WO2021246541A1 - 전 이중 통신을 지원하는 무선통신시스템에서 데이터를 송수신하는 방법 및 이를 위한 장치 - Google Patents
전 이중 통신을 지원하는 무선통신시스템에서 데이터를 송수신하는 방법 및 이를 위한 장치 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1896—ARQ related signaling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/232—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
- H04B17/318—Received signal strength
- H04B17/328—Reference signal received power [RSRP]; Reference signal received quality [RSRQ]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J11/00—Orthogonal multiplex systems, e.g. using WALSH codes
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1893—Physical mapping arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/20—Arrangements for detecting or preventing errors in the information received using signal quality detector
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/14—Two-way operation using the same type of signal, i.e. duplex
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/231—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the layers above the physical layer, e.g. RRC or MAC-CE signalling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/542—Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality
Definitions
- FDR full duplex radio
- a wireless communication system is a multiple access system that supports communication with multiple users by sharing available system resources (eg, bandwidth, transmission power, etc.).
- Examples of the multiple access system include a code division multiple access (CDMA) system, a frequency division multiple access (FDMA) system, a time division multiple access (TDMA) system, an orthogonal frequency division multiple access (OFDMA) system, and a single carrier frequency (SC-FDMA) system.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency
- a sidelink refers to a communication method in which a direct link is established between user equipment (UE), and voice or data is directly exchanged between terminals without going through a base station (BS).
- SL is being considered as a method to solve the burden of the base station due to the rapidly increasing data traffic.
- the terminal or vehicle may receive resource allocation for an uplink signal and a resource allocation for a downlink signal from the base station.
- the terminal or vehicle may be allocated resources for the uplink signal from the base station through uplink control information (UCI), or may receive resources for the downlink signal from the base station through uplink control information (DCI).
- UCI uplink control information
- DCI uplink control information
- RAT radio access technology
- MTC massive machine type communication
- URLLC Ultra-Reliable and Low Latency Communication
- a next-generation radio access technology in consideration of the like may be referred to as a new radio access technology (RAT) or a new radio (NR).
- RAT new radio access technology
- NR new radio
- V2X vehicle-to-everything
- the problem to be solved is that in a full-duplex radio (FDR) communication system, reception/transmission is possible at the same time, so depending on the allocation of time/frequency resources between each UE, there is interference between each UE. , this lowers the SINR of the received or transmitted data, thereby lowering the efficiency of the entire full-duplex radio (FDR) communication system. It is to provide the above-mentioned channel measurement method using structure redefinition and new RRC message.
- a method for a terminal to transmit and receive a signal in a wireless communication system comprising: receiving frequency configuration information from a base station; receiving a control channel including downlink control information (DCI) from the base station; receiving a downlink signal from the base station based on the DCI; and transmitting a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the received downlink signal to the base station, wherein the frequency configuration information is Information on the length L of a predetermined frequency resource from a low frequency and information on the length R of a predetermined frequency resource from the highest frequency at which the downlink signal is received, wherein the DCI is the length L and an index representing R.
- DCI downlink control information
- HARQ-ACK/NACK hybrid automatic repeat and request acknowledgment/negative-ack
- the DCI may include a field indicating whether the frequency configuration information is applied, and use the frequency information based on a case in which the value of the field indicating whether the frequency configuration information is applied is set to 1. .
- a first received power of a downlink signal received in a frequency resource corresponding to the length of L among the received downlink signals is measured, and in a frequency resource corresponding to the length of R among the received downlink signals. It may include measuring the second received power of the received downlink signal.
- the transmitting of the HARQ-ACK/NACK for the received downlink signal may include transmitting information on the measured first received power and the second received power.
- the method may further include receiving scheduling information based on the measured information on the first power and the second power.
- the frequency configuration information may be received through a higher layer signal.
- a terminal for transmitting and receiving a signal in a wireless communication system comprising: a transceiver; and a processor, wherein the transceiver receives frequency configuration information from a base station, receives a control channel including downlink control information (DCI), and receives a downlink signal based on the DCI; Transmits a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the received downlink signal to the base station, wherein the frequency configuration information is a predetermined value from the lowest frequency at which the downlink signal is received. contains information on the length L of a frequency resource of , and information on the length R of a predetermined frequency resource from the highest frequency at which the downlink signal is received, wherein the DCI is an index indicating the lengths L and R may include
- a method for a base station to transmit and receive a signal in a wireless communication system comprising: transmitting frequency configuration information to a terminal; transmitting a control channel including downlink control information (DCI) to the terminal; transmitting a downlink signal to the terminal based on the DCI; and receiving a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the downlink signal from the terminal, wherein the frequency configuration information is the lowest frequency at which the downlink signal is transmitted.
- information on the length L of a predetermined frequency resource from may include an index indicating
- a base station for transmitting and receiving a signal in a wireless communication system, comprising: a transceiver; and a processor, wherein the transceiver transmits frequency configuration information to the terminal, transmits a control channel including downlink control information (DCI), and transmits a downlink signal based on the DCI; Receives a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the received downlink signal from the terminal, wherein the frequency configuration information is a predetermined value from the lowest frequency at which the downlink signal is transmitted. contains information on the length L of a frequency resource of , and information on the length R of a predetermined frequency resource from the highest frequency at which the downlink signal is transmitted, wherein the DCI is an index indicating the lengths L and R may include
- an apparatus for a terminal comprising: at least one processor; and at least one computer memory operably coupled to the at least one processor and storing instructions that, when executed, cause the at least one processor to perform operations, the method comprising: receiving frequency configuration information from a base station; ; receiving a control channel including downlink control information (DCI) from the base station; receiving a downlink signal from the base station based on the DCI; and transmitting a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the received downlink signal to the base station, wherein the frequency configuration information is Information on the length L of a predetermined frequency resource from a low frequency and information on the length R of a predetermined frequency resource from the highest frequency at which the downlink signal is received, wherein the DCI is the length L and an index representing R.
- DCI downlink control information
- HARQ-ACK/NACK hybrid automatic repeat and request acknowledgment/negative-ack
- a computer-readable storage medium storing at least one computer program including instructions that, when executed by at least one processor, cause the at least one processor to perform an operation for a terminal, the operation Silver: receiving frequency configuration information from a base station; receiving a control channel including downlink control information (DCI) from the base station; receiving a downlink signal from the base station based on the DCI; and transmitting a hybrid automatic repeat and request acknowledgment/negative-ack (HARQ-ACK/NACK) for the received downlink signal to the base station, wherein the frequency configuration information is Information on the length L of a predetermined frequency resource from a low frequency and information on the length R of a predetermined frequency resource from the highest frequency at which the downlink signal is received, wherein the DCI is the length L and an index representing R.
- DCI downlink control information
- HARQ-ACK/NACK hybrid automatic repeat and request acknowledgment/negative-ack
- FIG. 1 is a diagram for explaining physical channels that can be used in various embodiments of the present disclosure and a signal transmission method using the same.
- 3 shows the functional division between NG-RAN and 5GC.
- FIG. 4 shows the structure of an NR radio frame.
- 5 shows a slot structure of an NR frame.
- FIG. 6 shows a radio protocol architecture for SL communication.
- FIG. 7 illustrates the structure of a self-contained slot.
- FIG. 9 shows a conceptual diagram of a terminal and a base station supporting FDR.
- FIG. 10 illustrates a conceptual diagram of a transmit/receive link and self-interference (SI) in an FDR communication situation.
- SI self-interference
- FIG. 11 is a diagram illustrating a position where three interference techniques are applied at an RF transceiver end (or RF front end) of a device.
- FIG. 12 is a diagram schematically illustrating a block diagram of an apparatus for self-interference cancellation (Self-IC) in a communication apparatus proposed in a communication system environment using OFDM based on FIG. 11 .
- Self-IC self-interference cancellation
- FIG. 13 is a diagram illustrating an RF chain of a communication device for performing a general full duplex radio (FDR) technology.
- FDR full duplex radio
- FIG. 14 is a diagram illustrating an example of an RF chain structure of a communication device for self-interference signal cancellation when an FDR scheme is used.
- 15 is a diagram illustrating two tones transmitted from both sides of a communication band to control a self-interference reference signal generator.
- 16 is an exemplary diagram illustrating an interference occurrence scenario between UEs to which this document may be applied.
- 17 is an exemplary diagram illustrating that when interference between UEs to which this document can be applied occurs, the UE performs interference measurement on a received signal based on a new RRC message and reports a corresponding measurement value.
- each UE to which this document can be applied is allocated a readjusted time/frequency resource.
- 19 is a diagram illustrating a method for measuring interference between UEs to which this document can be applied.
- 21 illustrates a wireless device applicable to this document.
- the wireless device 22 shows another example of a wireless device applied to this document.
- the wireless device may be implemented in various forms according to use-examples/services.
- a wireless communication system is a multiple access system that supports communication with multiple users by sharing available system resources (eg, bandwidth, transmission power, etc.).
- Examples of the multiple access system include a code division multiple access (CDMA) system, a frequency division multiple access (FDMA) system, a time division multiple access (TDMA) system, an orthogonal frequency division multiple access (OFDMA) system, and a single carrier frequency (SC-FDMA) system.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency
- a sidelink refers to a communication method in which a direct link is established between user equipment (UE), and voice or data is directly exchanged between terminals without going through a base station (BS).
- the sidelink is being considered as one way to solve the burden of the base station due to the rapidly increasing data traffic.
- V2X vehicle-to-everything refers to a communication technology that exchanges information with other vehicles, pedestrians, and infrastructure-built objects through wired/wireless communication.
- V2X can be divided into four types: vehicle-to-vehicle (V2V), vehicle-to-infrastructure (V2I), vehicle-to-network (V2N), and vehicle-to-pedestrian (V2P).
- V2X communication may be provided through a PC5 interface and/or a Uu interface.
- the access technology may be referred to as new radio access technology (RAT) or new radio (NR). Even in NR, vehicle-to-everything (V2X) communication may be supported.
- RAT new radio access technology
- NR new radio
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- CDMA may be implemented with a radio technology such as universal terrestrial radio access (UTRA) or CDMA2000.
- TDMA may be implemented with a radio technology such as global system for mobile communications (GSM)/general packet radio service (GPRS)/enhanced data rates for GSM evolution (EDGE).
- GSM global system for mobile communications
- GPRS general packet radio service
- EDGE enhanced data rates for GSM evolution
- OFDMA may be implemented with a wireless technology such as Institute of Electrical and Electronics Engineers (IEEE) 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, and evolved UTRA (E-UTRA).
- IEEE 802.16m is an evolution of IEEE 802.16e, and provides backward compatibility with a system based on IEEE 802.16e.
- UTRA is part of the universal mobile telecommunications system (UMTS).
- 3rd generation partnership project (3GPP) long term evolution (LTE) is a part of evolved UMTS (E-UMTS) that uses evolved-UMTS terrestrial radio access (E-UTRA), and employs OFDMA in downlink and SC in uplink - Adopt FDMA.
- LTE-A (advanced) is an evolution of 3GPP LTE.
- 5G NR is a successor technology of LTE-A, and is a new clean-slate type mobile communication system with characteristics such as high performance, low latency, and high availability. 5G NR can utilize all available spectrum resources, from low frequency bands below 1 GHz, to intermediate frequency bands from 1 GHz to 10 GHz, and high frequency (millimeter wave) bands above 24 GHz.
- various embodiments of the present disclosure are mainly described not only for the 3GPP LTE/LTE-A system but also for the 3GPP NR system, but it is also applied to the IEEE 802.16e/m system, etc. can
- a terminal receives information from a base station through a downlink (DL) and transmits information to the base station through an uplink (UL).
- Information transmitted and received between the base station and the terminal includes general data information and various control information, and various physical channels exist according to the type/use of the information they transmit and receive.
- FIG. 1 is a diagram for explaining physical channels that can be used in various embodiments of the present disclosure and a signal transmission method using the same.
- the terminal In a state in which the power is turned off, the power is turned on again, or a terminal newly entering a cell performs an initial cell search operation such as synchronizing with the base station (S11). To this end, the terminal receives a primary synchronization channel (P-SCH) and a secondary synchronization channel (S-SCH) from the base station, synchronizes with the base station, and acquires information such as cell ID.
- P-SCH primary synchronization channel
- S-SCH secondary synchronization channel
- the terminal may receive a physical broadcast channel (PBCH) signal from the base station to obtain intra-cell broadcast information.
- PBCH physical broadcast channel
- the UE may receive a downlink reference signal (DL RS) in the initial cell search step to check the downlink channel state.
- DL RS downlink reference signal
- the UE After completing the initial cell search, the UE receives a Physical Downlink Control Channel (PDCCH) and a Physical Downlink Control Channel (PDSCH) according to information on the physical downlink control channel to receive more specific system information. can be obtained (S12).
- PDCH Physical Downlink Control Channel
- PDSCH Physical Downlink Control Channel
- the terminal may perform a random access procedure to complete access to the base station (S13 to S16).
- the UE transmits a preamble through a physical random access channel (PRACH) (S13), and RAR for the preamble through a physical downlink control channel and a corresponding physical downlink shared channel ( Random Access Response) may be received (S14).
- the UE transmits a Physical Uplink Shared Channel (PUSCH) using the scheduling information in the RAR (S15), and a contention resolution procedure such as reception of a physical downlink control channel signal and a corresponding physical downlink shared channel signal. ) can be performed (S16).
- PRACH physical random access channel
- PUSCH Physical Uplink Shared Channel
- S13/S15 may be performed as one operation in which the terminal performs transmission
- S14/S16 may be performed as one operation in which the base station performs transmission.
- the UE After performing the procedure as described above, the UE performs reception of a physical downlink control channel signal and/or a shared physical downlink channel signal (S17) and a shared physical uplink channel (PUSCH) as a general up/downlink signal transmission procedure thereafter.
- Transmission (S18) of an Uplink Shared Channel) signal and/or a Physical Uplink Control Channel (PUCCH) signal may be performed.
- UCI uplink control information
- UCI includes HARQ-ACK/NACK (Hybrid Automatic Repeat and reQuest Acknowledgment/Negative-ACK), SR (Scheduling Request), CQI (Channel Quality Indication), PMI (Precoding Matrix Indication), RI (Rank Indication) information, etc. .
- UCI is generally transmitted periodically through PUCCH, but may be transmitted through PUSCH when control information and data are to be transmitted simultaneously.
- the UE may aperiodically transmit UCI through PUSCH.
- the NG-RAN may include a gNB and/or an eNB that provides user plane and control plane protocol termination to the UE.
- 2 illustrates a case in which only gNBs are included.
- the gNB and the eNB are connected to each other through an Xn interface.
- the gNB and the eNB are connected to the 5G Core Network (5GC) through the NG interface. More specifically, it is connected to an access and mobility management function (AMF) through an NG-C interface, and is connected to a user plane function (UPF) through an NG-U interface.
- AMF access and mobility management function
- UPF user plane function
- 3 shows the functional division between NG-RAN and 5GC.
- gNB is inter-cell radio resource management (Inter Cell RRM), radio bearer management (RB control), connection mobility control (Connection Mobility Control), radio admission control (Radio Admission Control), measurement setup and provision Functions such as (Measurement configuration & Provision) and dynamic resource allocation may be provided.
- AMF may provide functions such as NAS security, idle state mobility processing, and the like.
- the UPF may provide functions such as mobility anchoring and PDU processing.
- a Session Management Function (SMF) may provide functions such as terminal IP address assignment and PDU session control.
- FIG. 4 shows the structure of a radio frame of NR.
- radio frames may be used in uplink and downlink transmission in NR.
- the radio frame has a length of 10 ms and may be defined as two 5 ms half-frames (HF).
- a half-frame may include 5 1ms subframes (Subframe, SF).
- a subframe may be divided into one or more slots, and the number of slots in a subframe may be determined according to a subcarrier spacing (SCS).
- SCS subcarrier spacing
- Each slot may include 12 or 14 OFDM(A) symbols according to a cyclic prefix (CP).
- CP cyclic prefix
- each slot may include 14 symbols.
- each slot may include 12 symbols.
- the symbol may include a time resource interval (or CP-time resource interval), a single carrier-FDMA (SC-FDMA) symbol (or a Discrete Fourier Transform-spread-OFDM (DFT-s-OFDM) symbol).
- SC-FDMA single carrier-FDMA
- DFT-s-OFDM Discrete Fourier Transform-spread-OFDM
- Table 1 shows the number of symbols per slot ((N slot symb ), the number of slots per frame ((N frame, u slot ) and the number of slots per subframe according to the SCS configuration (u) when normal CP is used. ((N subframe, u slot ) is exemplified.
- Table 2 illustrates the number of symbols per slot, the number of slots per frame, and the number of slots per subframe according to SCS when the extended CP is used.
- OFDM(A) numerology eg, SCS, CP length, etc.
- OFDM(A) numerology eg, SCS, CP length, etc.
- an (absolute time) interval of a time resource eg, a subframe, a slot, or a TTI
- a TU Time Unit
- multiple numerology or SCS to support various 5G services may be supported. For example, when SCS is 15 kHz, wide area in traditional cellular bands can be supported, and when SCS is 30 kHz/60 kHz, dense-urban, lower latency) and a wider carrier bandwidth may be supported. For SCS of 60 kHz or higher, bandwidths greater than 24.25 GHz may be supported to overcome phase noise.
- the NR frequency band may be defined as two types of frequency ranges.
- the two types of frequency ranges may be FR1 and FR2.
- the numerical value of the frequency range may be changed.
- the two types of frequency ranges may be as shown in Table 3 below.
- FR1 may mean "sub 6GHz range”
- FR2 may mean “above 6GHz range”
- mmW millimeter wave
- FR1 may include a band of 410 MHz to 7125 MHz as shown in Table 4 below. That is, FR1 may include a frequency band of 6 GHz (or 5850, 5900, 5925 MHz, etc.) or higher. For example, a frequency band of 6GHz (or 5850, 5900, 5925 MHz, etc.) or higher included in FR1 may include an unlicensed band. The unlicensed band may be used for various purposes, for example, for communication for a vehicle (eg, autonomous driving).
- 5 shows a slot structure of an NR frame.
- a slot includes a plurality of symbols in the time domain.
- one slot may include 14 symbols, but in the case of an extended CP, one slot may include 12 symbols.
- one slot may include 7 symbols, but in the case of an extended CP, one slot may include 6 symbols.
- a carrier wave includes a plurality of subcarriers in the frequency domain.
- a resource block (RB) may be defined as a plurality of (eg, 12) consecutive subcarriers in the frequency domain.
- BWP Bandwidth Part
- P Physical Resource Block
- a carrier wave may include a maximum of N (eg, 5) BWPs. Data communication may be performed through the activated BWP.
- Each element may be referred to as a resource element (RE) in the resource grid, and one complex symbol may be mapped.
- RE resource element
- the wireless interface between the terminal and the terminal or the wireless interface between the terminal and the network may be composed of an L1 layer, an L2 layer, and an L3 layer.
- the L1 layer may mean a physical layer.
- the L2 layer may mean at least one of a MAC layer, an RLC layer, a PDCP layer, and an SDAP layer.
- the L3 layer may mean an RRC layer.
- V2X or SL (sidelink) communication will be described.
- FIG. 6 shows a radio protocol architecture for SL communication. Specifically, FIG. 6(a) shows a user plane protocol stack of NR, and FIG. 6(b) shows a control plane protocol stack of NR.
- SL synchronization signal Sidelink Synchronization Signal, SLSS
- SLSS Segment Synchronization Signal
- the SLSS is an SL-specific sequence and may include a Primary Sidelink Synchronization Signal (PSSS) and a Secondary Sidelink Synchronization Signal (SSSS).
- PSSS Primary Sidelink Synchronization Signal
- SSSS Secondary Sidelink Synchronization Signal
- the PSSS may be referred to as a Sidelink Primary Synchronization Signal (S-PSS)
- S-SSS Sidelink Secondary Synchronization Signal
- S-SSS Sidelink Secondary Synchronization Signal
- length-127 M-sequences may be used for S-PSS
- length-127 Gold sequences may be used for S-SSS.
- the terminal may detect an initial signal using S-PSS and may obtain synchronization.
- the UE may acquire detailed synchronization using S-PSS and S-SSS, and may detect a synchronization signal ID.
- PSBCH Physical Sidelink Broadcast Channel
- PSBCH Physical Sidelink Broadcast Channel
- the basic information is information related to SLSS, duplex mode (Duplex Mode, DM), TDD UL/DL (Time Division Duplex Uplink/Downlink) configuration, resource pool related information, type of application related to SLSS, It may be a subframe offset, broadcast information, or the like.
- the payload size of PSBCH may be 56 bits including a CRC of 24 bits.
- S-PSS, S-SSS, and PSBCH may be included in a block format supporting periodic transmission (eg, SL SS (Synchronization Signal)/PSBCH block, hereinafter S-SSB (Sidelink-Synchronization Signal Block)).
- the S-SSB may have the same numerology (ie, SCS and CP length) as a Physical Sidelink Control Channel (PSCCH)/Physical Sidelink Shared Channel (PSSCH) in the carrier, and the transmission bandwidth is (pre)set SL Sidelink (BWP) BWP).
- the bandwidth of the S-SSB may be 11 resource blocks (RBs).
- the PSBCH may span 11 RBs.
- the frequency position of the S-SSB may be set (in advance). Therefore, the UE does not need to perform hypothesis detection in frequency in order to discover the S-SSB in the carrier.
- the transmitting terminal may transmit one or more S-SSBs to the receiving terminal within one S-SSB transmission period according to the SCS.
- the number of S-SSBs that the transmitting terminal transmits to the receiving terminal within one S-SSB transmission period may be pre-configured or configured in the transmitting terminal.
- the S-SSB transmission period may be 160 ms.
- an S-SSB transmission period of 160 ms may be supported.
- the transmitting terminal may transmit one or two S-SSBs to the receiving terminal within one S-SSB transmission period. For example, when the SCS is 30 kHz in FR1, the transmitting terminal may transmit one or two S-SSBs to the receiving terminal within one S-SSB transmission period. For example, when the SCS is 60 kHz in FR1, the transmitting terminal may transmit one, two or four S-SSBs to the receiving terminal within one S-SSB transmission period.
- the transmitting terminal can transmit 1, 2, 4, 8, 16 or 32 S-SSBs to the receiving terminal within one S-SSB transmission period.
- the transmitting terminal sends 1, 2, 4, 8, 16, 32 or 64 S-SSBs to the receiving terminal within one S-SSB transmission period. can be transmitted.
- the structure of the S-SSB transmitted from the transmitting terminal to the receiving terminal may be different according to the CP type.
- the CP type may be a Normal CP (NCP) or an Extended CP (ECP).
- NCP Normal CP
- ECP Extended CP
- the number of symbols for mapping the PSBCH in the S-SSB transmitted by the transmitting terminal may be 9 or 8.
- the CP type is ECP
- the number of symbols for mapping the PSBCH in the S-SSB transmitted by the transmitting terminal may be 7 or 6.
- the PSBCH may be mapped to the first symbol in the S-SSB transmitted by the transmitting terminal.
- the receiving terminal receiving the S-SSB may perform an automatic gain control (AGC) operation in the first symbol period of the S-SSB.
- AGC automatic gain control
- FIG. 7 illustrates the structure of a self-contained slot.
- a frame is characterized by a self-contained structure in which a DL control channel, DL or UL data, and a UL control channel can all be included in one slot.
- the first N symbols in a slot may be used to transmit a DL control channel (hereinafter, DL control region), and the last M symbols in a slot may be used to transmit a UL control channel (hereinafter, UL control region).
- N and M are each an integer greater than or equal to 0.
- a resource region hereinafter, referred to as a data region
- a data region between the DL control region and the UL control region may be used for DL data transmission or for UL data transmission.
- the following configuration may be considered. Each section is listed in chronological order.
- a Physical Downlink Control Channel may be transmitted in the DL control region, and a Physical Downlink Shared Channel (PDSCH) may be transmitted in the DL data region.
- a Physical Uplink Control Channel (PUCCH) may be transmitted in the UL control region, and a Physical Uplink Shared Channel (PUSCH) may be transmitted in the UL data region.
- DCI downlink control information
- DL data scheduling information for example, DL data scheduling information, UL data scheduling information, etc.
- Uplink Control Information for example, ACK/NACK (Positive Acknowledgment/Negative Acknowledgment) information for DL data, CSI (Channel State Information) information, SR (Scheduling Request), etc.
- GP provides a time gap in the process of a base station (BS,) and a terminal converting from a transmission mode to a reception mode or a process from a reception mode to a transmission mode. Some symbols at the time of switching from DL to UL in a subframe may be set to GP.
- the base station may be, for example, a gNodeB.
- the UE may detect the PDCCH in slot #n.
- the PDCCH includes downlink scheduling information (eg, DCI formats 1_0 and 1_1), and the PDCCH indicates a DL assignment-to-PDSCH offset (K0) and a PDSCH-HARQ-ACK reporting offset (K1).
- DCI formats 1_0 and 1_1 may include the following information.
- K0 indicates the starting position (eg, OFDM symbol index) and length (eg, number of OFDM symbols) of the PDSCH in the slot
- the UE may transmit UCI through PUCCH in slot #(n+K1).
- the UCI includes a HARQ-ACK response for the PDSCH.
- the HARQ-ACK response may be configured with 1-bit.
- the HARQ-ACK response may be configured with 2-bits when spatial bundling is not configured, and may be configured with 1-bits when spatial bundling is configured.
- the HARQ-ACK transmission time for the plurality of PDSCHs is designated as slot #(n+K1)
- the UCI transmitted in the slot #(n+K1) includes HARQ-ACK responses for the plurality of PDSCHs.
- An FDR transmission/reception system capable of simultaneously transmitting and receiving uplink and downlink signals on the same frequency band maximizes spectral efficiency compared to existing systems that transmit and receive uplink and downlink signals by dividing the frequency or time. Because it can be doubled, it is spotlighted as one of the core technologies of the next-generation 5G mobile communication system.
- FDR using a single frequency transmission band can be defined as a transmission resource setting method that simultaneously performs transmission and reception through a single frequency transmission band from the viewpoint of any wireless device.
- a general base station or repeater, relay node, remote radio head (RRH), etc.
- RRH remote radio head
- the downlink transmission and uplink reception of the base station through a single frequency transmission band, and the downlink of the wireless terminal It can be expressed as a transmission resource setting method in which link reception and uplink transmission are performed simultaneously.
- D2D device-to-device direct communication
- FIG. 9 shows a conceptual diagram of a terminal and a base station supporting FDR.
- Intra-device self-interference Since transmission/reception is performed using the same time and frequency resources, not only the desired signal but also the signal transmitted by the device is simultaneously received. At this time, since the transmitted signal is received by its receiving antenna with little attenuation, it is received with much greater power than the desired signal, which means that it acts as interference.
- UE to UE inter-link interference means that an uplink signal transmitted by a terminal is received by a terminal located adjacent to it and acts as interference.
- BS to BS inter-link interference It means that a signal transmitted between base stations or between heterogeneous base stations (Picocell, femtocell, relay node) in a HetNet situation is received by a receiving antenna of another base station and acts as interference.
- SI intra-device self-interference
- FIG. 10 illustrates a conceptual diagram of a transmit/receive link and self-interference (SI) in an FDR communication situation.
- SI self-interference
- SI self-interference
- 10 is a diagram illustrating a position where three interference techniques are applied at an RF transceiver end (or an RF front end) of a device. 10 shows the application positions of the three Self-IC techniques. Hereinafter, the three Self-IC techniques will be briefly described.
- the self-interference cancellation technique that should be performed first is the antenna self-interference cancellation technique.
- SI removal is performed at the antenna stage.
- the simplest is to physically block the transmission of the SI signal by installing an object that can block the signal between the transmitting and receiving antennas, artificially adjusting the distance between the antennas using multiple antennas, or inverting the phase to a specific transmit signal. It is possible to partially remove the SI signal by giving In addition, a part of the SI signal may be removed by using a multi-polarized antenna or a directional antenna.
- Analog Self-IC This is a technique to remove the interference from the analog stage before the received signal passes through the ADC (Analog-to-Digital Converter). This may be performed in the RF domain or the IF domain.
- a method of removing the SI signal will be described in detail as follows. First, the transmitted analog signal is time-delayed, and the size and phase are adjusted to create a duplicate signal of the actually received SI signal and subtract it from the signal received by the receiving antenna. However, since analog signals are used for processing, additional distortion may occur due to implementation complexity and circuit characteristics, and thus, interference cancellation performance may vary greatly.
- Digital Self-IC This is a technique that removes interference after the received signal passes through the ADC, and includes all interference cancellation techniques in the baseband area. In the simplest way, it can be implemented by using the transmitted digital signal to create a duplicate signal of SI and subtracting it from the received digital signal. Alternatively, by performing precoding/postcoding in the baseband using multiple antennas, the techniques for preventing the transmission signal to the terminal or the base station from being received by the reception antenna can also be classified as Digital Self-IC. However, since digital self-IC can be quantized to the extent that a digitally modulated signal can restore information about a desired signal, in order to perform digital self-IC, one or more of the above techniques are used to perform interference. The precondition is that the difference in signal power between the remaining interference signal and the desired signal after removal of the signal must be within the ADC range.
- FIG. 12 is a diagram schematically illustrating a block diagram of an apparatus for self-interference cancellation (Self-IC) in a communication apparatus proposed in a communication system environment using OFDM based on FIG. 11 .
- Self-IC self-interference cancellation
- the location of the digital self-IC block is shown in FIG. 12 as being performed immediately using digital self-interference signal (digital SI) information before the DAC and after the ADC, but using the digital self-interference signal after the IFFT and before the FFT. may be performed.
- 12 is a conceptual diagram of removing a self-interference signal by separating a transmitting antenna and a receiving antenna.
- an antenna configuration method different from that of FIG. 12 may be used.
- a function block suitable for the purpose may be added or deleted.
- the transmission signal is distorted by the non-linear characteristics of active elements such as the Power Amplifier (PA) of the transmission RF chain and the Low Noise Amplifier (LNA) of the reception RF chain. It can be deformed, and the transmission signal due to this distortion can be modeled as high-order components are generated. Among them, the even-order component can be effectively removed using the existing AC coupling or filtering technique because it affects the high-frequency region corresponding to several times the DC peripheral and center frequency.
- PA Power Amplifier
- LNA Low Noise Amplifier
- the odd-order component is generated adjacent to the existing center frequency, it cannot be easily removed, unlike even-order, and has a significant effect on reception.
- the received signal after the ADC in the FDR system is expressed using the Parallel Hammerstein (PH) Model, as shown in the following equation.
- AWGN Additive White Gaussian Noise
- FIG. 13 is a diagram illustrating an RF chain of a communication device for performing a general full duplex radio (FDR) technology.
- FDR full duplex radio
- a self-interference reference signal In order to remove the self-interference signal in a communication device using the FDR method, it is necessary to generate a duplicate signal identical to the self-interference signal (hereinafter, referred to as a self-interference reference signal).
- a self-interference reference signal a method of subtracting the self-interference reference signal SI REF from the self-interference signal SI before the LNA of the receiving end of the RX chain is generally used.
- SI REF self-interference reference signal
- the Tx signal of the transmitting end is branched (FIG.
- FIG 3 illustrates a case in which the transmitting end is branched after passing through PA) and a portion of the Tx signal is attenuated ( attenuator), a phase shifter and a self-interference reference signal generator including a true time delay circuit (SI reference generator).
- the self-interference reference signal generator generates a self-interference reference signal to mimic the self-interference channel by using the branched Tx signal.
- the channel to which the self-interference signal is received is separately estimated so that the self-interference reference signal generator can imitate the self-interference channel.
- the communication device may generate a control signal input to the time delayer, a control signal input to the phase shifter, and a control signal input to the attenuator.
- the self-interference reference signal path and the desired RX signal should not all enter.
- the communication device stops communication in order to separately estimate the channel through which the self-interference signal is received, and assigns the signal for estimating the self-interference channel (eg, pilot signal, reference signal) to the allocated communication band (or channel band). ), and the self-interference reference signal generator can imitate the self-interference signal by using the information of the signal for estimating the self-interference channel during communication.
- the signal for estimating the self-interference channel eg, pilot signal, reference signal
- the communication device carries and transmits a signal (reference signal, pilot signal, or tone) for estimating the self-interference signal channel at both ends of the communication channel band (eg, guard band), and adaptive feedback
- the self-interference reference signal generator may be controlled in a direction in which a corresponding self-interference signal channel estimation signal is reduced.
- the transmitting device or the transmitting side
- the receiving device or the receiving side
- the channel of the self-interference reference path should be made into a look-up table based on the combination of all control voltages, and even if an accurate look-up table is prepared at a specific Tx power and temperature, it is Since it is subject to change, the self-interference signal removal performance is inevitably degraded due to the difference between the calibration measurement error, the current Tx power and temperature, and the conditions at the time the look-up table was made. In addition, there is a disadvantage in that it cannot follow the self-interference signal channel (or self-interference channel) that changes with time.
- the communication device when the communication device transmits a signal for estimating the self-interference signal channel (tone, pilot signal, or reference signal, etc.) on both sides of the communication band, communication can be performed without stopping, and the self-interference reference signal generator is timed Since it is continuously controlled using an adaptive feedback algorithm, calibration of the self-interference reference signal generator itself is unnecessary. However, since the self-interference reference signal generator is controlled using the tones of the guard bands on both sides of the communication band, not the communication band, the self-interference signal due to the transmission of the tone inside the most important communication band is not removed.
- the self-interference reference signal generator is controlled using the tones of the guard bands on both sides of the communication band, not the communication band, the self-interference signal due to the transmission of the tone inside the most important communication band is not removed.
- FIG. 14 is a diagram illustrating an example of an RF chain structure of a communication device for self-interference signal cancellation when an FDR scheme is used.
- the RF chain of the communication device may include a communication modem (or modem), a self-interference reference signal generator (SI reference generator), a transmit (Tx) antenna, and a receive (Rx) antenna.
- the communication modem may include a Fast Fourier Transform (FFT) unit and integrators.
- the self-interference reference signal generator (SI reference generator) may include an attenuator, a phase shifter, and a true time delay device (circuit).
- a self-interference reference generator is an attenuator, a phase shifter, a true time delay device (circuit) to generate (or duplicate) a precise self-interference reference signal, all analog method can be used to control
- the RF chain may include Digital to Analog Converters (DACs) that convert a control signal transmitted from a communication modem (or modem) into an analog signal.
- DACs Digital to Analog Converters
- a true time delay which is basically defined as a phase shift versus the slope of a frequency band
- it is necessary to know information at at least two frequencies, so two or more pilot signals, two or more reference signals, or two or more tones that are test signals are transmitted assume that
- the communication modem monitors the sum of powers of multi-tones at frequencies where multi-tones, which are test signals, are located, and measures the power at the frequency locations where the multi-tones are transmitted, and the sum can be calculated.
- the power measured at the frequency position of the transmitted tone corresponds to the power of the self-interference signal.
- the communication modem may transmit a control signal to minimize a difference between the sum of the powers of the self-interference signals due to the multi-tones and the power of the self-interference reference signal. That is, the communication modem may feed back a control signal to the self-interference reference signal generator so that the sum of powers of the self-interference signal due to the multi-tones is minimized.
- the self-interference reference signal generator generates a self-interference reference signal according to the fed back control signal.
- the communication modem may generate a self-interference reference signal having a power value closest to the sum of the powers in order to cancel the power sum of the measured self-interference signals.
- SI n is the measured power of the self-interference signal at a frequency position where the n-th reference signal is transmitted among the plurality of reference signals.
- the communication modem uses periodic pulse signals of +1 and -1 to change the sign of the increment of the controlled bias voltage as a loop function of adaptive feedback.
- the loop function refers to a function for searching around the current variable in a feedback loop including the variable to be controlled.
- the communication modem can feed back a control signal to each of the phase shifter, attenuator, and time delay using an adaptive feedback loop so that the self-interference reference signal generator generates a self-interference reference signal having a power closest to the sum of the powers of the self-interference signals. have.
- the method of controlling the generation of the self-interference reference signal according to FIG. 14 has an advantage in that complicated channel estimation and calibration are unnecessary because the adaptive feedback algorithm is operated with only the power sum of multi-tones.
- 15 is a diagram illustrating two tones transmitted from both sides of a communication band (eg, a guard band) to control a self-interference reference signal generator.
- a communication band eg, a guard band
- an SI reference generator includes a tone for estimating a self-interference signal channel at both ends of a communication channel band (guard band), and a corresponding tone for estimation is reduced according to an adaptive feedback algorithm. can be controlled. In this case, it is possible to stably receive the desired signal from which self-interference has been removed.
- a wireless terminal transmits or receives data using a time-division multiplexing (TDM) or frequency-division multiplexing (FDM) method, but full-duplex wireless transmission (Full In the duplex radio: FDR communication system, a wireless terminal (UE) can simultaneously perform transmission/reception as allocated by a base station without restrictions of TDM and FDM. Accordingly, while any UE is simultaneously performing transmission/reception, other UEs may also perform transmission or reception, and frequency/time resources allocated to each may interfere with transmission/reception of each UE. have. Accordingly, in a full-duplex radio (FDR) communication system, a channel more effective than a channel measurement method using CSI-RS, etc. By using the measurement method, it is possible to increase the throughput of the entire full-duplex radio (FDR) communication system and improve network efficiency.
- TDM time-division multiplexing
- FDM frequency-division multiplexing
- the base station adds a new information element (IE) field to the DCI for PDSCH reception, adds an IE field for reporting the channel measurement result proposed to UCI, and sends a new RRC message
- IE information element
- the base station transmits a new RRC message to which two new IE fields, RB_L and RB_R, are added to each UE i.
- RB_L is an integer value indicating an arbitrary RB length from the lowest frequency RB when receiving the PDSCH
- RB_R is an integer value indicating an arbitrary RB length from the highest frequency RB when receiving the PDSCH. to be.
- the new RRC message one RB_L and one RB_R are divided by an index and transmitted in one or more.
- the base station When the base station transmits DCI to allocate a PDSCH from any UE, it may transmit by adding new IE fields, measIfOn and measIfIndex fields, to DCI.
- the measIfOn field is a mandatory field
- the measIfIndex field is an optional field. If measIfOn is 0, the existing communication system may operate, and if 1, the UE operates as follows.
- the UE Upon receiving the DCI in which the measIfOn field is set to 1, the UE checks the index value of the measIfIndex field when receiving the PDSCH.
- the index value of measIfIndex is the index value of RB_L/RB_R received as a new RRC message, and RB_L and RB_R values of the corresponding index are obtained.
- the UE measures the reference signal received power (RSRP) of the corresponding region while receiving the PDSCH from the lowest frequency region of the PDSCH to an area corresponding to RB_L. In addition, while receiving the PDSCH as much as RB_R from the highest frequency region of the PDSCH, RSRP of the corresponding region is measured.
- RSRP reference signal received power
- the UE When sending ACK/NACK information after receiving PDSCH, the UE defines RSRP values corresponding to RB_L and RB_R regions as measIfRpt using PUCCH or PUSCH, and reports the values to gNB.
- 6.gNB can know in which frequency/time domain any UE has interference by using the measIfRpt values corresponding to RB_R and RB_L, and through this, efficient full-duplex radio (FDR) communication System time/frequency resource scheduling is possible.
- FDR full-duplex radio
- 16 is an exemplary diagram illustrating an interference occurrence scenario between UEs to which this document may be applied.
- both UE_1 and UE_2 are FDR terminals
- both UE_1 and UE_2 each transmit / The reception acts as an interference to each, affecting performance.
- the lower frequency part of the DL/UL RB allocated to UE_1 and the upper frequency part of the DL/UL RB allocated to UE_2 in case b) experience interference due to CLI (Cross-Link Interference).
- 17 is an exemplary diagram illustrating that when interference between UEs to which this document can be applied occurs, the UE performs interference measurement on a received signal based on a new RRC message and reports a corresponding measurement value.
- UE_2 simultaneously performs transmission/reception in a time/frequency resource domain to which PDSCH/PUSCH is simultaneously allocated and simultaneously performs interference measurement received with a new RRC message.
- the index value with the corresponding measIfIndex of 1, as specified by the new RRC message performs RSRP measurement while transmitting/receiving from the highest allocated PDSCH/PUSCH frequency domain to the 5RB domain higher frequency domain to determine the RSRP value with UCI. Report to gNB.
- UE_1 simultaneously transmits a PUSCH corresponding to a 40 to 60 RB index while receiving a PDSCH corresponding to a 40 to 60 RB index
- the power of PDSCH data of UE_1 and the power leaked while UE_2 transmits the PUSCH up to 20-40 RBs will exist.
- the power at which UE_1 transmits a PUSCH corresponding to 40 to 60 RBs will be measured to be more dominant than when UE_1 is away from each other. That is, when UE_1 and UE_2 are closer than when they are apart, greater power will be measured when UE_2 measures the power of 41 to 45 RB. , and it can be seen that the two terminals are located close to each other.
- the gNB can finally perform transmission/reception by re-adjusting the time-frequency resources of UE_2 so as not to affect each UE, and allocate time/frequency resources so that each UE does not suffer interference.
- FIG. 18 is an exemplary diagram illustrating that each UE to which this document can be applied is allocated a readjusted time/frequency resource, and in FIG. 18, UE_2 is expressed as being allocated RBs from 0 to 20.
- 19 is a diagram illustrating a method for measuring interference between UEs to which this document can be applied, and schematically illustrates the above description.
- the inter-UE interference measurement method to which this document can be applied is as follows.
- Step 1 The base station transmits to the UE one or more indexes including the values of RB_L and RB_R to the UE in an RRC message.
- Step 2 When the UE decodes the DCI and receives the PDSCH, it checks the value of the measIfOn field, which is an IE newly added to the DCI. When the value of the measIfOn field is set to 1, the value of the optional field measIfIndex is checked.
- Step 3 The UE checks the index of the RRC message mapped with measIfIndex of DCI, gets the values of RB_L and RB_R, and when receiving the PDSCH, the lowest frequency of the received PDSCH RB (resource block) index-1 to RB_L Measure the RSRP value corresponding to the region of and the region from the highest frequency RB index+1 to RB_R.
- Step 4 The UE reports the RSRP values corresponding to the areas of RB_R and RB_L to the gNB by including it in measIfRpt newly added to UCI.
- Step 5 The gNB allocates time/frequency resources of the corresponding UE during the next DCI transmission by using the corresponding measIfRpt value.
- New DCI field and RRC message and processing method for the UE to measure e.g. RSRP
- RSRP New DCI field and RRC message and processing method for the UE to measure
- each terminal reports a measurement signal (e.g. RSRP) of a resource area adjacent to an RB allocated to it to the base station using a new UCI field in a full-duplex communication system
- a measurement signal e.g. RSRP
- Efficiency in an FDR communication system can be increased due to a channel measurement method using a new DCI, UCI structure, and a new RRC message according to this document.
- a communication system 1 applied to this document includes a wireless device, a base station, and a network.
- the wireless device refers to a device that performs communication using a radio access technology (eg, 5G NR (New RAT), LTE (Long Term Evolution)), and may be referred to as a communication/wireless/5G device.
- a radio access technology eg, 5G NR (New RAT), LTE (Long Term Evolution)
- the wireless device may include a robot 100a, a vehicle 100b-1, 100b-2, an eXtended Reality (XR) device 100c, a hand-held device 100d, and a home appliance 100e. ), an Internet of Thing (IoT) device 100f, and an AI device/server 400 .
- the vehicle may include a vehicle equipped with a wireless communication function, an autonomous driving vehicle, a vehicle capable of performing inter-vehicle communication, and the like.
- the vehicle may include an Unmanned Aerial Vehicle (UAV) (eg, a drone).
- UAV Unmanned Aerial Vehicle
- XR devices include AR (Augmented Reality)/VR (Virtual Reality)/MR (Mixed Reality) devices, and include a Head-Mounted Device (HMD), a Head-Up Display (HUD) provided in a vehicle, a television, a smartphone, It may be implemented in the form of a computer, a wearable device, a home appliance, a digital signage, a vehicle, a robot, and the like.
- the portable device may include a smart phone, a smart pad, a wearable device (eg, a smart watch, smart glasses), a computer (eg, a laptop computer), and the like.
- Home appliances may include a TV, a refrigerator, a washing machine, and the like.
- the IoT device may include a sensor, a smart meter, and the like.
- the base station and the network may be implemented as a wireless device, and the specific wireless device 200a may operate as a base station/network node to other wireless devices.
- the wireless devices 100a to 100f may be connected to the network 300 through the base station 200 .
- AI Artificial Intelligence
- the network 300 may be configured using a 3G network, a 4G (eg, LTE) network, or a 5G (eg, NR) network.
- the wireless devices 100a to 100f may communicate with each other through the base station 200/network 300, but may also communicate directly (e.g. sidelink communication) without passing through the base station/network.
- the vehicles 100b-1 and 100b-2 may perform direct communication (e.g. Vehicle to Vehicle (V2V)/Vehicle to everything (V2X) communication).
- the IoT device eg, sensor
- the IoT device may communicate directly with other IoT devices (eg, sensor) or other wireless devices 100a to 100f.
- Wireless communication/connection 150a, 150b, and 150c may be performed between the wireless devices 100a to 100f/base station 200 and the base station 200/base station 200 .
- the wireless communication/connection includes uplink/downlink communication 150a and sidelink communication 150b (or D2D communication), and communication between base stations 150c (eg relay, IAB (Integrated Access Backhaul)).
- This can be done through technology (eg 5G NR)
- Wireless communication/connection 150a, 150b, 150c allows the wireless device and the base station/radio device, and the base station and the base station to transmit/receive wireless signals to each other.
- the wireless communication/connection 150a, 150b, and 150c may transmit/receive signals through various physical channels.
- various signal processing processes eg, channel encoding/decoding, modulation/demodulation, resource mapping/demapping, etc.
- resource allocation processes etc.
- 21 illustrates a wireless device applicable to this document.
- the first wireless device 100 and the second wireless device 200 may transmit/receive wireless signals through various wireless access technologies (eg, LTE, NR).
- ⁇ first wireless device 100, second wireless device 200 ⁇ is ⁇ wireless device 100x, base station 200 ⁇ of FIG. 20 and/or ⁇ wireless device 100x, wireless device 100x) ⁇ can be matched.
- the first wireless device 100 includes one or more processors 102 and one or more memories 104 , and may further include one or more transceivers 106 and/or one or more antennas 108 .
- the processor 102 controls the memory 104 and/or the transceiver 106 and may be configured to implement the descriptions, functions, procedures, suggestions, methods, and/or operational flowcharts disclosed herein.
- the processor 102 may process information in the memory 104 to generate first information/signal, and then transmit a wireless signal including the first information/signal through the transceiver 106 .
- the processor 102 may receive the radio signal including the second information/signal through the transceiver 106 , and then store information obtained from signal processing of the second information/signal in the memory 104 .
- the memory 104 may be connected to the processor 102 and may store various information related to the operation of the processor 102 .
- memory 104 may provide instructions for performing some or all of the processes controlled by processor 102 , or for performing descriptions, functions, procedures, suggestions, methods, and/or operational flowcharts disclosed herein. may store software code including
- the processor 102 and the memory 104 may be part of a communication modem/circuit/chipset designed to implement a wireless communication technology (eg, LTE, NR).
- a wireless communication technology eg, LTE, NR
- the transceiver 106 may be coupled to the processor 102 , and may transmit and/or receive wireless signals via one or more antennas 108 .
- the transceiver 106 may include a transmitter and/or a receiver.
- the transceiver 106 may be used interchangeably with a radio frequency (RF) unit.
- RF radio frequency
- a wireless device may refer to a communication modem/circuit/chipset.
- the chipset may include a processor 102 and a memory 104 .
- the memory 104 may include at least one program capable of performing operations related to the above-described embodiments.
- the processor 102 may be allocated a resource related to the FDR based on at least one program stored in the memory.
- the processor 102 may control the RF transceiver to report the phase self-interference cancellation capability to the base station.
- the processor 102 may control the RF transceiver to receive resource allocation information for a preconfigured time interval divided into a first time resource interval and a second time resource interval from the base station.
- the first time resource interval is a time resource interval allocated for simultaneous performance of transmission of an uplink signal and reception of a downlink signal in the same frequency band
- the second time resource interval is transmission of the uplink signal or It may be a time resource interval allocated for reception of the downlink signal.
- the first time resource interval and the second time resource interval may be determined based on the self-interference cancellation capability, a first data amount related to the uplink signal, and a second data amount related to the downlink signal.
- the second wireless device 200 includes one or more processors 202 , one or more memories 204 , and may further include one or more transceivers 206 and/or one or more antennas 208 .
- the processor 202 controls the memory 204 and/or the transceiver 206 and may be configured to implement the descriptions, functions, procedures, suggestions, methods, and/or flow charts disclosed herein.
- the processor 202 may process the information in the memory 204 to generate third information/signal, and then transmit a wireless signal including the third information/signal through the transceiver 206 .
- the processor 202 may receive the radio signal including the fourth information/signal through the transceiver 206 , and then store information obtained from signal processing of the fourth information/signal in the memory 204 .
- the memory 204 may be connected to the processor 202 and may store various information related to the operation of the processor 202 .
- the memory 204 may provide instructions for performing some or all of the processes controlled by the processor 202, or for performing the descriptions, functions, procedures, suggestions, methods, and/or operational flowcharts disclosed herein. may store software code including
- the processor 202 and the memory 204 may be part of a communication modem/circuit/chip designed to implement a wireless communication technology (eg, LTE, NR).
- the transceiver 206 may be coupled to the processor 202 and may transmit and/or receive wireless signals via one or more antennas 208 .
- the transceiver 206 may include a transmitter and/or a receiver.
- the transceiver 206 may be used interchangeably with an RF unit.
- a wireless device may refer to a communication modem/circuit/chip.
- the processor 202 associated with the base station may control the RF transceiver to receive a report of the self-interference cancellation capability related to the FDR from the UE.
- the processor 202 is configured to transmit and receive an uplink signal and a downlink signal using the same frequency band for a preconfigured time interval, and a first time resource interval in which transmission and reception of an uplink signal and a downlink signal are simultaneously performed and transmission of the uplink signal or reception of the downlink signal
- the second time resource interval to be performed may be determined.
- the processor 202 may control the RF transceiver to transmit resource allocation information including information on the first time resource interval and the second time resource interval to the UE.
- a computer-readable storage medium comprising at least one computer program that, when executed, causes the at least one processor to perform an operation, wherein the operation includes information related to a self-interference cancellation capability to a base station. and may receive resource allocation information for a preconfigured time interval divided into a first time resource interval and a second time resource interval from the base station.
- the first time resource interval is a time resource interval allocated for simultaneous performance of transmission of an uplink signal and reception of a downlink signal in the same frequency band
- the second time resource interval is transmission of the uplink signal or It may be a time resource interval allocated for reception of the downlink signal.
- the first time resource interval and the second time resource interval may be determined based on the self-interference cancellation capability, a first data amount related to the uplink signal, and a second data amount related to the downlink signal.
- one or more protocol layers may be implemented by one or more processors 102 , 202 .
- one or more processors 102 , 202 may implement one or more layers (eg, functional layers such as PHY, MAC, RLC, PDCP, RRC, SDAP).
- the one or more processors 102, 202 are configured to process one or more Protocol Data Units (PDUs) and/or one or more Service Data Units (SDUs) according to the description, function, procedure, proposal, method, and/or operational flowcharts disclosed herein.
- PDUs Protocol Data Units
- SDUs Service Data Units
- One or more processors 102 , 202 may generate messages, control information, data, or information according to the description, function, procedure, proposal, method, and/or flow charts disclosed herein.
- the one or more processors 102 and 202 generate a signal (eg, a baseband signal) including PDUs, SDUs, messages, control information, data or information according to the functions, procedures, proposals and/or methods disclosed herein. , to one or more transceivers 106 and 206 .
- the one or more processors 102 , 202 may receive signals (eg, baseband signals) from one or more transceivers 106 , 206 , and may be described, functions, procedures, proposals, methods, and/or operational flowcharts disclosed herein.
- PDUs, SDUs, messages, control information, data, or information may be acquired according to the fields.
- One or more processors 102, 202 may be referred to as a controller, microcontroller, microprocessor, or microcomputer.
- One or more processors 102 , 202 may be implemented by hardware, firmware, software, or a combination thereof.
- ASICs Application Specific Integrated Circuits
- DSPs Digital Signal Processors
- DSPDs Digital Signal Processing Devices
- PLDs Programmable Logic Devices
- FPGAs Field Programmable Gate Arrays
- firmware or software may be implemented using firmware or software, and the firmware or software may be implemented to include modules, procedures, functions, and the like.
- the descriptions, functions, procedures, suggestions, methods, and/or flow charts disclosed in this document provide that firmware or software configured to perform is contained in one or more processors 102 , 202 , or stored in one or more memories 104 , 204 . It may be driven by the above processors 102 and 202 .
- the descriptions, functions, procedures, proposals, methods, and/or flowcharts of operations disclosed herein may be implemented using firmware or software in the form of code, instructions, and/or a set of instructions.
- One or more memories 104 , 204 may be coupled with one or more processors 102 , 202 , and may store various forms of data, signals, messages, information, programs, code, instructions, and/or instructions.
- the one or more memories 104 and 204 may be comprised of ROM, RAM, EPROM, flash memory, hard drives, registers, cache memory, computer readable storage media, and/or combinations thereof.
- One or more memories 104 , 204 may be located inside and/or external to one or more processors 102 , 202 . Additionally, one or more memories 104 , 204 may be coupled to one or more processors 102 , 202 through various technologies, such as wired or wireless connections.
- One or more transceivers 106 , 206 may transmit user data, control information, radio signals/channels, etc. referred to in the methods and/or operational flowcharts of this document to one or more other devices.
- One or more transceivers 106, 206 may receive user data, control information, radio signals/channels, etc. referred to in the descriptions, functions, procedures, suggestions, methods and/or flow charts, etc. disclosed herein, from one or more other devices. have.
- one or more transceivers 106 , 206 may be coupled to one or more processors 102 , 202 and may transmit and receive wireless signals.
- one or more processors 102 , 202 may control one or more transceivers 106 , 206 to transmit user data, control information, or wireless signals to one or more other devices.
- one or more processors 102 , 202 may control one or more transceivers 106 , 206 to receive user data, control information, or wireless signals from one or more other devices.
- one or more transceivers 106, 206 may be coupled to one or more antennas 108, 208, and the one or more transceivers 106, 206 may be coupled via one or more antennas 108, 208 to the descriptions, functions, and functions disclosed herein. , may be set to transmit and receive user data, control information, radio signals/channels, etc.
- one or more antennas may be a plurality of physical antennas or a plurality of logical antennas (eg, antenna ports).
- the one or more transceivers 106, 206 convert the received radio signal/channel, etc. from the RF band signal to process the received user data, control information, radio signal/channel, etc. using the one or more processors 102, 202. It can be converted into a baseband signal.
- One or more transceivers 106 , 206 may convert user data, control information, radio signals/channels, etc. processed using one or more processors 102 , 202 from baseband signals to RF band signals.
- one or more transceivers 106 , 206 may include (analog) oscillators and/or filters.
- the wireless device 22 shows another example of a wireless device applied to this document.
- the wireless device may be implemented in various forms according to use-examples/services (see FIG. 20 ).
- wireless devices 100 and 200 correspond to wireless devices 100 and 200 of FIG. 24 , and various elements, components, units/units, and/or modules ) can be composed of
- the wireless devices 100 and 200 may include a communication unit 110 , a control unit 120 , a memory unit 130 , and an additional element 140 .
- the communication unit may include communication circuitry 112 and transceiver(s) 114 .
- communication circuitry 112 may include one or more processors 102,202 and/or one or more memories 104,204 of FIG.
- transceiver(s) 114 may include one or more transceivers 106 , 206 and/or one or more antennas 108 , 208 of FIG. 21 .
- the control unit 120 is electrically connected to the communication unit 110 , the memory unit 130 , and the additional element 140 , and controls general operations of the wireless device. For example, the controller 120 may control the electrical/mechanical operation of the wireless device based on the program/code/command/information stored in the memory unit 130 . In addition, the control unit 120 transmits information stored in the memory unit 130 to the outside (eg, other communication device) through the communication unit 110 through a wireless/wired interface, or externally (eg, through the communication unit 110 ) Information received through a wireless/wired interface from another communication device) may be stored in the memory unit 130 .
- the outside eg, other communication device
- Information received through a wireless/wired interface from another communication device may be stored in the memory unit 130 .
- the additional element 140 may be configured in various ways according to the type of the wireless device.
- the additional element 140 may include at least one of a power unit/battery, an input/output unit (I/O unit), a driving unit, and a computing unit.
- the wireless device includes a robot ( FIGS. 22 and 100a ), a vehicle ( FIGS. 22 , 100b-1 , 100b-2 ), an XR device ( FIGS. 22 and 100c ), a portable device ( FIGS. 22 and 100d ), and a home appliance. (FIG. 22, 100e), IoT device (FIG.
- digital broadcasting terminal digital broadcasting terminal
- hologram device public safety device
- MTC device medical device
- fintech device or financial device
- security device climate/environment device
- It may be implemented in the form of an AI server/device ( FIGS. 22 and 400 ), a base station ( FIGS. 22 and 200 ), and a network node.
- the wireless device may be mobile or used in a fixed location depending on the use-example/service.
- various elements, components, units/units, and/or modules in the wireless devices 100 and 200 may be entirely interconnected through a wired interface, or at least some of them may be wirelessly connected through the communication unit 110 .
- the control unit 120 and the communication unit 110 are connected by wire, and the control unit 120 and the first unit (eg, 130 , 140 ) are connected to the communication unit 110 through the communication unit 110 . It can be connected wirelessly.
- each element, component, unit/unit, and/or module within the wireless device 100 , 200 may further include one or more elements.
- the controller 120 may be configured with one or more processor sets.
- control unit 120 may be configured as a set of a communication control processor, an application processor, an electronic control unit (ECU), a graphic processing processor, a memory control processor, and the like.
- memory unit 130 may include random access memory (RAM), dynamic RAM (DRAM), read only memory (ROM), flash memory, volatile memory, and non-volatile memory. volatile memory) and/or a combination thereof.
- FIG. 22 will be described in more detail with reference to the drawings.
- the portable device may include a smart phone, a smart pad, a wearable device (eg, a smart watch, smart glasses), and a portable computer (eg, a laptop computer).
- a mobile device may be referred to as a mobile station (MS), a user terminal (UT), a mobile subscriber station (MSS), a subscriber station (SS), an advanced mobile station (AMS), or a wireless terminal (WT).
- MS mobile station
- UT user terminal
- MSS mobile subscriber station
- SS subscriber station
- AMS advanced mobile station
- WT wireless terminal
- the portable device 100 includes an antenna unit 108 , a communication unit 110 , a control unit 120 , a memory unit 130 , a power supply unit 140a , an interface unit 140b , and an input/output unit 140c ) may be included.
- the antenna unit 108 may be configured as a part of the communication unit 110 .
- Blocks 110 to 130/140a to 140c respectively correspond to blocks 110 to 130/140 of FIG. 21 .
- the communication unit 110 may transmit and receive signals (eg, data, control signals, etc.) with other wireless devices and base stations.
- the controller 120 may perform various operations by controlling the components of the portable device 100 .
- the controller 120 may include an application processor (AP).
- the memory unit 130 may store data/parameters/programs/codes/commands necessary for driving the portable device 100 . Also, the memory unit 130 may store input/output data/information.
- the power supply unit 140a supplies power to the portable device 100 and may include a wired/wireless charging circuit, a battery, and the like.
- the interface unit 140b may support a connection between the portable device 100 and other external devices.
- the interface unit 140b may include various ports (eg, an audio input/output port and a video input/output port) for connection with an external device.
- the input/output unit 140c may receive or output image information/signal, audio information/signal, data, and/or information input from a user.
- the input/output unit 140c may include a camera, a microphone, a user input unit, a display unit 140d, a speaker, and/or a haptic module.
- the input/output unit 140c obtains information/signals (eg, touch, text, voice, image, video) input from the user, and the obtained information/signals are stored in the memory unit 130 . can be saved.
- the communication unit 110 may convert the information/signal stored in the memory into a wireless signal, and transmit the converted wireless signal directly to another wireless device or to a base station. Also, after receiving a radio signal from another radio device or base station, the communication unit 110 may restore the received radio signal to original information/signal. After the restored information/signal is stored in the memory unit 130 , it may be output in various forms (eg, text, voice, image, video, haptic) through the input/output unit 140c.
- various forms eg, text, voice, image, video, haptic
- the vehicle or autonomous driving vehicle may be implemented as a mobile robot, a vehicle, a train, an aerial vehicle (AV), a ship, and the like.
- AV aerial vehicle
- the vehicle or autonomous driving vehicle 100 includes an antenna unit 108 , a communication unit 110 , a control unit 120 , a driving unit 140a , a power supply unit 140b , a sensor unit 140c and autonomous driving. It may include a part 140d.
- the antenna unit 108 may be configured as a part of the communication unit 110 .
- Blocks 110/130/140a-140d correspond to blocks 110/130/140 of FIG. 24, respectively.
- the communication unit 110 may transmit and receive signals (eg, data, control signals, etc.) with external devices such as other vehicles, base stations (e.g., base stations, roadside units, etc.), servers, and the like.
- the controller 120 may perform various operations by controlling elements of the vehicle or the autonomous driving vehicle 100 .
- the controller 120 may include an Electronic Control Unit (ECU).
- the driving unit 140a may cause the vehicle or the autonomous driving vehicle 100 to run on the ground.
- the driving unit 140a may include an engine, a motor, a power train, a wheel, a brake, a steering device, and the like.
- the power supply unit 140b supplies power to the vehicle or the autonomous driving vehicle 100 , and may include a wired/wireless charging circuit, a battery, and the like.
- the sensor unit 140c may obtain vehicle status, surrounding environment information, user information, and the like.
- the sensor unit 140c includes an inertial measurement unit (IMU) sensor, a collision sensor, a wheel sensor, a speed sensor, an inclination sensor, a weight sensor, a heading sensor, a position module, and a vehicle forward movement.
- IMU inertial measurement unit
- a collision sensor a wheel sensor
- a speed sensor a speed sensor
- an inclination sensor a weight sensor
- a heading sensor a position module
- a vehicle forward movement / may include a reverse sensor, a battery sensor, a fuel sensor, a tire sensor, a steering sensor, a temperature sensor, a humidity sensor, an ultrasonic sensor, an illuminance sensor, a pedal position sensor, and the like.
- the autonomous driving unit 140d includes a technology for maintaining a driving lane, a technology for automatically adjusting speed such as adaptive cruise control, a technology for automatically driving along a predetermined route, and a technology for automatically setting a route when a destination is set. technology can be implemented.
- the communication unit 110 may receive map data, traffic information data, and the like from an external server.
- the autonomous driving unit 140d may generate an autonomous driving route and a driving plan based on the acquired data.
- the controller 120 may control the driving unit 140a to move the vehicle or the autonomous driving vehicle 100 along the autonomous driving path (eg, speed/direction adjustment) according to the driving plan.
- the communication unit 110 may obtain the latest traffic information data from an external server non/periodically, and may acquire surrounding traffic information data from surrounding vehicles.
- the sensor unit 140c may acquire vehicle state and surrounding environment information.
- the autonomous driving unit 140d may update the autonomous driving route and driving plan based on the newly acquired data/information.
- the communication unit 110 may transmit information about a vehicle location, an autonomous driving route, a driving plan, and the like to an external server.
- the external server may predict traffic information data in advance using AI technology or the like based on information collected from the vehicle or autonomous driving vehicles, and may provide the predicted traffic information data to the vehicle or autonomous driving vehicles.
- the embodiments of this document have been mainly described focusing on the signal transmission/reception relationship between the terminal and the base station.
- This transmission/reception relationship extends equally/similarly to signal transmission/reception between a terminal and a relay or a base station and a relay.
- a specific operation described in this document to be performed by a base station may be performed by an upper node thereof in some cases. That is, it is obvious that various operations performed for communication with the terminal in a network including a plurality of network nodes including the base station may be performed by the base station or other network nodes other than the base station.
- the base station may be replaced by terms such as a fixed station, a Node B, an eNode B (eNB), and an access point.
- the terminal may be replaced with terms such as User Equipment (UE), Mobile Station (MS), and Mobile Subscriber Station (MSS).
- UE User Equipment
- MS Mobile Station
- MSS Mobile Subscriber Station
- Embodiments according to this document may be implemented by various means, for example, hardware, firmware, software, or a combination thereof.
- an embodiment of this document includes one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), FPGAs ( field programmable gate arrays), a processor, a controller, a microcontroller, a microprocessor, and the like.
- ASICs application specific integrated circuits
- DSPs digital signal processors
- DSPDs digital signal processing devices
- PLDs programmable logic devices
- FPGAs field programmable gate arrays
- an embodiment of the present document may be implemented in the form of a module, procedure, function, etc. that perform the functions or operations described above.
- the software code may be stored in the memory unit and driven by the processor.
- the memory unit may be located inside or outside the processor, and may transmit/receive data to and from the processor by various well-known means.
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Abstract
Description
| Node Type | Max. Tx Power (P A) | Thermal Noise. (BW=20MHz) | Receiver NF | Receiver Thermal Noise Level | Self-IC Target (P A- TN-NF) |
| Macro eNB | 46dBm | -101dBm | 5dB (for eNB) | -96dBm | 142 dB |
| Pico eNB | 30dBm | 126 dB | |||
| Femto eNB,WLAN AP | 23dBm | 119 dB | |||
| UE | 23dBm | 9dB(for UE) | -92dBm | 115 dB |
Claims (15)
- 무선 통신 시스템에서 단말이 신호를 송수신하는 방법에 있어서,기지국으로부터 주파수 구성 정보를 수신하는 단계;상기 기지국으로부터 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 수신하는 단계;상기 기지국으로부터 상기 DCI에 기초하여 하향링크 신호를 수신하는 단계; 및상기 기지국으로 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 송신하는 단계를 포함하며,상기 주파수 구성 정보는 상기 하향링크 신호가 수신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 수신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 방법.
- 제 1항에 있어서,상기 DCI는 상기 주파수 구성 정보의 적용 여부를 나타내는 필드를 포함하고,상기 주파수 구성 정보의 적용 여부를 나타내는 필드의 값이 1로 셋팅되는 경우에 기초하여 상기 주파수에 관한 정보를 이용하는 것인, 방법.
- 제 1항에 있어서,상기 수신된 하향링크 신호 중 상기 L의 길이에 해당하는 주파수 자원에서 수신되는 하향링크 신호의 제1 수신 전력을 측정하고,상기 수신된 하향링크 신호 중 상기 R의 길이에 해당하는 주파수 자원에서 수신되는 하향링크 신호의 제2 수신 전력을 측정하는 것을 포함하는, 방법.
- 제 3항에 있어서,상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK을 송신하는 단계는, 상기 측정된 제1 수신 전력 및 제2 수신 전력에 대한 정보를 송신하는 것을 포함하는, 방법.
- 제 4항에 있어서,상기 측정된 제1 전력 및 제2 전력에 대한 정보에 기초하여 스케줄링 정보를 수신하는 단계를 더 포함하는, 방법.
- 제 1항에 있어서,상기 주파수 구성 정보는 상위 계층 신호를 통해 수신되는 것인, 방법.
- 무선 통신 시스템에서 신호를 송수신하는 단말에 있어서,송수신기; 및프로세서를 포함하고,상기 송수신기는 기지국으로부터 주파수 구성 정보를 수신하고, 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 수신하고, 상기 DCI에 기초하여 하향링크 신호를 수신하고, 상기 기지국으로 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 송신하되,상기 주파수 구성 정보는 상기 하향링크 신호가 수신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 수신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 단말.
- 제 7항에 있어서,상기 DCI는 상기 주파수 구성 정보의 적용 여부를 나타내는 필드를 포함하고,상기 주파수 구성 정보의 적용 여부를 나타내는 필드의 값이 1로 셋팅되는 경우에 기초하여 상기 주파수에 관한 정보를 이용하는 것인, 단말.
- 제 7항에 있어서,상기 프로세서는 상기 수신된 하향링크 신호 중 상기 L의 길이에 해당하는 주파수 자원에서 수신되는 하향링크 신호의 제1 수신 전력을 측정하고, 상기 수신된 하향링크 신호 중 상기 R의 길이에 해당하는 주파수 자원에서 수신되는 하향링크 신호의 제2 수신 전력을 측정하는 것을 포함하는, 단말.
- 제 9항에 있어서, 상기 송수신기가 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK을 송신하는 것은, 상기 측정된 제1 수신 전력 및 제2 수신 전력에 대한 정보를 송신하는 것을 포함하는, 단말.
- 제 10항에 있어서, 상기 송수신기가 상기 측정된 제1 수신 전력 및 제2 수신전력에 대한 정보에 기초하여 스케줄링 정보를 수신하는 것을 더 포함하는, 단말.
- 무선 통신 시스템에서 기지국이 신호를 송수신하는 방법에 있어서,단말로 주파수 구성 정보를 송신하는 단계;상기 단말로 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 송신하는 단계;상기 단말로 상기 DCI에 기초하여 하향링크 신호를 송신하는 단계; 및상기 단말로부터 상기 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 수신하는 단계를 포함하며,상기 주파수 구성 정보는 상기 하향링크 신호가 송신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 송신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 방법.
- 무선 통신 시스템에서 신호를 송수신하는 기지국에 있어서,송수신기; 및프로세서를 포함하고,상기 송수신기는 단말로 주파수 구성 정보를 송신하고, 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 송신하고, 상기 DCI에 기초하여 하향링크 신호를 송신하고, 상기 단말로부터 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 수신하되,상기 주파수 구성 정보는 상기 하향링크 신호가 송신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 송신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 기지국.
- 단말을 위한 장치에 있어서,적어도 하나의 프로세서; 및상기 적어도 하나의 프로세서에 동작 가능하게 연결될 수 있고, 실행될 때 상기 적어도 하나의 프로세서로 하여금 동작들을 수행하게 하는 명령들을 저장하는 적어도 하나의 컴퓨터 메모리를 포함하고,기지국으로부터 주파수 구성 정보를 수신하는 단계;상기 기지국으로부터 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 수신하는 단계;상기 기지국으로부터 상기 DCI에 기초하여 하향링크 신호를 수신하는 단계; 및상기 기지국으로 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 송신하는 단계를 포함하며,상기 주파수 구성 정보는 상기 하향링크 신호가 수신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 수신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 단말을 위한 장치.
- 적어도 하나의 프로세서에 의해 실행될 때, 상기 적어도 하나의 프로세서가 단말에 대한 동작을 수행하게 하는 명령을 포함하는 적어도 하나의 컴퓨터 프로그램을 저장하는 컴퓨터 판독 가능 저장 매체에 있어서, 상기 동작은:기지국으로부터 주파수 구성 정보를 수신하는 단계;상기 기지국으로부터 하향링크 제어 정보(downlink control information, DCI)를 포함하는 제어 채널을 수신하는 단계;상기 기지국으로부터 상기 DCI에 기초하여 하향링크 신호를 수신하는 단계; 및상기 기지국으로 상기 수신된 하향링크 신호에 대한 HARQ-ACK/NACK (hybrid automatic repeat and request acknowledgement/negative-ack)을 송신하는 단계를 포함하며,상기 주파수 구성 정보는 상기 하향링크 신호가 수신되는 가장 낮은 주파수로부터의 소정의 주파수 자원(resource)의 길이 L에 대한 정보와 상기 하향링크 신호가 수신되는 가장 높은 주파수로부터의 소정의 주파수 자원의 길이 R에 대한 정보를 포함하고,상기 DCI는 상기 길이 L 및 R을 나타내는 인덱스를 포함하는, 컴퓨터 판독 가능 저장 매체.
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| PCT/KR2020/007101 WO2021246541A1 (ko) | 2020-06-02 | 2020-06-02 | 전 이중 통신을 지원하는 무선통신시스템에서 데이터를 송수신하는 방법 및 이를 위한 장치 |
| US17/925,866 US12323958B2 (en) | 2020-06-02 | 2020-06-02 | Method for transmitting/receiving data in wireless communication system supporting full duplex communication, and apparatus therefor |
| KR1020227039903A KR20230006500A (ko) | 2020-06-02 | 2020-06-02 | 전 이중 통신을 지원하는 무선통신시스템에서 데이터를 송수신하는 방법 및 이를 위한 장치 |
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| PCT/KR2020/007101 WO2021246541A1 (ko) | 2020-06-02 | 2020-06-02 | 전 이중 통신을 지원하는 무선통신시스템에서 데이터를 송수신하는 방법 및 이를 위한 장치 |
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| US20240237046A9 (en) * | 2021-04-15 | 2024-07-11 | Qualcomm Incorporated | Air to ground signaling enhancement for interference compensation |
| WO2025166702A1 (zh) * | 2024-02-07 | 2025-08-14 | 北京小米移动软件有限公司 | 信息处理方法、通信设备及存储介质 |
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| CN104901775B (zh) * | 2014-03-09 | 2018-12-21 | 上海朗帛通信技术有限公司 | 一种在非授权频谱上的通信方法和装置 |
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| CN109639398B (zh) * | 2017-10-09 | 2021-12-31 | 华为技术有限公司 | Harq-ack反馈码本的发送方法、装置及设备 |
| WO2020032757A1 (ko) * | 2018-08-10 | 2020-02-13 | 엘지전자 주식회사 | 비면허 대역을 지원하는 무선 통신 시스템에서 신호를 송수신하는 방법 및 이를 지원하는 장치 |
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| US20230189229A1 (en) | 2023-06-15 |
| US12323958B2 (en) | 2025-06-03 |
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