection module selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the selection module selects the number of EPDCCH candidates corresponding to the aggregation level 32 to be 0.
  • the selection module selects the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6.
  • the selection module selects the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the selection module selects the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the selection module selects a centralized mapping manner.
  • the sum of the aggregation level 32 of the level 16 and the distribution mapping method and the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 2, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the selection module selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 to be 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and the number of EPDCCH candidates corresponding to the aggregation level and the aggregation level 8 is 2; or
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 to be 3, and selects the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 to be 1; In the mode, the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2, aggregation level 4, and aggregation level 8 is 0;
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 0, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • the selecting module selects an aggregation level of 16 pairs.
  • the number of EPDCCH candidates should be zero.
  • the selection module selects the sum of the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 1. Is 6; or,
  • the selection module selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; Or,
  • the selection module selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; Or,
  • the aggregation level is 16 and the aggregation level is 8.
  • the selection module selects the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 4 is 2, and the number of EPDCCH candidates corresponding to aggregation level 8 is
  • the selection module selects to allocate 6 EPDCCH candidates to at least one aggregation level; or, for the centralized mapping mode, the selection module selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6,
  • the number of EPDCCH candidates corresponding to the aggregation level 4 is 6 and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; for the distributed mapping mode, the selection module selects to allocate 2 EPDCCH candidates to at least one aggregation level; or ,
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to aggregation level 4 is 2; a distributed mapping mode, the selecting module selects to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the selection module selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 is 2; In the distributed mapping mode, the selecting module selects to allocate two EPDCCH candidates to at least one aggregation level.
  • the selecting module is configured to select, to be detected, the physical control channel set The number of physical control channel candidates corresponding to the aggregation level.
  • the physical control channel set is a centralized mapping mode, and the selection module selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set for the same aggregation level. ;
  • the number of the physical control channel candidates corresponding to the aggregation level is selected according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the physical control channel set is a centralized mapping mode, and the selection module selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of the physical control channel candidates is proportional to the number of the PRBs;
  • the number of physical control channel candidates corresponding to the aggregation level is selected by the selection module according to the number of PRBs of the physical control channel set, where the physical control channel set is a distributed mapping mode.
  • the number of physical control channel candidates is proportional to the number.
  • the sending module is configured to send the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI to the EPDCCH candidate corresponding to the distributed mapping mode, and use the SI-RNTI Downlink control information that is scrambled with other RNTIs other than the RA-RNTI scrambling is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the sending module is configured to send the downlink control information that includes the cross-carrier scheduling command to the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the cross- The downlink control information of the carrier scheduling instruction is sent on the EPDCCH candidate corresponding to another mode.
  • the sending module is configured to send the downlink control information of the format 0 and/or the format 1A to the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and pass the downlink control information of the format 2C to the centralized EPDCCH transmission on the candidate EPDCCH corresponding to the formula;
  • the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the sending module is configured to set an aggregation level to be greater than or equal to a set value.
  • the EPDCCH is transmitted on the EPDCCH candidate corresponding to the distributed mapping scheme, and the EPDCCH whose aggregation level is smaller than the set value is transmitted on the EPDCCH candidate corresponding to the centralized mapping scheme.
  • an embodiment of the present invention provides a user equipment, including:
  • a determining module configured to determine an aggregation level of the physical control channel set in the transmission subframe to be detected, and determine, according to the aggregation level, a number of physical control channel candidates corresponding to the aggregation level;
  • a receiving module configured to receive downlink control information on the determined physical control channel candidate corresponding to the number.
  • the determining module when the number of REs available for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is 2; When the number of REs in the PRB pair of the physical control channel set is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical control channel is the normal subframe of the normal CP length or the special subframe configured as 3, 4, 8 and the number of REs available for the physical control channel in one PRB pair is less than X.
  • the minimum aggregation level to be detected by the set is 2; the subframe is not a normal subframe of the normal CP length, and is not a special subframe configured as 3, 4, 8, or an RE that can be used for a physical control channel in a PRB pair.
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • the determining module is configured to divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of a physical control channel, and another set corresponds to a distributed mapping of a physical control channel the way;
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is determined separately.
  • the determining module determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, the determining module determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; For the aggregation level of 8, the determining module determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level is 16, the determining module determines the centralized mode. The sum of the number of EPDCCH candidates corresponding to the mapping method and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 0; In the distributed mapping mode, the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2;
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; The determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; or
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 32 is 0.
  • the determining module determines that the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 are 6 Or,
  • the determining module determines the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the determining module determines that the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 8 are 2; or For the aggregation level 32 and the aggregation level 16, the determining module determines that the aggregation level of the aggregation mode 16 and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 16 are 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the aggregation level is 2, the determining module determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the determining module determines a centralized mapping manner corresponding to
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the determining module determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 0; In the distributed mapping mode, the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level other than the J 4 and the aggregation level 8 is 2;
  • the determining module determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1; The determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 16 is 0.
  • the determining module determines the sum of the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 1. Is 6; or,
  • the determining module determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; Or,
  • the determining module determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; Or,
  • the determining module determines the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and determines the number of EPDCCH candidates corresponding to the aggregation level 8 as
  • the determining module determines to allocate the six EPDCCH candidates to the at least one aggregation level; or, for the centralized mapping mode, the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6,
  • the number of EPDCCH candidates corresponding to the aggregation level 4 is determined to be 6
  • the number of EPDCCH candidates corresponding to the aggregation level 8 is determined to be 2; for the distributed mapping mode, the determining module determines to allocate 2 EPDCCH candidates to at least one aggregation level; or ,
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; a distributed mapping mode, the determining module determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the determining module determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2;
  • the distributed mapping mode determines that the two EPDCCH candidates are allocated to at least one aggregation level.
  • the determining module is configured to determine the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the physical control channel set is a centralized mapping mode, and the determining module determines, according to the number of PRBs of the physical control channel set, the number of physical control channel candidates corresponding to the aggregation level, for the same aggregation level. ;
  • the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the physical control channel set is a centralized mapping mode, and the determining module determines, according to the number of PRBs of the physical control channel set, the number of physical control channel candidates corresponding to the aggregation level, The number of the physical control channel candidates is proportional to the number of the PRBs;
  • the receiving module is configured to receive downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and receive the downlink control information corresponding to the distributed mapping mode, and use the SI-RNTI Downlink control information scrambled with other RNTIs other than the RA-RNTI scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the receiving module is configured to receive the downlink control information that includes the cross-carrier scheduling instruction on the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the cross- The downlink control information of the carrier scheduling instruction is received on the EPDCCH candidate corresponding to another mode.
  • the receiving module is configured to receive the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and pass the downlink control information of the format 2C through the centralized EPDCCH reception on the candidate EPDCCH corresponding to the formula; second, the number of blind detection corresponding to the centralized mapping mode is 16 times. Further, the receiving module is configured to set an aggregation level to be greater than or equal to a set value.
  • the EPDCCH is received by the EPDCCH candidate corresponding to the distributed mapping mode, and the EPDCCH whose aggregation level is smaller than the set value is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • an embodiment of the present invention provides a network side device, including: a selection processor, configured to select, according to a physical control channel set in a transmission subframe, an aggregation level to be detected;
  • a transmitter configured to send the downlink control information on the physical control channel candidate corresponding to the selected number.
  • the selecting processor is specifically configured to: when the number of REs in the PRB pair of the physical control channel set that can be used for the physical control channel is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected When the number of REs in the PRB pair of the physical control channel set is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical control channel is the normal subframe of the normal CP length or the special subframe configured as 3, 4, 8 and the number of REs available for the physical control channel in one PRB pair is less than X.
  • the minimum aggregation level to be detected by the set is 2; the subframe is not a normal subframe of the normal CP length, and is not a special subframe configured as 3, 4, 8, or an RE that can be used for a physical control channel in a PRB pair.
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • the selecting processor is specifically configured to divide the physical control channel set into two sets, one of the sets corresponds to a centralized mapping manner of a physical control channel, and another of the sets corresponds to a physical control channel.
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is respectively selected.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the selection processor selects a centralized mapping mode corresponding to The sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level is 8, the selection processor selects the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH corresponding to the distributed mapping mode.
  • the sum of the number of candidates is 2; for the aggregation level of 16, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; or
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 4, aggregation level 8 and aggregation level 16 is 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the selection processor selects the number of EPDCCH candidates corresponding to the aggregation level 32 to be 0.
  • the sum of the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 are selected by the selection processor. 6; or,
  • the selection processor selects the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the selection processor selects a centralized mapping mode
  • the sum of the aggregation level 8 and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the selection processor selects the aggregation level of the aggregation level 16 and the aggregation level 32 of the distribution mapping method, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 2, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the selection processor selects the centralized mapping mode corresponding to
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping scheme is 2.
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 to be 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2;
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 to be 3, and selects the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 to be 1; In the mapping mode, the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2, aggregation level 4, and aggregation level 8 is 0; , the selection processor selects a poly The number of EPDCCH candidates corresponding to level 1 is 0, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • the selection processor selects the number of EPDCCH candidates corresponding to the aggregation level 16 to be 0.
  • the selection processor selects the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 1 And is 6; or,
  • the selection processor selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2 of the aggregation level, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other J 2 And is 6; or,
  • the selection processor selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4 of the aggregation level, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other 'J 4 And 2; or,
  • the selection processor selects the aggregation level 16 of the centralized mapping mode, the aggregation level 8 of the aggregation level, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other J 8 And for 2.
  • the selection processor selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 to be 2, and selects the number of EPDCCH candidates corresponding to the aggregation level 8. 2; for the distributed mapping mode, the selecting processor selects to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, the number of EPDCCH candidates corresponding to aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to aggregation level 8 is 2;
  • the selection processor selects to allocate the two EPDCCH candidates to the at least one aggregation level; or, for the centralized mapping mode, the selection processor selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, The number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2;
  • the selection processor selects to allocate 6 EPDCCH candidates to at least one aggregation level; or,
  • the selection processor selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 8 is 2;
  • the selection processor is configured to select the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the physical control channel set is a centralized mapping mode, and the selection processor selects, according to the number of PRBs of the physical control channel set, the physical control channel candidate corresponding to the aggregation level, for the same aggregation level. Number
  • the number of the physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the physical control channel set is a centralized mapping mode, and the selection processor selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of the physical control channel candidates is proportional to the number of the PRBs;
  • the number of physical control channel candidates corresponding to the aggregation level is selected according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of physical control channel candidates is proportional to the number.
  • the transmitter is configured to send the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI to the EPDCCH candidate corresponding to the distributed mapping mode, and use the SI-RNTI for erasing Downlink control information that is scrambled with other RNTIs other than the RA-RNTI scrambling is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the transmitter is configured to send the downlink control information that includes the cross-carrier scheduling instruction on the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the cross- The downlink control information of the carrier scheduling instruction is sent on the EPDCCH candidate corresponding to another mode.
  • the transmitter is configured to send the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping manner.
  • the downlink control information of the formula 2C is sent by the EPDCCH on the centralized corresponding candidate EPDCCH; 16 times, and the number of blind detections corresponding to the centralized mapping mode is 16 times.
  • the transmitter is configured to set an aggregation level to be greater than or equal to a set value.
  • the EPDCCH is transmitted on the EPDCCH candidate corresponding to the distributed mapping mode, and the EPDCCH whose aggregation level is smaller than the set value is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • an embodiment of the present invention provides a user equipment, including:
  • a determining processor configured to determine an aggregation level of the physical control channel set to be detected in the transmission subframe, and determine, according to the aggregation level, a number of physical control channel candidate corresponding to the aggregation level, where the determining is used in the determining
  • the downlink control information is received on the physical control channel candidate corresponding to the number.
  • the determining processor when the number of REs available for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is 2 When the number of REs in the PRB pair of the physical control channel set is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical control channel is the normal subframe of the normal CP length or the special subframe configured as 3, 4, 8 and the number of REs available for the physical control channel in one PRB pair is less than X.
  • the minimum aggregation level to be detected by the set is 2; the subframe is not a normal subframe of the normal CP length, and is not a special subframe configured as 3, 4, 8, or an RE that can be used for a physical control channel in a PRB pair.
  • the minimum aggregation level to be detected of the physical control channel set is 1, and the minimum aggregation level to be detected of the physical control channel set is 1.
  • the determining processor is configured to divide the physical control channel set into two sets, one set corresponding to a centralized mapping manner of a physical control channel, and another set corresponding to a distributed physical control channel Mapping method
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is determined separately.
  • the determining processor determines the centralized mapping manner
  • the sum of the number of corresponding EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining processor determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level is 8, the determining processor determines Centralized mapping method
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level is 16, the determining processor determines the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH corresponding to the distributed mapping mode.
  • the sum of the candidate numbers is 2.
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 0; For the distributed mapping mode, the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2;
  • the determining processor determines that the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 1; In the mapping mode, the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1; or
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 32 is 0.
  • the determining processor determines the aggregation level 2 of the centralized mapping mode and the aggregation set 32 of the distributed mapping mode, and the aggregation level.
  • the determining processor determines a centralized mapping manner
  • the sum of the aggregation level 4 and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the determining processor determines that the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 8 are 2; or
  • the determining processor determines the aggregation level of the aggregation level 16 and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the determining processor determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the aggregation level is 2, the determining processor determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the determining processor determines a centralized mapping manner corresponding to
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the determining processor determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 0; For the distributed mapping mode, the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2;
  • the determining processor determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1;
  • the mapping mode the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 16 is 0.
  • the determining processor determines the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 1 And is 6; or,
  • the determining processor determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2 of the aggregation level, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other J 2 And is 6; or,
  • the determining processor determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4 of the aggregation level, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level of the other 'J 4 And 2; or,
  • the determining processor determines the aggregation level 16 of the centralized mapping mode, the aggregation level 8 of the aggregation mapping mode, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level another 'J 8 And for 2.
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and determines the number of EPDCCH candidates corresponding to the aggregation level 8. 2; for the distributed mapping mode, the determining processor determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the determining processor determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determining that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determining the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the determining processor determines to allocate 2 EPDCCH candidates to at least one aggregation level; or, for the centralized mapping mode, the determining processor determines the aggregation level 1 corresponding to The number of EPDCCH candidates is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; for the distributed mapping mode, the determining processor determines 6 EPDCCH candidates.
  • the number of EPDCCH candidates corresponding to the aggregation level 1 is 6 and the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the aggregation level 4 is determined.
  • the number of corresponding EPDCCH candidates is 2; for the distributed mapping mode, the determining processor determines to allocate 2 EPDCCH candidates to at least one aggregation level.
  • the determining processor is configured to determine the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the physical control channel set is a centralized mapping mode, and the determining processor determines, according to the number of PRBs of the physical control channel set, the physical control channel candidate corresponding to the aggregation level, for the same aggregation level. Number
  • the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the physical control channel set is a centralized mapping mode, and the determining processor determines, according to the number of PRBs of the physical control channel set, the number of physical control channel candidates corresponding to the aggregation level, for the same aggregation level.
  • the number of the physical control channel candidates is proportional to the number of the PRBs;
  • the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of physical control channel candidates is proportional to the number.
  • the receiver is configured to receive downlink control information that is scrambled by using the SI-RNTI or the RA-RNTI, and receive the downlink control information corresponding to the distributed mapping mode, and remove the SI-RNTI by using the SI-RNTI.
  • Downlink control information scrambled with other RNTIs other than the RA-RNTI scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the receiver is configured to receive the downlink control information that includes the cross-carrier scheduling instruction on the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and does not include the cross- Downlink control information of the carrier scheduling instruction is another The EPDCCH candidate corresponding to the mode is received.
  • the receiver is configured to receive the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and pass the downlink control information of the format 2C through the centralized EPDCCH reception on the candidate EPDCCH corresponding to the formula;
  • the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the receiver is configured to receive an EPDCCH with an aggregation level greater than or equal to a set value on an EPDCCH candidate corresponding to the distributed mapping manner, and set an EPDCCH whose aggregation level is smaller than the set value in the centralized manner.
  • the EPDCCH candidate corresponding to the type mapping method is received.
  • the network side device selects the aggregation level of the physical control channel set in the transmission subframe, and selects the physical control corresponding to the aggregation level according to the aggregation level.
  • the number of channel candidates the network side sends downlink control information on the physical control channel candidate corresponding to the selected number; the user equipment determines the aggregation level to be detected by determining the physical control channel set in the transmission subframe; and determines the aggregation according to the aggregation level.
  • the side device and the user device can communicate without increasing the number of blind detections.
  • FIG. 1 is a flowchart of an embodiment of a network side transmission method for downlink control information according to the present invention
  • FIG. 2 is a flowchart of an embodiment of a method for transmitting user equipment of downlink control information according to the present invention
  • Schematic is a schematic structural diagram of Embodiment 1 of a user equipment according to the present invention
  • FIG. 5 is a schematic structural diagram of Embodiment 2 of a network side device according to the present invention.
  • FIG. 6 is a schematic structural diagram of Embodiment 2 of a user equipment according to the present invention.
  • the technical solutions in the embodiments of the present invention are clearly and completely described in the following with reference to the accompanying drawings in the embodiments of the present invention.
  • the embodiments are a part of the embodiments of the invention, and not all of the embodiments. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the present invention without creative efforts are within the scope of the present invention.
  • FIG. 1 is a flowchart of an embodiment of a network side transmission method for downlink control information according to the present invention. As shown in FIG. 1, the method for transmitting downlink control information on the network side of the present invention includes the following steps:
  • Step 101 Select an aggregation level to be detected of the physical control channel set in the transmission subframe.
  • the EPDCCH is introduced in the R11 version.
  • the Peugeot discussion has determined that the EPDCCH supports both Localized and Distributed modes, which are applied to two different scenarios: frequency domain continuous and discontinuous.
  • the EPDCCH search space is defined by a physical control channel set (hereinafter referred to as EPDCCH set), and one EPDCCH set is composed of N physical resource blocks (hereinafter referred to as PRBs).
  • the EPDCCH set is either a centralized mapping mode or a mapping mode.
  • One UE can be configured with K>1 EPDCCH set, and the UE performs EPDCCH search in the configured EPDCCH set.
  • the DCI transmits according to the coding rate and uses different aggregation levels.
  • the network side device selects the aggregation level to be detected by the EPDCCH set in the transmission subframe according to different DCIs.
  • Step 102 Select a number of physical control channel candidates corresponding to the aggregation level according to the aggregation level.
  • the number of physical control channel candidates corresponding to the aggregation level is selected according to the aggregation level, that is, the number of blind detections is determined, so that the number of blind detections does not exceed the number of times specified by the protocol.
  • Step 103 Send downlink control information on the physical control channel candidate corresponding to the selected number.
  • the network side device may divide the physical control channel set into two sets, determine the number of EPDCCH candidates corresponding to each aggregation level of each set, or determine the EPDCCH candidate corresponding to each aggregation level of each control channel set without dividing the set. number.
  • the user equipment determines, according to different aggregation levels, the number of physical control channel candidates to perform blind detection on the physical control channel set to receive downlink control information.
  • the network side device selects the aggregation level of the physical control channel set to be detected in the transmission subframe, and selects the number of physical control channel candidates corresponding to the aggregation level according to the aggregation level, the network
  • the downlink control information is sent on the physical control channel candidate corresponding to the selected number; the user equipment determines the aggregation level to be detected by the physical control channel set in the transmission subframe; and determines the physical control channel candidate corresponding to the aggregation level according to the aggregation level.
  • the number of the physical control channel is blindly detected to receive the downlink control information, so that the number of physical control channel candidates is determined according to the aggregation level, that is, the number of blind detections is determined, and the network side device and the user equipment can be Communication is performed without increasing the number of blind detections.
  • the network side device may select the minimum aggregation level to be detected of the physical control channel set to be 2; the PRB pair of the physical control channel set When the number of REs is greater than or equal to the threshold X, the network side device may select the minimum aggregation level to be detected by the physical control channel set to be 1.
  • the user equipment may determine that the minimum aggregation level of the physical control channel set to be detected is 2; the PRB pair of the physical control channel set When the number of REs is greater than or equal to the threshold X, the user equipment may determine that the minimum aggregation level to be detected of the physical control channel set is 1.
  • the threshold value is considered for the physical control channel set.
  • the network-side device can select the minimum aggregation level of the physical control channel set to be detected as 2; otherwise, for the ordinary CP length
  • the network side device may select the physical control channel set.
  • the minimum aggregation level detected is 1.
  • the user equipment can determine The minimum aggregation level of the physical control channel set to be detected is 2; otherwise, for other subframe types that are not normal CP length and are configured as 3, 4, 8 special subframes, or a PRB pair is available
  • the user equipment may determine that the minimum aggregation level to be detected of the physical control channel set is 1.
  • the subframe when the subframe is a normal subframe of a normal CP length or a special subframe configured as 3, 4, 8, and one PRB pair can be used for the physical control channel.
  • the minimum aggregation level to be detected by the network side device to select the physical control channel set is 2, otherwise, the minimum aggregation level is set to 1.
  • the network side device may divide the physical control channel set into two sets, and determine the number of EPDCCH candidates corresponding to each aggregation level of each set. It is also possible to determine the number of EPDCCH candidates corresponding to each aggregation level of each control channel set without dividing the set. Below, the two methods are described in detail below.
  • the network side device divides the physical control channel set into two sets, one set corresponds to the centralized mapping mode of the physical control channel, and the other set corresponds to the distributed mapping mode of the physical control channel; respectively selects the centralized mapping mode and the distributed mapping mode The number of EPDCCH candidates corresponding to each aggregation level.
  • the user equipment may also divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of the physical control channel, and another set corresponds to a distributed mapping manner of the physical control channel; respectively, determine a centralized mapping manner
  • the number of the EPDCCH candidates may be specified in the protocol, that is, preset, or may be sent by the network side device to the user equipment.
  • the aggregation level is 2, and the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6
  • the network side selects the centralized mapping mode.
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level of 16, the EPDCCH candidate number corresponding to the centralized mapping mode and the EPDCCH candidate corresponding to the distributed mapping mode are selected by the network side The sum of the numbers is 2.
  • the user equipment determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level 4, the user equipment determines the centralized mapping The sum of the number of EPDCCH candidates corresponding to the mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6.
  • the user equipment determines the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH corresponding to the distributed mapping mode. The sum of the number of candidates is 2; for the aggregation level of 16, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the aggregation level supported by the centralized mapping mode is 2, 4, 8, (16)
  • the aggregation level of the distributed mapping mode is 2, 4, 8, 16, (32), where (16) represents the concentration.
  • Aggregation level 16 is optional in mapping mode
  • (32) indicates that aggregation level 32 is optional in the distribution mapping mode
  • centralized aggregation level (16) and distributed aggregation level (32) are in certain EPDCCH transmission scenarios. , need to be used.
  • both the centralized mapping mode and the distributed mapping mode support the aggregation level ⁇ 2, 4, 8, 16 ⁇ , and the setting of the PDCCH candidate channel is used, corresponding to The aggregation level is ⁇ 2, 4, 8, 16 ⁇ , and the number of EPDCCH candidates is ⁇ 6, 6, 2, 2, ⁇ .
  • the corresponding EPDCCH candidate is 6, and the network side device or user equipment can use the 6
  • the EPDCCH candidate is allocated to the set of the centralized mapping and the set of the distributed mapping. For example, all 6 EPDCCH candidates are allocated to the set of the centralized mapping manner, and no EPDCCH candidate is allocated to the set of the distributed mapping manner.
  • the specific configuration may be specified in the protocol, that is, preset, or the network side device may send a signaling notification to the user equipment. If the user equipment is notified by the network side device, the number of EPDCCH candidates of each aggregation level in the EPDCCH notified by the network side is received before the user equipment performs blind detection.
  • Table 1 shows the first scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set. As shown in Table 1, for the centralized mapping mode, the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 of the network side device is 6 and the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 0.
  • the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 of the network side device is 0, and the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 2; correspondingly,
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 0.
  • the device determines that the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 2.
  • Table 2 shows a second scheme in which the EPDCCH candidate is configured to the centralized mapping mode set and the distributed mapping mode set.
  • the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 of the network side device is 3, and the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 1.
  • the number of EPDCCH candidates corresponding to the aggregation level 2 and the aggregation level 4 of the network side device is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1.
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 2 and aggregation level 4 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 8 and aggregation level 16 is 1; In the mapping mode, the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level and the aggregation level 4 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 is 1.
  • Table 3 shows the third scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • the network side device selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 4, aggregation level 8 and aggregation level 16 is 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 2 of the network side device is 0, the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 and the aggregation level 16 are selected. 2.
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4, the aggregation level 8 and the aggregation level 16 is 0;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the aggregation level 8 and the number of EPDCCH candidates for the aggregation level are both 2.
  • both the centralized distribution set and the distributed mapping set support the aggregation level ⁇ 2, 4, 8, 16 ⁇ .
  • the aggregation level 16 is optional. In other embodiments, for the centralized type, the aggregation level 16 may be disregarded. At this time, all of the two EPDCCH candidates corresponding to the aggregation level 16 are configured to the set of distributed mappings.
  • the number of EPDCCH candidates corresponding to the aggregation level 32 is 0, and the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 32 is 0, when the aggregation level is set to 32.
  • the aggregation level ⁇ 2, 4, 8, 16 ⁇ of the PDCCH candidate channel is selected according to the present invention, and the number of EPDCCH candidates is ⁇ 6, 6, The sum of 2, 2, ⁇ is invariant. Therefore, the EPDCCH candidate corresponding to the partial aggregation level 2 may be allocated to the set of distributed mapping modes corresponding to the aggregation level 32. Alternatively, the EPDCCH candidate corresponding to the partial aggregation level 4 may be allocated.
  • the EPDCCH candidate corresponding to the aggregation level 8 is allocated to the set of the distributed mapping mode corresponding to the aggregation level 32; or the EPDCCH candidate corresponding to the partial aggregation level 16 may be allocated.
  • Table 4 shows a fourth scheme in which the EPDCCH candidate is configured to the centralized mapping mode set and the distributed mapping mode set.
  • the network side device 10 selects the aggregation level 2 of the centralized mapping mode, the aggregation set 32 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 2.
  • the sum is 6; correspondingly, for the aggregation level of 32 and aggregation level 2, the user equipment determines the aggregation level 2 of the centralized mapping mode and The sum of the number of EPDCCH candidates corresponding to the aggregation level 32 of the distributed mapping mode and the aggregation level 2 is 6.
  • the network side device 10 allocates two of the EPDCCH candidates corresponding to the aggregation level 2 to the aggregation level 32 of the distribution mapping mode.
  • the present invention is not limited thereto.
  • the network side device One or N of the EPDCCH candidates corresponding to the aggregation level 2 may be allocated to the aggregation level 32 of the distribution mapping method.
  • Table 5 shows the fifth scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 of the network side device are 6
  • the sum of the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 2 of the user equipment is 6.
  • the network side device 10 will use one of the EPDCCH candidates corresponding to the aggregation level 4.
  • the aggregation level 32 of the distribution mapping mode is not limited to this. In other embodiments, the network side device may also allocate one or N of the EPDCCH candidates corresponding to the aggregation level 4 to the distribution map.
  • the aggregation level of the mode is 32.
  • Table 6 shows the sixth scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • the sum of the aggregation level 8 of the network-side device selection aggregation mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 8 is Correspondingly, for aggregation level 32 and aggregation level 8, the user equipment determines that the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode and the number of EPDCCH candidates corresponding to the aggregation level 8 are 2.
  • the network side device 10 allocates one of the EPDCCH candidates corresponding to the aggregation level 8 to the aggregation level 32 of the distribution mapping mode.
  • the present invention is not limited thereto.
  • the network side device One or two of the EPDCCH candidates corresponding to the aggregation level 8 may be allocated to the aggregation level 32 of the distribution mapping method.
  • Table 7 shows the seventh scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • the network side device selects the centralized mapping mode aggregation level 16 and the aggregation level 32 of the distribution mapping method, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2
  • the user equipment determines that the sum of the aggregation level aggregation level 16 and the aggregation level 32 of the distribution mapping method and the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the network side device 10 allocates one of the EPDCCH candidates corresponding to the aggregation level 16 to the aggregation level 32 of the distribution mapping mode, but the invention is not limited thereto. In other embodiments, The network side device may also allocate one or two of the EPDCCH candidates corresponding to the aggregation level 16 to the aggregation level 32 of the distribution mapping mode.
  • the PRB pair of the physical control channel set can be used for the physical control channel.
  • the network side device selects the EPDCCH candidate corresponding to the centralized mapping mode.
  • the sum of the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level of 8, the network side device selects the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH candidate corresponding to the distributed mapping mode The sum of the numbers is 2.
  • the user equipment determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level is 2, the user equipment determines the concentration.
  • the sum of the number of EPDCCH candidates corresponding to the mapping method and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level 4, the user equipment determines the number and distributed of EPDCCH candidates corresponding to the centralized mapping mode.
  • the sum of the number of EPDCCH candidates corresponding to the mapping mode is 2; for the aggregation level of 8, the user equipment determines the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCHs selected by the distributed mapping mode. Is 2.
  • the aggregation level supported by the centralized mapping mode is 1, 2, 4, (8)
  • the aggregation level of the distributed mapping mode is 1, 2, 4, 8, (16).
  • (8) indicates centralized mapping In the mode, aggregation level 8 is optional
  • (16) indicates that aggregation level 16 is optional in the distribution mapping mode, and centralized aggregation level (8) and distributed aggregation level (16) are in some EPDCCH transmission scenarios. Need to use.
  • both the centralized mapping mode and the distributed mapping mode support the aggregation level ⁇ 1 , 2 , 4 , 8 ⁇ , and the PDCCH candidate channel setting is used, corresponding to At the aggregation level ⁇ 1 , 2, 4 , 8 ⁇ , the number of EPDCCH candidates is ⁇ 6, 6 , 2, 2, ⁇ .
  • the corresponding EPDCCH candidate is 6, and the network side device or the user equipment can allocate the 6 EPDCCH candidates to the set of the centralized mapping and the set of the distributed mapping, for example, to the set of the centralized mapping manner.
  • All 6 EPDCCH candidates are allocated, and no EPDCCH candidates are allocated to the set of distributed mapping modes.
  • the specific configuration may be specified in the protocol, that is, preset, or the network side device may send a signaling notification to the user equipment. If the user equipment is notified by the network side device, the number of EPDCCH candidates of each aggregation level in the EPDCCH notified by the network side is received before the user equipment performs blind detection.
  • Table 8 shows the eighth scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set. As shown in Table 8, for the centralized mapping mode, the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 of the network side device is 6 and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 0.
  • the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 0, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2; correspondingly,
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 0.
  • the device determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 0, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • Table 9 is the ninth scheme in which the EPDCCH candidate is configured to the centralized mapping mode set and the distributed mapping mode set.
  • the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 of the network side device is 3, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1.
  • the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 of the network side device is 3, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1.
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1; In the mapping mode, the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 is 3, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1.
  • Table 10 shows the tenth scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • the network side device selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2, aggregation level 4, and aggregation level 8 is 0;
  • the number of EPDCCH candidates corresponding to aggregation level 1 is 0, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 are both 2.
  • the user equipment determines that the number of EPDCCH candidates corresponding to aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to aggregation level 2, aggregation level 4, and aggregation level 8 is 0;
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, and determines the EPDCCH candidates corresponding to the aggregation level 2.
  • the number is 6, and it is determined that the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • both the centralized distribution set and the distributed mapping set support the aggregation level ⁇ 2, 4, 8, 16 ⁇ .
  • the aggregation level 16 is optional. In other embodiments, for the centralized type, the aggregation level 16 may be disregarded. At this time, all of the two EPDCCH candidates corresponding to the aggregation level 16 are configured to the set of distributed mappings.
  • the number of EPDCCH candidates corresponding to the aggregation level 16 is 0, and the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 16 is 0, when the aggregation level of the aggregation layer is not considered, the number of EPDCCH candidates corresponding to the aggregation level 16 is 0.
  • the aggregation level ⁇ 1 , 2, 4, 8 ⁇ of the PDCCH candidate channel is set according to the present invention, and the number of EPDCCH candidates is ⁇ 6, 6, The sum of 2, 2, ⁇ is invariant. Therefore, the EPDCCH candidate corresponding to the partial aggregation level 2 may be allocated to the set of distributed mapping modes corresponding to the aggregation level 16; or the EPDCCH candidate corresponding to the partial aggregation level 4 may be allocated.
  • the aggregation mapping mode set corresponding to the aggregation level 16 is configured; or the EPDCCH candidate corresponding to the partial aggregation level 8 may be allocated to the distributed mapping mode set corresponding to the aggregation level 16; or, the partial aggregation may be performed.
  • the EPDCCH candidate corresponding to the level 16 is allocated to the set of distributed mapping modes corresponding to the aggregation level 16.
  • Table 11 shows the eleventh scheme in which the EPDCCH candidate is configured to the centralized mapping mode set and the distributed mapping mode set. As shown in Table 11, for the aggregation level of 16 and aggregation level 1, the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 1.
  • the sum is 6; correspondingly, for the aggregation level is 16 and the aggregation level is 1, the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the EPDCCH candidates corresponding to the aggregation level 1
  • the sum of the numbers is 6.
  • the network side device 10 allocates two of the EPDCCH candidates corresponding to the aggregation level 1 to the aggregation level 16 of the distribution mapping mode.
  • the present invention is not limited thereto.
  • the network side device One or N of the EPDCCH candidates corresponding to the aggregation level 1 may be allocated to the aggregation level 16 of the distribution mapping method.
  • Table 12 shows the 12th scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set. As shown in Table 12, for the aggregation level of 16 and the aggregation level 2, the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 2.
  • the sum is 6; correspondingly, for the aggregation level is 16 and the aggregation level is 2, the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the EPDCCH candidate corresponding to the aggregation level 2
  • the sum of the numbers is 6.
  • the network side device 10 allocates two of the EPDCCH candidates corresponding to the aggregation level 2 to the aggregation level 16 of the distribution mapping mode, but the invention is not limited thereto. In other embodiments, The network side device may also allocate one or N of the EPDCCH candidates corresponding to the aggregation level 2 to the aggregation level 16 of the distribution mapping mode.
  • Table 13 shows the thirteenth scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set. As shown in Table 13, for the aggregation level of 16 and aggregation level 4, the network side device selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 4.
  • the sum is 2; correspondingly, for the aggregation level is 16 and the aggregation level is 4, the user equipment determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the EPDCCH candidate corresponding to the aggregation level 4
  • the sum of the numbers is 2.
  • the network side device 10 allocates two of the EPDCCH candidates corresponding to the aggregation level 4 to the aggregation level 16 of the distribution mapping mode.
  • the present invention is not limited thereto.
  • the network side device One or two of the EPDCCH candidates corresponding to the aggregation level 4 may be allocated to the aggregation level 16 of the distribution mapping method.
  • Table 14 shows the 14th scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • Table 14 shows the 14th scheme of the EPDCCH candidate configuration to the centralized mapping mode set and the distributed mapping mode set.
  • Table 14 for aggregation level 16 and aggregation level 8, network side The sum of the number of EPDCCH candidates corresponding to the aggregation level 16 and the aggregation level of the device in the centralized mapping mode and the aggregation level of the aggregation level 8 is 2; correspondingly, for the aggregation level is 16 and the aggregation level is 8, The user equipment determines that the sum of the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the network side device 10 allocates one of the EPDCCH candidates corresponding to the aggregation level 8 to the aggregation level 16 of the distribution mapping mode, but the invention is not limited thereto. In other embodiments, the network side device One or two of the EPDCCH candidates corresponding to the aggregation level 8 may be allocated to the aggregation level 16 of the distribution mapping method.
  • the number of EPDCCH candidates may be allocated according to different forms of the EPDCCH, that is, the number of blind detections is configured. For example, for a normal subframe or a special subframe configured as 3, 4, and 8, and the number of REs that can be used to transmit the EPDCCH in one PRB pair is less than the threshold, the aggregation level supported by the centralized mapping mode is 2, 4. 8, (16), the aggregation level of the aggregation mapping mode is 2, 4, 8, 16, (32), where (16) indicates that the aggregation level 16 is optional in the centralized mapping mode, and (32) indicates the distribution mapping mode.
  • Aggregation level 32 is optional, and the centralized aggregation level (16) and distributed aggregation level (32) are needed in some EPDCCH transmission scenarios.
  • the sum of the number of EPDCCH candidates ⁇ 6, 6, 2, 2, ⁇ is constant due to the setting of the PDCCH candidate channel. Therefore, for the set of the centralized mapping scheme, the number of allocated EPDCCH candidates is 10, and the remaining EPDCCH candidates are allocated to the distributed mapping scheme.
  • the specific configuration may be specified in the protocol, that is, preset, or the network side device may send a signaling notification to the user equipment. If the network device notifies the user equipment, the user equipment performs blind detection before receiving The number of EPDCCH candidates of each aggregation level in the EPDCCH notified by the network side is received.
  • Table 15 shows the first scheme for configuring EPDCCH candidates for the centralized mapping mode set.
  • the number of EPDCCH candidates corresponding to aggregation level 2 is 6 for the network side device, and the number of EPDCCH candidates corresponding to aggregation level 4 is 2, and the EPDCCH candidate corresponding to aggregation level 8 is selected.
  • the network side device device selects the six EPDCCH candidates to be allocated to at least one aggregation level.
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6 .
  • the number of EPDCCH candidates corresponding to the aggregation level 4 is determined to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 is determined to be 2.
  • the user equipment determines to allocate two EPDCCH candidates to at least one aggregation level. Table 15
  • the aggregation level assigned to the distribution mode is higher. , such as aggregation level 8 or aggregation level 16 or aggregation level 32.
  • Table 16 is a second scheme for configuring EPDCCH candidates for a centralized mapping mode set.
  • the network side device selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 4 is 6, and the EPDCCH candidates corresponding to aggregation level 8 are selected.
  • the network side device selects two EPDCCH candidates to be allocated to at least one aggregation level.
  • the user equipment 20 determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6.
  • the number of EPDCCH candidates corresponding to the aggregation level 4 is determined to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 is determined to be two.
  • the user equipment 20 determines to allocate two EPDCCH candidates to at least one aggregation level.
  • the aggregation level assigned to the distribution mode is higher. For example, aggregation level 8 or aggregation level 16 or 32.
  • the centralized mapping mode supports The aggregation level is 1, 2, 4, (8), and the aggregation level of the distributed mapping method is 1, 2, 4, 8, (16).
  • (8) indicates that the aggregation level 8 is optional in the centralized mapping mode
  • (16) indicates that the aggregation level 16 is optional in the distribution mapping mode
  • the centralized aggregation level (8) and the distributed aggregation level (16) are in a certain In the scenario of EPDCCH transmission, it needs to be used.
  • the number of allocated EPDCCH candidates is 10, and the remaining EPDCCH candidates are allocated to the distributed mapping scheme.
  • the specific configuration may be specified in the protocol, that is, preset, or the network side device may send a signaling notification to the user equipment. If the network side device is notified to the user equipment, the number of EPDCCH candidates of each aggregation level in the EPDCCH that is notified by the network side before the user equipment performs blind detection
  • Table 17 is a third scheme for configuring EPDCCH candidates for a centralized mapping mode set.
  • the network side device selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2 is 2, and the EPDCCH candidates corresponding to aggregation level 4 are selected.
  • the network side device selects to allocate the six EPDCCH candidates to the at least one aggregation level.
  • the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and determines The number of EPDCCH candidates corresponding to aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to aggregation level 4 is determined to be 2.
  • the user equipment determines to allocate 6 EPDCCH candidates to at least one aggregation level.
  • the aggregation level assigned to the distribution mode is higher. , such as aggregation level 8 or aggregation level 16.
  • Table 18 is a fourth scheme for configuring EPDCCH candidates for a set of centralized mapping modes. As shown in Table 18, for the centralized mapping mode, the network side device selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the EPDCCH candidates corresponding to aggregation level 4 are selected.
  • the network side device selects to allocate two EPDCCH candidates to at least one aggregation level, and correspondingly, for the centralized mapping mode, the user equipment determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, It is determined that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is determined to be two. For the distributed mapping mode, the user equipment determines to allocate two EPDCCH candidates to at least one aggregation level.
  • MIMO multiple input multiple output
  • the number of blind detection times of one or several aggregation levels of the centralized mapping mode set is X
  • the number of blind detections of one or several aggregation levels of the distribution mapping mode set is [(32 or 48) -X]
  • the value of X may be a predefined value, or is notified to the user equipment by signaling. , or a parameter related to bandwidth.
  • the network side device does not need to divide the physical control channel set into two sets, but selects the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected;
  • the user equipment determines the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the network side device has a centralized mapping manner for the physical control channel set, and the number of physical control channel candidates corresponding to the aggregation level is selected by the number of PRBs of the physical control channel set for the same aggregation level; The number of physical control channel candidates corresponding to the aggregation level is determined by the number of PRBs of the physical control channel set for the same aggregation level.
  • the number of physical control channel candidates corresponding to the aggregation level is selected by the number of PRBs of the physical control channel set, and correspondingly, the user equipment
  • the physical control channel set is a distributed mapping mode.
  • the number of physical control channel candidates corresponding to the aggregation level is determined by the number of PRBs of the physical control channel set.
  • the network side device selects a physical control channel set for the physical control channel set, and selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set for the same aggregation level, and the physical control channel candidate
  • the number is proportional to the number of PRBs.
  • the user equipment is a centralized mapping mode for the physical control channel set, and the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set, and the physical control channel candidate is determined for the same aggregation level. The number is proportional to the number of PRBs.
  • the network side device selects a physical control channel set for the physical control channel set, and selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set for the same aggregation level, and the physical control channel candidate
  • the number is proportional to the number
  • the user equipment is a distributed mapping mode for the physical control channel set, and the number of physical control channel candidates corresponding to the aggregation level is determined according to the number of PRBs of the physical control channel set for the same aggregation level, and the physical control channel
  • the number of candidates is proportional to the number.
  • the EPDCCH aggregation level is at least 2. In general, the larger N, the larger the number of physical control channel candidates.
  • the network side device is a distributed mapping mode for the physical control channel set, and if the number of PRBs included in the physical control channel set is 8, the number of physical control channel candidates whose aggregation level is 1 of the physical control channel set 0 is 0; for the physical control channel set is a distributed mapping mode, if the number of PRBs included in the physical control channel set is 16, the number of physical control channel candidates whose aggregation level is 1 and 2 of the physical control channel set is 0.
  • the user equipment is in a distributed mapping manner for the physical control channel set. If the number of PRBs included in the physical control channel set is 8, the number of physical control channel candidates whose aggregation level is 1 of the physical control channel set is 0; for the physical control channel set is a distributed mapping mode, if the number of PRBs included in the physical control channel set is 16, the number of physical control channel candidates whose aggregation level is 1 and 2 of the physical control channel set is 0. .
  • the network side device 10 transmits the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and is transmitted on the EPDCCH candidate corresponding to the distributed mapping mode, and the scrambling is performed by scrambling the SI-RNTI and the RA-RNTI.
  • the downlink control information of the other RNTIs is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the user equipment will use the downlink control information scrambled by the SI-RNTI or the RA-RNTI, and the EPDCCH corresponding to the distributed mapping mode.
  • the downlink control information scrambled by the other RNTIs scrambled by the SI-RNTI and the RA-RNTI scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • SI-RNTI System Information-Radio Network Temporary Identifier
  • RA-RNTI Random Access-RNTI
  • P-RNTI paging- RNTI
  • the downlink control information that is scrambled is carried on the candidate EPDCCH in the distributed mapping mode.
  • it is format 0 or formatlA, it is also carried on the candidate EPDCCH in the distributed mapping mode.
  • the scrambled control signaling is carried on the EPDCCH candidate in the centralized mapping mode.
  • the network side device sends the downlink control information including the cross-carrier scheduling instruction to the EPDCCH candidate corresponding to any one of the centralized mapping mode and the distributed mapping mode, and the downlink control information that does not include the cross-carrier scheduling instruction is in another
  • the EPDCCH candidate corresponding to the ESCH candidate is sent on the EPDCCH candidate corresponding to the one of the centralized mapping mode and the distributed mapping mode
  • the user equipment receives the downlink control information of the cross-carrier scheduling command.
  • the downlink control information including the cross-carrier scheduling instruction is received on the EPDCCH candidate corresponding to another mode.
  • the network side device sends the downlink control information of the format 0 and/or the format 1A to the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and sends the downlink control information of the format 2C to the EPDCCH on the centralized corresponding candidate EPDCCH;
  • the number of blind detections corresponding to the distributed mapping mode of the side device is 16 times, and the number of blind detections corresponding to the centralized mapping mode is 16 times.
  • the user equipment receives the downlink control information of the format 0 and/or the format 1A through the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and receives the downlink control information of the format 2C through the EPDCCH on the centralized corresponding candidate EPDCCH.
  • the user equipment determines that the number of blind detections corresponding to the distributed mapping mode is 16 times, and the number of blind detection times corresponding to the centralized mapping mode is 16 times.
  • the network side device sends the EPDCCH with the aggregation level greater than or equal to the set value on the EPDCCH candidate corresponding to the distributed mapping mode, and sends the EPDCCH whose aggregation level is less than the set value to the EPDCCH candidate corresponding to the centralized mapping mode.
  • the user equipment uses an EPDCCH whose aggregation level is greater than or equal to the set value in a distributed mapping manner. The EPDCCH candidate is received, and the EPDCCH whose aggregation level is smaller than the set value is received on the EPDCCH candidate corresponding to the centralized mapping method.
  • the EPDCCH candidates corresponding to the set value are allocated to the centralized mapping mode, and the EPDCCH candidates whose aggregation level is smaller than the set value are allocated to the distributed mapping mode.
  • the value of K may be 1, 2, 4, 8 or 32, etc., and the value of K may be predefined, or signaled to the UE by signaling, or a parameter related to bandwidth.
  • Step 201 Determine an aggregation level of a physical control channel set to be detected in a transmission subframe.
  • Step 202 Determine an aggregation level according to an aggregation level. The number of physical control channel candidates;
  • Step 203 Receive downlink control information on the determined physical control channel candidate corresponding to the number.
  • a method for transmitting a physical control channel of a user equipment is provided by the foregoing embodiment of the present invention.
  • the method for solving the problem is similar to the downlink control signal and the network side device in the transmission method. Therefore, the implementation of the method can be seen. The implementation of the network side, the repetition will not be repeated.
  • FIG. 3 is a schematic structural diagram of Embodiment 1 of a network side device according to the present invention.
  • the network side device provided by the embodiment of the present invention includes: a selecting module 10 and a sending module 20.
  • the selecting module 10 is configured to select an aggregation level of the physical control channel set in the transmission subframe to be detected, and select the number of physical control channel candidates corresponding to the aggregation level according to the aggregation level.
  • the sending module 20 is configured to send the downlink control information on the physical control channel candidate corresponding to the selected number.
  • the selecting module 10 is specifically configured to: when the number of REs available for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is 2; When the number of REs in the PRB pair of the channel set is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical sub-frames of the normal sub-frame length are configured as the normal sub-frames of the normal CP length or the special sub-frames configured as 3, 4, and 8.
  • the minimum aggregation level of the control channel set to be detected is 2; otherwise, for other subframe types that are not normal CP length and are configured as 3, 4, 8 special subframes, or a PRB pair can be used
  • the minimum aggregation level to be detected of the physical control channel set is 1.
  • the selecting module 10 is specifically configured to divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of the physical control channel, and another set corresponds to a distributed mapping manner of the physical control channel;
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is selected.
  • the selection module 10 selects the concentration.
  • the sum of the number of EPDCCH candidates corresponding to the mapping method and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, and the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 32 to be 0.
  • the selection module 10 selects the aggregation level 2 of the centralized mapping mode, the aggregation set 32 of the distributed mapping mode, and the EPDCCH candidate corresponding to the aggregation level 2.
  • the sum of the number of EPDCCHs is 6; or, for the aggregation level of 32 and the aggregation level 4, the selection module 10 selects the aggregation level 4 of the centralized mapping mode, the aggregation level 32 of the distribution mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 2.
  • the sum is 6; or,
  • the selection module 10 selects the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the selection module 10 selects the aggregation level aggregation level 16 and the aggregation level 32 of the distribution mapping method, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the module 10 is selected for a special subframe that is in the normal subframe or configured as 3, 4, 8 and the RE that can be used to carry the EPDCCH in one PRB pair is greater than or equal to the threshold value 10, for the aggregation level is 1, the module 10 is selected.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 2, and the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, and the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the selection module 10 selects the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode to be 2.
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 to be 0;
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2;
  • the selection module 10 selects the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 to be 3, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 1;
  • the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the number of EPDCCH candidates corresponding to aggregation level 1 is 0, the number of EPDCCH candidates corresponding to aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 is 2.
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 16 to be 0.
  • the aggregation level is 16 and the aggregation level is 1.
  • the selection module 10 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the aggregation level 1 corresponds to The sum of the number of EPDCCH candidates is 6; or,
  • the selection module 10 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; ,
  • the selection module 10 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; ,
  • the selection module 10 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 to be 2, and selects the aggregation.
  • the number of EPDCCH candidates corresponding to level 8 is 2; for the distributed mapping mode, the selecting module 10 selects to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; In the manner of mapping, the selecting module 10 selects to allocate two EPDCCH candidates to at least one aggregation level; or
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the manner of mapping, the selecting module 10 selects to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the selection module 10 selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the manner of mapping, the selection module 10 selects to allocate two EPDCCH candidates to at least one aggregation level.
  • the EPDCCH set does not need to be divided into two sets, but the number of physical control channel candidates for each EPDCCH set is selected.
  • the selecting module 10 is configured to select the number of physical control channel candidates corresponding to the aggregation level to be detected of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the selecting module 10 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set;
  • the physical control channel set is a distributed mapping mode.
  • the selection module 10 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the selecting module 10 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set, and the physical control channel candidate
  • the number of the physical control channel is proportional to the number of PRBs; for the physical control channel set is a distributed mapping mode, for the same aggregation level, the selection module 10 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the number of physical control channel candidates is proportional to the number.
  • the sending module 20 is configured to send the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI to the EPDCCH candidate corresponding to the distributed mapping mode, and remove the SI-RNTI and the RA-
  • the downlink control information scrambled by other RNTIs other than the RNTI scrambling is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the sending module 20 is further configured to send the downlink control information that includes the cross-carrier scheduling instruction to the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and the downlink control information that does not include the cross-carrier scheduling instruction Transmitted on another EPDCCH candidate corresponding to the mode.
  • the sending module 20 is further configured to send the downlink control information of the format 0 and/or the format 1A to the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping manner, and pass the downlink control information of the format 2C to the candidate EPDCCH of the centralized corresponding candidate.
  • the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the sending module 20 is configured to set the aggregation level to be greater than or equal to the set value.
  • the EPDCCH is transmitted on the EPDCCH candidate corresponding to the distributed mapping scheme, and the EPDCCH whose aggregation level is smaller than the set value is transmitted on the EPDCCH candidate corresponding to the centralized mapping scheme.
  • FIG. 4 is a schematic structural diagram of Embodiment 1 of a user equipment according to the present invention.
  • the user equipment provided by the embodiment of the present invention includes: a determining module 30 and a receiving module 40.
  • the determining module 30 is configured to determine an aggregation level of the physical control channel set in the transmission subframe to be detected, and determine the number of physical control channel candidates corresponding to the aggregation level according to the aggregation level.
  • the receiving module 40 is configured to receive downlink control information on the determined number of physical control channel candidates.
  • the determining module 30 when the number of REs available for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is 2; the physical control channel set The minimum aggregation level of the physical control channel set to be detected is 1 when the number of REs included in the PRB pair is greater than or equal to the threshold X; or
  • the physical control channel set needs to be detected.
  • the minimum aggregation level is 2; otherwise, for other subframe types that are not normal CP length and are configured as 3, 4, 8 special subframes, or REs of a PRB pair that can be used for physical control channels.
  • the minimum aggregation level to be detected for the physical control channel set is 1.
  • the determining module 30 is configured to divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of the physical control channel, and another set corresponds to a distributed mapping manner of the physical control channel;
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is determined.
  • the determining module 30 determines the concentration.
  • the sum of the number of EPDCCH candidates corresponding to the mapping method and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining module 30 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining module 30 determines the EPDCCH corresponding to the centralized mapping mode.
  • the sum of the number of candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the determining module 30 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining module 30 determines that the number of EPDCCH candidates for the aggregation level 32 is 0.
  • the determining module 30 determines the aggregation level 2 of the centralized mapping mode, and the aggregation set 32 of the distributed mapping mode and the EPDCCH candidate corresponding to the aggregation level 2
  • the sum of the number of EPDCCHs is 6; or, for the aggregation level of 32 and the aggregation level 4, the determining module 30 determines the aggregation level 4 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the number of EPDCCH candidates corresponding to the aggregation level 2
  • the sum is 6; or,
  • the determining module 30 determines the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the determining module 30 determines the aggregation level of the centralized mapping mode aggregation level 16 and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the determining module 30 The sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining module 30 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 2;
  • the determining module 30 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 0;
  • Distributed mapping mode determining module 30 determines The number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2;
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; The determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0; The module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2.
  • the determining module 30 determines that the number of EPDCCH candidates for the aggregation is not 0.
  • the determining module 30 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level 16 of the distributed mapping mode, and the aggregation level 1 corresponds to The sum of the number of EPDCCH candidates is 6; or,
  • the determining module 30 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; ,
  • the determining module 30 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; ,
  • the determining module 30 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and determines the aggregation. Level 8 corresponds The number of EPDCCH candidates is 2; for the distributed mapping mode, the determining module 30 determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; In the manner of mapping, the determining module 30 determines to allocate 2 EPDCCH candidates to at least one aggregation level; or
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the manner of mapping, the determining module 30 determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the determining module 30 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the manner of mapping, the determining module 30 determines to allocate 2 EPDCCH candidates to at least one aggregation level.
  • the EPDCCH set does not need to be divided into two sets, but the number of physical control channel candidates for each EPDCCH set is selected.
  • the determining module 30 is configured to determine the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the determining module 30 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set;
  • the physical control channel set is a distributed mapping mode.
  • the determining module 30 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the determining module 30 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set, and the physical control channel candidate
  • the number of the physical control channel is proportional to the number of PRBs; for the physical control channel set is a distributed mapping mode, for the same aggregation level, the determining module 30 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the number of physical control channel candidates is proportional to the number.
  • the receiving module 40 is configured to receive the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and receive the information on the EPDCCH candidate corresponding to the distributed mapping mode, and remove the SI-RNTI and the RA-
  • the downlink control information scrambled by other RNTIs other than the RNTI scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the receiving module 40 is further configured to receive the downlink control information that includes the cross-carrier scheduling instruction in the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and the downlink control information that does not include the cross-carrier scheduling instruction Received on another EPDCCH candidate corresponding to the mode.
  • the receiving module 40 is further configured to receive the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping manner, and pass the downlink control information of the format 2C to the candidate EPDCCH of the centralized corresponding EPDCCH reception;
  • the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the receiving module 40 is configured to receive the EPDCCH with the aggregation level greater than or equal to the set value in the EPDCCH candidate corresponding to the distributed mapping manner, and the EPDCCH with the aggregation level less than the set value in the centralized mapping manner. Received on the EPDCCH candidate.
  • FIG. 5 is a schematic structural diagram of Embodiment 2 of a network side device according to the present invention.
  • the network side device 1000 provided by the embodiment of the present invention includes: at least one CPU 1001, at least one network interface 1004 or other user interface 1003, a memory 1005, and at least one communication bus 1002.
  • Communication bus 1002 is used to implement connection communication between devices.
  • the network side device 1000 optionally includes a user interface 1003 including a display, a keyboard or a pointing device.
  • the memory 1005 may include a high speed RAM memory and may also include a non-volatile memory such as at least one disk memory.
  • the memory 1005 can optionally include at least one storage device located remotely from the aforementioned CPU 1001. In some embodiments, the memory 1005 stores the following elements, codes, modules or data structures, or a subset thereof, or their extended set:
  • the operating system 1006, which contains various programs for implementing various basic services and Handle hardware-based tasks.
  • the processor 1010 is configured to select an aggregation level of the physical control channel set to be detected in the transmission subframe, and select a number of physical control channel candidates corresponding to the aggregation level according to the aggregation level, and select a physical control channel corresponding to the selected number.
  • the downlink control information is sent on the candidate.
  • the transmitter 1020 is configured to send downlink control information on a physical control channel candidate corresponding to the selected number.
  • the processor 1010 is configured to: when the number of REs available for the physical control channel in the PRB pair of the physical control channel set is less than the threshold X, the minimum aggregation level of the physical control channel set to be detected is 2; When the number of REs in the PRB pair of the control channel set is greater than or equal to the threshold X, the minimum aggregation level of the physical control channel set to be detected is 1; or
  • the physical control channel set needs to be detected.
  • the minimum aggregation level is 2; otherwise, for other types of subframes except the above case, the minimum aggregation level to be detected of the physical control channel set is 1.
  • the processor 1010 is specifically configured to divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of the physical control channel, and another set corresponds to a distributed mapping manner of the physical control channel;
  • the number of EPDCCH candidates corresponding to each aggregation level in the centralized mapping mode and the distributed mapping mode is selected.
  • the selection processor 1010 selects The sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level of 8, the selection processor 1010 selects the number of EPDCCH candidates corresponding to the centralized mapping mode and the EPDCCH candidates corresponding to the distributed mapping mode.
  • the sum of the number is 2; for the aggregation level is 16, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2 in the selection processor 1010.
  • the selection processor 1010 selects the aggregation level and the number of EPDCCH candidates corresponding to the J32 is 0.
  • the selection processor 1010 selects the aggregation level 2 of the centralized mapping mode, the aggregation set 32 of the distributed mapping mode, and the EPDCCH corresponding to the aggregation level 2.
  • the sum of the number of candidates is 6; or,
  • the selection processor 1010 selects the aggregation level 4 of the centralized mapping mode, and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6;
  • the selection processor 1010 selects the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2;
  • the selection processor 1010 selects the centralized mapping mode, the aggregation level 16 and the aggregation level of the distribution mapping mode 32, and the sum of the number of EPDCCHs 4 corresponding to the aggregation level 16 is 2.
  • the processor is selected. 1010, the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the aggregation level is 4, and the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the selection processor 1010 selects the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode to be 2.
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 to be 0;
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 0, and selects the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 to be 2;
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 to be 3, and selects the aggregation level 4 and the aggregation level 8 corresponding to The number of EPDCCH candidates is 1; for the distributed mapping mode, the selection processor 1010 selects the number of EPDCCH candidates corresponding to aggregation level 1 and aggregation level 2 to be 3, and selects the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8. All are 1; or,
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0;
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to aggregation level 1 to be 0, selects the number of EPDCCH candidates corresponding to aggregation level 2 to be 6, and selects the number of EPDCCH candidates corresponding to aggregation level 4 and aggregation level 8 to be 2.
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 16 to be 0.
  • the aggregation level When the aggregation level is considered to be the aggregation level 16, the aggregation level is 16 and the aggregation level is 1.
  • the processor 1010 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode, and the aggregation level 1
  • the sum of the corresponding number of EPDCCH candidates is 6; or,
  • the selection processor 1010 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; Or,
  • the selection processor 1010 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; Or,
  • the selection processor 1010 selects the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 6 and the number of EPDCCH candidates corresponding to the aggregation level 4 to 2, and selects Aggregate level 8 corresponds
  • the number of EPDCCH candidates is 2; for the distributed mapping mode, the selection processor 1010 selects to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the selection processor 1010 selects the aggregation level 2 corresponding The number of EPDCCH candidates is 6, the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; for the distributed mapping mode, the selection processor 1010 selects to allocate 2 EPDCCH candidates.
  • At least one aggregation level is provided; or, for the centralized mapping mode, the selection processor 1010 selects the number of EPDCCH candidates corresponding to the aggregation level 1 to be 6, and selects the number of EPDCCH candidates corresponding to the aggregation level 2 to be 2, and selects the aggregation level 4 corresponding to The number of EPDCCH candidates is 2; for the distributed mapping mode, the selection processor 1010 selects to allocate 6 EPDCCH candidates to at least one aggregation level; or, for the centralized mapping mode, the selection processor 1010 selects EPDCCH candidates corresponding to aggregation level 1 The number of EPDCCH candidates corresponding to the aggregation level 2 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; for the distributed mapping mode, the selection processor 1010 selects to allocate at least two EPDCCH candidates to at least An aggregation level.
  • the EPDCCH set does not need to be divided into two sets, but the number of physical control channel candidates for each EPDCCH set is selected.
  • the selection processor 1010 is configured to select the number of physical control channel candidates corresponding to the aggregation level to be detected of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the selection processor 1010 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set;
  • the physical control channel set is a distributed mapping mode.
  • the selection processor 1010 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the selection processor 1010 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set, and the physical control channel.
  • the number of candidates is proportional to the number of PRBs;
  • the physical control channel set is a distributed mapping mode.
  • the selection processor 1010 selects the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set, and the number of physical control channel candidates and The number is proportional.
  • the transmitter 1020 is configured to send the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI to the EPDCCH candidate corresponding to the distributed mapping mode, and
  • the downlink control information scrambled by the RNTI other than the SI-RNTI and the RA-RNTI scrambling is transmitted on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the transmitter 1020 is further configured to send the downlink control information that includes the cross-carrier scheduling instruction to the EPDCCH candidate corresponding to one of the centralized mapping mode and the distributed mapping mode, and the downlink control information that does not include the cross-carrier scheduling instruction Transmitted on another EPDCCH candidate corresponding to the mode.
  • the transmitter 1020 is further configured to: send the downlink control information of the format 0 and/or the format 1A to the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping mode, and pass the downlink control information of the format 2C to the candidate EPDCCH of the centralized corresponding EPDCCH transmission;
  • the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the transmitter 1020 is configured to send the EPDCCH with the aggregation level greater than or equal to the set value in the EPDCCH candidate corresponding to the distributed mapping manner, and the EPDCCH with the aggregation level less than the set value in the centralized mapping manner.
  • the EPDCCH candidate is sent on.
  • FIG. 6 is a schematic structural diagram of Embodiment 2 of a user equipment according to the present invention.
  • the user equipment 2000 provided by the embodiment of the present invention includes at least one CPU 2001, at least one network interface 2004 or other user interface 2003, a memory 2005, and at least one communication bus 2002.
  • the communication bus 2002 is used to implement connection communication between devices.
  • the user device 2000 optionally includes a user interface 2003, including a display, a keyboard or a pointing device.
  • Memory 2005 may contain high speed RAM memory and may also include non-volatile memory, such as at least one disk memory.
  • the memory 2005 can optionally include at least one storage device located remotely from the aforementioned CPU 2001.
  • the memory 2005 stores the following elements, codes, modules or data structures, or a subset thereof, or their extended set:
  • the operating system 2006 which contains various programs for implementing various basic services and Handle hardware-based tasks.
  • the determining processor 2030 is configured to determine an aggregation level of the physical control channel set to be detected in the transmission subframe, determine a number of physical control channel candidates corresponding to the aggregation level according to the aggregation level, and a receiver 2040, configured to determine the number of The downlink control information is received on the corresponding physical control channel candidate.
  • the determining processor 2030 is configured to be used in a PRB pair of physical control channel sets.
  • the minimum aggregation level of the physical control channel set to be detected is 2; when the number of REs of the PRB pair of the physical control channel set is greater than or equal to the threshold X, the physical control channel set The minimum aggregation level to be detected is 1; or,
  • the physical control channel set needs to be detected.
  • the minimum aggregation level is 2; otherwise, for other types of subframes except the above case, the minimum aggregation level to be detected of the physical control channel set is 1.
  • the determining processor 2030 is configured to divide the physical control channel set into two sets, one set corresponds to a centralized mapping manner of the physical control channel, and another set corresponds to a distributed mapping manner of the physical control channel;
  • the determining processor 2030 determines The sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining processor 2030 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6; for the aggregation level of 8, the determining processor 2030 determines the centralized type. The sum of the number of EPDCCH candidates corresponding to the mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2; for the aggregation level of 16, the determining processor 2030 determines the number of EPDCCH candidates corresponding to the centralized mapping mode and the distributed mapping mode. The sum of the corresponding number of EPDCCH candidates is 2.
  • the determining processor 2030 determines that the number of EPDCCH candidates for the aggregation level 32 is 0.
  • the determining processor 2030 determines the aggregation level 2 of the centralized mapping mode, the aggregation set 32 of the distributed mapping mode, and the EPDCCH corresponding to the aggregation level 2.
  • the sum of the number of candidates is 6; or,
  • the determining processor 2030 determines the aggregation level 4 of the centralized mapping mode and the aggregation level 32 and the aggregation level 2 corresponding to the distribution mapping mode.
  • the sum of the number of EPDCCH candidates is 6; or,
  • the determining processor 2030 determines the aggregation level 8 of the centralized mapping mode and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; or
  • the determining processor 2030 determines the aggregation level of the aggregation level 16 and the aggregation level 32 of the distribution mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 16 is 2.
  • the processor is determined.
  • the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 6;
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode are 6;
  • the determination processor 2030 determines the centralized mapping mode corresponding to
  • the sum of the number of EPDCCH candidates and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2;
  • the determining processor 2030 determines that the sum of the number of EPDCCH candidates corresponding to the centralized mapping mode and the number of EPDCCH candidates corresponding to the distributed mapping mode is 2.
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 6, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 0; For the distributed mapping mode, the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 0, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 2;
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; The determining, by the processor 2030, the number of EPDCCH candidates corresponding to the aggregation level 1 and the aggregation level 2 is 3, and determining that the number of EPDCCH candidates corresponding to the aggregation level 4 and the aggregation level 8 is 1; or
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, and the number of EPDCCH candidates corresponding to the aggregation level 2, the aggregation level 4, and the aggregation level 8 is 0; The determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 0, determines that the number of EPDCCH candidates corresponding to the
  • the determining processor 2030 determines that the number of EPDCCH candidates for the aggregation is not 0.
  • the determining processor 2030 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 1 and the aggregation level of the distributed mapping mode 16, and the aggregation level 1
  • the sum of the corresponding number of EPDCCH candidates is 6; or,
  • the determining processor 2030 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 2, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 2 is 6; Or,
  • the determining processor 2030 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 4, and the aggregation level 16 of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; Or,
  • the determining processor 2030 determines the aggregation level 16 of the centralized mapping mode, the aggregation level 8 and the aggregation level of the distributed mapping mode, and the sum of the number of EPDCCH candidates corresponding to the aggregation level 8 is 2.
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6 and determines that the number of EPDCCH candidates corresponding to the aggregation level 4 is 2, and determines The number of EPDCCH candidates corresponding to the aggregation level 8 is 2; for the distributed mapping mode, the determining processor 2030 determines to allocate 6 EPDCCH candidates to at least one aggregation level; or
  • the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 2 is 6, determining that the number of EPDCCH candidates corresponding to the aggregation level 4 is 6, and determining the number of EPDCCH candidates corresponding to the aggregation level 8 is 2; The distributed mapping mode, the determining processor 2030 determines to allocate 2 EPDCCH candidates to at least one aggregation level; or For the centralized mapping mode, the determining processor 2030 determines that the number of EPDCCH candidates corresponding to the aggregation level 1 is 6, determining that the number of EPDCCH candidates corresponding to the aggregation level 2 is 2, and determining the number of EPDCCH candidates corresponding to the aggregation level 4 is 2; In the distributed mapping mode, the determining processor 2030 determines to allocate 6 EPDCCH candidates to at least one aggregation level; or, for the centralized mapping mode, the determining processor 2030 determines the aggregation level 1 corresponding to
  • the number of EPDCCH candidates is 6, the number of EPDCCH candidates corresponding to the aggregation level 2 is determined to be 6, and the number of EPDCCH candidates corresponding to the aggregation level 4 is determined to be 2; for the distributed mapping mode, the determining processor 2030 determines to allocate 2 EPDCCH candidates. Give at least one aggregation level.
  • the EPDCCH set does not need to be divided into two sets, but the number of physical control channel candidates for each EPDCCH set is selected.
  • the determining processor 2030 is configured to determine the number of physical control channel candidates corresponding to the aggregation level of the physical control channel set to be detected.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the determining processor 2030 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set;
  • the determining processor 2030 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set.
  • the physical control channel set is a centralized mapping mode, and for the same aggregation level, the determining processor 2030 determines the number of physical control channel candidates corresponding to the aggregation level according to the number of PRBs of the physical control channel set, and the physical control channel.
  • the number of candidates is proportional to the number of PRBs;
  • the number of physical control channel candidates corresponding to the aggregation level, and the number of physical control channel candidates are determined by the processor 2030 according to the number of PRBs of the physical control channel set. The number is proportional.
  • the receiver 2040 is configured to receive the downlink control information that is scrambled by the SI-RNTI or the RA-RNTI, and receive the information on the EPDCCH candidate corresponding to the distributed mapping mode, and remove the SI-RNTI and the RA-
  • the downlink control information scrambled by other RNTIs other than the RNTI scrambling is received on the EPDCCH candidate corresponding to the centralized mapping mode.
  • the receiver 2040 is further configured to: collect downlink control information including cross-carrier scheduling instructions in a centralized manner.
  • the EPDCCH candidate corresponding to one of the mapping mode and the distributed mapping mode is received, and the downlink control information not including the cross-carrier scheduling command is received on the EPDCCH candidate corresponding to the other mode.
  • the receiver 2040 is further configured to: receive the downlink control information of the format 0 and/or the format 1A by using the EPDCCH on the candidate EPDCCH corresponding to the distributed mapping manner, and pass the downlink control information of the format 2C to the candidate EPDCCH of the centralized corresponding candidate.
  • EPDCCH reception; times, the number of blind detections corresponding to the centralized mapping method is 16 times.
  • the receiver 2040 is configured to: receive, by the EPDCCH, the EPDCCH whose aggregation level is greater than or equal to the set value, in the EPDCCH candidate corresponding to the distributed mapping mode, and the EPDCCH whose aggregation level is less than the set value in the centralized mapping manner. Received on the EPDCCH candidate.

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Abstract

本发明提供一种下行控制信息的传输方法、网络侧设备及用户设备。该下行控制信息的传输方法,包括:网络侧设备通选择传输子帧中物理控制信道集的需检测的聚合级别,根据聚合级别选择聚合级别对应的物理控制信道候选的个数,网络侧在与选择的个数对应的物理控制信道候选上发送下行控制信息。由于聚合级别对应的盲检测次数与物理控制信道候选的个数对应,确定出控制物理信道候选的个数,亦即确定出盲检测的次数,使得网络侧设备和用户设备可以在不增加盲检测次数的情况下进行通信。

Description

下行控制信息传输的方法、 网络侧设备及用户设备 技术领域
本发明涉及通信技术领域, 尤其涉及一种下行控制信息传输的方法、 网络侧设备及用户设备。 背景技术
LTE系统中, 物理下行控制信道( Physical Downlink Control , 以下 简称 PDCCH )的控制区域是由逻辑划分的控制信道单元( Control Channel Element,以下简称 CCE )构成的,其中 CCE到资源单元( Resource Element, 以下简称 RE ) 的映射釆用了完全交织的方式。 下行控制信息 (Downlink Control Information, 以下简称 DCI ) 的传输也是基于 CCE为单位的, 针 对一个用户设备( User Equipment, 以下简称 UE ) 的一个 DCI可以在 N 个连续的 CCE中进行发送, 在 LTE系统中 N的可能取值为 1 , 2 , 4 , 8 , 称为 CCE聚合等级, UE在控制区域中对 PDCCH进行盲检测, 搜索 是否存在针对其发送的 PDCCH。 盲检测, 即使用 UE 的无线网络临时标 识( Radio Network Temporary Identity, 以下简称 RNTI )对不同的 DCI格 式及 CCE聚合等级进行解码尝试, 如果解码正确, 则接收针对该 UE的 DCI。通过盲检测确定每个 PDCCH的具体时频资源位置,从而实现 PDCCH 接收, 完成系统信息等高层信令调度信息读取和相应信息接收。 目前协议 规定了不同聚合级别的 PDCCH的盲检测次数, 通过这种规定确保 UE对 PDCCH的盲检测不会超过最大盲检测次数。
为了提升系统性能和扩大物理下行控制信道 ( Physical Downlink Control , 以下简称 PDCCH )容量, 在 Rl 1版本中引入了增强物理下行控 制信道 (enhance Physical Downlink Control , 以下简称 E-PDCCH ) 。 E-PDCCH 有频域连续的集中式传输 (Localized ) 和频域不连续的分布式 传输( Distributed )两种传输模式,应用于不同的场景。通常情况下, localized 传输模式多用于基站能够获取 UE反馈的较为精确的信道信息, 且邻小区 干扰随子帧变化不是非常强烈的场景, 此时基站根据 UE反馈的 CSI选择 质量较好的连续频率资源为该终端传输 E-PDCCH, 并进行预编码 /波束赋 形处理提高传输性能。 在信道信息不能准确获得, 或者邻小区干扰随子帧 变化剧烈且不可预知的情况下, 需要釆用 distributed 的方式传输 E-DPCCH, 即使用频率上不连续的资源进行传输, 从而获得分集增益。
现有技术中,UE需要对 E-PDCCH所承载的信令进行盲检测以接收针 对其发送的 E-PDCCH,对 E-PDCCH的检测同样要满足不超过最大盲检测 次数的要求, 盲检测次数与物理控制信道候选的个数对应, 确定出控制物 理信道候选的个数, 亦即确定出盲检测的次数。 然而, 在某些情况下, UE 被配置同时检测集中映射方式的 E-DPCCH 和分布式映射方式的 E-DPCCH, 在这种实施场景下, UE检测两种方式的 E-DPCCH可能导致 盲检测次数超过最大盲检测次数, 进而导致 UE盲检测时间长, 影响 UE 其它业务数据的处理。 发明内容
本发明实施例提供一种下行控制信息传输的方法、 网络侧设备及用户 设备, 以实现不增加盲检测次数的情况下传输下行控制信息。
第一个方面,本发明实施例提供一种下行控制信息的传输方法, 包括: 网络侧设备选择传输子帧中物理控制信道集的需检测的聚合级别; 数;
所述网络侧设备在与所述选择的个数对应的物理控制信道候选上发 送下行控制信息。
进一步的, 所述选择传输子帧中物理控制信道集的需检测的聚合级 别, 包括:
所述物理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于 门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述物理 控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 所述物理控 制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。 信道候选的个数, 包括:
将所述物理控制信道集划分为两个集合, 一个所述集合对应物理控制 信道的集中式映射方式, 另一个所述集合对应物理控制信道的分布式映射 方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 2 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述网络侧设备选择集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的候选 EPDCCH个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0, 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2对应的 EPDCCH候选个数为 0 ,选择聚合级别 4对应的 EPDCCH 候选个数为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
进一步的。 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式, 所述网络侧设备选择聚合级别 32 对应的 EPDCCH候选个数为 0。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 32及聚合级别 2,所述网络侧设备选择集中式映射方 式的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述网络侧设备选择集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述网络侧设备选择集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述网络侧设备选择集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 1 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 6, 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0, 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1对应的 EPDCCH候选个数为 0,选择聚合级别 2对应的 EPDCCH 候选个数为 6,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式, 所述网络侧设备选择聚合级别 16 对应的 EPDCCH候选个数为 0。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于聚合级别为 16及聚合级别 1 ,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级 另' J 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 2 以及分布式映射方式的聚合级别 16、 聚合级 另' J 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 4 以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
进一步的, 所述分别选择所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的
EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别。 候选的个数, 包括:
选择所述物理控制信道集的需检 'J的聚合级另 'J对应的物理控制信道 候选的个数。
进一步的, 所述选择所述物理控制信道集的需检测的聚合级别对应的 物理控制信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的
PRB个数选择;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数选择。
进一步的, 所述选择所述物理控制信道集的需检测的聚合级别对应的 物理控制信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数选择该聚合级别对应的物理控制信道 候选的个数, 所述物理控制信道候选的个数与所述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数选择所述聚合级别对应的物理控制信 道候选的个数, 所述物理控制信道候选的个数与所述个数成正比。
进一步的, 对于所述物理控制信道集为分布式映射方式, 如果所述物 理控制信道集所含的 PRB个数 N为 8 ,则所述物理控制信道集的聚合级别 为 1的物理控制信道候选的个数为 0;
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 16, 则所述物理控制信道集的聚合级别为 1和 2
1 的物理控制信道候选的个数为 0。
进一步的, 所述在所述控制信道集的所述控制信道候选上发送下行控 制信息, 包括:
所述网络侧设备将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在所述分布式映射方式对应的 EPDCCH 候选上发送, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上发送。
进一步的, 在所述控制信道集的所述控制信道候选上发送下行控制信 息, 包括:
所述网络侧设备将包含跨载波调度指令的下行控制信息在所述集中 式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上 发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上发送。
进一步的, 在所述控制信道集的所述控制信道候选上发送下行控制信 息, 包括:
所述网络侧设备将格式 0和 /或格式 1A的下行控制信息, 通过所述分 布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的下 行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH发送; 所述集中式映射方式对应的盲检测次数为 16次。
进一步的, 在所述控制信道集的所述控制信道候选上发送下行控制信 息, 包括:
所述网络侧设备将聚合级别大于或等于设定值的 EPDCCH在所述分 布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小于所述设定值 的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上发送。
第二个方面,本发明实施例提供一种下行控制信息的传输方法, 包括: 用户设备确定传输子帧中物理控制信道集的需检测的聚合级别; 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个 数;
所述用户设备在所述确定的个数对应的物理控制信道候选上接收下 行控制信息。
进一步的, 所述确定传输子帧中物理控制信道集的需检测的聚合级 别, 包括:
所述物理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于 门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述物理 控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 所述物理控 制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
进一步的, 所述根据所述聚合级别确定所述聚合级别对应的物理控制 信道候选的个数, 包括:
将所述物理控制信道集划分为两个集合, 一个所述集合对应物理控制 信道的集中式映射方式, 另一个所述集合对应物理控制信道的分布式映射 方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 2 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述用户设备确定集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。 进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的候选 EPDCCH个数, 包括:
对于集中式映射方式, 所述用户设备确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述用户设备确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述用户设备确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合级别 2对 应的 EPDCCH候选个数为 0, 确定聚合级别 4对应的 EPDCCH候选个数 为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式,所述用户设备确定聚合级别 32对应的 EPDCCH 候选个数为 0。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 32及聚合级别 2,所述用户设备确定集中式映射方式 的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述用户设备确定集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述用户设备确定集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述用户设备确定集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 1 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述用户设备确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 6, 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述用户设备确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述用户设备确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合级别 1对应 的 EPDCCH候选个数为 0,确定聚合级别 2对应的 EPDCCH候选个数为 6 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式,所述用户设备确定聚合级别 16对应的 EPDCCH 候选个数为 0。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于聚合级别为 16及聚合级别 1 ,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者 ,
对于聚合级别为 16及聚合级别 8 ,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
进一步的, 所述分别确定所述集中式映射方式和所述分布式映射方式 中各个聚合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 2个 EPDCCH候选分配给至少一个聚合级别。
进一步的, 根据所述聚合级别确定所述聚合级别对应的物理控制信道 候选的个数, 包括:
确定所述物理控制信道集的需检 'J的聚合级另 'J对应的物理控制信道 候选的个数。
进一步的, 所述确定所述物理控制信道集的需检测的聚合级别对应的 物理控制信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数确定;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数确定。
进一步的, 所述确定所述物理控制信道集的需检测的聚合级别对应的 物理控制信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数确定该聚合级别对应的物理控制信道 候选的个数, 所述物理控制信道候选的个数与所述 PRB个数成正比; 对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数确定所述聚合级别对应的物理控制信 道候选的个数, 所述物理控制信道候选的个数与所述个数成正比。
进一步的, 对于所述物理控制信道集为分布式映射方式, 如果所述物 理控制信道集所含的 PRB个数 N为 8 ,则所述物理控制信道集的聚合级别 为 1的物理控制信道候选的个数为 0;
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 16, 则所述物理控制信道集的聚合级别为 1和 2 的物理控制信道候选的个数为 0。
进一步的, 所述在所述控制信道集的所述控制信道候选上接收下行控 制信息, 包括:
所述用户设备将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在 所述分布式映射方式对应的 EPDCCH候选上接收,将釆除用所述 SI-RNTI 和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所述集中 式映射方式对应的 EPDCCH候选上接收。
进一步的, 在所述控制信道集的所述控制信道候选上接收下行控制信 息, 包括:
所述用户设备将包含跨载波调度指令的下行控制信息在所述集中式 映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上接 收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上接收。
进一步的, 在所述控制信道集的所述控制信道候选上接收下行控制信 息, 包括:
所述用户设备将格式 0和 /或格式 1A的下行控制信息, 通过所述分布 式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的下行 控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH接收; 所述集中式映射方式对应的盲检测次数为 16次。
进一步的, 在所述控制信道集的所述控制信道候选上接收下行控制信 息, 包括:
所述用户设备将聚合级别大于或等于设定值的 EPDCCH在所述分布 式映射方式对应的 EPDCCH候选上接收, 将聚合级别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上接收。
第三个方面, 本发明实施例提供一种网络侧设备, 包括:
选择模块, 用于选择传输子帧中物理控制信道集的需检测的聚合级 数;
发送模块, 用于在与所述选择的个数对应的物理控制信道候选上发送 下行控制信息。
进一步的, 所述选择模块, 具体用于, 所述物理控制信道集的 PRB 对中可用于物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集 的需检测的最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE 个数大于或等于门限 X时,所述物理控制信道集的需检测的最小聚合级别 为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
进一步的, 所述选择模块, 具体用于将所述物理控制信道集划分为两 个集合, 一个所述集合对应物理控制信道的集中式映射方式, 另一个所述 集合对应物理控制信道的分布式映射方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 对于聚合级别为 2, 所述选择模块选择集中式映射方式对 应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和 为 6;
对于聚合级别为 4 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述选择模块选择聚合级别 2和聚 合级别 4对应的 EPDCCH候选个数均为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择模 块选择聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0,选择聚 合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择模块选择聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择模块选择聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,选择聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述选择模块选择聚合级别 2对 应的 EPDCCH候选个数为 0, 选择聚合级别 4对应的 EPDCCH候选个数 为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
进一步的, 对于分布式映射方式, 所述选择模块选择聚合级别 32对 应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 32及聚合级别 2, 所述选择模块选择集中 式映射方式的聚合级别 2以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述选择模块选择集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述选择模块选择集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述选择模块选择集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
进一步的, 对于聚合级别为 1 , 所述选择模块选择集中式映射方式对 应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数 之和为 6;
对于聚合级别为 2 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 对于集中式映射方式, 所述选择模块选择聚合级别 1和聚 合级别 2对应的 EPDCCH候选个数均为 6, 选择聚合级别 4和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择模块选 择聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,选择聚合级 另' J 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择模块选择聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 选择聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择模块选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述选择模块选择聚合级别 1对应 的 EPDCCH候选个数为 0,选择聚合级别 2对应的 EPDCCH候选个数为 6 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
进一步的, 对于分布式映射方式, 所述选择模块选择聚合级别 16对 应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 16及聚合级别 1 , 所述选择模块选择集中 映射方式的聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述选择模块选择聚合级别 2对应 的 EPDCCH候选个数为 6,选择聚合级别 4对应的 EPDCCH候选个数为 2 , 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择模块选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式,所述选择模块选择聚合级别 2对应的 EPDCCH 候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 2个 EPDCCH候选分配给至少一个聚合级别。
进一步的, 所述选择模块, 用于选择所述物理控制信道集的需检测的 聚合级别对应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚 合级别对应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚合级别对应 的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述选择模块根据所述物理控制信道集的 PRB 个数选择该聚合 级别对应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所 述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数成 正比。
进一步的, 所述发送模块, 用于将釆用 SI-RNTI或 RA-RNTI加扰的 下行控制信息, 在所述分布式映射方式对应的 EPDCCH候选上发送, 将 釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行 控制信息在所述集中式映射方式对应的 EPDCCH候选上发送。
进一步的, 所述发送模块, 用于将包含跨载波调度指令的下行控制信 息在所述集中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上发送,将不包含跨载波调度指令的下行控制信息在另一种 方式对应的 EPDCCH候选上发送。
进一步的, 所述发送模块, 用于将格式 0和 /或格式 1A的下行控制信 息, 通过所述分布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C 的下行控制信息通过所述集中式对应的候选 EPDCCH 上的 EPDCCH发送;
16次, 所述集中式映射方式对应的盲检测次数为 16次。
进一步的, 所述发送模块, 用于将聚合级别大于或等于设定值的 EPDCCH在所述分布式映射方式对应的 EPDCCH候选上发送, 将聚合级 别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候 选上发送。
第四个方面, 本发明实施例提供一种用户设备, 包括:
确定模块, 用于确定传输子帧中物理控制信道集的需检测的聚合级 别, 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个 数;
接收模块, 用于在所述确定的个数对应的物理控制信道候选上接收下 行控制信息。
进一步的, 所述确定模块, 用于所述物理控制信道集的 PRB 对中可 用于物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集的需检 测的最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数大 于或等于门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
进一步的, 所述确定模块, 用于将所述物理控制信道集划分为两个集 合, 一个所述集合对应物理控制信道的集中式映射方式, 另一个所述集合 对应物理控制信道的分布式映射方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 对于聚合级别为 2, 所述确定模块确定集中式映射方式对 应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和 为 6;
对于聚合级别为 4 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述确定模块确定聚合级别 2和聚 合级别 4对应的 EPDCCH候选个数均为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定模 块确定聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0,确定聚 合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定模块确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定模块确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合级别 2对 应的 EPDCCH候选个数为 0, 确定聚合级别 4对应的 EPDCCH候选个数 为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
进一步的, 对于分布式映射方式, 所述确定模块确定聚合级别 32对 应的 EPDCCH候选个数为 0
进一步的,对于聚合级别为 32及聚合级别 2, 所述确定模块确定集中 式映射方式的聚合级别 2以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述确定模块确定集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述确定模块确定集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者, 对于聚合级别 32及聚合级别 16 , 所述确定模块确定集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
进一步的, 对于聚合级别为 1 , 所述确定模块确定集中式映射方式对 应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数 之和为 6;
对于聚合级别为 2 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述确定模块确定集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 对于集中式映射方式, 所述确定模块确定聚合级别 1和聚 合级别 2对应的 EPDCCH候选个数均为 6, 确定聚合级别 4和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定模块确 定聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚合级 另' J 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者 ,
对于集中式映射方式, 所述确定模块确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定模块确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合级别 1对应 的 EPDCCH候选个数为 0,确定聚合级别 2对应的 EPDCCH候选个数为 6 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。 进一步的, 对于分布式映射方式, 所述确定模块确定聚合级别 16对 应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 16及聚合级别 1 , 所述确定模块确定集中 映射方式的聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者 ,
对于聚合级别为 16及聚合级别 8 ,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述确定模块确定聚合级别 2对应 的 EPDCCH候选个数为 6,确定聚合级别 4对应的 EPDCCH候选个数为 2 , 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定模块确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式,所述确定模块确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 2个 EPDCCH候选分配给至少一个聚合级别。 进一步的, 所述确定模块, 用于确定所述物理控制信道集的需检测的 聚合级别对应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚 合级别对应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚合级别对应 的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述确定模块根据所述物理控制信道集的 PRB 个数确定该聚合 级别对应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所 述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数成 正比。
进一步的, 所述接收模块, 用于将釆用 SI-RNTI或 RA-RNTI加扰的 下行控制信息, 在所述分布式映射方式对应的 EPDCCH候选上接收, 将 釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行 控制信息在所述集中式映射方式对应的 EPDCCH候选上接收。
进一步的, 所述接收模块, 用于将包含跨载波调度指令的下行控制信 息在所述集中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上接收,将不包含跨载波调度指令的下行控制信息在另一种 方式对应的 EPDCCH候选上接收。
进一步的, 所述接收模块, 用于将格式 0和 /或格式 1A的下行控制信 息, 通过所述分布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C 的下行控制信息通过所述集中式对应的候选 EPDCCH 上的 EPDCCH接收; 次, 所述集中式映射方式对应的盲检测次数为 16次。 进一步的, 所述接收模块, 用于将聚合级别大于或等于设定值的
EPDCCH在所述分布式映射方式对应的 EPDCCH候选上接收, 将聚合级 别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候 选上接收。
第五个方面, 本发明实施例提供一种网络侧设备, 包括: 选择处理器, 用于选择传输子帧中物理控制信道集的需检测的聚合级 数;
发送器, 用于在与所述选择的个数对应的物理控制信道候选上发送下 行控制信息。
进一步的, 所述选择处理器, 具体用于, 所述物理控制信道集的 PRB 对中可用于物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集 的需检测的最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE 个数大于或等于门限 X时,所述物理控制信道集的需检测的最小聚合级别 为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
进一步的, 所述选择处理器, 具体用于将所述物理控制信道集划分为 两个集合, 一个所述集合对应物理控制信道的集中式映射方式, 另一个所 述集合对应物理控制信道的分布式映射方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 对于聚合级别为 2, 所述选择处理器选择集中式映射方式 对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之 和为 6;
对于聚合级别为 4 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述选择处理器选择聚合级别 2和 聚合级别 4对应的 EPDCCH候选个数均为 6,选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处 理器选择聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0 ,选择 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择处理器选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理器选择聚 合级别 2对应的 EPDCCH候选个数为 0 ,选择聚合级别 4对应的 EPDCCH 候选个数为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
进一步的, 对于分布式映射方式, 所述选择处理器选择聚合级别 32 对应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 32及聚合级别 2, 所述选择处理器选择集 中式映射方式的聚合级别 2以及分布式映射方式的聚合集合 32、聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述选择处理器选择集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述选择处理器选择集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述选择处理器选择集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
进一步的, 对于聚合级别为 1 , 所述选择处理器选择集中式映射方式 对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个 数之和为 6;
对于聚合级别为 2 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述选择处理器选择集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 对于集中式映射方式, 所述选择处理器选择聚合级别 1和 聚合级别 2对应的 EPDCCH候选个数均为 6,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理 器选择聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,选择聚 合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择处理器选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理器选择聚 合级别 1对应的 EPDCCH候选个数为 0 ,选择聚合级别 2对应的 EPDCCH 候选个数为 6 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
进一步的, 对于分布式映射方式, 所述选择处理器选择聚合级别 16 对应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 16及聚合级别 1 , 所述选择处理器选择集 中映射方式的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级 另' J 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述选择处理器选择聚合级别 2对 应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数 为 2, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方 式, 所述选择处理器选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 2个 EPDCCH候选分配给至少一个聚合级别。
进一步的, 所述选择处理器, 用于选择所述物理控制信道集的需检测 的聚合级别对应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述选择处理器根据所述物理控制信道集的 PRB 个数选择所述 聚合级别对应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择所述聚合级别对 应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述选择处理器根据所述物理控制信道集的 PRB 个数选择该聚 合级别对应的物理控制信道候选的个数, 所述物理控制信道候选的个数与 所述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择所述聚合级别对 应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数 成正比。
进一步的, 所述发送器, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下 行控制信息, 在所述分布式映射方式对应的 EPDCCH候选上发送, 将釆 除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控 制信息在所述集中式映射方式对应的 EPDCCH候选上发送。
进一步的, 所述发送器, 用于将包含跨载波调度指令的下行控制信息 在所述集中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上发送,将不包含跨载波调度指令的下行控制信息在另一种 方式对应的 EPDCCH候选上发送。
进一步的,所述发送器,用于将格式 0和 /或格式 1A的下行控制信息, 通过所述分布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格 式 2C的下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH 发送; 为 16次, 所述集中式映射方式对应的盲检测次数为 16次。
进一步的, 所述发送器, 用于将聚合级别大于或等于设定值的
EPDCCH在所述分布式映射方式对应的 EPDCCH候选上发送, 将聚合级 别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候 选上发送。
第六个方面, 本发明实施例提供一种用户设备, 包括:
确定处理器, 用于确定传输子帧中物理控制信道集的需检测的聚合级 别, 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个数 接收器, 用于在所述确定的个数对应的物理控制信道候选上接收下行 控制信息。
进一步的, 所述确定处理器, 用于所述物理控制信道集的 PRB 对中 可用于物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集的需 检测的最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数 大于或等于门限 X时,所述物理控制信道集的需检测的最小聚合级别为 1; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
进一步的, 所述确定处理器, 用于将所述物理控制信道集划分为两个 集合, 一个所述集合对应物理控制信道的集中式映射方式, 另一个所述集 合对应物理控制信道的分布式映射方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
进一步的, 对于聚合级别为 2, 所述确定处理器确定集中式映射方式 对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之 和为 6;
对于聚合级别为 4 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述确定处理器确定集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述确定处理器确定聚合级别 2和 聚合级别 4对应的 EPDCCH候选个数均为 6,确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处 理器确定聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0 ,确定 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定处理器确定聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 确定聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 2对应的 EPDCCH候选个数为 0 ,确定聚合级别 4对应的 EPDCCH 候选个数为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
进一步的, 对于分布式映射方式, 所述确定处理器确定聚合级别 32 对应的 EPDCCH候选个数为 0
进一步的,对于聚合级别为 32及聚合级别 2, 所述确定处理器确定集 中式映射方式的聚合级别 2以及分布式映射方式的聚合集合 32、聚合级别
2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述确定处理器确定集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述确定处理器确定集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述确定处理器确定集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
进一步的, 对于聚合级别为 1 , 所述确定处理器确定集中式映射方式 对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个 数之和为 6;
对于聚合级别为 2 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述确定处理器确定集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
进一步的, 对于集中式映射方式, 所述确定处理器确定聚合级别 1和 聚合级别 2对应的 EPDCCH候选个数均为 6,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理 器确定聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚 合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定处理器确定聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 1对应的 EPDCCH候选个数为 0 ,确定聚合级别 2对应的 EPDCCH 候选个数为 6 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
进一步的, 对于分布式映射方式, 所述确定处理器确定聚合级别 16 对应的 EPDCCH候选个数为 0。
进一步的,对于聚合级别为 16及聚合级别 1 , 所述确定处理器确定集 中映射方式的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级 另' J 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
进一步的, 对于集中式映射方式, 所述确定处理器确定聚合级别 2对 应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数 为 2, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方 式, 所述确定处理器确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 2 对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的 EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的 EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 2个 EPDCCH候选分配给至少一个聚合级别。
进一步的, 所述确定处理器, 用于确定所述物理控制信道集的需检测 的聚合级别对应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述确定处理器根据所述物理控制信道集的 PRB 个数确定所述 聚合级别对应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定所述聚合级别对 应的物理控制信道候选的个数。
进一步的, 对于所述物理控制信道集为集中式映射方式, 针对同一聚 合级别, 所述确定处理器根据所述物理控制信道集的 PRB 个数确定该聚 合级别对应的物理控制信道候选的个数, 所述物理控制信道候选的个数与 所述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定所述聚合级别对 应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数 成正比。
进一步的, 所述接收器, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下 行控制信息, 在所述分布式映射方式对应的 EPDCCH候选上接收, 将釆 除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控 制信息在所述集中式映射方式对应的 EPDCCH候选上接收。
进一步的, 所述接收器, 用于将包含跨载波调度指令的下行控制信息 在所述集中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上接收,将不包含跨载波调度指令的下行控制信息在另一种 方式对应的 EPDCCH候选上接收。
进一步的,所述接收器,用于将格式 0和 /或格式 1A的下行控制信息, 通过所述分布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格 式 2C的下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH 接收;
16次, 所述集中式映射方式对应的盲检测次数为 16次。
进一步的, 所述接收器, 用于将聚合级别大于或等于设定值的 EPDCCH在所述分布式映射方式对应的 EPDCCH候选上接收, 将聚合级 别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候 选上接收。
本发明实施例提供的下行控制信息传输的方法、 网络侧设备及用户设 备, 网络侧设备通选择传输子帧中物理控制信道集的需检测的聚合级别, 根据聚合级别选择聚合级别对应的物理控制信道候选的个数, 网络侧在与 选择的个数对应的物理控制信道候选上发送下行控制信息; 用户设备通过 确定传输子帧中物理控制信道集的需检测的聚合级别; 根据聚合级别确定 聚合级别对应的物理控制信道候选的个数; 对物理控制信道集进行盲检测 以接收下行控制信息, 从而实现了对根据聚合级别确定出物理控制信道候 选个数, 亦即确定出盲检测次数, 网络侧设备和用户设备可以在不增加盲 检测次数的情况下进行通信。 附图说明
实施例或现有技术描述中所需要使用的附图作一简单地介绍, 显而易见 地, 下面描述中的附图是本发明的一些实施例, 对于本领域普通技术人员 来讲, 在不付出创造性劳动性的前提下, 还可以根据这些附图获得其他的 附图。
图 1为本发明下行控制信息的网络侧传输方法实施例的流程图; 图 2为本发明下行控制信息的用户设备传输方法实施例的流程图; 图 3为本发明网络侧设备实施例一的结构示意图; 图 4为本发明用户设备实施例一的结构示意图;
图 5为本发明网络侧设备实施例二的结构示意图;
图 6为本发明用户设备实施例二的结构示意图。 具体实施方式 为使本发明实施例的目的、 技术方案和优点更加清楚, 下面将结合本 发明实施例中的附图, 对本发明实施例中的技术方案进行清楚、 完整地描 述,显然, 所描述的实施例是本发明一部分实施例, 而不是全部的实施例。 基于本发明中的实施例, 本领域普通技术人员在没有做出创造性劳动前提 下所获得的所有其他实施例, 都属于本发明保护的范围。
图 1为本发明下行控制信息的网络侧传输方法实施例的流程图。 如图 1所示, 本发明网路侧传输下行控制信息的方法包括下列步骤:
步骤 101 : 选择传输子帧中物理控制信道集的需检测的聚合级别; 为了提升系统性能、 扩大 PDCCH 容量, 在 R11 版本中引入了 EPDCCH。目前标致讨论已经确定 EPDCCH要支持 Localized和 Distributed 两种模式,应用于频域连续和不连续两种不同的场景。另外,在 3GPP RAN1 #70 会议上, 规定了 EPDCCH 的搜索空间以物理控制信道集 (以下简称 EPDCCH set ) 为单位, 一个 EPDCCH set由 N个物理层资源块 ( Physical Resource Block , 以下简称 PRB )构成, EPDCCH set或者是集中映射方 式, 或者是映射方式, 一个 UE可以被配置 K > 1个 EPDCCH set, UE在 所配置的 EPDCCH set里进行 EPDCCH的搜索。
一般来说, DCI根据编码速率釆用不同的聚合级别进行传输, 网络侧 设备根据不同的 DCI, 选择传输子帧中 EPDCCH set需检测的聚合级别。
步骤 102: 根据聚合级别选择聚合级别对应的物理控制信道候选 的个数;
根据聚合级别选择聚合级别对应的物理控制信道候选的个数, 亦即, 确定出盲检测次数, 从而使得盲检测的次数不超过协议规定的次数。 具体 的, 聚合级别对应的盲检测次数与物理控制信道候选的个数对应, 例如, 对于聚合级别 2, 其对应的物理信道候选的个数为 6, 盲检测次数为 6 x 2=12次, 2表示对一个 EPDCCH候选需要盲检两种 DCI格式。 步骤 103 : 在与选择的个数对应的物理控制信道候选上发送下行 控制信息。
网络侧设备可以将物理控制信道集划分为两个集合, 确定每一集合的 各个聚合级别对应 EPDCCH候选个数, 也可以不用划分集合而确定每一 个控制信道集的各个聚合级别对应的 EPDCCH候选个数。
相应的, 用户设备针对不同的聚合级别, 确定出物理控制信道候选个 数对物理控制信道集进行盲检测以接收下行控制信息。
本发明实施例提供的物理控制信道传输的方法, 网络侧设备通选择传 输子帧中物理控制信道集的需检测的聚合级别, 根据聚合级别选择聚合级 别对应的物理控制信道候选的个数, 网络侧在与选择的个数对应的物理控 制信道候选上发送下行控制信息; 用户设备通过确定传输子帧中物理控制 信道集的需检测的聚合级别; 根据聚合级别确定聚合级别对应的物理控制 信道候选的个数; 对物理控制信道集进行盲检测以接收下行控制信息, 从 而实现了对根据聚合级别确定出物理控制信道候选个数, 亦即确定出盲检 测次数, 网络侧设备和用户设备可以在不增加盲检测次数的情况下进行通 信。
当物理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于门 限 X时, 网络侧设备可以选择物理控制信道集的需检测的最小聚合级别 为 2; 物理控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 网 络侧设备可以选择物理控制信道集的需检测的最小聚合级别为 1。
相应的,物理控制信道集的 PRB对中可用于物理控制信道的 RE个数 小于门限 X时, 用户设备可以确定物理控制信道集的需检测的最小聚合 级别为 2;物理控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 用户设备可以确定物理控制信道集的需检测的最小聚合级别为 1。
本实施例中, 对于物理控制信道集, 仅考虑门限值, 当网络侧设备为 用户设备配置的资源中物理控制信道集的 PRB 对中可用于传输物理控制 信道的 RE个数小于门限 X时, 将需检测的最小聚合级别设定为 2, 否贝' J , 将最小聚合级别设定为 1。门限值 X可以是预先设定的值,比如从 EPDCCH 的传输码率考虑, 规定 X=104。
对于传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 网络侧设备可以选择物理控制信道集的需检测的最小聚合级别为 2;否则, 对于不是普通 CP长度的普通子帧且配置为 3 , 4 , 8的特殊子帧外的其他 子帧类型, 或者一个 PRB对中可用于物理控制信道的 RE个数大于 X时, 网络侧设备可以选择物理控制信道集的需检测的最小聚合级别为 1。
相应的, 传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4 , 8的特殊子帧,且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 用户设备可以确定物理控制信道集的需检测的最小聚合级别为 2; 否则, 对于不是普通 CP长度的普通子帧且配置为 3 , 4 , 8的特殊子帧外的其他 子帧类型, 或者一个 PRB对中可用于物理控制信道的 RE个数大于 X时, 用户设备可以确定物理控制信道集的需检测的最小聚合级别为 1。
本实施例中, 根据子帧的类型并结合门限值, 当子帧为普通 CP长度 的普通子帧或者配置为 3 , 4, 8的特殊子帧, 且一个 PRB对中可用于物 理控制信道的 RE个数小于 X时, 网络侧设备选择物理控制信道集的需检 测的最小聚合级别为 2, 否则, 将最小聚合级别设定为 1。 其中, 协议规 定 X=104。
一般来说, 根据聚合级别选择聚合级别对应的物理控制信道候选的个 数中, 网络侧设备可以将物理控制信道集划分为两个集合, 确定每一集合 的各个聚合级别对应 EPDCCH候选个数, 也可以不用划分集合而确定每 一个控制信道集的各个聚合级别对应的 EPDCCH候选个数。 下面, 针对 这两种方式 #支详细说明如下。
方式一
网络侧设备将物理控制信道集划分为两个集合, 一个集合对应物理控 制信道的集中式映射方式, 另一个集合对应物理控制信道的分布式映射方 式; 分别选择集中式映射方式和分布式映射方式中各个聚合级别对应的 EPDCCH候选的个数。
相应的, 也可以由用户设备将物理控制信道集划分为两个集合, 一个 集合对应物理控制信道的集中式映射方式, 另一个集合对应物理控制信道 的分布式映射方式; 分别确定集中式映射方式和分布式映射方式中各个聚 合级别对应的 EPDCCH 4吴选的个数。 上述 EPDCCH候选的个数, 可以在协议中规定, 即预先设定, 也可 以由网络侧设备发送信令通知给用户设备
具体的, 在普通子帧或配置为 3、 4、 8的特殊子帧, 且 PRB对中可 用于传输 EPDCH的 RE个数小于门限时的时候, 或者在仅考虑门限当物 理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于门限 X时, 对于聚合级别为 2, 网络侧选择集中式映射方式对应的 EPDCCH候选个数 和分布式映射方式对应的 EPDCCH候选个数之和为 6;对于聚合级别为 4, 网络侧选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式 对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8, 网络侧选择集中 式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH 候选个数之和为 2; 对于聚合级别为 16, 网络侧选择集中式映射方式对应 的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
相应的, 对于聚合级别为 2, 用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4,用户设备确定集中式映射方式对应的 EPDCCH候选个 数和分布式映射方式对应的 EPDCCH候选个数之和为 6;对于聚合级别为 8, 用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射 方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16, 用户设备 确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
本实施例中, 集中式映射方式支持的聚合级别为 2, 4, 8, ( 16) , 分布式映射方式的聚合级别为 2, 4, 8, 16, (32) , 其中 ( 16)表示集 中映射方式中聚合级别 16为可选, (32)表示分布映射方式中聚合级别 32 为可选, 集中式的聚合级别 ( 16) 与分布式的聚合级别 (32) 在某些 EPDCCH传输的场景中, 需要用到。 在 PRB对中用于传输 EPDCCH 的 RE 个数小于门限的时候, 以集中式映射方式和分布式映射方式都支持聚 合级别 {2, 4, 8, 16}, 沿用 PDCCH候选信道的设置, 对应于聚合级别 {2, 4, 8, 16}, 其 EPDCCH候选的个数为 {6, 6, 2, 2, }。 对于聚合级别 2, 其对应的 EPDCCH 候选为 6, 网络侧设备或是用户设备可以将该 6 个 EPDCCH候选分配给集中式映射的集合与分布式映射的集合, 例如, 给集 中式映射方式的集合分配全部 6个 EPDCCH候选, 而对分布式映射方式 的集合不分配任何 EPDCCH候选。 具体的配置, 可以在协议中规定, 即 预先设定, 也可以有网络侧设备发送信令通知给用户设备。 若果由网络侧 设备通知给用户设备, 则用户设备进行盲检测之前接收网络侧通知的 EPDCCH中各个聚合等级的 EPDCCH候选的个数。
表 1 为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 1种方案。 如表 1所示, 对于集中式映射方式, 网络侧设备选择聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 6,选择聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 网 络侧设备选择聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2;相应的, 对于集中式映射方式, 用户设备确定聚合级别 2 和聚合级别 4 对应的 EPDCCH候选个数均为 6,确定聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 用户设备确定聚合级别 2和聚合 级别 4对应的 EPDCCH候选个数均为 0, 确定聚合级别 8和聚合级别 16 对应的 EPDCCH候选个数均为 2。
表 1
Figure imgf000042_0001
表 2为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 2种方案。 如表 2所示, 对于集中式映射方式, 网络侧设备选择聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,选择聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 网 络侧设备选择聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1。 相应的, 对于集中式映射方式, 用户设备确定聚合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应 的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 用户设备确定聚合级 另' J 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,确定聚合级别 8和聚 合级别 16对应的 EPDCCH候选个数均为 1。
表 2
Figure imgf000043_0002
表 3为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 3种方案。 如表 3所示, 对于集中式映射方式, 网络侧设备选择聚合 级别 2对应的 EPDCCH候选个数为 6 , 聚合级别 4、 聚合级别 8和聚合级 别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 网络侧设 备选择聚合级别 2对应的 EPDCCH候选个数为 0 ,选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 2。
相应的, 对于集中式映射方式, 用户设备确定聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 用户设备确定聚合级别 2对应的 EPDCCH候选个数为 0,确定聚合级别 4对应的 EPDCCH候选个 数为 6, 确定聚合级别 8和聚合级别 应的 EPDCCH候选个数均为 2。
Figure imgf000043_0001
Figure imgf000043_0003
16 0 2 上述表 1、 表 2、 表 3只是给出了部分的配置方式, 然本发明并不以 此为限, 任何可以使各个聚合级别对应的集中映射方式集合的 EPDCCH 个数与分布映射方式集中的 EPDCCH 候选的个数之和满足其对应的 EPDCCH个数都可以用于实现本发明, 例如, 对于聚合级别 2, 上述只是 列举了给集中式映射方式的集合分配 6或 3个 EPDCCH候选, 而给分布 式映射的集合分配 0或 3个 EPDCCH的配置方式, 在其他实施例中, 也 可以釆取集中式映射方式的集合分配 2或 5个 EPDCCH候选, 而给分布 式映射的集合分配 4或 1个 EPDCCH的配置方式。
上述实施例中, 集中式分布的集合与分布式映射的集合均支持聚合级 别 {2, 4 , 8 , 16} , 对于集中式, 聚合级别 16为可选。 在其他实施例中, 对于集中式, 可以不考虑聚合级别 16, 此时, 将聚合级别 16对应的 2个 EPDCCH候选全部配置给分布式映射的集合。
当不考虑分布式映射的集合支持聚合级别为 32 的情况时, 网络侧设 备选择聚合级别 32对应的 EPDCCH候选个数为 0 , 用户设备确定聚合级 别 32对应的 EPDCCH候选个数为 0。
当考虑分布式映射的集合支持聚合级别为 32 的情况时, 因本发明沿 用 PDCCH候选信道的设置, 聚合级别 {2 , 4 , 8 , 16} , 其 EPDCCH候选 的个数为 {6 , 6, 2, 2, }的总和是不变的, 因此, 可以将部分聚合级别 2 对应的 EPDCCH候选分配给聚合级别 32对应的分布式映射方式集合; 或 者 , 可以将部分聚合级别 4对应的 EPDCCH候选分配给聚合级别 32对应 的分布式映射方式集合; 或者, 可以将部分聚合级别 8 对应的 EPDCCH 候选分配给聚合级别 32对应的分布式映射方式集合; 或者, 可以将部分 聚合级别 16对应的 EPDCCH候选分配给聚合级别 32对应的分布式映射 方式集合。
表 4为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 4种方案。 如表 4所示, 对于聚合级别为 32及聚合级别 2 , 网路侧设 备 10选择集中式映射方式的聚合级别 2以及分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 相应的, 对于聚合 级别为 32及聚合级别 2 ,用户设备确定集中式映射方式的聚合级别 2以及 分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数 之和为 6。
表 4
Figure imgf000045_0001
表 4中, 网路侧设备 10将聚合级别 2对应的 EPDCCH候选中的 2个 分配给分布映射方式的聚合级别 32, 然本发明并不以此为限, 在其他实施 例中,网络侧设备也可以将聚合级别 2对应的 EPDCCH候选中的 1个或 N 个分配给分布映射方式的聚合级别 32。
表 5为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 5种方案。 如表 5所示, 对于聚合级别为 32及聚合级别 4 , 网络侧设 备选择集中映射方式的聚合级别 4以及分布映射方式的聚合级别 32、聚合 级别 2对应的 EPDCCH候选的个数之和为 6; 相应的, 对于聚合级别为 32及聚合级别 4, 用户设备确定集中映射方式的聚合级别 4以及分布映射 方式的聚合级别 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6。
表 5
Figure imgf000045_0002
表 5中, 网路侧设备 10将聚合级别 4对应的 EPDCCH候选中的 1个 分配给分布映射方式的聚合级别 32, 然本发明并不以此为限, 在其他实施 例中 ,网络侧设备也可以将聚合级别 4对应的 EPDCCH候选中的 1个或 N 个分配给分布映射方式的聚合级别 32。
表 6为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 6种方案。 如表 6所示, 对于聚合级别 32及聚合级别 8 , 所述网络侧 设备选择集中映射方式的聚合级别 8以及分布映射方式的聚合级别 32、聚 合级别 8对应的 EPDCCH候选的个数之和为 2; 相应的, 对于聚合级别 32及聚合级别 8, 用户设备确定集中映射方式的聚合级别 8以及分布映射 方式的聚合级别 32、 聚合级别 8对应的 EPDCCH候选的个数之和为 2。
表 6
Figure imgf000046_0001
表 6中, 网路侧设备 10将聚合级别 8对应的 EPDCCH候选中的 1个 分配给分布映射方式的聚合级别 32, 然本发明并不以此为限, 在其他实施 例中, 网络侧设备也可以将聚合级别 8对应的 EPDCCH候选中的 1个或 2 个分配给分布映射方式的聚合级别 32。
表 7为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 7种方案。 如表 7所示, 对于聚合级别 32及聚合级别 16, 网络侧设 备选择集中映射方式聚合级别 16以及分布映射方式的聚合级别 32、 聚合 级别 16对应的 EPDCCH候选的个数之和为 2相应的, 对于聚合级别 32 及聚合级别 16, 用户设备确定集中映射方式聚合级别 16以及分布映射方 式的聚合级别 32、 聚合级别 16对应的 EPDCCH候选的个数之和为 2。
表 7
集中映射方式集合 分布映射方式集合 聚合级别
EPDCCH候选的个数 EPDCCH候选的个数
2 2 4 4 3 3
8 1 1
16 0 1
32 0 1 表 7 中, 网路侧设备 10将聚合级别 16对应的 EPDCCH候选中的 1 个分配给分布映射方式的聚合级别 32, 然本发明并不以此为限, 在其他实 施例中, 网络侧设备也可以将聚合级别 16对应的 EPDCCH候选中的 1个 或 2个分配给分布映射方式的聚合级别 32。
当仅考虑门限, 物理控制信道集的 PRB 对中可用于物理控制信道的
RE个数大于等于门限 X时, 或者除普通子帧或配置为 3、 4、 8的特殊子 帧外的其他子帧, 当物理控制信道集的 PRB 对中可用于物理控制信道的 RE个数大于等于门限 X时, 对于聚合级别为 1 , 网络侧设备选择集中式 映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH 候选的个数之和为 6; 对于聚合级别为 2 , 网络侧设备选择集中式映射方 式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的 个数之和为 6; 对于聚合级别为 4, 网络侧设备选择集中式映射方式对应 的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之 和为 2 ; 对于聚合级别为 8 , 网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
相应的, 对于聚合级别为 1 , 用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6; 对于聚合级别为 2, 用户设备确定集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 6;对于 聚合级别为 4 ,用户设备确定集中式映射方式对应的 EPDCCH候选的个数 和分布式映射方式对应的 EPDCCH候选的个数之和为 2;对于聚合级别为 8 , 用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映 射方式对应的 EPDCCH 4吴选的个数之和为 2。
本实施例中, 集中映射方式支持的聚合级别为 1 , 2, 4, ( 8 ) , 分布 式映射方式的聚合级别为 1 , 2, 4, 8 , ( 16 ) 。 其中 (8 )表示集中映射 方式中聚合级别 8为可选, ( 16 )表示分布映射方式中聚合级别 16为可 选, 集中式的聚合级别 (8 ) 与分布式的聚合级别 ( 16 )在某些 EPDCCH 传输的场景中, 需要用到。 在 PRB对中用于传输 EPDCCH的 RE个数大 于等于门限的时候, 以集中式映射方式和分布式映射方式都支持聚合级别 { 1 , 2 , 4 , 8 } , 沿用 PDCCH候选信道的设置, 对应于聚合级别 { 1 , 2, 4 , 8} , 其 EPDCCH候选的个数为 {6, 6 , 2, 2, }。 对于聚合级别 1 , 其 对应的 EPDCCH 候选为 6 , 网络侧设备或是用户设备可以将该 6 个 EPDCCH候选分配给集中式映射的集合与分布式映射的集合, 例如, 给集 中式映射方式的集合分配全部 6个 EPDCCH候选, 而对分布式映射方式 的集合不分配任何 EPDCCH候选。 具体的配置, 可以在协议中规定, 即 预先设定, 也可以有网络侧设备发送信令通知给用户设备。 若果由网络侧 设备通知给用户设备, 则用户设备进行盲检测之前接收网络侧通知的 EPDCCH中各个聚合等级的 EPDCCH候选的个数。
表 8为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 8种方案。 如表 8所示, 对于集中式映射方式, 网络侧设备选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 6,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 网络 侧设备选择聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,选 择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 相应的, 对 于集中式映射方式, 用户设备确定聚合级别 1 和聚合级别 2 对应的 EPDCCH候选个数均为 6 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 用户设备确定聚合级别 1和聚合 级别 2对应的 EPDCCH候选个数均为 0 ,确定聚合级别 4和聚合级别 8对 应的 EPDCCH候选个数均为 2。
表 8
Figure imgf000048_0001
8 0 2 表 9为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 9种方案。 如表 9所示, 对于集中式映射方式, 网络侧设备选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 网络 侧设备选择聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选 择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1。
相应的, 对于集中式映射方式, 用户设备确定聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 用户设备确定聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4和聚合 级别 8对应的 EPDCCH候选个数均为 1。
表 9
Figure imgf000049_0001
表 10为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 10种方案。 如表 10所示, 对于集中式映射方式, 网络侧设备选择聚 合级别 1对应的 EPDCCH候选个数为 6, 聚合级别 2、 聚合级别 4和聚合 级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 网络侧设 备选择聚合级别 1对应的 EPDCCH候选个数为 0 ,选择聚合级别 2对应的 EPDCCH候选个数为 6,选择聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 2。
相应的, 对于集中式映射方式, 用户设备确定聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 用户设备确定聚合级别 1对应的 EPDCCH候选个数为 0,确定聚合级别 2对应的 EPDCCH候选个 数为 6, 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
表 10
Figure imgf000050_0001
上述表 8、 表 9、 表 10只是给出了部分的配置方式, 然本发明并不以 此为限, 任何可以使各个聚合级别对应的集中映射方式集合的 EPDCCH 个数与分布映射方式集中的 EPDCCH 候选的个数之和满足其对应的 EPDCCH个数都可以用于实现本发明, 例如, 对于聚合级别 1 , 上述只是 列举了给集中式映射方式的集合分配 6或 3个 EPDCCH候选, 而给分布 式映射的集合分配 0或 3个 EPDCCH的配置方式, 在其他实施例中, 也 可以釆取集中式映射方式的集合分配 2或 5个 EPDCCH候选, 而给分布 式映射的集合分配 4或 1个 EPDCCH的配置方式。
上述实施例中, 集中式分布的集合与分布式映射的集合均支持聚合级 别 {2, 4 , 8 , 16} , 对于集中式, 聚合级别 16为可选。 在其他实施例中, 对于集中式, 可以不考虑聚合级别 16, 此时, 将聚合级别 16对应的 2个 EPDCCH候选全部配置给分布式映射的集合。
当不考虑分布式映射的集合支持聚合级别为 16 的情况时, 网络侧设 备选择聚合级别 16对应的 EPDCCH候选个数为 0 , 用户设备确定聚合级 别 16对应的 EPDCCH候选个数为 0。
当考虑分布式映射的集合支持聚合级别为 16 的情况时, 因本发明沿 用 PDCCH候选信道的设置, 聚合级别 { 1 , 2, 4, 8} , 其 EPDCCH候选的 个数为 {6, 6, 2, 2, }的总和是不变的, 因此, 可以将部分聚合级别 2对 应的 EPDCCH候选分配给聚合级别 16对应的分布式映射方式集合;或者, 可以将部分聚合级别 4对应的 EPDCCH候选分配给聚合级别 16对应的分 布式映射方式集合; 或者, 可以将部分聚合级别 8对应的 EPDCCH候选 分配给聚合级别 16对应的分布式映射方式集合; 或者, 可以将部分聚合 级别 16对应的 EPDCCH候选分配给聚合级别 16对应的分布式映射方式 集合。
表 11为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 11种方案。 如表 11所示, 对于聚合级别为 16及聚合级别 1 , 网络侧 设备选择集中映射方式的聚合级别 16、聚合级别 1 以及分布式映射方式的 聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6; 相应的, 对于聚合级别为 16及聚合级别 1 ,用户设备确定集中映射方式的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和为 6。
表 11
Figure imgf000051_0002
表 11 中, 网路侧设备 10将聚合级别 1对应的 EPDCCH候选中的 2 个分配给分布映射方式的聚合级别 16, 然本发明并不以此为限, 在其他实 施例中, 网络侧设备也可以将聚合级别 1对应的 EPDCCH候选中的 1个 或 N个分配给分布映射方式的聚合级别 16。
表 12为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 12种方案。 如表 12所示, 对于聚合级别为 16及聚合级别 2, 网络侧 设备选择集中映射方式的聚合级别 16、聚合级别 2以及分布式映射方式的 聚合级别 16、 聚合级别 2对应的 EPDCCH候选个数之和为 6; 相应的, 对于聚合级别为 16及聚合级别 2,用户设备确定集中映射方式的聚合级别 16、 聚合级别 2 以及分布式映射方式的聚合级别 16、 聚合级别 2对应的 EPDCCH候选个数之和为 6。
Figure imgf000051_0001
1 2 4
2 2 3
4 0 2
8 0 2
16 0 1 表 12中, 网路侧设备 10将聚合级别 2对应的 EPDCCH候选中的 2 个分配给分布映射方式的聚合级别 16, 然本发明并不以此为限, 在其他实 施例中, 网络侧设备也可以将聚合级别 2对应的 EPDCCH候选中的 1个 或 N个分配给分布映射方式的聚合级别 16。
表 13为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 13种方案。 如表 13所示, 对于聚合级别为 16及聚合级别 4, 网络侧 设备选择集中映射方式的聚合级别 16、聚合级别 4以及分布式映射方式的 聚合级别 16、 聚合级别 4对应的 EPDCCH候选个数之和为 2; 相应的, 对于聚合级别为 16及聚合级别 4,用户设备确定集中映射方式的聚合级别 16、 聚合级别 4 以及分布式映射方式的聚合级别 16、 聚合级别 4对应的 EPDCCH候选个数之和为 2。
表 13
Figure imgf000052_0001
表 13 中, 网路侧设备 10将聚合级别 4对应的 EPDCCH候选中的 2 个分配给分布映射方式的聚合级别 16, 然本发明并不以此为限, 在其他实 施例中, 网络侧设备也可以将聚合级别 4对应的 EPDCCH候选中的 1个 或 2个分配给分布映射方式的聚合级别 16。
表 14为 EPDCCH候选配置给集中映射方式集合和分布映射方式集合 的第 14种方案。 如表 14所示, 对于聚合级别为 16及聚合级别 8 , 网络侧 设备选择集中映射方式的聚合级别 16、聚合级别 8以及分布式映射方式的 聚合级别 16、 聚合级别 8对应的 EPDCCH候选个数之和为 2; 相应的, 对于聚合级别为 16及聚合级别 8,用户设备确定集中映射方式的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合级别 8对应的 EPDCCH候选个数之和为 2。
表 14
Figure imgf000053_0001
表 14中, 网路侧设备 10将聚合级别 8对应的 EPDCCH候选中的 1 个分配给分布映射方式的聚合级别 16, 然本发明并不以此为限, 在其他实 施例中, 网络侧设备也可以将聚合级别 8对应的 EPDCCH候选中的 1个 或 2个分配给分布映射方式的聚合级别 16。
上述方法一中, 将物理控制信道集划分成两个集合后, 可以根据 EPDCCH的不同形式来分配 EPDCCH候选的个数, 亦即配置盲检测次数。 例如, 对于普通子帧或配置为 3, 4, 8的特殊子帧, 且一个 PRB对中可 用于传输 EPDCCH的 RE个数小于门限的时候,集中式映射方式支持的聚 合级别为 2, 4, 8, ( 16) , 分布式映射方式的聚合级别为 2, 4, 8, 16, (32) , 其中 ( 16)表示集中映射方式中聚合级别 16为可选, (32)表 示分布映射方式中聚合级别 32为可选, 集中式的聚合级别 ( 16) 与分布 式的聚合级别 (32) 在某些 EPDCCH传输的场景中, 需要用到。 由于沿 用 PDCCH候选信道的设置, EPDCCH候选的个数 {6, 6, 2, 2, }的总和 是不变的。 因此, 对于集中映射方式的集合, 分配 EPDCCH候选的个数 为 10, 将剩余的 EPDCCH候选分配给分布式映射方式。 具体的配置, 可 以在协议中规定, 即预先设定, 也可以有网络侧设备发送信令通知给用户 设备。 若果由网络侧设备通知给用户设备, 则用户设备进行盲检测之前接 收网络侧通知的 EPDCCH中各个聚合等级的 EPDCCH候选的个数。
表 15为给集中映射方式集合的配置 EPDCCH候选的第一种方案。 如 表 15所示, 对于集中式映射方式, 网络侧设备设备选择聚合级别 2对应 的 EPDCCH候选个数为 6 ,选择聚合级别 4对应的 EPDCCH候选个数为 2 , 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 网 络侧设备设备选择将 6个 EPDCCH候选分配给至少一个聚合级别; 相应 的, 对于集中式映射方式, 用户设备确定聚合级别 2对应的 EPDCCH候 选个数为 6 , 确定聚合级别 4对应的 EPDCCH候选个数为 6 , 确定聚合级 别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 用户设备确定 将 2个 EPDCCH候选分配给至少一个聚合级别。 表 15
Figure imgf000054_0001
表 15中, 分配给集中映射方式的 EPDCCH候选的个数为 6+2+2=10 , 如果不支持上行多输入多输出 ( Multiple Input Multiple Output , 以下简称 ΜΙΜΟ ) , 总的盲检测的次数为 10 x 2=20次, 其中 2表示一个 EPDCCH 候选中需要进行盲检两种 DCI格式; 若支持上行 MIMO , 还需要盲检测用 于调度上行的其他 DCI 格式 (例如, DCI format 4 ) , 其盲检测次数为 ( 6+2+2 ) 1=10 , 则此时总的盲检测次数为 20+10=30 次。 将剩下的 6 个 EPDCCH候选分配给分布映射方式的集合,亦即,若不支持上行 MIMO , 则分配给分布映射方式的集合的盲检测次数为 6 x 2=12 次, 若支持上行 MOMO , 则盲检测用于调度上行的其他 DCI格式的次数为 6 X 1 , 总的盲 检测次数为 12+6=18次。 具体的, 将剩余的 6个 EPDCCH候选分配给分 布式映射方式的哪一个聚合级别或是哪几个聚合级别, 根据传输的 DCI 选择, 一般来说, 分配给分布应设方式较高的聚合级别, 例如聚合级别 8 或聚合级别 16或聚合级别 32。 表 16为给集中映射方式集合的配置 EPDCCH候选的第二种方案。 如 表 16 所示, 对于集中式映射方式, 网络侧设备选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 网 络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别; 相应的, 对于集中式映射方式, 用户设备 20确定聚合级别 2对应的 EPDCCH候选 个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 用户设备 20确 定将 2个 EPDCCH候选分配给至少一个聚合级别。
表 16
Figure imgf000055_0001
表 16中, 分配给集中映射方式的 EPDCCH候选的个数为 6+6+2=14, 如果不支持上行多输入多输出 ( Multiple Input Multiple Output , 以下简称 ΜΙΜΟ ) , 总的盲检测的次数为 14 x 2=28次, 其中 2表示一个 EPDCCH 候选中需要进行盲检两种 DCI格式; 若支持上行 MIMO, 还需要盲检测用 于调度上行的其他 DCI 格式 (例如, DCI format 4 ) , 其盲检测次数为 ( 6+6+2 ) 1=14, 则此时总的盲检测次数为 28+14=42 次。 将剩下的 2 个 EPDCCH候选分配给分布映射方式的集合,亦即,若不支持上行 MIMO, 则分配给分布映射方式的集合的盲检测次数为 2 x 2=4 次, 若支持上行 MOMO, 则盲检测用于调度上行的其他 DCI格式的次数为 2 X 1 , 总的盲 检测次数为 4+2=6次。 具体的, 将剩余的 2个 EPDCCH候选分配给分布 式映射方式的哪一个聚合级别或是哪几个聚合级别, 根据传输的 DCI 选 择, 一般来说, 分配给分布应设方式较高的聚合级别, 例如聚合级别 8或 聚合级别 16或 32。
对于除普通子帧或配置为 3 , 4, 8的特殊子帧, 且一个 PRB对中可 用于传输 EPDCCH的 RE个数大于等于门限的时候,集中映射方式支持的 聚合级别为 1 , 2, 4, ( 8 ) , 分布式映射方式的聚合级别为 1 , 2, 4, 8 , ( 16 ) 。 其中 (8 )表示集中映射方式中聚合级别 8 为可选, ( 16 )表示 分布映射方式中聚合级别 16为可选, 集中式的聚合级别 (8 )与分布式的 聚合级别 ( 16 )在某些 EPDCCH传输的场景中, 需要用到。 沿用 PDCCH 候选信道的设置, EPDCCH候选的个数 {6, 6, 2, 2, }的总和是不变的。 因此, 对于集中映射方式的集合, 分配 EPDCCH候选的个数为 10, 将剩 余的 EPDCCH候选分配给分布式映射方式。 具体的配置, 可以在协议中 规定, 即预先设定, 也可以有网络侧设备发送信令通知给用户设备。 若果 由网络侧设备通知给用户设备, 则用户设备进行盲检测之前接收网络侧通 知的 EPDCCH中各个聚合等级的 EPDCCH候选的个数
表 17为给集中映射方式集合的配置 EPDCCH候选的第三种方案。 如 表 17 所示, 对于集中式映射方式, 网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 网 络侧设备选择将 6个 EPDCCH候选分配给至少一个聚合级别相应的, 对 于集中式映射方式, 用户设备确定聚合级别 1对应的 EPDCCH候选个数 为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合级别 4对 应的 EPDCCH候选个数为 2; 对于分布式映射方式, 用户设备确定将 6个 EPDCCH候选分配给至少一个聚合级别。
表 17
Figure imgf000056_0001
表 17中, 分配给集中映射方式的 EPDCCH候选的个数为 6+2+2=10, 如果不支持上行多输入多输出 ( Multiple Input Multiple Output , 以下简称 ΜΙΜΟ ) , 总的盲检测的次数为 10 x 2=20次, 其中 2表示一个 EPDCCH 候选中需要进行盲检两种 DCI格式; 若支持上行 MIMO, 还需要盲检测用 于调度上行的其他 DCI 格式 (例如, DCI format 4 ) , 其盲检测次数为 ( 6+2+2 ) 1=10, 则此时总的盲检测次数为 20+10=30 次。 将剩下的 6 个 EPDCCH候选分配给分布映射方式的集合,亦即,若不支持上行 MIMO, 则分配给分布映射方式的集合的盲检测次数为 6 x 2=12 次, 若支持上行 MOMO, 则盲检测用于调度上行的其他 DCI格式的次数为 6 X 1 , 总的盲 检测次数为 12+6=18次。 具体的, 将剩余的 6个 EPDCCH候选分配给分 布式映射方式的哪一个聚合级别或是哪几个聚合级别, 根据传输的 DCI 选择, 一般来说, 分配给分布应设方式较高的聚合级别, 例如聚合级别 8 或聚合级别 16。
表 18为给集中映射方式集合的配置 EPDCCH候选的第四种方案。 如 表 18 所示, 对于集中式映射方式, 网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 网 络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别, 相应的, 对于集中式映射方式, 用户设备确定聚合级别 1对应的 EPDCCH候选个 数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合级别 4 对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 用户设备确定将 2 个 EPDCCH候选分配给至少一个聚合级别。
表 18
Figure imgf000057_0001
表 18中, 分配给集中映射方式的 EPDCCH候选的个数为 6+6+2=14, 如果不支持上行多输入多输出 ( Multiple Input Multiple Output , 以下简称 MIMO ) , 总的盲检测的次数为 14 x 2=28次, 其中 2表示一个 EPDCCH 候选中需要进行盲检两种 DCI格式; 若支持上行 MIMO, 还需要盲检测用 于调度上行的其他 DCI 格式 (例如, DCI format 4 ) , 其盲检测次数为 ( 6+6+2 ) 1=14, 则此时总的盲检测次数为 28+14=32 次。 将剩下的 2 个 EPDCCH候选分配给分布映射方式的集合,亦即,若不支持上行 MIMO, 则分配给分布映射方式的集合的盲检测次数为 2 x 2=4 次, 若支持上行 MOMO, 则盲检测用于调度上行的其他 DCI格式的次数为 2 X 1 , 总的盲 检测次数为 4+2=6次。 具体的, 将剩余的 2个 EPDCCH候选分配给分布 式映射方式的哪一个聚合级别或是哪几个聚合级别, 根据传输的 DCI 选 择, 一般来说, 分配给分布应设方式较高的聚合级别, 例如聚合级别 8或 聚合级别 16。
上述实施例中, 仅给出了部分可能的实现方式, 然本发明并不以此为 限, 在其他的实现方式中, 集中映射方式集合的某个或某几个聚合级别的 盲检测次数为 X, 则分布映射方式集合的某个或某几个聚合级别的盲检测 次数为 [ ( 32或 48 ) -X] , X的值可以是预先定义的值, 或者是通过信令通 知给用户设备, 或者与带宽相关的参数。
方式二 数的过程中, 网络侧设备不必将物理控制信道集划分为两个集合, 而是选 择所述物理控制信道集的需检测的聚合级别对应的物理控制信道候选的 个数; 相应的, 用户设备确定物理控制信道集的需检测的聚合级别对应的 物理控制信道候选的个数。
具体的, 网络侧设备对于所述物理控制信道集为集中式映射方式, 针 对同一聚合级别, 该聚合级别对应的物理控制信道候选的个数由物理控制 信道集的 PRB 个数选择; 相应的, 用户设备对于物理控制信道集为集中 式映射方式, 针对同一聚合级别, 该聚合级别对应的物理控制信道候选的 个数由物理控制信道集的 PRB个数确定;
网络侧设备对于物理控制信道集为分布式映射方式, 针对同一聚合级 另' h该聚合级别对应的物理控制信道候选的个数由物理控制信道集的 PRB 个数选择, 相应的, 用户设备对于物理控制信道集为分布式映射方式, 针 对同一聚合级别, 该聚合级别对应的物理控制信道候选的个数由物理控制 信道集的 PRB个数确定。
较佳的, 网络侧设备对于物理控制信道集为集中式映射方式, 针对同 一聚合级别, 根据物理控制信道集的 PRB 个数选择该聚合级别对应的物 理控制信道候选的个数, 物理控制信道候选的个数与 PRB 个数成正比, 相应的, 用户设备对于物理控制信道集为集中式映射方式, 针对同一聚合 级别, 根据物理控制信道集的 PRB 个数确定该聚合级别对应的物理控制 信道候选的个数, 物理控制信道候选的个数与 PRB个数成正比。
相应的, 网络侧设备对于物理控制信道集为分布式映射方式, 针对同 一聚合级别, 根据物理控制信道集的 PRB 个数选择聚合级别对应的物理 控制信道候选的个数, 物理控制信道候选的个数与个数成正比; 用户设备 对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 根据物理控 制信道集的 PRB 个数确定聚合级别对应的物理控制信道候选的个数, 物 理控制信道候选的个数与个数成正比。
上述实施例中, 无论是集中映射方式还是分布映射方式, 对于同一聚 合级别,配置的 EPDCCH候选与每一 EPDCCH set中 PRB的个数 N有关, 例如, N=8时, 表示分布式映射方式的 EPDCCH聚合级别至少为 2。 一般 来说, N越大, 表示物理控制信道候选的个数越大。
具体的, 网络侧设备对于物理控制信道集为分布式映射方式, 如果物 理控制信道集所含的 PRB个数 N为 8 , 则物理控制信道集的聚合级别为 1 的物理控制信道候选的个数为 0;对于物理控制信道集为分布式映射方式, 如果物理控制信道集所含的 PRB个数 N为 16, 则物理控制信道集的聚合 级别为 1和 2的物理控制信道候选的个数为 0。
相应的, 用户设备对于物理控制信道集为分布式映射方式, 如果物理 控制信道集所含的 PRB个数 N为 8, 则物理控制信道集的聚合级别为 1 的物理控制信道候选的个数为 0;对于物理控制信道集为分布式映射方式, 如果物理控制信道集所含的 PRB个数 N为 16, 则物理控制信道集的聚合 级别为 1和 2的物理控制信道候选的个数为 0。
网路侧设备 10将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息,在 分布式映射方式对应的 EPDCCH 候选上发送, 将釆除用 SI-RNTI 和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在集中式映射方式对 应的 EPDCCH候选上发送;相应的,用户设备将釆用 SI-RNTI或 RA-RNTI 加扰的下行控制信息, 在分布式映射方式对应的 EPDCCH候选上接收, 将釆除用 SI-RNTI和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信 息在集中式映射方式对应的 EPDCCH候选上接收。 本实施例中, 系统信息无线网络临时标识符 System Information-Radio Network Temporary Identifier,以下简称 SI-RNTI )、随机接入 RNTI( Random Access-RNTI, 以下简称 RA-RNTI ) 、 寻呼 PNTI ( Paging-RNTI, 以下简 称 P-RNTI ) 加扰的下行控制信息, 承载在分布映射方式的候选 EPDCCH 上, 另外, 如果是 format 0 或 formatlA, 也承载在分布式映射方式的候 选 EPDCCH上; 对于其他的 RNTI加扰的控制信令, 承载在集中映射方式 的 EPDCCH候选上。
网络侧设备将包含跨载波调度指令的下行控制信息在集中式映射方 式和分布式映射方式中的其中任意一种方式对应的 EPDCCH候选上发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH 候选上发送; 相应的, 用户设备将包含跨载波调度指令的下行控制信息在 集中式映射方式和分布式映射方式中的任意一种方式对应的 EPDCCH候 选上接收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上接收。
网络侧设备将格式 0和 /或格式 1A的下行控制信息, 通过分布式映射 方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的下行控制信 息通过集中式对应的候选 EPDCCH上的 EPDCCH发送; 网络侧设备选择 分布式映射方式对应的盲检测次数为 16次, 集中式映射方式对应的盲检 测次数为 16次。
相应的, 用户设备将格式 0和 /或格式 1A的下行控制信息, 通过分布 式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的下行 控制信息通过集中式对应的候选 EPDCCH上的 EPDCCH接收; 用户设备 确定分布式映射方式对应的盲检测次数为 16次, 集中式映射方式对应的 盲检测次数为 16次。
上述实施例中, 根据 DCI format 的格式来对集中式与分布式分配
EPDCCH候选。
较佳的, 网络侧设备将聚合级别大于或等于设定值的 EPDCCH在分 布式映射方式对应的 EPDCCH 候选上发送, 将聚合级别小于设定值的 EPDCCH在集中式映射方式对应的 EPDCCH候选上发送。 相应的, 用户 设备将聚合级别大于或等于设定值的 EPDCCH在分布式映射方式对应的 EPDCCH候选上接收, 将聚合级别小于设定值的 EPDCCH在集中式映射 方式对应的 EPDCCH候选上接收。
本实施例中, 根据聚合级别的大小, 将聚合级别大于或等于设定值对 应的 EPDCCH候选分配集中式映射方式, 而将聚合级别小于设定值对应 的 EPDCCH候选分配分布式映射方式。 其中, K值可以为 1 , 2, 4, 8或 32等, K值可以是预先定义的, 或者是通过信令通知给 UE, 或者是与带 宽相关的参数。
图 2为本发明下行控制信息的用户设备传输方法实施例的流程图。 如 图 2所示, 本发明用户设备传输下行控制信息的方法包括下列步骤: 步骤 201 : 确定传输子帧中物理控制信道集的需检测的聚合级别; 步骤 202: 根据聚合级别确定聚合级别对应的物理控制信道候选的个 数;
步骤 203: 在确定的个数对应的物理控制信道候选上接收下行控制信 息。
基于同一发明构思, 本发明上述实施例提供的一种用户设备物理控制 信道传输方法, 由于该方法解决问题的原理与下行控制信, 传输方法中的 网络侧设备相似, 因此该方法的实施可以参见网络侧的实施, 重复之处不 再赘述。
图 3为本发明网络侧设备实施例一的结构示意图。 如图 3所示, 本发 明实施例提供的网络侧设备包括: 选择模块 10和发送模块 20。
选择模块 10,用于选择传输子帧中物理控制信道集的需检测的聚合级 别, 根据聚合级别选择聚合级别对应的物理控制信道候选的个数。
发送模块 20,用于在与选择的个数对应的物理控制信道候选上发送下 行控制信息。
较佳的, 选择模块 10, 具体用于, 物理控制信道集的 PRB对中可用 于物理控制信道的 RE个数小于门限 X时, 物理控制信道集的需检测的最 小聚合级别为 2; 物理控制信道集的 PRB对所含的 RE个数大于或等于门 限 X时, 物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的特殊 子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 物理 控制信道集的需检测的最小聚合级别为 2; 否则, 对于不是普通 CP长度 的普通子帧且配置为 3 , 4 , 8的特殊子帧外的其他子帧类型 ,或者一个 PRB 对中可用于物理控制信道的 RE个数大于 X时, 物理控制信道集的需检测 的最小聚合级别为 1。
较佳的, 选择模块 10 , 具体用于将物理控制信道集划分为两个集合, 一个集合对应物理控制信道的集中式映射方式, 另一个集合对应物理控制 信道的分布式映射方式;
分别选择集中式映射方式和分布式映射方式中各个聚合级别对应的 EPDCCH候选的个数。
较佳的, 对于普通子帧或配置为 3 , 4 , 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE小于门限值 10时, 对于聚合级别为 2, 选择模块 10选择集中式映射方式对应的 EPDCCH候选个数和分布式映射 方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 4 ,选择模块 10选择集中式映射方式对应的 EPDCCH 候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 8 ,选择模块 10选择集中式映射方式对应的 EPDCCH 候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2;
对于聚合级别为 16 , 选择模块 10 选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
上述实施例中, 对于分布式映射方式, 选择模块 10选择聚合级别 32 对应的 EPDCCH候选个数为 0。
在分布式映射考虑聚合级别 32的时候, 对于聚合级别为 32及聚合级 别 2,选择模块 10选择集中式映射方式的聚合级别 2以及分布式映射方式 的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者, 对于聚合级别为 32及聚合级别 4, 选择模块 10选择集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 , 选择模块 10选择集中映射方式的聚 合级别 8以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者, 对于聚合级别 32及聚合级别 16,选择模块 10选择集中映射方式聚合 级别 16以及分布映射方式的聚合级别 32、 聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
较佳的, 对于除普通子帧或配置为 3 , 4, 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE大于等于门限值 10时, 对于聚合级别为 1 , 选择模块 10选择集中式映射方式对应的 EPDCCH候选的个数和分布 式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 2 ,选择模块 10选择集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 4 ,选择模块 10选择集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 2;
对于聚合级别为 8 ,选择模块 10选择集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 2。
较佳的, 对于集中式映射方式, 选择模块 10选择聚合级别 1和聚合 级别 2对应的 EPDCCH候选个数均为 6 ,选择聚合级别 4和聚合级别 8对 应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 选择模块 10选择 聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 选择模块 10选择聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 选择聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 选择模块 10选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 选择模块 10选择聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 选择模块 10选择聚合级别 1对应的 EPDCCH候选个数为 0, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
上述实施例中, 对于分布式映射方式, 选择模块 10选择聚合级别 16 对应的 EPDCCH候选个数为 0。 在分布式映射考虑聚合级别 16的时候, 对于聚合级别为 16及聚合级 别 1 , 选择模块 10选择集中映射方式的聚合级别 16、 聚合级别 1以及分 布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和 为 6; 或者,
对于聚合级别为 16及聚合级别 2, 选择模块 10选择集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4, 选择模块 10选择集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 , 选择模块 10选择集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
在首先为集中映射方式分配 EPDCCH候选的情况下, 对于集中式映 射方式, 选择模块 10选择聚合级别 2对应的 EPDCCH候选个数为 6, 选 择聚合级别 4 对应的 EPDCCH候选个数为 2, 选择聚合级别 8 对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选择模块 10选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 选择模块 10选择聚合级别 2对应的 EPDCCH 候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选择模块 10选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 选择模块 10选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选择模块 10选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 选择模块 10选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选择模块 10选择将 2个 EPDCCH候选分配给至少一个聚合级别。 在另一种实施方式中, 不需要将 EPDCCH 集划分为两个集合, 而是 选择每一 EPDCCH 集的物理控制信道候选的个数。 本实施例中, 选择模 块 10,用于选择物理控制信道集的需检测的聚合级别对应的物理控制信道 候选的个数。
较佳的,对于物理控制信道集为集中式映射方式,针对同一聚合级别, 选择模块 10根据物理控制信道集的 PRB个数选择聚合级别对应的物理控 制信道候选的个数;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 选择模 块 10根据物理控制信道集的 PRB个数选择聚合级别对应的物理控制信道 候选的个数。
一般来说, 对于物理控制信道集为集中式映射方式, 针对同一聚合级 别, 选择模块 10根据物理控制信道集的 PRB个数选择该聚合级别对应的 物理控制信道候选的个数, 物理控制信道候选的个数与 PRB个数成正比; 对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 选择模 块 10根据物理控制信道集的 PRB个数选择聚合级别对应的物理控制信道 候选的个数, 物理控制信道候选的个数与个数成正比。
上述实施例中, 发送模块 20, 用于将釆用 SI-RNTI或 RA-RNTI加扰 的下行控制信息, 在分布式映射方式对应的 EPDCCH候选上发送, 将釆 除用 SI-RNTI和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在 集中式映射方式对应的 EPDCCH候选上发送。
发送模块 20,还用于将包含跨载波调度指令的下行控制信息在集中式 映射方式和分布式映射方式中的一种方式对应的 EPDCCH候选上发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH 候选上发送。
发送模块 20,还用于将格式 0和 /或格式 1A的下行控制信息, 通过分 布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的下 行控制信息通过集中式对应的候选 EPDCCH上的 EPDCCH发送; 集中式映射方式对应的盲检测次数为 16次。
在其他实施例中,发送模块 20, 用于将聚合级别大于或等于设定值的 EPDCCH在分布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小 于设定值的 EPDCCH在集中式映射方式对应的 EPDCCH候选上发送。
图 4为本发明用户设备实施例一的结构示意图。 如图 4所示, 本发明 实施例提供的用户设备包括: 确定模块 30和接收模块 40。
确定模块 30 ,用于确定传输子帧中物理控制信道集的需检测的聚合级 别, 根据聚合级别确定聚合级别对应的物理控制信道候选的个数
接收模块 40 ,用于在确定的个数对应的物理控制信道候选上接收下行 控制信息。
较佳的, 确定模块 30, 用于物理控制信道集的 PRB对中可用于物理 控制信道的 RE个数小于门限 X时, 物理控制信道集的需检测的最小聚合 级别为 2;物理控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的特殊 子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 物理 控制信道集的需检测的最小聚合级别为 2; 否则, 对于不是普通 CP长度 的普通子帧且配置为 3 , 4 , 8的特殊子帧外的其他子帧类型 ,或者一个 PRB 对中可用于物理控制信道的 RE个数大于 X时, 物理控制信道集的需检测 的最小聚合级别为 1。
较佳的, 确定模块 30 , 用于将物理控制信道集划分为两个集合, 一个 集合对应物理控制信道的集中式映射方式, 另一个集合对应物理控制信道 的分布式映射方式;
分别确定集中式映射方式和分布式映射方式中各个聚合级别对应的 EPDCCH候选的个数。
较佳的, 对于普通子帧或配置为 3 , 4 , 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE小于门限值 10时, 对于聚合级别为 2, 确定模块 30确定集中式映射方式对应的 EPDCCH候选个数和分布式映射 方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 4 ,确定模块 30确定集中式映射方式对应的 EPDCCH 候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 8 ,确定模块 30确定集中式映射方式对应的 EPDCCH 候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2;
对于聚合级别为 16 , 确定模块 30 确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
上述实施例中, 对于分布映射方式, 确定模块 30确定聚合级别 32对 于的 EPDCCH候选的个数为 0。
在分布式映射考虑聚合级别 32的时候, 对于聚合级别为 32及聚合级 别 2,确定模块 30确定集中式映射方式的聚合级别 2以及分布式映射方式 的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者, 对于聚合级别为 32及聚合级别 4, 确定模块 30确定集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 , 确定模块 30确定集中映射方式的聚 合级别 8以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16,确定模块 30确定集中映射方式聚合 级别 16以及分布映射方式的聚合级别 32、 聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
较佳的, 对于除普通子帧或配置为 3 , 4, 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE大于等于门限值 10时, 对于聚合级别为 1 , 确定模块 30确定集中式映射方式对应的 EPDCCH候选的个数和分布 式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 2 ,确定模块 30确定集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 4 ,确定模块 30确定集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 2;
对于聚合级别为 8 ,确定模块 30确定集中式映射方式对应的 EPDCCH 候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和为 2。
较佳的, 对于集中式映射方式, 确定模块 30确定聚合级别 1和聚合 级别 2对应的 EPDCCH候选个数均为 6 ,确定聚合级别 4和聚合级别 8对 应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 确定模块 30确定 聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 确定模块 30确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 确定模块 30确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 确定模块 30确定聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 确定模块 30确定聚合级别 1对应的 EPDCCH候选个数为 0, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
上述实施例中, 对于分布式映射方式, 确定模块 30确定聚合接不 16 对于的 EPDCCH候选个数为 0。
在分布式映射考虑聚合级别 16的时候, 对于聚合级别为 16及聚合级 别 1 , 确定模块 30确定集中映射方式的聚合级别 16、 聚合级别 1以及分 布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数之和 为 6; 或者,
对于聚合级别为 16及聚合级别 2, 确定模块 30确定集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4, 确定模块 30确定集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 , 确定模块 30确定集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
在首先为集中映射方式分配 EPDCCH候选的情况下, 对于集中式映 射方式, 确定模块 30确定聚合级别 2对应的 EPDCCH候选个数为 6, 确 定聚合级别 4 对应的 EPDCCH候选个数为 2, 确定聚合级别 8 对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确定模块 30确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 确定模块 30确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确定模块 30确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 确定模块 30确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确定模块 30确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 确定模块 30确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确定模块 30确定将 2个 EPDCCH候选分配给至少一个聚合级别。
在另一种实施方式中, 不需要将 EPDCCH 集划分为两个集合, 而是 选择每一 EPDCCH 集的物理控制信道候选的个数。 本实施例中, 确定模 块 30 ,用于确定物理控制信道集的需检测的聚合级别对应的物理控制信道 候选的个数。
较佳的,对于物理控制信道集为集中式映射方式,针对同一聚合级别, 确定模块 30根据物理控制信道集的 PRB个数确定聚合级别对应的物理控 制信道候选的个数;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 确定模 块 30根据物理控制信道集的 PRB个数确定聚合级别对应的物理控制信道 候选的个数。
一般来说, 对于物理控制信道集为集中式映射方式, 针对同一聚合级 别, 确定模块 30根据物理控制信道集的 PRB个数确定该聚合级别对应的 物理控制信道候选的个数, 物理控制信道候选的个数与 PRB个数成正比; 对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 确定模 块 30根据物理控制信道集的 PRB个数确定聚合级别对应的物理控制信道 候选的个数, 物理控制信道候选的个数与个数成正比。 上述实施例中, 接收模块 40, 用于将釆用 SI-RNTI或 RA-RNTI加扰 的下行控制信息, 在分布式映射方式对应的 EPDCCH候选上接收, 将釆 除用 SI-RNTI和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在 集中式映射方式对应的 EPDCCH候选上接收。
接收模块 40 ,还用于将包含跨载波调度指令的下行控制信息在集中式 映射方式和分布式映射方式中的一种方式对应的 EPDCCH候选上接收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH 候选上接收。
接收模块 40 ,还用于将格式 0和 /或格式 1A的下行控制信息, 通过分 布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的下 行控制信息通过集中式对应的候选 EPDCCH上的 EPDCCH接收; 集中式映射方式对应的盲检测次数为 16次。
在其他实施例中,接收模块 40 , 用于将聚合级别大于或等于设定值的 EPDCCH在分布式映射方式对应的 EPDCCH候选上接收, 将聚合级别小 于设定值的 EPDCCH在集中式映射方式对应的 EPDCCH候选上接收。
图 5为本发明网络侧设备实施例二的结构示意图。 如图 5所示, 本发 明实施例提供的网络侧设备 1000包括: 至少一个 CPU1001 , 至少一个网 络接口 1004 或者其他用户接口 1003 , 存储器 1005 , 和至少一通信总线 1002。通信总线 1002用于实现各装置之间的连接通信。该网络侧设备 1000 可选的包含用户接口 1003 , 包括显示器,键盘或者点击设备。存储器 1005 可能包含高速 RAM存储器,也可能还包括非不稳定的存储器(non-volatile memory ) , 例如至少一个磁盘存储器。 存储器 1005可选的可以包含至少 一个位于远离前述 CPU1001的存储装置。在一些实施方式中,存储器 1005 存储了如下的元素, 编码, 模块或者数据结构, 或者他们的子集, 或者他 们的扩展集: 操作系统 1006, 包含各种程序, 用于实现各种基础业务以及 处理基于硬件的任务。
选择处理器 1010,用于选择传输子帧中物理控制信道集的需检测的聚 合级别, 根据聚合级别选择聚合级别对应的物理控制信道候选的个数, 在 与选择的个数对应的物理控制信道候选上发送下行控制信息。 发送器 1020 ,用于在与选择的个数对应的物理控制信道候选上发送下 行控制信息。
较佳的, 选择处理器 1010 , 具体用于, 物理控制信道集的 PRB对中 可用于物理控制信道的 RE个数小于门限 X时, 物理控制信道集的需检测 的最小聚合级别为 2; 物理控制信道集的 PRB对所含的 RE个数大于或等 于门限 X时, 物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的特殊 子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 物理 控制信道集的需检测的最小聚合级别为 2; 否则, 对于除了上述情况的其 他类型子帧, 物理控制信道集的需检测的最小聚合级别为 1。
较佳的, 选择处理器 1010, 具体用于将物理控制信道集划分为两个集 合, 一个集合对应物理控制信道的集中式映射方式, 另一个集合对应物理 控制信道的分布式映射方式;
分别选择集中式映射方式和分布式映射方式中各个聚合级别对应的 EPDCCH候选的个数。
较佳的, 对于普通子帧或配置为 3 , 4 , 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE小于门限值 10时, 对于聚合级别为 2, 选择处理器 1010选择集中式映射方式对应的 EPDCCH候选个数和分布式 映射方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 4 , 选择处理器 1010 选择集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 选择处理器 1010 选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 选择处理器 1010 选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
上述实施例中, 对于分布式映射方式, 选择处理器 1010选择聚合级 另' J 32对应的 EPDCCH候选个数为 0。
在分布式映射考虑聚合级别 32的时候, 对于聚合级别为 32及聚合级 别 2,选择处理器 1010选择集中式映射方式的聚合级别 2以及分布式映射 方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4, 选择处理器 1010选择集中映射方 式的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 , 选择处理器 1010选择集中映射方式 的聚合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8 对应的 EPDCCH候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16,选择处理器 1010选择集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH 4吴选的个数之和为 2。
较佳的, 对于除普通子帧或配置为 3 , 4, 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE大于等于门限值 10时, 对于聚合级别为 1 , 选择处理器 1010选择集中式映射方式对应的 EPDCCH候选的个数和 分布式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 2 , 选择处理器 1010 选择集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 选择处理器 1010 选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 选择处理器 1010 选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
较佳的, 对于集中式映射方式, 选择处理器 1010选择聚合级别 1和 聚合级别 2对应的 EPDCCH候选个数均为 6,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0;对于分布式映射方式,选择处理器 1010 选择聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,选择聚合 级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式,选择处理器 1010选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 选择处理器 1010选择 聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1; 或者,
对于集中式映射方式, 选择处理器 1010 选择聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 选择处理器 1010选择 聚合级别 1对应的 EPDCCH候选个数为 0 ,选择聚合级别 2对应的 EPDCCH 候选个数为 6 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
上述实施例中, 对于分布式映射方式, 选择处理器 1010选择聚合级 别 16对应的 EPDCCH候选个数为 0。
在分布式映射考虑聚合级别 16的时候, 对于聚合级别为 16及聚合级 别 1 , 选择处理器 1010选择集中映射方式的聚合级别 16、 聚合级别 1 以 及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数 之和为 6; 或者,
对于聚合级别为 16及聚合级别 2, 选择处理器 1010选择集中映射方 式的聚合级别 16、 聚合级别 2 以及分布式映射方式的聚合级别 16、 聚合 级别 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4, 选择处理器 1010选择集中映射方 式的聚合级别 16、 聚合级别 4 以及分布式映射方式的聚合级别 16、 聚合 级别 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 , 选择处理器 1010选择集中映射方 式的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合 级别 8对应的 EPDCCH候选个数之和为 2。
在首先为集中映射方式分配 EPDCCH候选的情况下, 对于集中式映 射方式,选择处理器 1010选择聚合级别 2对应的 EPDCCH候选个数为 6 , 选择聚合级别 4对应的 EPDCCH候选个数为 2 , 选择聚合级别 8对应的
EPDCCH候选个数为 2; 对于分布式映射方式, 选择处理器 1010选择将 6 个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 选择处理器 1010 选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选 择处理器 1010选择将 2个 EPDCCH候选分配给至少一个聚合级别;或者, 对于集中式映射方式, 选择处理器 1010 选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选 择处理器 1010选择将 6个 EPDCCH候选分配给至少一个聚合级别;或者, 对于集中式映射方式, 选择处理器 1010 选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 选 择处理器 1010选择将 2个 EPDCCH候选分配给至少一个聚合级别。
在另一种实施方式中, 不需要将 EPDCCH 集划分为两个集合, 而是 选择每一 EPDCCH 集的物理控制信道候选的个数。 本实施例中, 选择处 理器 1010,用于选择物理控制信道集的需检测的聚合级别对应的物理控制 信道候选的个数。
较佳的,对于物理控制信道集为集中式映射方式,针对同一聚合级别, 选择处理器 1010根据物理控制信道集的 PRB个数选择聚合级别对应的物 理控制信道候选的个数;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 选择处 理器 1010根据物理控制信道集的 PRB个数选择聚合级别对应的物理控制 信道候选的个数。
一般来说, 对于物理控制信道集为集中式映射方式, 针对同一聚合级 别, 选择处理器 1010根据物理控制信道集的 PRB个数选择该聚合级别对 应的物理控制信道候选的个数, 物理控制信道候选的个数与 PRB 个数成 正比;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 选择处 理器 1010根据物理控制信道集的 PRB个数选择聚合级别对应的物理控制 信道候选的个数, 物理控制信道候选的个数与个数成正比。
上述实施例中, 发送器 1020, 用于将釆用 SI-RNTI或 RA-RNTI加扰 的下行控制信息, 在分布式映射方式对应的 EPDCCH候选上发送, 将釆 除用 SI-RNTI和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在 集中式映射方式对应的 EPDCCH候选上发送。
发送器 1020,还用于将包含跨载波调度指令的下行控制信息在集中式 映射方式和分布式映射方式中的一种方式对应的 EPDCCH候选上发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH 候选上发送。
发送器 1020,还用于将格式 0和 /或格式 1A的下行控制信息, 通过分 布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的下 行控制信息通过集中式对应的候选 EPDCCH上的 EPDCCH发送;
16次, 集中式映射方式对应的盲检测次数为 16次。
在其他实施例中,发送器 1020, 用于将聚合级别大于或等于设定值的 EPDCCH在分布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小 于设定值的 EPDCCH在集中式映射方式对应的 EPDCCH候选上发送。
图 6为本发明用户设备实施例二的结构示意图。 如图 6所示, 本发明 实施例提供的用户设备 2000包括至少一个 CPU2001 , 至少一个网络接口 2004或者其他用户接口 2003 , 存储器 2005 , 和至少一通信总线 2002。 通 信总线 2002用于实现各装置之间的连接通信。 该用户设备 2000可选的包 含用户接口 2003 , 包括显示器, 键盘或者点击设备。 存储器 2005可能包 含高速 RAM 存储器, 也可能还包括非不稳定的存储器 (non-volatile memory ) , 例如至少一个磁盘存储器。 存储器 2005可选的可以包含至少 一个位于远离前述 CPU2001的存储装置。在一些实施方式中,存储器 2005 存储了如下的元素, 编码, 模块或者数据结构, 或者他们的子集, 或者他 们的扩展集: 操作系统 2006, 包含各种程序, 用于实现各种基础业务以及 处理基于硬件的任务。
确定处理器 2030 ,用于确定传输子帧中物理控制信道集的需检测的聚 合级别, 根据聚合级别确定聚合级别对应的物理控制信道候选的个数; 接收器 2040,用于在确定的个数对应的物理控制信道候选上接收下行 控制信息。
较佳的, 确定处理器 2030, 用于物理控制信道集的 PRB对中可用于 物理控制信道的 RE个数小于门限 X时, 物理控制信道集的需检测的最小 聚合级别为 2; 物理控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的特殊 子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 物理 控制信道集的需检测的最小聚合级别为 2; 否则, 对于除了上述情况的其 他类型子帧, 物理控制信道集的需检测的最小聚合级别为 1。
较佳的, 确定处理器 2030, 用于将物理控制信道集划分为两个集合, 一个集合对应物理控制信道的集中式映射方式, 另一个集合对应物理控制 信道的分布式映射方式;
分别确定集中式映射方式和分布式映射方式中各个聚合级别对应的
EPDCCH候选的个数。
较佳的, 对于普通子帧或配置为 3 , 4 , 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE小于门限值 10时, 对于聚合级别为 2, 确定处理器 2030确定集中式映射方式对应的 EPDCCH候选个数和分布式 映射方式对应的 EPDCCH候选个数之和为 6;
对于聚合级别为 4 , 确定处理器 2030 确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 确定处理器 2030 确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 确定处理器 2030 确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
上述实施例中, 对于分布映射方式, 确定处理器 2030确定聚合级别 32对于的 EPDCCH候选的个数为 0。
在分布式映射考虑聚合级别 32的时候, 对于聚合级别为 32及聚合级 别 2,确定处理器 2030确定集中式映射方式的聚合级别 2以及分布式映射 方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4, 确定处理器 2030确定集中映射方 式的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 , 确定处理器 2030确定集中映射方式 的聚合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8 对应的 EPDCCH候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16,确定处理器 2030确定集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
较佳的, 对于除普通子帧或配置为 3 , 4, 8 的特殊子帧, 且一个 PRB 对中可用于承载 EPDCCH的 RE大于等于门限值 10时, 对于聚合级别为 1 , 确定处理器 2030确定集中式映射方式对应的 EPDCCH候选的个数和 分布式映射方式对应的 EPDCCH候选的个数之和为 6;
对于聚合级别为 2 , 确定处理器 2030 确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 确定处理器 2030 确定集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 确定处理器 2030 确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
较佳的, 对于集中式映射方式, 确定处理器 2030确定聚合级别 1和 聚合级别 2对应的 EPDCCH候选个数均为 6,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0;对于分布式映射方式,确定处理器 2030 确定聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚合 级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式,确定处理器 2030确定聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 确定处理器 2030确定 聚合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者, 对于集中式映射方式, 确定处理器 2030 确定聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 确定处理器 2030确定 聚合级别 1对应的 EPDCCH候选个数为 0 ,确定聚合级别 2对应的 EPDCCH 候选个数为 6 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
上述实施例中, 对于分布式映射方式, 确定处理器 2030确定聚合接 不 16对于的 EPDCCH候选个数为 0。
在分布式映射考虑聚合级别 16的时候, 对于聚合级别为 16及聚合级 别 1 , 确定处理器 2030确定集中映射方式的聚合级别 16、 聚合级别 1 以 及分布式映射方式的聚合级别 16、 聚合级别 1对应的 EPDCCH候选个数 之和为 6; 或者,
对于聚合级别为 16及聚合级别 2, 确定处理器 2030确定集中映射方 式的聚合级别 16、 聚合级别 2 以及分布式映射方式的聚合级别 16、 聚合 级别 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4, 确定处理器 2030确定集中映射方 式的聚合级别 16、 聚合级别 4 以及分布式映射方式的聚合级别 16、 聚合 级别 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 , 确定处理器 2030确定集中映射方 式的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合 级别 8对应的 EPDCCH候选个数之和为 2。
在首先为集中映射方式分配 EPDCCH候选的情况下, 对于集中式映 射方式,确定处理器 2030确定聚合级别 2对应的 EPDCCH候选个数为 6 , 确定聚合级别 4对应的 EPDCCH候选个数为 2 , 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确定处理器 2030确定将 6 个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式, 确定处理器 2030 确定聚合级别 2 对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确 定处理器 2030确定将 2个 EPDCCH候选分配给至少一个聚合级别;或者, 对于集中式映射方式, 确定处理器 2030 确定聚合级别 1 对应的 EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确 定处理器 2030确定将 6个 EPDCCH候选分配给至少一个聚合级别;或者, 对于集中式映射方式, 确定处理器 2030 确定聚合级别 1 对应的
EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 确 定处理器 2030确定将 2个 EPDCCH候选分配给至少一个聚合级别。
在另一种实施方式中, 不需要将 EPDCCH 集划分为两个集合, 而是 选择每一 EPDCCH 集的物理控制信道候选的个数。 本实施例中, 确定处 理器 2030,用于确定物理控制信道集的需检测的聚合级别对应的物理控制 信道候选的个数。
较佳的,对于物理控制信道集为集中式映射方式,针对同一聚合级别, 确定处理器 2030根据物理控制信道集的 PRB个数确定聚合级别对应的物 理控制信道候选的个数;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 确定处 理器 2030根据物理控制信道集的 PRB个数确定聚合级别对应的物理控制 信道候选的个数。
一般来说, 对于物理控制信道集为集中式映射方式, 针对同一聚合级 别, 确定处理器 2030根据物理控制信道集的 PRB个数确定该聚合级别对 应的物理控制信道候选的个数, 物理控制信道候选的个数与 PRB 个数成 正比;
对于物理控制信道集为分布式映射方式, 针对同一聚合级别, 确定处 理器 2030根据物理控制信道集的 PRB个数确定聚合级别对应的物理控制 信道候选的个数, 物理控制信道候选的个数与个数成正比。
上述实施例中 , 接收器 2040, 用于将釆用 SI-RNTI或 RA-RNTI加扰 的下行控制信息, 在分布式映射方式对应的 EPDCCH候选上接收, 将釆 除用 SI-RNTI和 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在 集中式映射方式对应的 EPDCCH候选上接收。
接收器 2040 ,还用于将包含跨载波调度指令的下行控制信息在集中式 映射方式和分布式映射方式中的一种方式对应的 EPDCCH候选上接收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH 候选上接收。
接收器 2040,还用于将格式 0和 /或格式 1A的下行控制信息, 通过分 布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的下 行控制信息通过集中式对应的候选 EPDCCH上的 EPDCCH接收; 次, 集中式映射方式对应的盲检测次数为 16次。
在其他实施例中,接收器 2040, 用于将聚合级别大于或等于设定值的 EPDCCH在分布式映射方式对应的 EPDCCH候选上接收, 将聚合级别小 于设定值的 EPDCCH在集中式映射方式对应的 EPDCCH候选上接收。
本领域普通技术人员可以理解: 实现上述方法实施例的全部或部分步 骤可以通过程序指令相关的硬件来完成, 前述的程序可以存储于一计算机 可读取存储介质中, 该程序在执行时, 执行包括上述方法实施例的步骤; 而前述的存储介质包括: ROM、 RAM, 磁碟或者光盘等各种可以存储程 序代码的介质。
最后应说明的是: 以上各实施例仅用以说明本发明的技术方案, 而非 对其限制; 尽管参照前述各实施例对本发明进行了详细的说明, 本领域的 普通技术人员应当理解: 其依然可以对前述各实施例所记载的技术方案进 行修改, 或者对其中部分或者全部技术特征进行等同替换; 而这些修改或 者替换, 并不使相应技术方案的本质脱离本发明各实施例技术方案的范 围。

Claims

权 利 要 求 书
1、 一种下行控制信息的传输方法, 其特征在于, 包括:
网络侧设备选择传输子帧中物理控制信道集的需检测的聚合级别; 控制信道候选的个 所述网络侧设备在与所述选择的个数对应的物理控制信道候选上发 送下行控制信息。
2、 根据权利要求 1的方法, 其特征在于:
所述选择传输子帧中物理控制信道集的需检测的聚合级别, 包括: 所述物理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于 门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述物理 控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 所述物理控 制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1。 所述物理控制信道集的需检测的最小聚合级别为 1。
3、 根据权利要求 2的方法, 其特征在于: 的个数, 包括:
将所述物理控制信道集划分为两个集合, 一个所述集合对应物理控制 信道的集中式映射方式, 另一个所述集合对应物理控制信道的分布式映射 方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
4、 根据权利要求 3所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括: 对于聚合级别为 2 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述网络侧设备选择集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
5、 根据权利要求 4所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的候选 EPDCCH个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 6, 选择聚合级别 8和聚合级别 16对应的
EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0, 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的
EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的
EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的
EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 2对应的 EPDCCH候选个数为 0 ,选择聚合级别 4对应的 EPDCCH 候选个数为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
6、 根据权利要求 4所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括: 对于分布式映射方式, 所述网络侧设备选择聚合级别 32 对应的 EPDCCH候选个数为 0。
7、 根据权利要求 4所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 32及聚合级别 2,所述网络侧设备选择集中式映射方 式的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述网络侧设备选择集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述网络侧设备选择集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述网络侧设备选择集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
8、 根据权利要求 3所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 1 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述网络侧设备选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
9、 根据权利要求 8所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 6, 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0, 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述网络侧设备选择聚 合级别 1对应的 EPDCCH候选个数为 0 ,选择聚合级别 2对应的 EPDCCH 候选个数为 6 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
10、 根据权利要求 8所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式, 所述网络侧设备选择聚合级别 16 对应的
EPDCCH候选个数为 0。
11、 根据权利要求 8所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于聚合级别为 16及聚合级别 1 ,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级 另' J 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 2 以及分布式映射方式的聚合级别 16、 聚合级 别 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 4 以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述网络侧设备选择集中映射方式 的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
12、 根据权利要求 3所述的方法, 其特征在于,
所述分别选择所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的
EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述网络侧设备选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述网络侧设备选择将 2个 EPDCCH候选分配给至少一个聚合级别。
13、 根据权利要求 1所述的方法, 其特征在于, 数, 包括:
选择所述物理控制信道集的需检 'J的聚合级另 'J对应的物理控制信道 候选的个数。
14、 根据权利要求 13所述的方法, 其特征在于,
所述选择所述物理控制信道集的需检测的聚合级别对应的物理控制 信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数选择;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数选择。
15、 根据权利要求 14所述的方法, 其特征在于,
所述选择所述物理控制信道集的需检测的聚合级别对应的物理控制 信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数选择该聚合级别对应的物理控制信道 候选的个数, 所述物理控制信道候选的个数与所述 PRB个数成正比; 对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数选择所述聚合级别对应的物理控制信 道候选的个数, 所述物理控制信道候选的个数与所述个数成正比。
16、 根据权利要求 13〜15任一所述的方法, 其特征在于,
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 8 ,则所述物理控制信道集的聚合级别为 1的物理 控制信道候选的个数为 0;
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 16, 则所述物理控制信道集的聚合级别为 1和 2 的物理控制信道候选的个数为 0。
17、根据权利要求 1-16任一项所述的方法, 其特征在于, 所述在所述 控制信道集的所述控制信道候选上发送下行控制信息, 包括:
所述网络侧设备将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在所述分布式映射方式对应的 EPDCCH 候选上发送, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上发送。
18、根据权利要求 1-16任一项所述的方法, 其特征在于, 在所述控制 信道集的所述控制信道候选上发送下行控制信息, 包括:
所述网络侧设备将包含跨载波调度指令的下行控制信息在所述集中 式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上 发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上发送。
19、根据权利要求 1-16任一项所述的方法, 其特征在于, 在所述控制 信道集的所述控制信道候选上发送下行控制信息, 包括:
所述网络侧设备将格式 0和 /或格式 1A的下行控制信息, 通过所述分 布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的下 行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH发送; 所述集中式映射方式对应的盲检测次数为 16次。
20、根据权利要求 1-19任一项所述的方法, 其特征在于, 在所述控制 信道集的所述控制信道候选上发送下行控制信息, 包括:
所述网络侧设备将聚合级别大于或等于设定值的 EPDCCH在所述分 布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小于所述设定值 的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上发送。
21、 一种下行控制信息的传输方法, 其特征在于, 包括:
用户设备确定传输子帧中物理控制信道集的需检测的聚合级别; 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个 数;
所述用户设备在所述确定的个数对应的物理控制信道候选上接收下 行控制信息。
22、 根据权利要求 21所述的方法, 其特征在于,
所述确定传输子帧中物理控制信道集的需检测的聚合级别, 包括: 所述物理控制信道集的 PRB对中可用于物理控制信道的 RE个数小于 门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述物理 控制信道集的 PRB对所含的 RE个数大于或等于门限 X时, 所述物理控 制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
23、 根据权利要求 22所述的方法, 其特征在于,
所述根据所述聚合级别确定所述聚合级别对应的物理控制信道候选 的个数, 包括:
将所述物理控制信道集划分为两个集合, 一个所述集合对应物理控制 信道的集中式映射方式, 另一个所述集合对应物理控制信道的分布式映射 方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
24、 根据权利要求 23所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 2 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
25、 根据权利要求 24所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的候选 EPDCCH个数, 包括:
对于集中式映射方式, 所述用户设备确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述用户设备确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述用户设备确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合级别 2对 应的 EPDCCH候选个数为 0, 确定聚合级别 4对应的 EPDCCH候选个数 为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
26、 根据权利要求 24所述的方法, 其特征在于, 所述分别确定所述 集中式映射方式和所述分布式映射方式中各个聚合级别对应的 EPDCCH 候选个数, 包括:
对于分布式映射方式,所述用户设备确定聚合级别 32对应的 EPDCCH 候选个数为 0。
27、 根据权利要求 24所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 32及聚合级别 2,所述用户设备确定集中式映射方式 的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者, 对于聚合级别为 32及聚合级别 4,所述用户设备确定集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述用户设备确定集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述用户设备确定集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
28、 根据权利要求 23所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选的个数, 包括:
对于聚合级别为 1 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述用户设备确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
29、 根据权利要求 28所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式, 所述用户设备确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 6, 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述用户设备确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述用户设备确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述用户设备确定聚合级别 1对应 的 EPDCCH候选个数为 0,确定聚合级别 2对应的 EPDCCH候选个数为 6 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
30、 根据权利要求 28所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于分布式映射方式,所述用户设备确定聚合级别 16对应的 EPDCCH 候选个数为 0。
31、 根据权利要求 28所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于聚合级别为 16及聚合级别 1 ,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述用户设备确定集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
32、 根据权利要求 23所述的方法, 其特征在于,
所述分别确定所述集中式映射方式和所述分布式映射方式中各个聚 合级别对应的 EPDCCH候选个数, 包括:
对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述用户设备确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述用户设 备确定将 2个 EPDCCH候选分配给至少一个聚合级别。
33、 根据权利要求 21所述的方法, 其特征在于,
根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个 数, 包括:
确定所述物理控制信道集的需检 'J的聚合级另 'J对应的物理控制信道 候选的个数。
34、 根据权利要求 33所述的方法, 其特征在于,
所述确定所述物理控制信道集的需检测的聚合级别对应的物理控制 信道候选的个数, 包括:
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的
PRB个数确定;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述聚合级别对应的物理控制信道候选的个数由所述物理控制信道集的 PRB个数确定。
35、 根据权利要求 34所述的方法, 其特征在于, 所述确定所述物理 控制信道集的需检测的聚合级别对应的物理控制信道候选的个数, 包括: 对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数确定该聚合级别对应的物理控制信道 候选的个数, 所述物理控制信道候选的个数与所述 PRB个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 根 据所述物理控制信道集的 PRB 个数确定所述聚合级别对应的物理控制信 道候选的个数, 所述物理控制信道候选的个数与所述个数成正比。
36、 根据权利要求 33〜35任一所述的方法, 其特征在于,
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 8,则所述物理控制信道集的聚合级别为 1的物理 控制信道候选的个数为 0;
对于所述物理控制信道集为分布式映射方式, 如果所述物理控制信道 集所含的 PRB个数 N为 16, 则所述物理控制信道集的聚合级别为 1和 2 的物理控制信道候选的个数为 0。
37、 根据权利要求 21〜36任一所述的方法, 其特征在于,
所述在所述控制信道集的所述控制信道候选上接收下行控制信息, 包 括:
所述用户设备将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在 所述分布式映射方式对应的 EPDCCH候选上接收,将釆除用所述 SI-RNTI 和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所述集中 式映射方式对应的 EPDCCH候选上接收。
38、 根据权利要求 21〜36任一所述的方法, 其特征在于,
在所述控制信道集的所述控制信道候选上接收下行控制信息, 包括: 所述用户设备将包含跨载波调度指令的下行控制信息在所述集中式 映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上接 收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上接收。
39、 根据权利要求 21〜36任一所述的方法, 其特征在于, 在所述控制 信道集的所述控制信道候选上接收下行控制信息, 包括:
所述用户设备将格式 0和 /或格式 1A的下行控制信息, 通过所述分布 式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的下行 控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH接收; 所述集中式映射方式对应的盲检测次数为 16次。
40、 根据权利要求 21〜39任一所述的方法, 其特征在于, 在所述控制 信道集的所述控制信道候选上接收下行控制信息, 包括:
所述用户设备将聚合级别大于或等于设定值的 EPDCCH在所述分布式映 射方式对应的 EPDCCH 候选上接收, 将聚合级别小于所述设定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上接收。
41、 一种网络侧设备, 其特征在于, 包括:
选择模块, 用于选择传输子帧中物理控制信道集的需检测的聚合级 数;
发送模块, 用于在与所述选择的个数对应的物理控制信道候选上发送 下行控制信息。
42、 根据权利要 41所述的网络侧设备, 其特征在于,
所述选择模块, 具体用于, 所述物理控制信道集的 PRB 对中可用于 物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集的需检测的 最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数大于或 等于门限 X时,所述物理控制信道集的需检测的最小聚合级别为 1 ;或者, 所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1 , , 所述物理控制信道集的需检测的最小聚合级别为 1。
43、 根据权利要求 41所述的网络侧设备, 其特征在于,
所述选择模块, 具体用于将所述物理控制信道集划分为两个集合, ― 个所述集合对应物理控制信道的集中式映射方式, 另一个所述集合对应物 理控制信道的分布式映射方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
44、 根据权利要求 43所述的网络侧设备, 其特征在于,
对于聚合级别为 2 , 所述选择模块选择集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
45、 根据权利要求 44所述的网络侧设备, 其特征在于, 对于集中式 映射方式, 所述选择模块选择聚合级别 2和聚合级别 4对应的 EPDCCH 候选个数均为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个 数均为 0; 对于分布式映射方式, 所述选择模块选择聚合级别 2和聚合级 另' J 4对应的 EPDCCH候选个数均为 0, 选择聚合级别 8和聚合级别 16对 应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择模块选择聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择模块选择聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,选择聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述选择模块选择聚合级别 2对 应的 EPDCCH候选个数为 0, 选择聚合级别 4对应的 EPDCCH候选个数 为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
46、 根据权利要求 44所述的网路侧设备, 其特征在于, 对于分布式 映射方式,所述选择模块选择聚合级别 32对应的 EPDCCH候选个数为 0。
47、 根据权利要求 44所述的网络侧设备, 其特征在于,
对于聚合级别为 32及聚合级别 2,所述选择模块选择集中式映射方式 的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述选择模块选择集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述选择模块选择集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述选择模块选择集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
48、 根据权利要求 43所述的网路侧设备, 其特征在于,
对于聚合级别为 1 , 所述选择模块选择集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述选择模块选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
49、 根据权利要 48所述的网络侧设备, 其特征在于,
对于集中式映射方式, 所述选择模块选择聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 6, 选择聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择模块选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择模块选择聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 选择聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择模块选择聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,选择聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述选择模块选择聚合级别 1对应 的 EPDCCH候选个数为 0,选择聚合级别 2对应的 EPDCCH候选个数为 6 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
50、 根据权利要求 48所述的网络侧设备, 其特征在于,
对于分布式映射方式,所述选择模块选择聚合级别 16对应的 EPDCCH 候选个数为 0。
51、 根据权利要求 48所述的网路侧设备, 其特征在于,
对于聚合级别为 16及聚合级别 1 ,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者, 对于聚合级别为 16及聚合级别 8 ,所述选择模块选择集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
52、 根据权利要求 42所述的网络侧设备, 其特征在于,
对于集中式映射方式,所述选择模块选择聚合级别 2对应的 EPDCCH 候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2, 选择聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 2对应的 EPDCCH 候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述选择模块选择聚合级别 1对应的 EPDCCH 候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述选择模 块选择将 2个 EPDCCH候选分配给至少一个聚合级别。
53、 根据权利要求 41所述的网络侧设备, 其特征在于,
所述选择模块, 用于选择所述物理控制信道集的需检测的聚合级别对 应的物理控制信道候选的个数。
54、 根据权利要求 53所述的网路侧设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚合级别对应 的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚合级别对应 的物理控制信道候选的个数。
55、 根据权利要求 54所述的网络侧设备, 其特征在于, 对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择该聚合级别对应的 物理控制信道候选的个数, 所述物理控制信道候选的个数与所述 PRB 个 数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择模块根据所述物理控制信道集的 PRB 个数选择所述聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数成 正比。
56、 根据权利要求 41〜55任一所述的网络侧设备, 其特征在于, 所述发送模块, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信 息, 在所述分布式映射方式对应的 EPDCCH候选上发送, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上发送。
57、 根据权利要求 41〜55任一所述的网络侧设备, 其特征在于, 所述发送模块, 用于将包含跨载波调度指令的下行控制信息在所述集 中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选 上发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上发送。
58、 根据权利要求 41〜55任一所述的网络侧设备, 其特征在于, 所述发送模块, 用于将格式 0和 /或格式 1A的下行控制信息, 通过所 述分布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C 的下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH发送; 16次, 所述集中式映射方式对应的盲检测次数为 16次。
59、 根据权利要求 41〜58任一所述的网络侧设备, 其特征在于, 所述发送模块, 用于将聚合级别大于或等于设定值的 EPDCCH在所 述分布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小于所述设 定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上发送。
60、 一种用户设备, 其特征在于, 包括: 确定模块, 用于确定传输子帧中物理控制信道集的需检测的聚合级 别, 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个数 接收模块, 用于在所述确定的个数对应的物理控制信道候选上接收下 行控制信息。
61、 根据权利要求 60所述的用户设备, 其特征在于,
所述确定模块, 用于所述物理控制信道集的 PRB 对中可用于物理控 制信道的 RE个数小于门限 X时, 所述物理控制信道集的需检测的最小聚 合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数大于或等于门 限 X时, 所述物理控制信道集的需检测的最小聚合级别为 1 ; 或者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
62、 根据权利要求 60所述的用户设备, 其特征在于,
所述确定模块, 用于将所述物理控制信道集划分为两个集合, 一个所 述集合对应物理控制信道的集中式映射方式, 另一个所述集合对应物理控 制信道的分布式映射方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
63、 根据权利要求 62所述的用户设备, 其特征在于,
对于聚合级别为 2 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述确定模块确定集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
64、 根据权利要求 63所述的用户设备, 其特征在于,
对于集中式映射方式, 所述确定模块确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定模块确定聚合级别 2和聚合级别 4对 应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定模块确定聚合 级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 ,确定聚合级别 8和 聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 2对应的 EPDCCH 候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH 候选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合级别 2对 应的 EPDCCH候选个数为 0, 确定聚合级别 4对应的 EPDCCH候选个数 为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 2。
65、 根据权利要求 63所述的用户设备, 其特征在于,
对于分布式映射方式,所述确定模块确定聚合级别 32对应的 EPDCCH 候选个数为 0
66、 根据权利要求 63所述的用户设备, 其特征在于,
对于聚合级别为 32及聚合级别 2,所述确定模块确定集中式映射方式 的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述确定模块确定集中映射方式的 聚合级别 4以及分布映射方式的聚合级别 32、聚合级别 2对应的 EPDCCH 候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述确定模块确定集中映射方式的聚 合级别 8 以及分布映射方式的聚合级别 32、 聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述确定模块确定集中映射方式聚 合级别 16以及分布映射方式的聚合级别 32、聚合级别 16对应的 EPDCCH 候选的个数之和为 2。
67、 根据权利要求 62所述的用户设备, 其特征在于,
对于聚合级别为 1 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述确定模块确定集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述确定模块确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
68、 根据权利要求 67所述的用户设备, 其特征在于,
对于集中式映射方式, 所述确定模块确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 6, 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定模块确定聚合级别 1和聚合级别 2对 应的 EPDCCH 候选个数均为 3 , 确定聚合级别 4 和聚合级别 8 对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定模块确定聚合 级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 ,确定聚合级别 4和 聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候 选个数均为 0; 对于分布式映射方式, 所述确定模块确定聚合级别 1对应 的 EPDCCH候选个数为 0,确定聚合级别 2对应的 EPDCCH候选个数为 6 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 2。
69、 根据权利要求 67所述的用户设备, 其特征在于,
对于分布式映射方式,所述确定模块确定聚合级别 16对应的 EPDCCH 候选个数为 0。
70、 根据权利要求 67所述的用户设备, 其特征在于,
对于聚合级别为 16及聚合级别 1 ,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 1以及分布式映射方式的聚合级别 16、 聚合级别 1 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级别 2 对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级别 4 对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述确定模块确定集中映射方式的 聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级别 8 对应的 EPDCCH候选个数之和为 2。
71、 根据权利要求 62所述的用户设备, 其特征在于,
对于集中式映射方式,所述确定模块确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 2对应的 EPDCCH 候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合 级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者,
对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式,所述确定模块确定聚合级别 1对应的 EPDCCH 候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合 级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所述确定模 块确定将 2个 EPDCCH候选分配给至少一个聚合级别。
72、 根据权利要求 62所述的用户设备, 其特征在于,
所述确定模块, 用于确定所述物理控制信道集的需检测的聚合级别对 应的物理控制信道候选的个数。
73、 根据权利要求 72所述的用户设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚合级别对应 的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚合级别对应 的物理控制信道候选的个数。
74、 根据权利要求 73所述的用户设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定该聚合级别对应的 物理控制信道候选的个数, 所述物理控制信道候选的个数与所述 PRB 个 数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定模块根据所述物理控制信道集的 PRB 个数确定所述聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数成 正比。
75、 根据权利要求 60〜74任一所述的用户设备, 其特征在于, 所述接收模块, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信 息, 在所述分布式映射方式对应的 EPDCCH候选上接收, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上接收。
76、 根据权利要求 60〜74任一所述的用户设备, 其特征在于, 所述接收模块, 用于将包含跨载波调度指令的下行控制信息在所述集 中式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选 上接收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上接收。
77、 根据权利要求 60〜74任一所述的用户设备, 其特征在于, 所述接收模块, 用于将格式 0和 /或格式 1A的下行控制信息, 通过所 述分布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C 的下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH接收; 次, 所述集中式映射方式对应的盲检测次数为 16次。
78、 根据权利要求 60〜77任一所述的用户设备, 其特征在于, 所述接收模块, 用于将聚合级别大于或等于设定值的 EPDCCH在所 述分布式映射方式对应的 EPDCCH候选上接收, 将聚合级别小于所述设 定值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上接收。
79、 一种网络侧设备, 其特征在于, 包括:
选择处理器, 用于选择传输子帧中物理控制信道集的需检测的聚合级 数;
发送器, 用于在与所述选择的个数对应的物理控制信道候选上发送下 行控制信息。
80、 根据权利要 79所述的网络侧设备, 其特征在于,
所述选择处理器, 具体用于, 所述物理控制信道集的 PRB 对中可用 于物理控制信道的 RE个数小于门限 X时, 所述物理控制信道集的需检测 的最小聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数大于 或等于门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 1 ; 或 者,
所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
81、 根据权利要求 79所述的网络侧设备, 其特征在于,
所述选择处理器, 具体用于将所述物理控制信道集划分为两个集合, 一个所述集合对应物理控制信道的集中式映射方式, 另一个所述集合对应 物理控制信道的分布式映射方式;
分别选择所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
82、 根据权利要求 81所述的网络侧设备, 其特征在于,
对于聚合级别为 2 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述选择处理器选择集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
83、 根据权利要求 82所述的网络侧设备, 其特征在于, 对于集中式 映射方式,所述选择处理器选择聚合级别 2和聚合级别 4对应的 EPDCCH 候选个数均为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个 数均为 0; 对于分布式映射方式, 所述选择处理器选择聚合级别 2和聚合 级别 4对应的 EPDCCH候选个数均为 0, 选择聚合级别 8和聚合级别 16 对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择处理器选择聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 选择聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理器选择聚 合级别 2对应的 EPDCCH候选个数为 0 ,选择聚合级别 4对应的 EPDCCH 候选个数为 6, 选择聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
84、 根据权利要求 82所述的网路侧设备, 其特征在于, 对于分布式 映射方式, 所述选择处理器选择聚合级别 32对应的 EPDCCH候选个数为
0。
85、 根据权利要求 82所述的网络侧设备, 其特征在于,
对于聚合级别为 32及聚合级别 2,所述选择处理器选择集中式映射方 式的聚合级别 2 以及分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述选择处理器选择集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述选择处理器选择集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述选择处理器选择集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
86、 根据权利要求 81所述的网路侧设备, 其特征在于,
对于聚合级别为 1 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述选择处理器选择集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
87、 根据权利要 86所述的网络侧设备, 其特征在于,
对于集中式映射方式, 所述选择处理器选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 6, 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理器选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0, 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述选择处理器选择聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 选择聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述选择处理器选择聚 合级别 1对应的 EPDCCH候选个数为 0 ,选择聚合级别 2对应的 EPDCCH 候选个数为 6 ,选择聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
88、 根据权利要求 86所述的网络侧设备, 其特征在于,
对于分布式映射方式, 所述选择处理器选择聚合级别 16 对应的 EPDCCH候选个数为 0。
89、 根据权利要求 86所述的网路侧设备, 其特征在于,
对于聚合级别为 16及聚合级别 1 ,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级 另' J 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级 另' J 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述选择处理器选择集中映射方式 的聚合级别 16、 聚合级别 8以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
90、 根据权利要求 80所述的网络侧设备, 其特征在于,
对于集中式映射方式, 所述选择处理器选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述选择处理器选择聚合级别 2 对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 6, 选择聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的
EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 2, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述选择处理器选择聚合级别 1 对应的 EPDCCH候选个数为 6, 选择聚合级别 2对应的 EPDCCH候选个数为 6, 选择聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述选择处理器选择将 2个 EPDCCH候选分配给至少一个聚合级别。
91、 根据权利要求 80所述的网络侧设备, 其特征在于,
所述选择处理器, 用于选择所述物理控制信道集的需检测的聚合级别 对应的物理控制信道候选的个数。
92、 根据权利要求 91所述的网路侧设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择所述聚合级别对 应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择所述聚合级别对 应的物理控制信道候选的个数。
93、 根据权利要求 92所述的网络侧设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择该聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述 PRB 个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述选择处理器根据所述物理控制信道集的 PRB 个数选择所述聚合级别对 应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数 成正比。
94、 根据权利要求 79〜93任一所述的用户设备, 其特征在于, 所述发送器, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在所述分布式映射方式对应的 EPDCCH 候选上发送, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上发送。
95、 根据权利要求 79〜93任一所述的用户设备, 其特征在于, 所述发送器, 用于将包含跨载波调度指令的下行控制信息在所述集中 式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上 发送, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上发送。
96、 根据权利要求 79〜93任一所述的用户设备, 其特征在于, 所述发送器, 用于将格式 0和 /或格式 1A的下行控制信息, 通过所述 分布式映射方式对应的候选 EPDCCH上的 EPDCCH发送, 将格式 2C的 下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH发送; 为 16次, 所述集中式映射方式对应的盲检测次数为 16次。
97、 根据权利要求 79〜96任一所述的用户设备, 其特征在于, 所述发送器, 用于将聚合级别大于或等于设定值的 EPDCCH在所述 分布式映射方式对应的 EPDCCH候选上发送, 将聚合级别小于所述设定 值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上发送。
98、 一种用户设备, 其特征在于, 包括:
确定处理器, 用于确定传输子帧中物理控制信道集的需检 'J的聚合级 别, 根据所述聚合级别确定所述聚合级别对应的物理控制信道候选的个数 接收器, 用于在所述确定的个数对应的物理控制信道候选上接收下行 控制信息。
99、 根据权利要求 98所述的用户设备, 其特征在于,
所述确定处理器, 用于所述物理控制信道集的 PRB 对中可用于物理 控制信道的 RE个数小于门限 X时, 所述物理控制信道集的需检测的最小 聚合级别为 2; 所述物理控制信道集的 PRB对所含的 RE个数大于或等于 门限 X时, 所述物理控制信道集的需检测的最小聚合级别为 1 ; 或者, 所述传输子帧类型为普通 CP长度的普通子帧或者配置为 3 , 4, 8的 特殊子帧, 且一个 PRB对中可用于物理控制信道的 RE个数小于 X时, 所述物理控制信道集的需检测的最小聚合级别为 2; 所述子帧不是普通 CP 长度的普通子帧, 且不是配置为 3, 4, 8的特殊子帧, 或者一个 PRB对中可 用于物理控制信道的 RE个数大于 X时,所述物理控制信道集的需检测的最小 聚合级别为 1, 所述物理控制信道集的需检测的最小聚合级别为 1。
100、 根据权利要求 98所述的用户设备, 其特征在于,
所述确定处理器, 用于将所述物理控制信道集划分为两个集合, 一个 所述集合对应物理控制信道的集中式映射方式, 另一个所述集合对应物理 控制信道的分布式映射方式;
分别确定所述集中式映射方式和所述分布式映射方式中各个聚合级 别对应的 EPDCCH候选的个数。
101、 根据权利要求 100所述的用户设备, 其特征在于,
对于聚合级别为 2 , 所述确定处理器确定集中式映射方式对应的
EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 4 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 6; 对于聚合级别为 8 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2; 对于聚合级别为 16 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选个数和分布式映射方式对应的 EPDCCH候选个数之和为 2。
102、 根据权利要求 101所述的用户设备, 其特征在于,
对于集中式映射方式, 所述确定处理器确定聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 0, 确定聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 2和聚合级别 4 对应的 EPDCCH候选个数均为 3 , 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定处理器确定聚 合级别 2和聚合级别 4对应的 EPDCCH候选个数均为 3 , 确定聚合级别 8 和聚合级别 16对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 2 对应的 EPDCCH候选个数为 6, 聚合级别 4、 聚合级别 8和聚合级别 16对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 2对应的 EPDCCH候选个数为 0 ,确定聚合级别 4对应的 EPDCCH 候选个数为 6, 确定聚合级别 8和聚合级别 16对应的 EPDCCH候选个数 均为 2。
103、 根据权利要求 101所述的用户设备, 其特征在于,
对于分布式映射方式, 所述确定处理器确定聚合级别 32 对应的 EPDCCH候选个数为 0
104、 根据权利要求 101所述的用户设备, 其特征在于,
对于聚合级别为 32及聚合级别 2,所述确定处理器确定集中式映射方 式的聚合级别 2以及分布式映射方式的聚合集合 32、 聚合级别 2对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别为 32及聚合级别 4,所述确定处理器确定集中映射方式 的聚合级别 4 以及分布映射方式的聚合级别 32、 聚合级别 2 对应的 EPDCCH候选的个数之和为 6; 或者,
对于聚合级别 32及聚合级别 8 ,所述确定处理器确定集中映射方式的 聚合级别 8以及分布映射方式的聚合级别 32、聚合级别 8对应的 EPDCCH 候选的个数之和为 2; 或者,
对于聚合级别 32及聚合级别 16 , 所述确定处理器确定集中映射方式 聚合级别 16 以及分布映射方式的聚合级别 32、 聚合级别 16 对应的 EPDCCH候选的个数之和为 2。
105、 根据权利要求 100所述的用户设备, 其特征在于,
对于聚合级别为 1 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 2 , 所述确定处理器确定集中式映射方式对应的
EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 6;
对于聚合级别为 4 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2;
对于聚合级别为 8 , 所述确定处理器确定集中式映射方式对应的 EPDCCH候选的个数和分布式映射方式对应的 EPDCCH候选的个数之和 为 2。
106、 根据权利要求 105所述的用户设备, 其特征在于,
对于集中式映射方式, 所述确定处理器确定聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 6, 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 0, 确定聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 2; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 1和聚合级别 2 对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 对于分布式映射方式, 所述确定处理器确定聚 合级别 1和聚合级别 2对应的 EPDCCH候选个数均为 3 , 确定聚合级别 4 和聚合级别 8对应的 EPDCCH候选个数均为 1 ; 或者,
对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的 EPDCCH候选个数为 6 , 聚合级别 2、 聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均为 0; 对于分布式映射方式, 所述确定处理器确定聚 合级别 1对应的 EPDCCH候选个数为 0 ,确定聚合级别 2对应的 EPDCCH 候选个数为 6 ,确定聚合级别 4和聚合级别 8对应的 EPDCCH候选个数均 为 2。
107、 根据权利要求 105所述的用户设备, 其特征在于,
对于分布式映射方式, 所述确定处理器确定聚合级别 16 对应的 EPDCCH候选个数为 0。
108、 根据权利要求 105所述的用户设备, 其特征在于,
对于聚合级别为 16及聚合级别 1 ,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 1 以及分布式映射方式的聚合级别 16、 聚合级 另' J 1对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 2,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 2以及分布式映射方式的聚合级别 16、 聚合级 别 2对应的 EPDCCH候选个数之和为 6; 或者,
对于聚合级别为 16及聚合级别 4,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 4以及分布式映射方式的聚合级别 16、 聚合级 另' J 4对应的 EPDCCH候选个数之和为 2; 或者,
对于聚合级别为 16及聚合级别 8 ,所述确定处理器确定集中映射方式 的聚合级别 16、 聚合级别 8 以及分布式映射方式的聚合级别 16、 聚合级 另' J 8对应的 EPDCCH候选个数之和为 2。
109、 根据权利要求 100所述的用户设备, 其特征在于,
对于集中式映射方式, 所述确定处理器确定聚合级别 2 对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 2 对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 6, 确定聚合级别 8对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 2个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的 EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 2, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 6个 EPDCCH候选分配给至少一个聚合级别; 或者, 对于集中式映射方式, 所述确定处理器确定聚合级别 1 对应的
EPDCCH候选个数为 6, 确定聚合级别 2对应的 EPDCCH候选个数为 6, 确定聚合级别 4对应的 EPDCCH候选个数为 2; 对于分布式映射方式, 所 述确定处理器确定将 2个 EPDCCH候选分配给至少一个聚合级别。
110、 根据权利要求 100所述的用户设备, 其特征在于,
所述确定处理器, 用于确定所述物理控制信道集的需检测的聚合级别 对应的物理控制信道候选的个数。
111、 根据权利要求 110所述的用户设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定所述聚合级别对 应的物理控制信道候选的个数;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定所述聚合级别对 应的物理控制信道候选的个数。
112、 根据权利要求 111所述的用户设备, 其特征在于,
对于所述物理控制信道集为集中式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定该聚合级别对应 的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述 PRB 个数成正比;
对于所述物理控制信道集为分布式映射方式, 针对同一聚合级别, 所 述确定处理器根据所述物理控制信道集的 PRB 个数确定所述聚合级别对 应的物理控制信道候选的个数, 所述物理控制信道候选的个数与所述个数 成正比。
113、 根据权利要求 98〜112任一所述的用户设备, 其特征在于, 所述接收器, 用于将釆用 SI-RNTI或 RA-RNTI加扰的下行控制信息, 在所述分布式映射方式对应的 EPDCCH 候选上接收, 将釆除用所述 SI-RNTI和所述 RA-RNTI加扰之外的其它 RNTI加扰的下行控制信息在所 述集中式映射方式对应的 EPDCCH候选上接收。
114、 根据权利要求 98〜112任一所述的用户设备, 其特征在于, 所述接收器, 用于将包含跨载波调度指令的下行控制信息在所述集中 式映射方式和所述分布式映射方式中的一种方式对应的 EPDCCH候选上 接收, 将不包含跨载波调度指令的下行控制信息在另一种方式对应的 EPDCCH候选上接收。
115、 根据权利要求 98〜112任一所述的用户设备, 其特征在于, 所述接收器, 用于将格式 0和 /或格式 1A的下行控制信息, 通过所述 分布式映射方式对应的候选 EPDCCH上的 EPDCCH接收, 将格式 2C的 下行控制信息通过所述集中式对应的候选 EPDCCH上的 EPDCCH接收;
16次, 所述集中式映射方式对应的盲检测次数为 16次。
116、 根据权利要求 98〜115任一所述的用户设备, 其特征在于, 所述接收器, 用于将聚合级别大于或等于设定值的 EPDCCH在所述 分布式映射方式对应的 EPDCCH候选上接收, 将聚合级别小于所述设定 值的 EPDCCH在所述集中式映射方式对应的 EPDCCH候选上接收。
PCT/CN2012/081782 2012-09-21 2012-09-21 下行控制信息传输的方法、网络侧设备及用户设备 Ceased WO2014043902A1 (zh)

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