WO2019148400A1 - 一种信号发送、接收、确定资源的方法及设备 - Google Patents
一种信号发送、接收、确定资源的方法及设备 Download PDFInfo
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- WO2019148400A1 WO2019148400A1 PCT/CN2018/074838 CN2018074838W WO2019148400A1 WO 2019148400 A1 WO2019148400 A1 WO 2019148400A1 CN 2018074838 W CN2018074838 W CN 2018074838W WO 2019148400 A1 WO2019148400 A1 WO 2019148400A1
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- power headroom
- bit field
- terminal device
- mac
- indicate
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/14—Separate analysis of uplink or downlink
- H04W52/146—Uplink power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/30—Transmission power control [TPC] using constraints in the total amount of available transmission power
- H04W52/36—Transmission power control [TPC] using constraints in the total amount of available transmission power with a discrete range or set of values, e.g. step size, ramping or offsets
- H04W52/365—Power headroom reporting
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/54—Signalisation aspects of the TPC commands, e.g. frame structure
- H04W52/58—Format of the TPC bits
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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
Definitions
- the present application relates to the field of communications technologies, and in particular, to a method and a device for transmitting, receiving, and determining resources.
- the uplink power control in the wireless communication system is very important. Through the uplink power control, the terminal device can ensure the quality of the uplink data, reduce the interference to the system and other users as much as possible, and extend the battery life of the terminal device. .
- the terminal device sends a power headroom report (PHR) to the base station, and the base station controls the uplink sending power of the terminal device according to the PHR sent by the terminal device.
- PHR power headroom report
- the PHR is the third message (msg3) of the terminal device in the random access procedure,
- the device is sent to the base station by means of a media access control (MAC) control element (CE).
- MAC media access control
- the embodiments of the present invention provide a method and a device for sending, receiving, and determining resources, which are used to reasonably avoid power waste and interference to the network.
- a first method of transmitting a signal includes: generating a MAC CE, where the MAC CE is used to indicate a power headroom in a first power headroom set, or a power headroom in a second power headroom set; if the MAC CE is used to indicate the a power headroom in the first power headroom set, the MAC CE includes a first bit field and a second bit field, the first bit field is a reserved bit field, and the second bit field is used to indicate the a power headroom in the first power headroom set, if the MAC CE is used to indicate a power headroom in the second power headroom set, the MAC CE includes a third bit field, the third bit field And indicating a power headroom in the second power headroom set, where the third bit field includes a bit of the first bit field and a bit of the second bit field, and sends the MAC CE to a network device. .
- a first signal receiving method is provided, which can be performed by a network device, such as an access network device, such as a base station.
- the method includes: receiving, by a terminal device, a MAC CE, where the MAC CE is used to indicate a power headroom in a first power headroom set, or a power headroom in a second power headroom set, according to the MAC CE included
- the second bit field determines a power headroom in the first power headroom set, the MAC CE includes a first bit field and the second bit field, and the first bit field is a reserved bit field; or Determining a power headroom in the second power headroom set according to a third bit field included by the MAC CE, where the third bit field includes a bit of the first bit field and a bit of the second bit field .
- the terminal device indicates the power headroom of the terminal device by using the third bit field included in the MAC CE, where the bit of the second bit field included in the third bit field is the original reserved bit field in the MAC CE.
- the embodiment of the present application utilizes a bit field that is not originally utilized in the MAC CE to indicate the power headroom together with the first bit field originally used to indicate the power headroom in the MAC CE, because it is used to indicate the power headroom.
- the number of bits is increased, and the power headroom that can be indicated is correspondingly increased.
- the indicated power headroom described in the embodiment of the present application can be understood as indicating the level of the PHR, and the level of the instructable PHR is correspondingly increased.
- the PHR of the terminal device can be divided into more power headroom levels, so that the amount of power headroom included in each power headroom level is small, thus reducing the granularity of reporting.
- the terminal device can report a more precise power headroom, and the network device can perform more accurate power control on the terminal device, so that the terminal device can use the appropriate power. It is sent, at the same time to ensure the transmission quality, and avoid wasting power, reasonable to avoid the interference caused to the network.
- the fourth bit field is a reserved bit field in the MAC CE;
- the MAC CE is used to indicate a power headroom in the second power headroom set, and the fourth bit field is used to indicate that the power headroom is indicated by the third bit field.
- the method of the second aspect further includes: the MAC CE further includes a fourth bit field, if the MAC CE is used to indicate a power headroom in the first power headroom set, the fourth bit field a reserved bit field in the MAC CE; if the MAC CE is used to indicate a power headroom in the second power headroom set, determining, by the fourth bit field, by using the third bit field indication Power headroom.
- the MAC CE can be used to indicate the power headroom in the first power headroom set, it can also be used to indicate the power headroom in the second power headroom set. Therefore, for the network device, it is necessary to know exactly what the MAC CE indicates. Which power headroom is the power headroom in order to determine the power headroom of the terminal equipment based on the corresponding power headroom set and MAC CE. Therefore, one way is to indicate, by the MAC CE, whether the power headroom is indicated by the third bit field or the power headroom by the first bit field and the second bit field, but the embodiment of the present application focuses on The case where the power headroom is indicated by the third bit field, it can be considered that the power headroom is indicated by the MAC bit indication through the third bit field.
- the power headroom to which the specifically indicated power headroom belongs can be notified to the network device, so that the network device can determine the power headroom of the terminal device according to the correct power headroom set, and improve the accuracy of the determined power headroom. Also avoid mistakes.
- the method of the first aspect further includes: transmitting, to the network device, first signaling, where the first signaling is used to indicate that a power headroom is indicated by the third bit field; or
- the CCCH sends the MAC CE to the network device, where the logical channel number of the CCCH is identified as a first identifier, and the first identifier is used to indicate that the power margin is indicated by the third bit field.
- the method of the second aspect further includes: receiving, by the terminal device, first signaling, where the first signaling is used to indicate that a power headroom is indicated by the third bit field; or
- the terminal device receives the MAC CE, and the logical channel number of the CCCH is identified as a first identifier, where the first identifier is used to indicate that the power margin is indicated by the third bit field.
- the first signaling is used to indicate to the network device that the power headroom is indicated by the third bit field, and the first signaling is, for example, high layer signaling, such as RRC signaling, or may be other. Signaling, or alternatively, may indicate by the logical channel number of the CCCH that the power headroom is indicated by the third bit field.
- the bits in the MAC CE can be used more to indicate the power headroom, and further increase the MAC CE for indicating the power remaining.
- the amount of bits enables the indicated power headroom to be further increased, so that the power headroom level can be further divided, and the power headroom included in each power headroom level can be less, which further improves the reporting. The accuracy of the power headroom.
- the method of the first aspect further comprises: receiving, from the network device, second signaling, the second signaling being used to indicate that a third bit field included by the MAC CE indicates a power headroom.
- the method of the second aspect further includes: sending, to the terminal device, second signaling, where the second signaling is used to indicate that the third bit field included by the MAC CE indicates a power headroom.
- the terminal device may be supported or required to indicate the power headroom through the third bit field, or may also support or require the terminal device to indicate the power headroom through the first bit field and the second bit field. Therefore, the network device can notify the terminal device of the objective condition (ie, whether it is supported) or the requirement of the network device in advance by using the second signaling, for example, the second signaling is used to indicate that the power headroom is indicated by the third bit field, and then the terminal device is used.
- the power headroom can be indicated by the third bit field, so that the indication manner of the terminal device is consistent with the cognitive mode of the network device, and the probability of error is reduced.
- the second signaling is, for example, broadcast signaling. In strict speaking, the network device actually broadcasts the second signaling instead of sending the second signaling to a certain device. However, the second signaling is also received as the terminal device, so the network device can also be considered to send the second signaling to the terminal device.
- a second method of transmitting a signal which method can be performed by a terminal device.
- the method includes: generating a MAC CE, where the MAC CE is used to indicate a power headroom in a first power headroom set or a power headroom in a second power headroom set, where the MAC CE includes a first bit field and a first a second bit field, if the MAC CE is used to indicate a power headroom in the first power headroom set, the first bit field is a reserved bit field, and the second bit field is used to indicate the a power headroom in a power headroom set, wherein the first bit field and the second bit field are used to indicate a location if the MAC CE is used to indicate a power headroom in the second power headroom set Deriving a power headroom in the second set of power headrooms, and transmitting the MAC CE to the network device.
- a second signal receiving method is provided, which can be performed by a network device, such as an access network device, such as a base station.
- the method includes: receiving, by a terminal device, a MAC CE, where the MAC CE is used to indicate a power headroom in a first power headroom set, or a power headroom in a second power headroom set, where the MAC CE includes a first a bit field and a second bit field, determining a power headroom in the first power headroom set according to the second bit field, where the first bit field is a reserved bit field, or according to the first bit The domain and the second bit field determine a power headroom in the second set of power headroom.
- the terminal device indicates the power headroom of the terminal device by using the first bit field and the second bit field included in the MAC CE, where the second bit field is the original reserved bit field in the MAC CE, which is equivalent to
- the application embodiment uses the bit field originally unused in the MAC CE to indicate the power headroom together with the first bit field originally used to indicate the power headroom in the MAC CE, because the number of bits used to indicate the power headroom increases.
- the power headroom that can be indicated is correspondingly increased.
- the indicated power headroom described in the embodiment of the present application can be understood as indicating the level of the PHR, and the level of the instructable PHR is correspondingly increased.
- the PHR of the terminal device may be divided into more power headroom levels, so that the amount of power headroom included in each power headroom level is less, thereby reducing the granularity of reporting, and the terminal device may Reporting a more precise power headroom, and the network device can perform more accurate power control on the terminal device accordingly, so that the terminal device can use the appropriate power for data transmission. While the transmission quality is verified, power waste can be avoided and the interference caused to the network can be reasonably avoided.
- the MAC CE further includes a fourth bit field, where the fourth bit field is the MAC if the MAC CE is used to indicate a power headroom in the first power headroom set. a reserved bit field in the CE; if the MAC CE is used to indicate a power headroom in the second power headroom set, the fourth bit field is used to indicate that the first bit field and the first The two bit field indicates the power headroom.
- the method of the fourth aspect further includes: the MAC CE further includes a fourth bit field, if the MAC CE is used to indicate a power headroom in the first power headroom set, the fourth bit field a reserved bit field in the MAC CE; if the MAC CE is used to indicate a power headroom in the second power headroom set, determining, by the fourth bit field, by using the first bit field and The second bit field indicates a power headroom.
- the method of the third aspect further includes: transmitting, to the network device, first signaling, where the first signaling is used to indicate that a power headroom is indicated by the third bit field; or
- the CCCH sends the MAC CE to the network device, where the logical channel number of the CCCH is identified as a first identifier, and the first identifier is used to indicate that the power margin is indicated by the third bit field.
- the method of the fourth aspect further includes: receiving, by the terminal device, first signaling, where the first signaling is used to indicate that a power headroom is indicated by the first bit field and the second bit field; Or, the MAC CE is received from the terminal device by using a CCCH, where the logical channel number of the CCCH is identified as a first identifier, where the first identifier is used to indicate that the first bit field and the second bit field are Indicates the power headroom.
- the method of the third aspect further includes: receiving, by the network device, second signaling, where the second signaling is used to indicate that a third bit field included by the MAC CE indicates a power headroom.
- the method of the fourth aspect further includes: sending, to the terminal device, second signaling, where the second signaling is used to indicate that the first bit field and the second bit field included by the MAC CE indicate a power headroom.
- bit field for indicating the power headroom is understood as an overall bit field (ie, the third bit field), and in the method of the third aspect and the method of the fourth aspect, it is used to indicate the power headroom
- the bit field is understood to be two independent bit fields (i.e., the first bit field and the second bit field), which are similar with respect to other embodiments and the like. Therefore, with regard to the technical effects of the corresponding method in the method of the third aspect and the method of the fourth aspect, reference may be made to the related description of the method in the method of the first aspect and the method of the second aspect.
- a third signal transmitting method which can be performed by a terminal device.
- the method includes: when in a connected state, generating a MAC CE carrying a BSR, the MAC CE further comprising at least 3 bits, the at least 3 bits being used to indicate a power headroom; and sending the MAC CE to a network device.
- a third signal receiving method is provided, which can be performed by a network device, such as an access network device, such as a base station.
- the method includes: receiving a MAC CE from a terminal device; determining a power headroom of the terminal device according to at least 3 bits included in the MAC CE, and obtaining a BSR from the MAC CE.
- the terminal device may indicate the power headroom of the terminal device to the network device in the connected state.
- the terminal device may adopt the embodiment of the present application.
- the provided mode indicates the power headroom of the terminal device to the network device to improve the uplink power control performance.
- the terminal device can send the power headroom of the BSR and the terminal device together in one MAC CE, thereby contributing to saving signaling overhead.
- the power headroom reported by the terminal device may be a power headroom in the first power headroom set, or may be a power headroom in the second power headroom set.
- the power headroom in the set, then, the PHR can be re-divided into more power headroom levels relative to the four power headroom levels of Table 1, the range of values of the power headroom in the terminal equipment
- the second power headroom set provided by the embodiment of the present application can provide a finer granularity of partitioning, so that the power headroom included in each power headroom level is compared with the current first power headroom.
- the amount of the collection may be reduced, and the embodiment of the present application also provides more bits to indicate the power headroom of the terminal device, which is adapted to the newly provided power headroom set, thereby reducing the reporting granularity, and the terminal is
- the device can report a more precise power headroom, and the network device can perform more accurate power control on the terminal device accordingly, so that the terminal device can use the appropriate power for data transmission, and ensure the transmission quality. At the same time, but also to avoid wasting power, reasonable to avoid the interference caused to the network.
- the MAC CE carrying the BSR is generated if at least one of the following is satisfied:
- the difference between the first downlink path loss of the terminal device and the second downlink path loss of the terminal device is greater than a first threshold, where the first downlink path loss is a current downlink path loss of the terminal device, and the second downlink The path loss is a downlink path loss when the terminal device indicates the power headroom of the terminal device to the network device most recently;
- the difference between the power headroom and the first power headroom of the terminal device is greater than a second threshold, where the first power headroom is a power headroom that the terminal device sends to the network device last time;
- the first downlink path loss of the terminal device is greater than a third threshold, and the first downlink path loss is a current downlink path loss of the terminal device;
- the power headroom is greater than a fourth threshold.
- the terminal device When the terminal device is in the connected state, there may be more opportunities for the BSR to be sent to the network device. Then, the terminal device can indicate the power headroom of the terminal device each time the BSR is sent. Or, because the power headroom of the terminal device may not continue to change, if the power headroom is continuously indicated to the network device, it may not be necessary, or even cause some interference to the network device, and it also takes extra Signaling overhead.
- the embodiment of the present application further provides a judging mechanism, and the terminal device can determine whether the power headroom of the terminal device is to be indicated to the network device by using the judging mechanism, so that the power headroom can be effectively reported frequently.
- the judging mechanism is more flexible, and at least one of them can be selected for use in practical applications.
- the method of the fifth aspect further includes: receiving, by the network device, first signaling, where the first signaling is configured to indicate a power headroom when transmitting the BSR to the network device .
- the method of the sixth aspect further includes: sending, to the terminal device, first signaling, where the first signaling is used to configure the terminal device to indicate a power headroom when transmitting a BSR to the network device. .
- the terminal device may support or require the power device to indicate the power headroom when transmitting the BSR to the network device, or may not support or require the terminal device to indicate the power headroom when transmitting the BSR to the network device. Therefore, if the network device supports or requires the terminal device to indicate the power headroom when transmitting the BSR to the network device, the terminal device can be configured by using the first signaling, so that the terminal device can adopt the manner provided by the embodiment of the present application.
- the power headroom is indicated together, and if the network device is not configured, the terminal device may not indicate the power headroom when transmitting the BSR to the network device, so that the operation mode of the terminal device and the network device are Support conditions or requirements are consistent, reducing the chance of errors.
- the first signaling is, for example, broadcast signaling. In strict speaking, the network device actually broadcasts the first signaling instead of sending the first signaling to a certain device. However, the first signaling is also received as the terminal device, so the network device may also be considered to send the first signaling to the terminal device.
- a first method of determining a resource is provided, the method being executable by a terminal device.
- the method includes: obtaining first resource information indicated by a network device, where the first resource information is used to send msg3, where the first resource information includes a modulation coding scheme parameter of msg3 and a resource unit number parameter used by msg3, according to the And determining, by the true subset of the parameters included in the first resource information, the second resource information, where the second resource information is used to actually send msg3, where the second transport block size is smaller than the first transport block size, and the second transport block size is For the transport block size of msg3 included in the second resource information, the first transport block size is a transport block size of msg3 included in the first resource information.
- the data early transmission process may be used, and the terminal device may directly use the redundant resources allocated by the network device without using a large number of padding bits, so that the terminal device can transmit information to the network device. It also helps to reduce the power consumption of the terminal device.
- a second method of determining a resource is provided, the method being executable by a terminal device.
- the method includes: obtaining first resource information indicated by a network device, where the first resource information is used to send msg3, where the first resource information includes an MCS parameter of msg3 and a resource unit number parameter used by msg3, and determines a first transport block. If the size is greater than the second transport block size, the second resource information is re-determined, and the second resource information includes a transport block size that is the second transport block size.
- the second transport block size is a transport block size required for the terminal device to actually send the msg3, and the first transport block size is a transport block size of the msg3 included in the first resource information.
- the data early transmission process may be used, and if the network device allocates too many resources, the terminal device may completely re-determine the resource, and the terminal device is a resource that is re-determined according to the resource that the terminal device actually transmits the msg3, thereby
- the determined resources are in line with the actual transmission requirements of the terminal device, and are not excessive, so that the terminal device does not need to add a large number of padding bits, and on the basis of enabling the terminal device to transmit information to the network device, it also helps to reduce the terminal device. Power consumption.
- a third method of determining a resource is provided, the method being executable by a terminal device.
- the method includes: obtaining a plurality of resource information indicated by the network device, where each of the plurality of resource information is used to send msg3, where each resource information includes a modulation coding scheme parameter of msg3 and a resource unit used by msg3
- the number parameter determines, according to the size of the msg3 to be sent, the msg3 to be actually sent by using the first resource information in the multiple resource information.
- the network device may allocate multiple resource information, so that the terminal device may select one resource information from multiple resource information to use, so that the terminal device follows the indication of the network device and utilizes the data early transmission process.
- the terminal device can select the more suitable resource information to transmit the msg3, and does not need to add a large number of padding bits.
- it also helps to reduce the power consumption of the terminal device.
- obtaining multiple resource information indicated by the network device including: receiving a random access response message from the network device, where the random access response message carries the multiple resource information, the random access The incoming response message is also used to indicate the quantity of the plurality of resource information.
- the multiple access resource information may be carried by the random access response message, and the quantity of the multiple resource information may be indicated by the random access response message, so that the terminal device can receive the random access response message, and then Determining the quantity of the plurality of resource information carried by the random access response message, thereby correctly obtaining the plurality of resource information. And there is no need to indicate the number of multiple resource information through additional signaling, which helps to save transmission resources.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the first aspect or the first aspect described above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device can include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the second aspect or the second aspect described above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in hardware by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the third or third aspect above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device can include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any one of the possible aspects of the fourth aspect or the fourth aspect described above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the fifth or fifth aspect above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device can include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the sixth or sixth aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver can perform the respective functions of the methods provided in the seventh aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided in the eighth or eighth aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processor and a transceiver.
- the processor and transceiver may perform the respective functions of the methods provided by any of the possible aspects of the ninth or ninth aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible aspects of the first aspect or the first aspect described above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the design of the above method. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible aspects of the second aspect or the second aspect described above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible aspects of the third aspect or the third aspect described above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible designs of the fourth aspect or the fourth aspect described above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible aspects of the fifth aspect or the fifth aspect described above.
- a communication device such as a network device.
- the network device has the function of implementing the network device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the network device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible aspects of the sixth aspect or the sixth aspect described above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module can perform the corresponding functions in the methods provided in the seventh aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided in the eighth or eighth aspect above.
- a communication device such as a terminal device.
- the terminal device has the function of implementing the terminal device in the above method design. These functions can be implemented in hardware or in software by executing the corresponding software.
- the hardware or software includes one or more units corresponding to the functions described above.
- the specific structure of the terminal device may include a processing module and a transceiver module.
- the processing module and the transceiver module may perform the respective functions of the methods provided by any of the possible designs of the above ninth or ninth aspect.
- a communication device may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any of the above-described first aspect or any of the possible aspects of the first aspect.
- a communication device may be a network device in the above method design, or a chip disposed in the network device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the second aspect or the second aspect described above.
- a communication device may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the third aspect or the third aspect described above.
- a communication device in a thirty-first aspect, may be a network device in the above method design, or a chip disposed in the network device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the fourth aspect or the fourth aspect described above.
- a communication device in a thirty-second aspect, may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the fifth aspect or the fifth aspect described above.
- a communication device may be a network device in the above method design, or a chip disposed in the network device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the sixth aspect or the sixth aspect described above.
- a communication device in a thirty-fourth aspect, is provided.
- the communication device may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the seventh aspect or the seventh aspect described above.
- a communication device in a thirty-fifth aspect, is provided.
- the communication device may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any one of the possible aspects of the eighth aspect or the eighth aspect described above.
- a communication device in a thirty-sixth aspect, may be a terminal device in the above method design, or a chip disposed in the terminal device.
- the communication device includes a memory for storing computer executable program code, and a processor coupled to the memory.
- the program code stored in the memory includes instructions which, when executed by the processor, cause the communication device to perform the method of any of the above-described ninth or ninth aspects of the possible design.
- a first communication system includes a terminal device and a network device, wherein the terminal device is configured to generate a MAC CE, where the MAC CE is used to indicate the first power headroom set a power headroom, or a power headroom in the second power headroom set; if the MAC CE is used to indicate a power headroom in the first power headroom set, the MAC CE includes a first bit field and a second bit field, where the first bit field is a reserved bit field, and the second bit field is used to indicate a power headroom in the first power headroom set, if the MAC CE is used to indicate the a power headroom in the second power headroom set, the MAC CE includes a third bit field, the third bit field is used to indicate a power headroom in the second power headroom set, the third bit The domain includes a bit of the first bit field and a bit of the second bit field, and sends the MAC CE to the network device, where the network device is configured to generate a MAC CE, where the MAC CE is used to
- a second communication system includes a terminal device and a network device, where the terminal device is configured to generate a MAC CE, where the MAC CE is used to indicate a first power headroom set The power headroom or the power headroom in the second power headroom set, the MAC CE includes a first bit field and a second bit field, if the MAC CE is used to indicate the first power headroom set a power headroom, the first bit field is a reserved bit field, and the second bit field is used to indicate a power headroom in the first power headroom set, if the MAC CE is used to indicate the a power headroom in the set of two power heads, the first bit field and the second bit field are used to indicate a power headroom in the second power headroom set, and send the MAC to the network device a network device, configured to receive a MAC CE from the terminal device, where the MAC CE is used to indicate a power headroom in a first power headroom set, or a
- a third communication system includes a terminal device and a network device, where the terminal device is configured to generate a MAC CE carrying a BSR when the connection state is in a connected state, where the MAC CE further Included at least 3 bits, the at least 3 bits are used to indicate a power headroom; the MAC CE is sent to the network device; the network device is configured to receive a MAC CE from the terminal device; and include according to the MAC CE At least 3 bits of the terminal determine a power headroom of the terminal device, and obtain a BSR from the MAC CE.
- the communication system provided in the thirty-seventh aspect, the communication system provided in the thirty-eighth aspect, and the communication system provided in the thirty-ninth aspect may be different three communication systems, or at least two of them may also be The same communication system.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the first aspect or the first aspect of the first aspect The method described in the above.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the second aspect or the second aspect described above The method described in the design.
- a forty-second aspect a computer storage medium is provided, wherein the computer readable storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the third aspect or the third aspect described above The method described in the design.
- a forty-third aspect a computer storage medium is provided, wherein the computer readable storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the fourth aspect or the fourth aspect described above The method described in the design.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the fifth aspect or the fifth aspect described above The method described in the design.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the sixth aspect or the sixth aspect described above The method described in the design.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the seventh aspect or the seventh aspect described above The method described in the design.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any one of the eighth aspect or the eighth aspect described above The method described in the design.
- a computer storage medium stores instructions that, when run on a computer, cause the computer to perform any of the above-described ninth or ninth aspects The method described in the design.
- a forty-ninth aspect a computer program product comprising instructions, wherein the computer program product stores instructions that, when run on a computer, cause the computer to perform any of the first aspect or the first aspect described above The method described in the design.
- a fiftieth aspect a computer program product comprising instructions, wherein instructions stored in a computer program product, when executed on a computer, cause the computer to perform any one of the second aspect or the second aspect described above The method described in the design.
- a fifty-first aspect provides a computer program product comprising instructions, wherein the computer program product stores instructions that, when run on a computer, cause the computer to perform any of the third aspect or the third aspect described above The method described in the design.
- a fifty-second aspect a computer program product comprising instructions, wherein instructions stored in a computer program product, when executed on a computer, cause the computer to perform any one of the fourth aspect or the fourth aspect described above The method described in the design.
- a fifty-third aspect a computer program product comprising instructions, wherein instructions stored in a computer program product, when executed on a computer, cause the computer to perform any one of the fifth aspect or the fifth aspect described above The method described in the design.
- a fifty-fourth aspect a computer program product comprising instructions, wherein the computer program product stores instructions that, when run on a computer, cause the computer to perform any one of the sixth aspect or the sixth aspect described above The method described in the design.
- a fifty-fifth aspect a computer program product comprising instructions, wherein instructions stored in a computer program product, when executed on a computer, cause the computer to perform any one of the seventh aspect or the seventh aspect described above The method described in the design.
- a fifty-sixth aspect a computer program product comprising instructions, wherein the computer program product stores instructions that, when run on a computer, cause the computer to perform any one of the eighth aspect or the eighth aspect described above The method described in the design.
- a fifty-seventh aspect a computer program product comprising instructions, wherein instructions stored in a computer program product, when executed on a computer, cause the computer to perform any one of the above ninth or ninth aspects The method described in the design.
- the embodiment of the present application utilizes a bit field that is not originally utilized in the MAC CE to indicate a power headroom together with a first bit field originally used to indicate a power headroom in the MAC CE, and the terminal device can report a more accurate power headroom.
- the network device can perform more accurate power control on the terminal device, so that the terminal device can use the appropriate power for data transmission, while ensuring the transmission quality, and avoiding power waste, and reasonably avoiding interference to the network.
- FIG. 1 is a schematic diagram of an application scenario according to an embodiment of the present application
- FIG. 2 is a flowchart of a first method for transmitting and receiving signals according to an embodiment of the present application
- FIG. 3 is a schematic diagram of a MAC CE included in msg3;
- FIG. 4 is a schematic diagram of a MAC CE capable of indicating a power headroom according to an embodiment of the present disclosure
- FIG. 5 is a flowchart of a second method for sending and receiving signals according to an embodiment of the present application
- FIG. 6 is a schematic diagram of a MAC CE carrying a BSR and a power headroom of a terminal device according to an embodiment of the present disclosure
- FIG. 7 is a flowchart of a first method for determining a resource according to an embodiment of the present application.
- FIG. 8 is a flowchart of a second method for determining resources according to an embodiment of the present application.
- FIG. 9 is a flowchart of a third method for determining resources according to an embodiment of the present application.
- FIG. 10 is a schematic structural diagram of a communication device that can be implemented by a terminal device according to an embodiment of the present disclosure
- FIG. 11 is a schematic structural diagram of a communication device that can be implemented by a network device according to an embodiment of the present disclosure
- FIG. 12 is a schematic structural diagram of a communication device that can be implemented by a terminal device according to an embodiment of the present disclosure
- FIG. 13 is a schematic structural diagram of a communication device that can be implemented by a network device according to an embodiment of the present disclosure
- FIG. 14 is a schematic structural diagram of a communication device that can be implemented by a terminal device according to an embodiment of the present disclosure
- FIG. 15 is a schematic structural diagram of a communication device that can be implemented by a terminal device according to an embodiment of the present disclosure
- FIG. 16 is a schematic structural diagram of a communication device that can be implemented by a terminal device according to an embodiment of the present disclosure
- 17A-17B are two schematic structural diagrams of a communication device according to an embodiment of the present application.
- a terminal device including a device that provides voice and/or data connectivity to a user, for example, may include a handheld device with wireless connectivity, or a processing device connected to a wireless modem.
- the terminal device can communicate with the core network via a radio access network (RAN) to exchange voice and/or data with the RAN.
- the terminal device may include a user equipment (UE), a wireless terminal device, a mobile terminal device, a subscriber unit, a subscriber station, a mobile station, a mobile station, and a remote station.
- Remote station access point (AP), remote terminal, access terminal, user terminal, user agent, or user Equipment (user device) and so on.
- a mobile phone or "cellular" phone
- a computer with a mobile terminal device a portable, pocket, handheld, computer built-in or in-vehicle mobile device, smart wearable device, and the like.
- PCS personal communication service
- SIP session initiation protocol
- WLL wireless local loop
- PDA personal digital assistant
- restricted devices such as devices with lower power consumption, or devices with limited storage capacity, or devices with limited computing capabilities. Examples include information sensing devices such as bar code, radio frequency identification (RFID), sensors, global positioning system (GPS), and laser scanners.
- RFID radio frequency identification
- GPS global positioning system
- the terminal device may also be a wearable device.
- a wearable device which can also be called a wearable smart device, is a general term for applying wearable technology to intelligently design and wear wearable devices such as glasses, gloves, watches, clothing, and shoes.
- a wearable device is a portable device that is worn directly on the body or integrated into the user's clothing or accessories. Wearable devices are more than just a hardware device, but they also implement powerful functions through software support, data interaction, and cloud interaction.
- Generalized wearable smart devices include full-featured, large-size, non-reliable smartphones for full or partial functions, such as smart watches or smart glasses, and focus on only one type of application, and need to work with other devices such as smartphones. Use, such as various types of smart bracelets for smart signs monitoring, smart helmets, smart jewelry, etc.
- a network device for example comprising a base station (e.g., an access point), may refer to a device in the access network that communicates over the air interface with the wireless terminal device over one or more cells.
- the network device can be used to convert the received air frame to an Internet Protocol (IP) packet as a router between the terminal device and the rest of the access network, wherein the remainder of the access network can include an IP network.
- IP Internet Protocol
- Network devices can also coordinate attribute management of air interfaces.
- the network device may include an evolved base station (NodeB or eNB or e-NodeB, evolutional Node B) in a long term evolution (LTE) system or an evolved LTE system (LTE-A), or It may also include a fifth generation mobile communication technology (5G), a next generation node B (gNB) in a new radio (NR) system, or may also include a cloud access network (CloudRAN).
- 5G fifth generation mobile communication technology
- gNB next generation node B
- NR new radio
- CloudRAN cloud access network
- the centralized unit (CU) and the distributed ynit (DU) in the system are not limited
- NB-IoT the current 3rd generation partnership project (3GPP) standard is based on cellular networks. By designing new air interfaces and making full use of the characteristics of narrowband technology to carry IoT services, this type of IoT Known as NB-IoT. Compared with the traditional cellular network, the services and terminal equipment of the NB-IoT system have the following characteristics:
- a NB-IoT base station may cover a large number of this type of terminal devices, such as the number of possible More than tens of thousands.
- the NB-IoT system requires lower power consumption of the terminal equipment, thereby saving the battery power of the terminal equipment and ensuring a long standby time of the terminal equipment, thereby saving the labor cost of replacing the battery.
- the NB-IoT system has many unique designs.
- the NB-IoT system does not have a PUCCH to simplify terminal equipment and reduce costs.
- the control channel of the NB-IoT system for example, a narrow physical downlink control channel (NPDCCH)
- a data channel for example, a narrow physical cownlink shared channel (NPDSCH)
- the narrow physical uplink shared channel (NPUSCH) adopts the method of repeated transmission, and the repeated transmission of hundreds of times for the same content improves the possibility of successful reception of a poorly covered terminal device.
- PHR which indicates how much transmission power the terminal device can use in addition to the transmission power used by the current physical uplink shared channel (PUSCH) transmission.
- the PHR is the terminal.
- PHR indicates how much transmission power of the terminal device can be used in addition to the current PUSCH transmission and the transmission power used by the physical uplink control channel (PUCCH) transmission.
- PUCCH physical uplink control channel
- the power headroom is defined as a reference for the network device to allocate uplink resource block (RB) resources.
- RB uplink resource block
- the PHR is the difference between the maximum transmission power allowed by the terminal device and the currently estimated PUSCH transmission power, for example, if the PH value is negative, it indicates that the current PUSCH transmission power has exceeded the maximum transmission power allowed by the terminal device.
- it may be considered to reduce the uplink RB resource allocation of the terminal device; and if the PH value is positive, the number of subsequent allocated uplink RBs may continue to increase.
- Random access procedure which refers to the process before the terminal device sends a random access preamble (preamble) to try to access the network and establish a basic signaling connection with the network device. Random access is a very critical step in mobile communication systems and the final step in establishing a communication link between a terminal device and a network device. For example, the terminal device performs information exchange with the network device through the random access process to complete subsequent operations, such as a call, a resource request, or a data transmission. In addition, the terminal device can also perform uplink time synchronization with the system through random access.
- the random access procedure can be divided into a competitive random access procedure and a non-contention random access procedure.
- the embodiment of the present application is mainly described by taking a contention-based random access procedure as an example.
- the contention-based random access procedure can generally include four steps:
- Step 1 The terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device, where the random access preamble is also referred to as the first message in the random access process.
- Msg1 The terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device, where the random access preamble is also referred to as the first message in the random access process.
- Step 2 The network device sends a random access response (RAR) message to the terminal device, where the terminal device receives the RAR message from the network device, where the RAR message is also referred to as the second message in the random access process. (msg2);
- Step 3 The terminal device sends the uplink signaling for establishing a radio resource control (RRC) connection to the network device, and the network device receives the uplink signaling from the terminal device.
- the uplink signaling is also referred to as msg3 in the random access process, and the uplink signaling may include an RRC signaling part and a MAC CE, and the RRC signaling may be different according to different scenarios, for example, an RRC connection establishment request. , RRC re-establishment request and RRC recovery request, etc.;
- Step 4 The network device sends an RRC connection setup message to the terminal device, where the terminal device receives an RRC connection setup message, where the RRC connection setup message is also referred to as a fourth message in the random access procedure (msg4). .
- system and “network” in the embodiments of the present application may be used interchangeably.
- Multiple means two or more.
- a plurality can also be understood as “at least two” in the embodiment of the present application.
- the character "/” unless otherwise specified, generally indicates that the contextual object is an "or" relationship.
- the 3rd generation partnership project (3GPP) standard has been based on cellular networks, and proposes solutions for the characteristics of the Internet of Things, such as the NB-IoT system, which utilizes the characteristics of narrowband technology to carry IoT services.
- the NB-IoT system uses a new air interface technology independent of the existing cellular network (long term evolution (LTE)), which has lower cost and lower supported speed and mobility.
- LTE long term evolution
- the PHR is only divided into four power headroom levels as shown in Table 1, wherein each power headroom level corresponds to the value of a plurality of specific power headrooms.
- the terminal device determines that the power headroom of the terminal device is the first power headroom, and determines which of the four power headroom levels shown in Table 1 the first power headroom belongs to, and sends the determination to the base station.
- the power headroom level, the base station determines the power headroom of the terminal device according to the power headroom level sent by the terminal device.
- each power headroom level Since there are currently only 4 power headroom levels, the range of power headroom covered by each power headroom level is relatively large, that is, the power headroom corresponding to each power headroom level has a relatively large value, resulting in The reporting granularity is also relatively large.
- the power headroom of the terminal device it is likely that the power headroom of the terminal device is originally the first power headroom, but the network device may determine that the power headroom of the terminal device is the second power headroom. It can be seen that the larger reporting granularity causes the reported power headroom to be less accurate, so that the power headroom of the terminal device determined by the network device is not accurate enough.
- the embodiment of the present application optimizes the method for reporting the power headroom in the NB-IoT to meet the requirements of the new application scenario.
- the embodiments of the present application can be applied to the NB-IoT system, and can also be applied to other similar communication systems.
- FIG. 1 it is a schematic diagram of an application scenario according to an embodiment of the present application.
- a network device and a plurality of terminal devices are included, and the terminal devices are terminal devices under the NB-IoT system, and include, for example, a refrigerator, a car, a television, and the like.
- the network device is for example an access network device, such as a base station.
- the network device and the at least one terminal device shown in FIG. 1 can be used to implement the technical solutions provided by the embodiments of the present application.
- the power headroom table can also be understood as a power headroom set.
- the power headroom table shown in Table 1 can be understood as a first power headroom set, and the new embodiment of the present application will provide new
- the power headroom table can also be understood as another power headroom set.
- a new power headroom table provided by the embodiment of the present application can be understood as a second power headroom set. That is to say, "table" and "collection", these two definitions can be replaced with each other in the embodiment of the present application.
- the first embodiment of the present invention provides a first method for transmitting and receiving signals.
- the terminal device indicates the power headroom of the terminal device when transmitting msg3 to the network device, that is, at the first In the signal transmitting and receiving method, the terminal device indicates the power headroom of the terminal device to the network device in the random access process.
- the terminal device indicates the power headroom of the terminal device to the network device, and it can also be understood that the terminal device indicates to the network device the power headroom level to which the power headroom of the terminal device belongs, or understands For example, the terminal device indicates the power headroom of the terminal device to the network device by indicating to the network device the power headroom to which the power headroom of the terminal device belongs.
- the embodiment of the present application provides at least one new power headroom table.
- the following is mainly to provide a new power headroom table as an example.
- a new power headroom table provided by the embodiment of the present application is referred to as a first power headroom table, and the first power headroom table can also be understood as a second power headroom set.
- At least five items are included in the first power headroom table, wherein each item may be in the form of any one of Table 1, and each item represents a power headroom level.
- the PHR can be re-divided into more power headroom levels than the four power headroom levels of Table 1, wherein each power headroom level can also be corresponding. a plurality of specific power headroom values, but with respect to the power headroom table shown in Table 1, each of the power headroom levels included in the at least one power headroom level included in the first power headroom table, The number of values of the corresponding power headroom is smaller than the value of the power headroom corresponding to one power headroom level included in the power headroom table shown in Table 1.
- the first power headroom table provided by the embodiment of the present application can provide a finer granularity of division, and thus the power included in each power headroom level, in the case that the range of the power headroom of the terminal device is constant.
- the value of the margin is reduced compared with the current Table 1, which reduces the reporting granularity, thereby improving the accuracy of the power headroom of the terminal device determined by the network device.
- different power headroom tables may include different power headroom levels, or power margin levels included in at least two power headroom tables. Can partially overlap.
- the power headroom table provided in the embodiment of the present application and the power headroom table shown in Table 1 may include different power headroom levels, or the included power headroom levels may partially overlap.
- the flow of the first method for transmitting and receiving signals is as follows.
- the network device sends the second signaling to the terminal device, where the terminal device receives the second signaling from the network device.
- the second signaling is used to indicate that the third bit field included by the MAC CE indicates the power headroom of the terminal device, or the second signaling is used to indicate the first bit field and the second bit field indication included by the MAC CE.
- the power headroom of the terminal equipment is used to indicate that the third bit field included by the MAC CE indicates the power headroom of the terminal device.
- the second signaling is used to notify the terminal device, and the network device supports or needs to use a new power headroom table.
- the following uses the first power headroom table as an example, or it is understood that the second signaling is used for Instructing the terminal device to use the first power headroom table when transmitting power headroom to the network device.
- the second signaling can be sent by broadcast.
- the terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device. It can be considered that at S22, the random access procedure begins.
- the network device sends a RAR message to the terminal device, where the terminal device receives the RAR message from the network device.
- the transmission resource of the msg3 indicated by the network device may be carried in the RAR message.
- the terminal device generates a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set, or to indicate a power headroom in the second power headroom set.
- the first power headroom set is the power headroom table shown in Table 1, and the second power headroom set is understood as the first power headroom table.
- the power headroom table when the terminal device indicates the power headroom of the terminal device to the network device, can use a new power headroom table, such as a first power headroom table.
- the terminal device can perform physical layer measurement to obtain the power headroom of the terminal device, and then refer to the first power headroom table to determine the power headroom level to which the power headroom of the terminal device belongs in the first power headroom table.
- the power headroom of the terminal device measured by the terminal device is a first power headroom
- the first power headroom table is determined to determine that the first power headroom belongs to the first power headroom level in the first power headroom table. Then, the terminal device sends the first power headroom level to the network device.
- the MAC CE includes a first bit field and a second bit field, where the first bit field is a reserved bit field, The second bit field is used to indicate a power headroom in the first set of power headroom.
- the MAC CE generated by the terminal device may include a first bit field and a second bit field, where the second bit field is a bit field in the MAC CE that is originally used to indicate a power headroom, where the first bit field is A reserved bit field, which can be referred to FIG. 3, is an illustration of the MAC CE carried in msg3.
- the bit field represented by the PH in FIG. 3 is used to indicate the power headroom of the terminal device, or to indicate the power headroom level to which the power headroom of the terminal device belongs, where R represents reserved, That is, reserved bits, or reserved bit fields, where the DV is used to indicate the data volume.
- a small cell is equally divided above the box, and one of the small cells represents one bit.
- the bit field represented by PH includes 2 bits, and one reserved bit includes 1 bit.
- the second bit field may include a bit field represented by the PH
- the first bit field may include a bit field represented by R, wherein R has two bit fields represented in FIG.
- the first bit field may include at least one of the 2 bit fields represented by R. If the terminal device indicates the power headroom of the terminal device by using the first power headroom set, that is, the terminal device needs to indicate the power headroom in the first power headroom set, the terminal device may generate the MAC CE as shown in FIG. The power headroom in the first set of power headroom is indicated by the second bit field.
- FIG. 4 is a schematic diagram of the MAC CE generated by the terminal device in the embodiment of the present application.
- DV is used to indicate the amount of data
- R is the reserved bit
- the second bit field includes the bit field represented by the PH
- the first bit field includes the bit field represented by the PHE.
- Figure 4 shows the MAC.
- the 1 bit field represented by the original R in the CE is used as the PHE bit field
- the PHE bit field and the PH bit field in FIG. 4 can be used to jointly indicate the power headroom of the terminal device, that is,
- FIG. 4 is an example of using the original one of the reserved bits to jointly indicate the power headroom of the terminal device with the PH bit field, and is not limited to this in practical applications.
- the original 2 may also be used together.
- the reserved bits are combined with the PH bit field to indicate the power headroom of the terminal device, that is, the power headroom of the terminal device is indicated by 4 bits, which is not limited in this embodiment. If the terminal device indicates the power headroom of the terminal device by using the second power headroom set, that is, the terminal device needs to indicate the power headroom in the second power headroom set, the terminal device may generate the MAC CE as shown in FIG. And jointly indicating the power headroom in the first power headroom set by the first bit field and the second bit field. In this case, the first bit field and the second bit field are two bit fields, and the terminal device jointly indicates the power headroom of the terminal device through two bit fields.
- the embodiment of the present application utilizes a bit field that is not originally utilized in the MAC CE to indicate the power headroom together with the first bit field originally used to indicate the power headroom level in the MAC CE, and the power headroom level that can be indicated corresponds to The number of power headrooms included in each power headroom is reduced, which reduces the granularity of reporting and improves the accuracy of the power headroom of the terminal equipment determined by the network device.
- the MAC CE includes a third bit field, and the third bit field is used to indicate the second power headroom set.
- the power margin, the third bit field comprising bits of the first bit field and bits of the second bit field.
- the first bit field and the second bit field are two independent bit fields.
- the first bit field and the second bit field may also be regarded as one bit field, for example.
- the third bit field it can be understood that after using the first power headroom table provided by the embodiment of the present application, the third bit field can be used to indicate the power headroom of the terminal device.
- the first partial bit and the second partial bit wherein the second partial bit is a bit originally used to indicate a power headroom in the MAC CE, and the first partial bit is an original pre-initiated in the MAC CE Leave the bit.
- the third bit field includes the bit of the first bit field and the bit of the second bit field, or it is understood that the third bit field includes the original first bit field and the second bit field, and is the first bit.
- the domain and the second bit field are combined into one bit field.
- the third bit field includes the bit represented by the PHE in FIG. 4 and the bit represented by the PH, wherein the bit represented by the PH is the second part of the bit, PHE The bit represented is the first part of the bit.
- the terminal device may generate the MAC CE as shown in FIG.
- the power headroom in the first set of power headroom is indicated by a third bit field. Because for the terminal device, if the second power headroom set is used to indicate the power headroom of the terminal device, it may be configured to directly use the third bit field to indicate the power headroom of the terminal device, that is, to the terminal device. The device may not perceive that the third bit field actually includes the original two bit fields, so this understanding is more in line with the specific implementation of the terminal device. Of course, this is only a different way of understanding, and the essence of the program is unchanged.
- the terminal device sends the MAC CE to the network device, where the network device receives the MAC CE from the terminal device.
- the terminal device may carry the MAC CE in the msg3 and send it to the network device, and then the network device receives the msg3 from the terminal device, and the MAC CE can be obtained by parsing the msg3.
- the embodiment of the present application provides a first power headroom table.
- the power headroom of the terminal device sent by the terminal device is determined according to the first power headroom table, and the network device also needs to be based on the first power.
- the margin table is used to determine the power headroom sent by the terminal device. Since there is also a power headroom table, that is, the power headroom table shown in Table 1, the first power headroom table is newly provided in the embodiment of the present application.
- the network device informs the terminal device in S21, the network device supports the The first bit field and the second bit field report power headroom, or the network device supports using the first power headroom table, but considering the capability of the terminal device, not all terminal devices may use the first power head.
- the quantity table for example, some old versions of the terminal device may only use the power headroom table shown in Table 1. Therefore, the network device needs to know which power headroom table the terminal device uses, which involves the terminal device needs. Inform the network device of the power headroom used.
- the terminal device indicates to the network device the used power headroom table, including but not limited to the following manners:
- the MAC CE further includes a fourth bit field, if the MAC CE is used to indicate a power headroom in the first power headroom set, and the fourth bit field is a reserved bit field in the MAC CE, if The MAC CE is used to indicate a power headroom in the second power headroom set, and the fourth bit field is used to indicate that the power headroom is indicated by the third bit field. It can be understood that the fourth bit field itself is a reserved bit field in the MAC CE, but if the MAC CE is used to indicate the power headroom in the second power headroom set, the fourth bit field can be added. The fourth bit field is utilized to indicate that the power headroom is indicated by the third bit field.
- one of the original reserved bit fields in the two reserved bit fields is used to jointly indicate the power headroom of the terminal device together with the original PH bit field.
- the remaining one reserved bit field in the original two reserved bit fields ie, the bit field indicated by R in FIG. 4
- the power headroom table that the terminal device can use includes the power headroom table shown in Table 1 and the first power headroom table provided by the embodiment of the present application, and the bit field indicated by R in FIG. 4 includes 1 bit. The value may be used to indicate a power headroom table.
- the value of the 1 bit is "1"
- the power headroom table to which the power head indicated by the MAC CE belongs is the first power headroom table.
- the value of the 1 bit is "0”
- the power headroom table to which the power head indicated by the MAC CE belongs is the power headroom table shown in Table 1.
- the value of the 1 bit is The relationship of the indicated power headroom table is merely an example, and is not limited to this.
- the power headroom of the terminal device and the power headroom table to which the power headroom belongs may be indicated together in the MAC CE, without using additional resources to indicate, and the transmission resource can be saved.
- the first signaling is, for example, RRC signaling.
- the terminal device can send the RRC signaling to the network device, and the network device receives the RRC signaling from the terminal device, where the RRC signaling can be used to indicate that the terminal device is in the MAC CE.
- the power headroom table to which the power headroom of the terminal device is indicated or is understood to be that the RRC signaling is used to indicate that the power headroom is indicated by the third bit field, or the RRC signaling is used to indicate that the first bit is passed.
- the domain and the second bit field indicate the power headroom.
- the terminal device indicates, in the RRC signaling of the msg3, a power headroom table to which the power headroom of the terminal device indicated in the MAC CE belongs.
- the indication form in the RRC signaling may be an indication of display, or may be an implicit indication, such as by indicating a version number of the terminal device.
- the number of bits that can be used to indicate the power headroom table in RRC signaling can be relatively large, and is applicable to a case where there are many power headroom tables.
- Mode c indicated by the logical channel number of the channel.
- the terminal device carries the MAC CE in the msg3, and sends the msg3 carrying the MAC CE to the network device through a common control channel (CCCH), and the network device receives the msg3 from the terminal device through the CCCH.
- CCCH can be considered to be invariant, but the same CCCH can also have multiple logical channel number identifiers, so different msg3 can be represented by the logical channel number identifier of the CCCH.
- the different msg3s described herein refer to msg3 carrying different MAC CEs, and the power headroom tables used are different, which are considered to be different MAC CEs.
- the power headroom table is understood to be that the logical channel number identifier of the CCCH is used to indicate that the power headroom is indicated by the third bit field, or the logical channel number identifier of the CCCH is used to indicate that the first bit field and the second bit are used.
- the field indicates the power headroom.
- the terminal device carries the generated MAC CE in the msg3, and sends the msg3 to the network device through the CCCH.
- the logical channel number identifier of the CCCH may be the first identifier, and if the power headroom table to which the power headroom of the terminal device indicated by the MAC CE belongs is the power headroom table shown in Table 1, the logical channel of the CCCH
- the number identifier may be a second identifier, that is, both the first identifier and the second identifier may be used to indicate a power headroom table to which the power headroom of the terminal device indicated by the MAC CE belongs.
- the reserved bit field in the MAC CE may be used to jointly indicate the terminal device with the PH domain.
- the power headroom extends the range of power headroom that msg3 can transmit, and can report a finer-grained power headroom.
- mode a, mode b, or mode c may be randomly selected to indicate a power headroom table, or may be configured by a network device to indicate which mode a, mode b, and mode c are used to indicate power.
- the balance table, or the protocol may also specify which of the specific usage modes a, b, and c to indicate the power headroom table, and is not limited in specific terms.
- the network device determines, according to the received second bit field of the MAC CE, a power headroom of the terminal device, or the network device determines, according to the received third bit field of the MAC CE, a power headroom of the terminal device.
- the network device determines, according to the second bit field included in the MAC CE, a power headroom in the first power headroom set.
- the MAC CE includes a first bit field and a second bit field, where the first bit field is a reserved bit field; or, if the MAC CE is used to indicate a power headroom in the second power headroom set, the network device is configured according to
- the third bit field included in the MAC CE determines a power headroom in the second power headroom set, and the third bit field includes a bit of the first bit field and a bit of the second bit field.
- the network device determines, according to the second bit field, a power headroom in the first power headroom set, where the first bit field is reserved. a bit field; or, if the MAC CE is used to indicate a power headroom in the second power headroom set, the network device determines a power headroom in the second power headroom set according to the first bit field and the second bit field .
- the power headroom indicated by the terminal device by the MAC CE is actually the power headroom to which the power headroom of the terminal device belongs, and the network device passes the power headroom indicated by the MAC CE after determining the power headroom table.
- the level is matched with the determined power headroom table to determine the power headroom of the terminal equipment.
- the network device may determine the power headroom level of the terminal device according to the second bit field, and finally determine the power headroom of the terminal device according to the first power headroom set;
- the network device is according to the first The bit field and the second bit field may determine a power headroom level of the terminal device, and according to the second power headroom set, the power headroom of the terminal device may be finally determined;
- the network device may determine a power headroom of the terminal device according to the third bit field.
- the level, and then according to the second power margin set, can finally determine the power headroom of the terminal device.
- the network device determines, according to the MAC CE, a power headroom table to which the power headroom of the terminal device belongs, if the terminal device passes the manner introduced in S25. If the b indicates the power headroom table, the network device may determine, according to the received RRC signaling, a power headroom table to which the power headroom of the terminal device indicated by the MAC CE belongs, if the terminal device indicates the power by using the mode c introduced in S25. The balance table, the network device may determine, according to the logical channel number of the CCCH carrying the msg3, a power headroom table to which the power headroom of the terminal device indicated by the MAC CE belongs.
- S21 to S23 are optional steps and are not necessarily executed.
- the PHR may be re-divided into more power headroom levels than the four power headroom levels of Table 1, and the range of values of the power headroom of the terminal device is constant.
- the first power headroom table provided by the embodiment of the present application can provide a finer granularity of partitioning, so that the power headroom included in each power headroom level has a value compared with the current table 1.
- Reduction, and the embodiment of the present application also provides more bits to indicate the power headroom of the terminal device, which is adapted to the newly provided power headroom table, thereby reducing the reporting granularity, and the terminal device can report more accurate power.
- the terminal device also indicates the power headroom of the terminal device when transmitting the msg3 to the network device, and may reuse the existing power headroom indicating the power headroom of the terminal device to some extent. The impact of the process is not too big, and it is more compatible with the existing technology.
- the embodiment of the present application provides a second method for transmitting and receiving signals to solve the problem that the terminal device cannot report the power headroom when the terminal device is in the connected state.
- the terminal device indicates the power headroom of the terminal device to the network device, and it can also be understood that the terminal device indicates to the network device the power headroom to which the power headroom of the terminal device belongs. Or it is understood that the terminal device indicates the power headroom of the terminal device to the network device by indicating to the network device the power headroom level to which the power headroom of the terminal device belongs.
- the embodiment of the present application may also provide at least one new power headroom table.
- the following mainly provides a new power headroom table as an example, and in practice, for a new power headroom.
- the number of quantity forms is not limited.
- a new power headroom table provided by the embodiment of the present application is referred to as a second power headroom table, and the second power headroom table can also be understood as a second power headroom set.
- At least five items are included in the second power headroom table, wherein each item may be in the form of any one of Table 1, and each item represents a power headroom level.
- the PHR can be re-divided into more power headroom levels than the four power headroom levels of Table 1, wherein each power headroom level can also be corresponding. a plurality of specific power headroom values, but with respect to the power headroom table shown in Table 1, each of the power headroom levels included in the at least one power headroom level included in the second power headroom table, The number of values of the corresponding power headroom is smaller than the value of the power headroom corresponding to one power headroom level included in the power headroom table shown in Table 1.
- the second power headroom table provided by the embodiment of the present application can provide a finer granularity of division, and thus the power included in each power headroom level, in the case that the range of the power headroom of the terminal device is constant.
- the value of the margin is reduced compared with the current Table 1, which reduces the reporting granularity, thereby improving the accuracy of the power headroom of the terminal device determined by the network device.
- the second power headroom table and the first power headroom table provided by the embodiment shown in FIG. 2 may be the same power headroom table, or may be different power headroom tables, which are not used in the embodiment of the present application. limit.
- different power headroom tables may include different power headroom levels, or power margin levels included in at least two power headroom tables. Can partially overlap.
- the power headroom table provided in the embodiment of the present application and the power headroom table shown in Table 1 may include different power headroom levels, or the included power headroom levels may partially overlap.
- the specific power headroom table is not limited.
- the terminal device may use the second power headroom table, or may continue to use the power headroom table shown in Table 1.
- the flow of the second method for transmitting and receiving signals is as follows.
- the network device obtains capability information of the terminal device.
- the capability information of the terminal device may be used to indicate whether the terminal device supports the extended power headroom reporting. It may be understood that the capability information of the terminal device may be used to indicate whether the terminal device supports the trigger buffer status report. When the buffer status report (BSR) is triggered, the power headroom is triggered.
- BSR buffer status report
- the terminal device indicates the power headroom of the terminal device together when transmitting the BSR to the network device.
- the terminal device sends a BSR to the network device.
- the terminal device needs to send uplink data.
- the power headroom of the terminal device is indicated to the network device, which is beneficial to the network device for performing uplink power control, so that the power device is indicated to the network device.
- the timing is good.
- the manner in which the network device obtains the capability information of the terminal device includes but is not limited to the following:
- the terminal device sends a random access preamble to the network device, and the network device receives the random access preamble from the terminal device. Then, the network device sends a RAR message to the terminal device, where the transmission resource of the msg3 can be carried in the RAR message, and the terminal device receives the RAR message from the network device. Then, the terminal device sends the msg3 to the network device.
- the capability information of the terminal device can be indicated, and the capability information of the terminal device can indicate whether the terminal device supports the triggering of the power headroom report when the BSR is triggered.
- the msg3 is received from the terminal device, and the capability information of the terminal device can be obtained by parsing the msg3, so that it can be determined whether the terminal device supports triggering the power headroom report when the BSR is triggered.
- the network device can directly obtain the capability information of the terminal device from the terminal device, so that the obtained capability information of the terminal device is relatively accurate, and can be obtained through a random access process, and the terminal device does not need to additionally send other information. Save transmission resources.
- Mode 2 is obtained through the core network device.
- the network device may send a request message to the core network device, where the request message is used to request the capability information of the terminal device, for example, the request message may carry the identity identification number (ID) of the terminal device.
- the core network device may query the capability information of the terminal device, and send the capability information of the terminal device to the network device, where the network device may receive the capability information of the terminal device from the core network device. Therefore, it is determined whether the terminal device supports triggering the power headroom report when the BSR is triggered.
- the core network device is, for example, a mobility management entity (MME), and is not limited in specific terms.
- MME mobility management entity
- the network device can obtain the capability information of the terminal device without interacting with the terminal device, which reduces the interaction process of the air interface or the amount of data exchanged, and can save the air interface transmission resource.
- the mode information of the terminal device may be obtained by randomly selecting the mode 1 or the mode 2, or the protocol may also specify which one of the specific mode 1 and mode 2 is used to obtain the capability information of the terminal device. No restrictions.
- the network device sends the first signaling to the terminal device, where the terminal device receives the first signaling from the network device, where the first signaling is used to configure the terminal device to indicate the power headroom of the terminal device when transmitting the BSR to the network device.
- the network device obtains the capability information of the terminal device in S51. If the capability information of the terminal device indicates that the terminal device can support the power headroom of the terminal device when the BSR is sent to the network device, the network device can The first signaling is sent to configure the terminal device to indicate the power headroom of the terminal device when transmitting the BSR to the network device.
- the terminal device generates a MAC CE that carries the BSR, where the MAC CE is further configured to indicate a power headroom of the terminal device by using at least three bits.
- the terminal device may use the power headroom table shown in Table 1, or may also use a new power headroom table, and specifically, which power headroom table is used, which may be specified by a protocol, or may be through a network device. Configuration, in both cases, the terminal device does not need to additionally indicate to the network device the power headroom used. Alternatively, the protocol does not specify which power headroom table to use, and the network device does not configure which power headroom table to use, the terminal device may indicate the power headroom table used by the MAC CE, or the terminal device may also pass The additional signaling indicates the power headroom used, for example, by RRC signaling. For specific implementations, refer to the related description in the embodiment shown in FIG. 2, and no further details are provided.
- FIG. 6 a schematic diagram of the MAC CE generated by the terminal device can be referred to FIG. 6.
- the LCG ID in FIG. 6 represents a logical channel number
- the bit field indicated by the BSR is used to carry the BSR
- the bit field indicated by the PH is used to indicate the power headroom of the terminal device
- R represents the reserved bit, or is called a reserved bit. area.
- the first row of boxes in Figure 6 is used to carry the BSR and the second row of boxes is used to indicate the power headroom of the terminal device.
- the cells are evenly divided on the square, and one of the cells can represent one bit.
- the bit field represented by PH includes 4 bits
- one reserved bit includes 1 bit.
- each MAC CE needs to include a sub-header and also needs to occupy a certain transmission resource, but if the terminal device sends through a MAC CE, The BSR and the power headroom indicating the terminal device, as shown in FIG. 6, the MAC CE only needs to include one subheader (not shown in FIG. 6), which reduces the number of subheaders and helps to save transmission resources.
- the PH bit field shown in FIG. 6 can be used to indicate the power headroom of the terminal device, and at least 2 of the MAC CEs are included. The bits are used to indicate the power headroom of the terminal device. If the terminal device uses the second power headroom table, the PH bit field shown in FIG. 6 may be used to indicate the power headroom of the terminal device, or if the second power headroom table includes more power headroom levels, Then, the PH bit field and the at least one reserved bit field shown in FIG. 6 can be used to jointly indicate the power headroom of the terminal device, and specifically, how many reserved bit fields and PH bit fields are used to jointly indicate the power headroom of the terminal device.
- the terminal equipment uses the second power headroom table, at least 3 bits in the MAC CE are used to indicate the power headroom of the terminal equipment .
- the number of power headrooms included in the second power headroom table is 32, and the PH bit field includes 4 bits, then the PH bit field and one of the reserved bit fields can be utilized to jointly indicate the power of the terminal device.
- the margin that is, using 5 bits to indicate the power headroom of the terminal device, can indicate 32 power headroom levels.
- the reserved bit field for indicating the power headroom of the terminal device in combination with the PH bit field may be adjacent to the PH bit field in FIG. 6 or may not be adjacent, and is not specifically limited.
- the terminal device sends the MAC CE to the network device, where the network device receives the MAC CE from the terminal device.
- the network device determines, according to at least three bits included in the MAC CE, a power headroom of the terminal device, and obtains a BSR from the MAC CE.
- the network device can obtain the BSR and obtain the power headroom indicated by the terminal device by parsing the MAC CE, and the network device passes the power indicated by the MAC device after determining the power headroom table.
- the quantity level is matched with the determined power headroom table to determine the power headroom of the terminal equipment.
- the network device determines which power headroom table to use by using the protocol, the network device also determines which power headroom table to use by using the protocol specification, or if the terminal device determines which power headroom table to use through the network device configuration.
- the network device can determine which power headroom table to use according to the configuration of the terminal device, or if the terminal device indicates the power headroom table through the MAC CE, the network device determines the power of the terminal device according to the MAC CE.
- the power headroom table to which the margin belongs if the terminal device indicates the power headroom table through RRC signaling, the network device may determine, according to the received RRC signaling, the power remaining to which the power headroom of the terminal device indicated by the MAC CE belongs Quantity form.
- the terminal device When the terminal device is in the connected state, there may be more opportunities for the BSR to be sent to the network device. Then, the terminal device can indicate the power headroom of the terminal device each time the BSR is sent. Or, because the power headroom of the terminal device may not continue to change, if the power headroom is continuously indicated to the network device, it may not be necessary, or even cause some interference to the network device, and it also takes extra Signaling overhead. To this end, the embodiment of the present application further provides a judging mechanism, and the terminal device can determine whether the power headroom of the terminal device is to be indicated to the network device by using the judging mechanism, so that the power headroom can be effectively reported frequently.
- the judging mechanism includes, but is not limited to, at least one of the following, the terminal device generates the MAC CE in a case that at least one of the following is satisfied, that is, in a case that at least one of the following is satisfied, the terminal device may When the BSR is sent, the power headroom is indicated to the network device:
- the difference between the first downlink path loss of the terminal device and the second downlink path loss of the terminal device is greater than a first threshold, where the first downlink path loss is the current downlink path loss of the terminal device, and the second downlink path loss is the last time of the terminal device.
- the downlink path loss when the power headroom of the terminal device is indicated to the network device;
- the difference between the current power headroom of the terminal device and the first power headroom of the terminal device is greater than a second threshold, where the first power headroom is a power headroom that the terminal device indicates to the network device last time;
- the first downlink path loss of the terminal device is greater than a third threshold, and the first downlink path loss is a current downlink path loss of the terminal device;
- the current power headroom of the terminal device is greater than a fourth threshold.
- the first threshold, the second threshold, the third threshold, and the fourth threshold may be defined by a protocol, or may be configured to the terminal device by using a network device.
- the judging mechanism is more flexible. In actual application, one or more of them can be randomly selected for judgment, or which one or more kinds of judging mechanisms can be specified by the agreement, or which one or which one is specifically selected.
- judgment mechanisms can also be configured through network devices, and the above judgment mechanism is only an example, and there may be other judgment mechanisms in specific applications, and the specific ones are not limited.
- both S51 and S52 are optional steps and are not required to be performed.
- the PHR may be re-divided into more power headroom levels than the four power headroom levels of Table 1, and the range of values of the power headroom of the terminal device is constant.
- the first power headroom table provided by the embodiment of the present application can provide a finer granularity of partitioning, so that the power headroom included in each power headroom level has a value compared with the current table 1.
- Reduction, and the embodiment of the present application also provides more bits to indicate the power headroom of the terminal device, which is adapted to the newly provided power headroom table, thereby reducing the reporting granularity, and the terminal device can report more accurate power.
- the terminal device may indicate the power headroom of the terminal device to the network device in the connected state. For example, if the power headroom changes during the data transmission process, the terminal device may adopt the embodiment of the present application.
- the provided mode indicates the power headroom of the terminal device to the network device to improve the uplink power control performance.
- the terminal device can send the power headroom of the BSR and the terminal device together in one MAC CE, thereby contributing to saving signaling overhead.
- the terminal device indicates the power headroom of the terminal device to the network device.
- the terminal device is actually used.
- msg3 may also transmit other information to the network device.
- the terminal device may transmit the terminal device to the network device by using at least one reserved bit field of msg3 or MAC CE in msg3.
- Downstream interference information and in the embodiment shown in FIG. 5, the terminal device can transmit other information to the network device in addition to indicating the BSR and power headroom of the terminal device through the MAC CE in the connected state.
- the terminal device may use the MAC CE to transmit downlink interference information of the terminal device to the network device, and the like.
- the embodiment shown in FIG. 2 or the embodiment shown in FIG. 5, indicating the power headroom to the network device is only an example, and the specific information sent to the network device is not limited.
- the terminal device can indicate the power headroom of the terminal device by using more bits to reduce the reporting granularity, and solve the terminal device determined by the network device.
- the technical problem that the power headroom is not accurate enough improves the accuracy of the power headroom of the terminal device determined by the network device. So next, let's talk about another technical issue.
- the network device In the existing random access procedure, only the terminal device is allowed to transmit the most basic information such as establishing a connection, and the network device only schedules a small amount of resources for transmitting msg3, for example, 88 bits, so the resources allocated for msg3 can support transmission. The amount of data is small. Therefore, in the NB-IoT enhanced version currently discussed, it is considered that the appropriate amount of uplink data is transmitted in the msg3 in the random access process, that is, the data early transmission process, so that the terminal device can transmit some data to the network device in a timely manner, without Wait until the connection is established and then transfer. To this end, the network device can allocate more uplink resources to the terminal device to transmit msg3, and the terminal device can transmit more uplink data in the msg3.
- the terminal device For this new feature, consider making the terminal device report some information in msg3. However, compared with the normal data, the information reported by the terminal device usually has a small amount of data. Once the data early transmission process is used, the network device cannot predict the transmission destination of the terminal device, and the terminal device is in accordance with the typical uplink data volume. Allocating at least several hundred bits of uplink resources for msg3 transmission, and the terminal device may only need to use a small part of the resources to transmit the information to be transmitted, and for the remaining resources, the terminal device needs to add padding bits. . That is to say, if the data early transmission mechanism is used, the terminal device adds a large number of padding bits for a small amount of information reporting, and the power consumption is large for the terminal device.
- the embodiment of the present application provides a first method for determining a resource.
- the data early transmission mechanism can be used to report some information, and the terminal device does not need to add a large number of padding bits, thereby saving the terminal device. Power consumption.
- the terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device.
- the terminal device may send a random access preamble to the network device on the reserved resource for early data transmission, and the network device is also used in the reserved resource for early data transmission.
- a random access preamble is received from the terminal device.
- the terminal device obtains first resource information indicated by the network device, where the first resource information is used to send msg3, where the first resource information includes a modulation and coding scheme (MCS) parameter of the msg3 and a resource unit used by the msg3 (resource) Unit, RU) number parameter.
- MCS modulation and coding scheme
- the terminal device obtains the first resource information indicated by the network device, for example, by using the RAR received from the network device. For example, the network device sends the RAR message to the terminal device, where the terminal device receives the RAR message from the network device, where the RAR message is received.
- the UL grant may include one uplink grant information (UL grant), and the UL grant may indicate the first resource information. It may be understood that the UL grant may be used to indicate the MCS used by the msg3 and the number of RUs used by the msg3, and the RU is a resource unit. Different systems may have different RUs, and the number of RUs may indicate how much resources are used. Therefore, S72 in FIG.
- the terminal device obtains the first resource information by using the RAR received from the network device, that is, S72 in FIG. 7 includes the network device transmitting the RAR to the terminal device, and the terminal device receiving the RAR from the network device.
- the process also includes a process in which the terminal device obtains the first resource information through the RAR.
- the TBS that can be used for data reporting or transmission in the msg3, and the mapping relationship between the TBS and the MCS and the number of resource units, the information pre-configured to the terminal device by the network device, or the protocol standardized fixed information. Therefore, after obtaining the MCS used by the msg3 and the number of resource units used by the msg3, the terminal device can determine the transport block size (TBS) indicated by the first resource information by looking up the table, and the specific lookup mode can be Refer to the prior art.
- the first resource information may directly carry the MCS used by the msg3, the number of resource units used by the msg3, and the TBS used by the msg3. That is, the network device may directly indicate the TBS, and the terminal device does not need to look up the table.
- the terminal device determines, according to the true subset of the parameters included in the first resource information, the second resource information, where the second resource information is used by the terminal device to actually send the msg3, where the second transport block size is smaller than the first transport block size, and the second The transport block size is a transport block size of msg3 included in the second resource information, and the first transport block size is a transport block size of msg3 included in the first resource information.
- the resources allocated by the network device for transmitting msg3 are usually more, that is, the TBS indicated by the first resource information may be relatively large.
- the terminal device indicates the power headroom of the terminal device through the msg3
- the terminal device may not operate according to the indication of the network device. For example, if the network device indicates the two parameters of the MCS used by the msg3 and the resource unit used by the msg3, the terminal device may only use the two parameters. A parameter to finalize the second resource information.
- the terminal device may use the MCS of the msg3 indicated by the network device in the first resource information, and if the MCS is unchanged, reduce the number of resource units based on the number of resource units indicated by the first resource information.
- the terminal device transmits the TBS actually needed by the msg3, and the terminal device knows, so the terminal device reselects the minimum TBS sufficient to transmit the data to be transmitted in the TBS that can be used for data reporting or transmission in the msg3 to determine the first Two resource information.
- the terminal device may use the number of resource units of msg3 indicated by the network device in the first resource information, and if the number of resource units does not change, reduce the MCS based on the MCS indicated by the first resource information, The terminal device transmits the TBS actually needed by msg3, and the terminal device knows, so the terminal device reselects the smallest TBS sufficient to transmit the data to be transmitted in the TBS available for data reporting or transmission in msg3.
- the finally determined second resource information includes the MCS of msg3 and the MCS of msg3 included in the first resource information, and the resource unit of msg3 included in the second resource information.
- the number is smaller than the number of resource units of msg3 included in the first resource information
- the TBS of msg3 included in the second resource information is smaller than the TBS of msg3 included in the first resource information.
- the terminal device only utilizes a part of the resources indicated by the network device, and the remaining resources are not utilized.
- the terminal device does not use the resource corresponding to the third TBS, that is, the terminal device does not need to add padding bits for the resource corresponding to the third TBS
- the third TBS is the first TBS.
- the difference between the second TBS and the second TBS is the TBS of the msg3 included in the second resource information
- the first TBS is the TBS of the msg3 included in the first resource information
- the resource corresponding to the third TBS is understood to be And the resources indicated by the first resource information, except for the remaining resources used by the terminal device to transmit data that needs to be transmitted.
- the first example and the second example are only two examples.
- the first resource information may further include other parameters, as long as the terminal device determines the first subset of the parameters included in the first resource information.
- the scheme of the two resource information is within the protection scope of the embodiment of the present application.
- the terminal device transmits msg3 by using the resource indicated by the second resource information, and the network device receives the msg3 from the terminal device by using the resource indicated by the second resource information.
- the resource indicated by the second resource information may be used to transmit msg3.
- the network device indicates that the terminal device is actually the first resource information, and the terminal device is equivalent to using only part of the resources indicated by the first resource information to transmit the msg3, but the network device does not know whether the terminal device actually Which resources are used, so the network device may still detect all the resources indicated by the first resource information to obtain the msg3 sent by the terminal device.
- the network device obtains information sent by the terminal device according to the received msg3.
- the terminal device indicates the power headroom of the terminal device through msg3, and the network device can determine the power headroom of the terminal device by parsing msg3.
- the power device indicated by the terminal device by the msg3 is actually the power headroom level to which the power headroom of the terminal device belongs, and the network device can match the power headroom indicated by the msg3 with the corresponding power headroom table. Determine the power headroom of the terminal equipment.
- the terminal device may indicate the power headroom of the terminal device to the network device by using the msg3.
- the specific indication manner refer to the description of the embodiment shown in FIG. 2, or the terminal device may also use the msg3
- the network device transmits other information, such as downlink interference information of the terminal device, or other data, and the information transmitted through the msg3 is not limited.
- S71, S74 and S75 in the embodiment shown in Fig. 7 are optional steps, and are not necessarily performed.
- the data early transmission process can be used in the embodiment of the present application, and the terminal device can directly use the redundant resources allocated by the network device without using a large number of padding bits, so that the terminal device can transmit information to the network device. On the basis of it, it also helps to reduce the power consumption of the terminal equipment.
- the terminal device determines the second resource information by using the true subset of the parameters included in the first resource information, and the second method for determining the resource is described below, and the method can also solve the utilization data early.
- the transmission mechanism sends data to the network device, the terminal device needs to add a large number of padding bits.
- the terminal device can determine the resource information of the actual transmission msg3 through another manner.
- the terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device.
- the terminal device may send a random access preamble to the network device on the reserved resource for early data transmission, and the network device is also used in the reserved resource for early data transmission.
- a random access preamble is received from the terminal device.
- the terminal device obtains first resource information indicated by the network device, where the first resource information is used to send msg3, where the first resource information includes an MCS parameter of msg3 and a resource unit number parameter used by msg3.
- the terminal device obtains the first resource information indicated by the network device, for example, by using the RAR received from the network device. For example, the network device sends the RAR message to the terminal device, where the terminal device receives the RAR message from the network device, where the RAR message is received.
- the UL grant may include one UL grant, and the UL grant may indicate the first resource information. It may be understood that the UL grant may be used to indicate the MCS used by the msg3, and the number of RUs used by the msg3, and the RU is a resource unit, and different system RUs It can be different, the number of RUs can indicate how much resources are used. Therefore, S82 in FIG.
- S82 in FIG. 8 includes the network device transmitting the RAR to the terminal device, and the terminal device receiving the RAR from the network device.
- the process also includes a process in which the terminal device obtains the first resource information through the RAR.
- the first resource information may directly carry the MCS used by the msg3, the number of resource units used by the msg3, and the TBS used by the msg3. That is, the network device may directly indicate the TBS, and the terminal device does not need to look up the table.
- the terminal device determines that the first transport block size is greater than the second transport block size, and the terminal device re-determines the second resource information, where the second resource information includes a transport block size that is a second transport block size.
- the second transport block size is a transport block size required for the terminal device to actually send the msg3
- the first transport block size is a transport block size of the msg3 included in the first resource information.
- the resources allocated by the network device for transmitting msg3 are usually more, that is, the TBS indicated by the first resource information may be relatively large.
- the terminal device indicates the power headroom of the terminal device through the msg3
- there is not much resources actually needed which may be much smaller than the TBS indicated by the first resource information. Therefore, the embodiment of the present application provides that the terminal device may not operate according to the indication of the network device at all. For example, if the terminal device determines that the first TBS is greater than the second TBS, the terminal device may re-determine the second resource information, as long as the determined second resource information.
- the included TBS is smaller than the first TBS.
- the terminal device may traverse all possible resource units that are less than or equal to the number of resource units of msg3 indicated in the first resource information, and all possible MCSs that are lower than or equal to the MCS indicated in the first resource information. Since each MCS and each resource unit number can determine one TBS, the terminal can reselect the smallest TBS sufficient to transmit the data to be transmitted among all possible TBSs obtained by the traversal. If a plurality of cases in which the plurality of MCSs and the number of resource units are combined are the same, the terminal may randomly select one of the combinations to determine the second resource information. Alternatively, one of the combinations is selected according to a predefined rule, such as always selecting a higher or lower combination of MCS, always selecting a combination of larger or smaller resource units, and the like.
- the first resource information may also include other parameters, as long as the terminal device uses a similar rule to determine the second resource information, which is within the protection scope of the embodiment of the present application.
- the terminal device may use the resource indicated by the second resource information to transmit the msg3, and the network device receives the msg3 from the resource indicated by the second resource information.
- the network device indicates the first resource information to the terminal device, and the terminal device is equivalent to not using the first resource information, but re-determines the second resource information to transmit the msg3, but the network device does not know the terminal.
- the second resource information used by the device so the network device may also need to use all similar methods in step S83 to try to use all resource units less than or equal to msg3 indicated in the first resource information and all lower or equal to the first resource information.
- the MCS indicated in the detection is detected to obtain the msg3 sent by the terminal device.
- the resource indicated by the second resource information may be used to transmit msg3.
- the terminal device may indicate the power headroom of the terminal device to the network device by using the msg3.
- the specific indication manner refer to the description of the embodiment shown in FIG. 2, or the terminal device may also use the msg3
- the network device transmits other information, such as downlink interference information of the terminal device, or other data, and the information transmitted through the msg3 is not limited.
- the network device obtains information sent by the terminal device according to the received msg3.
- the terminal device indicates the power headroom of the terminal device through msg3, and the network device can determine the power headroom of the terminal device by parsing msg3.
- the power device indicated by the terminal device by the msg3 is actually the power headroom level to which the power headroom of the terminal device belongs, and the network device can match the power headroom indicated by the msg3 with the corresponding power headroom table. Determine the power headroom of the terminal equipment.
- S81, S84, and S85 in the embodiment shown in Fig. 8 are optional steps, and are not necessarily performed.
- the data early transmission process can be used in the embodiment of the present application, and if the network device allocates too many resources, the terminal device can completely re-determine the resource, and the terminal device is a resource that is re-determined according to the resource that the terminal device actually transmits the msg3. Therefore, the determined resources are in accordance with the actual transmission requirements of the terminal device, and are not excessive, so that the terminal device does not need to add a large number of padding bits, and the terminal device can also reduce the terminal on the basis of enabling the terminal device to transmit information to the network device. The power consumption of the device.
- the terminal device determines the second resource information by using a true subset of the parameters included in the first resource information.
- the terminal device is re-determined for transmission.
- the resource information of msg3, the second method of determining the resource is introduced below. The method can also solve the problem that the terminal device needs to add a large number of padding bits when using the data early transmission mechanism to send data to the network device, but in the method, the terminal The device can determine the resource information of the actual transmission msg3 in another way.
- the terminal device sends a random access preamble to the network device, where the network device receives the random access preamble from the terminal device.
- the terminal device may send a random access preamble to the network device on the reserved resource for early data transmission, and the network device is also used in the reserved resource for early data transmission.
- a random access preamble is received from the terminal device.
- the network device indicates multiple resource information to the terminal device, where the terminal device obtains multiple resource information indicated by the network device, and each of the multiple resource information is used to send msg3, each of the multiple resource information.
- the resource information includes the MCS parameter of msg3 and the resource unit number parameter used by msg3.
- the terminal device obtains multiple resource information indicated by the network device, for example, by using an RAR received from the network device. For example, the network device sends a RAR message to the terminal device, where the terminal device receives the RAR message from the network device, where the RAR message is received.
- Multiple UL grants may be included, where each UL grant may be used to indicate a resource information, where each UL grant may be used to indicate the MCS used by msg3, and the number of RUs used by msg3, RU is a resource unit, different The system RUs may be different. The number of RUs may indicate the amount of resources used.
- at least one of the parameters indicated by different UL grants is different. Therefore, S82 in FIG.
- S82 in FIG. 8 includes the network device transmitting the RAR to the terminal device, and the terminal device receiving the RAR from the network device.
- the process also includes a process in which the terminal device obtains multiple resource information through the RAR.
- the network device may also indicate the number of UL grants included in the RAR in the RAR, that is, the number of resource information indicated by the RAR.
- the number of resource information indicated by the RAR may be indicated by a reserved bit in a sub-header of the RAR, or may be indicated by a reserved bit in a payload of the RAR, specifically not being used. limit.
- the number of resource information indicated by the RAR may be different.
- the network device may separately configure the number of UL grants for different coverage level terminal devices and/or different downlink carriers, and then, for different coverage level terminal devices and/or terminals that receive RARs through different downlink carriers.
- the number of UL grants included in the RAR may be different.
- the network device may also select another manner to indicate to the terminal device the number of UL grants included in the RAR.
- the network device indicates by a broadcast message, which may be sent before S21, for example, in the broadcast message, the number of UL grants included in the subsequently transmitted RAR of the network device may be indicated.
- the terminal device receives the broadcast message and the RAR, the number of UL grants included in the RAR may be determined according to the broadcast message.
- the network device may also configure the number of UL grants for different coverage level terminal devices and/or for different downlink carriers. For example, the network device may transmit the number of UL grants configured for at least one coverage level terminal device and/or at least one downlink carrier by a broadcast message. Then, if the network device sends the number of UL grants of the terminal device that is at least one coverage level by using the broadcast message, after the terminal device receives the broadcast message and the RAR, the UL grant included in the RAR may be determined according to the coverage level of the terminal device.
- the manner in which the network device indicates the number of UL grants included in the RAR includes, but is not limited to, the following two types:
- one way is to directly indicate the quantity. Then, if one UL grant is included in the RAR, the number of UL grants is 1, and if 2 UL grants are included in the RAR, the number of UL grants is 2, if 3 ULs are included in the RAR. Grant, it indicates that the number of UL grants is 3, and so on. This kind of indication is simple and straightforward, easy to understand and implement.
- another way is to indicate whether the UL grant included in the RAR is one or more.
- the protocol stipulates that if the UL grant is multiple, then specifically, then, for example, by 1 bit. If the value of the bit is "0", it indicates that the UL grant included in the RAR is one. If the value of the bit is "1", it indicates that the UL grant included in the RAR is multiple. If there are multiple, it is specifically two.
- the number of UL grants specified by the protocol is not limited to two, and the specific bit indication manner is not limited thereto.
- each of the plurality of resource information may directly carry the MCS used by the msg3, the number of resource units used by the msg3, and the TBS used by the msg3. That is, the network device may directly indicate the TBS, and the terminal device does not need to look up the table.
- the terminal device determines, according to the size of the msg3 to be sent by the terminal device, the msg3 that the terminal device actually needs to send through the first resource information of the multiple resource information.
- the terminal device transmits the TBS that is actually required by the msg3, and the terminal device knows, the terminal device can select the appropriate resource information from the plurality of resource information to send the msg3 according to the TBS actually required to transmit the msg3, for example, the first resource is selected. information.
- the appropriate resource information may be that the difference between the TBS included in the resource information and the TBS actually required by the transmission msg3 is the smallest, and the TBS included in the resource information is greater than or equal to the TBS actually needed by the terminal device to transmit msg3. .
- the terminal device sends the msg3 to the network device by using the resource indicated by the first resource information, and the network device receives the msg3 from the terminal device by using the resource indicated by the first resource information.
- the network device indicates that the terminal device is actually a plurality of resource information, and the terminal device is equivalent to using only the resource indicated by the first resource information to transmit the msg3, but the network device does not know whether the terminal device is used. Which resource information corresponds to the resource, so the network device may still detect on all the resources indicated by the multiple resource information to obtain the msg3 sent by the terminal device.
- the terminal device may indicate the power headroom of the terminal device to the network device by using the msg3.
- the specific indication manner refer to the description of the embodiment shown in FIG. 2, or the terminal device may also use the msg3
- the network device transmits other information, such as downlink interference information of the terminal device, or other data, and the information transmitted through the msg3 is not limited.
- the network device obtains information sent by the terminal device according to the received msg3.
- the terminal device indicates the power headroom of the terminal device through msg3, and the network device can determine the power headroom of the terminal device by parsing msg3.
- the power device indicated by the terminal device by the msg3 is actually the power headroom level to which the power headroom of the terminal device belongs, and the network device can match the power headroom indicated by the msg3 with the corresponding power headroom table. Determine the power headroom of the terminal equipment.
- S91, S94, and S95 in the embodiment shown in Fig. 9 are optional steps, and are not necessarily performed.
- the network device may allocate multiple resource information, so that the terminal device may select one resource information from multiple resource information to use, so that the terminal device follows the indication of the network device and utilizes the data early transmission process.
- the terminal device can select the more suitable resource information to transmit the msg3, and does not need to add a large number of padding bits.
- it also helps to reduce the power consumption of the terminal device.
- FIG. 10 shows a schematic structural diagram of a communication device 1000.
- the communication device 1000 can implement the functions of the terminal device referred to above.
- the communication device 1000 may be the terminal device described above, or may be a chip provided in the terminal device described above.
- the communication device 1000 can include a processor 1001 and a transceiver 1002.
- the processor 1001 can be used to perform S24 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver 1002 can be used to perform S21, S22, S23, and S25 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the processor 1001 is configured to generate a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set;
- the MAC CE includes a first bit field and a second bit field, where the first bit field is a reserved bit field, The second bit field is used to indicate a power headroom in the first power headroom set;
- the MAC CE includes a third bit field, where the third bit field is used to indicate the second power headroom set a power margin, the third bit field including a bit of the first bit field and a bit of the second bit field;
- the transceiver 1002 is configured to send the MAC CE to a network device.
- the processor 1001 is configured to generate a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set or a power headroom in the second power headroom set, where the MAC CE includes a bit field and a second bit field;
- the first bit field is a reserved bit field, and the second bit field is used to indicate the first power headroom Power headroom in the set;
- the first bit field and the second bit field are used to indicate power remaining in the second power headroom set the amount
- the transceiver 1002 is configured to send the MAC CE to a network device.
- FIG. 11 shows a schematic structural diagram of a communication device 1100.
- the communication device 1100 can implement the functions of the network devices referred to above.
- the communication device 1100 may be the network device described above or may be a chip disposed in the network device described above.
- the communication device 1100 can include a processor 1101 and a transceiver 1102.
- the processor 1101 can be used to perform S26 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver 1102 can be used to perform S21, S22, S23, and S25 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver 1102 is configured to receive, by the terminal device, a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set;
- the processor 1101 is configured to determine, in the first power headroom set, according to the second bit field included in the MAC CE, if the MAC CE is used to indicate a power headroom in the first power headroom set. a power headroom, the MAC CE includes a first bit field and the second bit field, where the first bit field is a reserved bit field; or, if the MAC CE is used to indicate the second power headroom a power headroom in the set, determining, according to a third bit field included by the MAC CE, a power headroom in the second power headroom set, where the third bit field includes a bit and a location of the first bit field The bits of the second bit field.
- the transceiver 1102 is configured to receive, by the terminal device, a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set,
- the MAC CE includes a first bit field and a second bit field;
- the processor 1101 is configured to determine, according to the second bit field, a power headroom in the first power headroom set, if the MAC CE is used to indicate a power headroom in the first power headroom set,
- the first bit field is a reserved bit field; or, if the MAC CE is used to indicate a power headroom in the second power headroom set, according to the first bit field and the second bit field
- a power headroom in the second set of power headrooms is determined.
- FIG. 12 shows a schematic structural diagram of a communication device 1200.
- the communication device 1200 can implement the functions of the terminal device referred to above.
- the communication device 1200 may be the terminal device described above or may be a chip disposed in the terminal device described above.
- the communication device 1200 can include a processor 1201 and a transceiver 1202. Wherein, the processor 1201 can be used to perform S53 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the transceiver 1202 can be used to perform S52 and S54 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the processor 1201 is configured to: when in a connected state, generate a MAC CE carrying a BSR, where the MAC CE further includes at least 3 bits, where the at least 3 bits are used to indicate a power headroom;
- the transceiver 1202 is configured to send the MAC CE to a network device.
- FIG. 13 shows a schematic structural diagram of a communication device 1300.
- the communication device 1300 can implement the functions of the network devices referred to above.
- the communication device 1300 may be the network device described above or may be a chip disposed in the network device described above.
- the communication device 1300 can include a processor 1301 and a transceiver 1302. Wherein, the processor 1301 can be used to perform S55 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the transceiver 1302 can be used to perform S52 and S54 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the transceiver 1102 is configured to receive a MAC CE from the terminal device;
- the processor 1101 is configured to determine a power headroom of the terminal device according to at least three bits included in the MAC CE, and obtain a BSR from the MAC CE.
- FIG. 14 shows a schematic structural diagram of a communication device 1400.
- the communication device 1400 can implement the functions of the terminal device referred to above.
- the communication device 1400 may be the terminal device described above, or may be a chip disposed in the terminal device described above.
- the communication device 1400 can include a processor 1401.
- the communication device 1400 can also include a transceiver 1402.
- the processor 1401 can be used to perform S72 and S73 in the embodiment shown in FIG. 7, and/or other processes for supporting the techniques described herein.
- the transceiver 1402 can be configured to perform S71, S72 in the embodiment shown in FIG. 7 (the transceiver 1402 receives the RAR from the network device, the processor 1401 obtains the first resource information from the RAR) and S74, and/or supports Other processes of the techniques described herein.
- the processor 1401 is configured to obtain first resource information indicated by the network device, where the first resource information is used to send a third message msg3, where the first resource information includes a modulation coding scheme parameter of msg3 and a resource used by the msg3.
- the processor 1401 is further configured to determine, according to the true subset of the parameters included in the first resource information, the second resource information, where the second resource information is used to actually send the msg3, where the second transport block size is smaller than the first transmission. a block size, where the second transport block size is a transport block size of msg3 included in the second resource information, where the first transport block size is a transport block size of msg3 included in the first resource information.
- FIG. 15 shows a schematic structural diagram of a communication device 1500.
- the communication device 1500 can implement the functions of the terminal device referred to above.
- the communication device 1500 may be the terminal device described above, or may be a chip disposed in the terminal device described above.
- the communication device 1500 can include a processor 1501.
- the communication device 1400 can also include a transceiver 1502.
- the processor 1501 can be used to perform S82 and S83 in the embodiment shown in FIG. 8, and/or other processes for supporting the techniques described herein.
- the transceiver 1502 can be configured to perform S81, S82 in the embodiment shown in FIG. 8 (the transceiver 1502 receives the RAR from the network device, the processor 1501 obtains the first resource information from the RAR) and S84, and/or supports Other processes of the techniques described herein.
- the processor 1501 is configured to obtain first resource information indicated by the network device, where the first resource information is used to send a third message msg3, where the first resource information includes a modulation coding scheme parameter of msg3 and a resource used by the msg3. Unit number parameter;
- the processor 1501 is further configured to determine that the first transport block size is greater than the second transport block size, and then re-determine the second resource information, where the second resource information includes a transport block size that is a second transport block size.
- the second transport block size is a transport block size required for the terminal device to actually send the msg3
- the first transport block size is a transport block size of the msg3 included in the first resource information.
- FIG. 16 shows a schematic structural diagram of a communication device 1600.
- the communication device 1600 can implement the functions of the terminal device referred to above.
- the communication device 1600 may be the terminal device described above, or may be a chip disposed in the terminal device described above.
- the communication device 1600 can include a processor 1601.
- the communication device 1600 can also include a transceiver 1602.
- the processor 1601 can be used to perform S92 and S93 in the embodiment shown in FIG. 9, and/or other processes for supporting the techniques described herein.
- the transceiver 1602 can be configured to perform S91, S92 in the embodiment shown in FIG. 9 (the transceiver 1602 receives the RAR from the network device, the processor 1601 obtains the first resource information from the RAR) and S94, and/or supports Other processes of the techniques described herein.
- the processor 1601 is configured to obtain multiple resource information indicated by the network device, where each of the multiple resource information is used to send a third message msg3, where each resource information includes a modulation coding scheme of msg3 Parameters and resource unit number parameters used by msg3;
- the processor 1601 is further configured to determine, according to the size of the msg3 to be sent, the msg3 to be actually sent by using the first resource information in the multiple resource information.
- the communication device 1000, the communication device 1100, the communication device 1200, the communication device 1300, the communication device 1400, the communication device 1500, and the communication device 1600 may also pass through FIG. 17A.
- the structure of the illustrated communication device 1700 is implemented.
- the communication device 1700 can implement the functions of the network device or the terminal device referred to above.
- the communication device 1700 can include a processor 1701. Wherein, when the communication device 1700 is used to implement the functions of the terminal device in the embodiment shown in FIG. 2, the processor 1701 may be used to execute S24 in the embodiment shown in FIG. 2, and/or used to support this document. Other processes of the described techniques.
- the processor 1701 may be configured to perform S26 in the embodiment shown in FIG. 2, and/or to support the description herein. Other processes of technology.
- the processor 1701 may be configured to perform S53 in the embodiment shown in FIG. 5, and/or to support the description herein. Other processes of technology.
- the processor 1701 may be configured to perform S55 in the embodiment shown in FIG. 5, and/or to support the description herein. Other processes of technology.
- the processor 1701 may be used to execute S72 and S73 in the embodiment shown in FIG. 7, and/or to support this document. Other processes of the described techniques.
- the processor 1701 may be used to execute S82 and S83 in the embodiment shown in FIG. 8, and/or to support this document. Other processes of the described techniques.
- the processor 1701 may be used to execute S92 and S93 in the embodiment shown in FIG. 9, and/or to support this document. Other processes of the described techniques.
- the communication device 1700 can pass through a field-programmable gate array (FPGA), an application specific integrated circuit (ASIC), a system on chip (SoC), a central processor (central processor). Unit, CPU), network processor (NP), digital signal processor (DSP), microcontroller (micro controller unit (MCU), or programmable logic device (programmable logic device, The PLD) or other integrated chip implementation, the communication device 600 can be disposed in the network device or the communication device of the embodiment of the present application, so that the network device or the communication device implements the method for transmitting a message provided by the embodiment of the present application.
- FPGA field-programmable gate array
- ASIC application specific integrated circuit
- SoC system on chip
- CPU central processor
- NP network processor
- DSP digital signal processor
- MCU microcontroller
- programmable logic device programmable logic device
- the communication device 1700 can include a transceiver component for communicating with a network device.
- the transceiver component can be used to execute S21, S22, S23, and S25 in the embodiment shown in FIG. 2. And/or other processes for supporting the techniques described herein.
- the transceiver component may be used to execute S52 and S54 in the embodiment shown in FIG. 5, and/or for Other processes that support the techniques described herein.
- the transceiver component can be used to execute S71, S72 in the embodiment shown in FIG. 7 (transceiver component from the network device) Receiving the RAR, the processor 1701 obtains the first resource information from the RAR) and S74, and/or other processes for supporting the techniques described herein.
- the transceiver component can be used to execute S81, S82 (the transceiver component from the network device in the embodiment shown in FIG.
- the processor 1701 obtains the first resource information from the RAR) and S84, and/or other processes for supporting the techniques described herein.
- the transceiver component can be used to execute S91, S92 (the transceiver component from the network device in the embodiment shown in FIG. 9)
- the processor 1701 obtains the first resource information from the RAR) and S94, and/or other processes for supporting the techniques described herein.
- the communication device 1700 can further include a memory 1702, which can be referenced to FIG. 17B, where the memory 1702 is used to store computer programs or instructions, and the processor 1701 is used to decode and execute the computer programs or instructions. .
- these computer programs or instructions may include the functional programs of the network devices or terminal devices described above.
- the network device can be implemented to implement the embodiment shown in FIG. 2, the embodiment shown in FIG. 5, and the embodiment shown in FIG. The function of the network device in the method provided by the embodiment shown in FIG. 8 or the embodiment shown in FIG.
- the terminal device can implement the embodiment shown in FIG. 2, the embodiment shown in FIG. 5, and the embodiment shown in FIG. The function of the terminal device in the method provided by the embodiment shown in Fig. 8 or the embodiment shown in Fig. 9.
- the functional programs of these network devices or terminal devices are stored in a memory external to the communication device 1700.
- the function program of the network device is decoded and executed by the processor 1701, part or all of the contents of the function program of the network device are temporarily stored in the memory 1702.
- the function program of the terminal device is decoded and executed by the processor 1701, part or all of the contents of the function program of the terminal device are temporarily stored in the memory 1702.
- the functional programs of these network devices or terminal devices are disposed in a memory 1702 that is stored internal to the communication device 1700.
- the communication device 1700 can be disposed in the network device of the embodiment of the present application.
- the function program of the terminal device is stored in the memory 1702 inside the communication device 1700, the communication device 1700 can be disposed in the terminal device of the embodiment of the present application.
- portions of the functional programs of the network devices are stored in a memory external to the communication device 1700, and other portions of the functional programs of the network devices are stored in the memory 1702 internal to the communication device 1700.
- part of the contents of the functional programs of the terminal devices are stored in a memory external to the communication device 1700, and other portions of the functional programs of the terminal devices are stored in the memory 1702 inside the communication device 1700.
- the communication device 1000, the communication device 1100, the communication device 1200, the communication device 1300, the communication device 1400, the communication device 1500, the communication device 1600, and the communication device 1700 are presented in the form of dividing each function into functional modules.
- the form of each functional module can be divided in an integrated manner for presentation.
- a "module” herein may refer to an ASIC, a processor and memory that executes one or more software or firmware programs, integrated logic circuitry, and/or other devices that provide the functionality described above.
- the communication device 1000 provided by the embodiment shown in FIG. 10 can also be implemented in other forms.
- the terminal device includes a processing module and a transceiver module.
- the processing module can be implemented by the processor 1001, and the transceiver module can be implemented by the transceiver 1002.
- the processing module can be used to perform S24 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S21, S22, S23, and S25 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the processing module is configured to generate a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set;
- the MAC CE includes a first bit field and a second bit field, where the first bit field is a reserved bit field, The second bit field is used to indicate a power headroom in the first power headroom set;
- the MAC CE includes a third bit field, where the third bit field is used to indicate the second power headroom set a power margin, the third bit field including a bit of the first bit field and a bit of the second bit field;
- transceiver module configured to send the MAC CE to a network device.
- the processing module is configured to generate a MAC CE, where the MAC CE is used to indicate a power headroom in the first power headroom set or a power headroom in the second power headroom set, where the MAC CE includes the first a bit field and a second bit field;
- the first bit field is a reserved bit field, and the second bit field is used to indicate the first power headroom Power headroom in the set;
- the first bit field and the second bit field are used to indicate power remaining in the second power headroom set the amount
- transceiver module configured to send the MAC CE to a network device.
- the communication device 1100 provided by the embodiment shown in FIG. 11 can also be implemented in other forms.
- the network device includes a processing module and a transceiver module.
- the processing module can be implemented by the processor 1101, and the transceiver module can be implemented by the transceiver 1102.
- the processing module can be used to perform S26 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S21, S22, S23, and S25 in the embodiment shown in FIG. 2, and/or other processes for supporting the techniques described herein.
- the transceiver module is configured to receive a MAC CE from the terminal device, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set;
- a processing module configured to determine, according to the second bit field included in the MAC CE, a power in the first power headroom set, if the MAC CE is used to indicate a power headroom in the first power headroom set a margin, the MAC CE includes a first bit field and the second bit field, where the first bit field is a reserved bit field; or, if the MAC CE is used to indicate the second power head set a power headroom in which a power headroom in the second power headroom set is determined according to a third bit field included in the MAC CE, the third bit field including a bit of the first bit field and the The bit of the second bit field.
- the transceiver module is configured to receive a MAC CE from the terminal device, where the MAC CE is used to indicate a power headroom in the first power headroom set, or a power headroom in the second power headroom set, the MAC
- the CE includes a first bit field and a second bit field;
- a processing module configured to determine, according to the second bit field, a power headroom in the first power headroom set, if the MAC CE is used to indicate a power headroom in the first power headroom set,
- the first bit field is a reserved bit field; or, if the MAC CE is used to indicate a power headroom in the second power headroom set, determining according to the first bit field and the second bit field a power headroom in the second set of power headroom.
- the communication device 1200 provided by the embodiment shown in FIG. 12 can also be implemented in other forms.
- the terminal device includes a processing module and a transceiver module.
- the processing module can be implemented by the processor 1201, and the transceiver module can be implemented by the transceiver 1202.
- the processing module can be used to perform S53 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S52 and S54 in the embodiment shown in Figure 5, and/or other processes for supporting the techniques described herein.
- the processing module is configured to generate, when in the connected state, a MAC CE carrying a BSR, where the MAC CE further includes at least 3 bits, where the at least 3 bits are used to indicate a power headroom;
- transceiver module configured to send the MAC CE to a network device.
- the communication device 1300 provided by the embodiment shown in FIG. 13 can also be implemented in other forms.
- the network device includes a processing module and a transceiver module.
- the processing module can be implemented by the processor 1301, and the transceiver module can be implemented by the transceiver 1302.
- the processing module can be used to perform S55 in the embodiment shown in FIG. 5, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S52 and S54 in the embodiment shown in Figure 5, and/or other processes for supporting the techniques described herein.
- a transceiver module is configured to receive a MAC CE from a terminal device
- a processing module configured to determine a power headroom of the terminal device according to at least three bits included in the MAC CE, and obtain a BSR from the MAC CE.
- the communication device 1400 provided by the embodiment shown in FIG. 14 can also be implemented in other forms.
- the terminal device includes a processing module.
- the terminal device further includes a transceiver module.
- the processing module can be implemented by the processor 1401, and the transceiver module can be implemented by the transceiver 1402.
- the processing module can be used to perform S72 and S73 in the embodiment shown in FIG. 7, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S71, S72 in the embodiment shown in FIG. 7 (the transceiver module receives the RAR from the network device, the processing module obtains the first resource information from the RAR) and S74, and/or is used to support the description herein. Other processes of technology.
- the processing module is configured to obtain first resource information indicated by the network device, where the first resource information is used to send a third message msg3, where the first resource information includes a modulation coding scheme parameter of msg3 and a resource unit used by msg3. Number parameter
- the processing module is further configured to determine, according to the true subset of the parameters included in the first resource information, the second resource information, where the second resource information is used to actually send msg3, where the second transport block size is smaller than the first transport block.
- a size the second transport block size is a transport block size of the msg3 included in the second resource information
- the first transport block size is a transport block size of the msg3 included in the first resource information.
- the communication device 1500 provided by the embodiment shown in FIG. 15 can also be implemented in other forms.
- the terminal device includes a processing module.
- the terminal device further includes a transceiver module.
- the processing module can be implemented by the processor 1501, and the transceiver module can be implemented by the transceiver 1502.
- the processing module can be used to perform S82 and S83 in the embodiment shown in FIG. 8, and/or other processes for supporting the techniques described herein.
- the transceiver module may be configured to perform S81, S82 in the embodiment shown in FIG. 8 (the transceiver module receives the RAR from the network device, the processing module obtains the first resource information from the RAR) and S84, and/or is used to support the description herein. Other processes of technology.
- the processing module is configured to obtain first resource information indicated by the network device, where the first resource information is used to send a third message msg3, where the first resource information includes a modulation coding scheme parameter of msg3 and a resource unit used by msg3. Number parameter
- the processing module is further configured to determine that the first transport block size is greater than the second transport block size, and then re-determine the second resource information, where the second resource information includes a transport block size that is a second transport block size.
- the second transport block size is a transport block size required for the terminal device to actually send the msg3
- the first transport block size is a transport block size of the msg3 included in the first resource information.
- the communication device 1600 provided by the embodiment shown in FIG. 16 can also be implemented in other forms.
- the terminal device includes a processing module.
- the terminal device further includes a transceiver module.
- the processing module can be implemented by the processor 1601, and the transceiver module can be implemented by the transceiver 1602.
- the processing module can be used to perform S92 and S93 in the embodiment shown in FIG. 9, and/or other processes for supporting the techniques described herein.
- the transceiver module can be used to perform S91, S92 in the embodiment shown in FIG. 9 (the transceiver module receives the RAR from the network device, the processing module obtains the first resource information from the RAR) and S94, and/or is used to support the description herein. Other processes of technology.
- the processing module is configured to obtain multiple resource information indicated by the network device, where each of the multiple resource information is used to send a third message msg3, where each resource information includes a modulation coding scheme parameter of msg3 And the resource unit number parameter used by msg3;
- the processing module is further configured to: according to the size of the msg3 to be sent, determine to send the msg3 to be actually sent by using the first resource information in the multiple resource information.
- the communication device 1000, the communication device 1100, the communication device 1200, the communication device 1300, the communication device 1400, the communication device 1500, the communication device 1600, and the communication device 1700 provided by the embodiments of the present application can be used to execute the embodiment and the diagram shown in FIG.
- the embodiment shown in FIG. 5, the embodiment shown in FIG. 7, the embodiment shown in FIG. 8, or the method provided in the embodiment shown in FIG. 9, and therefore the technical effects that can be obtained can be referred to the above method embodiment. I will not repeat them here.
- Embodiments of the present application are described with reference to flowchart illustrations and/or block diagrams of methods, devices (systems), and computer program products according to embodiments of the present application. It will be understood that each flow and/or block of the flowchart illustrations and/or FIG.
- These computer program instructions can be provided to a processor of a general purpose computer, special purpose computer, embedded processor, or other programmable data processing device to produce a machine for the execution of instructions for execution by a processor of a computer or other programmable data processing device.
- the computer program product includes one or more computer instructions.
- the computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable device.
- the computer instructions can be stored in a computer readable storage medium or transferred from one computer readable storage medium to another readable storage medium, for example, the computer instructions can be passed from a website site, computer, server or data center Wired (eg, coaxial cable, fiber, digital subscriber line (DSL)) or wireless (eg, infrared, wireless, microwave, etc.) to another website site, computer, server, or data center.
- the computer readable storage medium can be any available media that can be accessed by a computer or a data storage device such as a server, data center, or the like that includes one or more available media.
- the usable medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a digital versatile disc (DVD)), or a semiconductor medium (eg, a solid state disk (SSD) ))Wait.
- a magnetic medium eg, a floppy disk, a hard disk, a magnetic tape
- an optical medium eg, a digital versatile disc (DVD)
- DVD digital versatile disc
- semiconductor medium eg, a solid state disk (SSD)
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Abstract
Description
Claims (38)
- 一种信号发送方法,其特征在于,包括:生成媒体接入控制MAC控制元素CE,所述MAC CE用于指示第一功率余量集合中的功率余量,或者第二功率余量集合中的功率余量;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述MAC CE包括第一比特域和第二比特域,所述第一比特域为预留比特域,所述第二比特域用于指示所述第一功率余量集合中的功率余量;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,所述MAC CE包括第三比特域,所述第三比特域用于指示所述第二功率余量集合中的功率余量,所述第三比特域包括所述第一比特域的比特和所述第二比特域的比特;向网络设备发送所述MAC CE。
- 如权利要求1所述的方法,其特征在于,所述MAC CE还包括第四比特域;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述第四比特域为所述MAC CE中的预留比特域;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,所述第四比特域用于指示通过所述第三比特域指示功率余量。
- 如权利要求1或2所述的方法,其特征在于,所述方法还包括:向所述网络设备发送第一信令,所述第一信令用于指示通过所述第三比特域指示功率余量;或,通过CCCH向所述网络设备发送所述MAC CE,所述CCCH的逻辑信道号标识为第一标识,所述第一标识用于指示通过所述第三比特域指示功率余量。
- 如权利要求1-3任一所述的方法,其特征在于,所述方法还包括:从所述网络设备接收第二信令,所述第二信令用于指示通过MAC CE包括的第三比特域指示功率余量。
- 一种信号发送方法,其特征在于,包括:生成媒体接入控制MAC控制元素CE,所述MAC CE用于指示第一功率余量集合中的功率余量或者第二功率余量集合中的功率余量,所述MAC CE包括第一比特域和第二比特域;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述第一比特域为预留比特域,所述第二比特域用于指示所述第一功率余量集合中的功率余量;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,所述第一比特域和所述第二比特域用于指示所述第二功率余量集合中的功率余量;向网络设备发送所述MAC CE。
- 如权利要求5所述的方法,其特征在于,所述MAC CE还包括第四比特域;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述第四比特域为所述MAC CE中的预留比特域;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,所述第四比特域用于指示通过所述第一比特域和所述第二比特域指示功率余量。
- 如权利要求5或6所述的方法,其特征在于,所述方法还包括:向所述网络设备发送第一信令,所述第一信令用于指示通过所述第一比特域和所述第 二比特域指示功率余量;或,通过CCCH向所述网络设备发送所述MAC CE,所述CCCH的逻辑信道号标识为第一标识,所述第一标识用于指示通过所述第一比特域和所述第二比特域指示功率余量。
- 如权利要求5-7任一所述的方法,其特征在于,所述方法还包括:从所述网络设备接收第二信令,所述第二信令用于指示通过MAC CE包括的第一比特域和第二比特域指示功率余量。
- 如权利要求1-8任一所述的方法,其特征在于,向网络设备发送所述MAC CE,包括:将所述MAC CE携带在第三消息msg3中发送给所述网络设备。
- 一种信号发送方法,其特征在于,包括:在处于连接态时,生成携带缓冲状态报告BSR的媒体接入控制MAC控制元素CE,所述MAC CE还包括至少3个比特,所述至少3个比特用于指示功率余量;向网络设备发送所述MAC CE。
- 如权利要求10所述的方法,其特征在于,在满足以下至少一项的情况下,生成携带所述BSR的所述MAC CE:终端设备的第一下行路损与所述终端设备的第二下行路损的差值大于第一阈值,所述第一下行路损为所述终端设备当前的下行路损,所述第二下行路损为所述终端设备在最近一次向所述网络设备指示所述终端设备的功率余量时的下行路损;所述功率余量和所述终端设备的第一功率余量的差值大于第二阈值,所述第一功率余量为所述终端设备最近一次向所述网络设备发送的功率余量;所述终端设备的第一下行路损大于第三阈值,所述第一下行路损为所述终端设备当前的下行路损;和,所述功率余量大于第四阈值。
- 如权利要求10或11所述的方法,其特征在于,所述方法还包括:从所述网络设备接收第一信令,所述第一信令用于配置在向所述网络设备发送BSR时一并指示功率余量。
- 一种确定资源的方法,其特征在于,包括:获得网络设备指示的第一资源信息,所述第一资源信息用于发送第三消息msg3,所述第一资源信息包括msg3的调制编码方案参数以及msg3使用的资源单位数参数;根据所述第一资源信息包括的参数的真子集,确定第二资源信息,所述第二资源信息用于实际发送msg3,其中,第二传输块大小小于第一传输块大小,所述第二传输块大小为所述第二资源信息包括的msg3的传输块大小,所述第一传输块大小为所述第一资源信息包括的msg3的传输块大小。
- 一种确定资源的方法,其特征在于,包括:获得网络设备指示的多个资源信息,所述多个资源信息中的每个资源信息用于发送第三消息msg3,所述每个资源信息包括msg3的调制编码方案参数以及msg3使用的资源单位数参数;根据实际待发送的msg3的大小,确定通过所述多个资源信息中的第一资源信息发送实际待发送的msg3。
- 如权利要求14所述的方法,其特征在于,获得网络设备指示的多个资源信息, 包括:从所述网络设备接收随机接入响应消息,所述随机接入响应消息携带所述多个资源信息,所述随机接入响应消息还用于指示所述多个资源信息的数量。
- 一种信号接收方法,其特征在于,包括:从终端设备接收媒体接入控制MAC控制元素CE,所述MAC CE用于指示第一功率余量集合中的功率余量,或者第二功率余量集合中的功率余量;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,根据所述MAC CE包括的第二比特域确定所述第一功率余量集合中的功率余量,所述MAC CE包括第一比特域和所述第二比特域,所述第一比特域为预留比特域;或,若所述MAC CE用于指示所述第二功率余量集合中的功率余量,根据所述MAC CE包括的第三比特域确定所述第二功率余量集合中的功率余量,所述第三比特域包括所述第一比特域的比特和所述第二比特域的比特。
- 如权利要求16所述的方法,其特征在于,所述MAC CE还包括第四比特域,所述方法还包括:若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述第四比特域为所述MAC CE中的预留比特域;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,根据所述第四比特域确定通过所述第三比特域指示功率余量。
- 如权利要求16或17所述的方法,其特征在于,所述方法还包括:从所述终端设备接收第一信令,所述第一信令用于指示通过所述第三比特域指示功率余量;或,通过CCCH从所述终端设备接收所述MAC CE,所述CCCH的逻辑信道号标识为第一标识,所述第一标识用于指示通过所述第三比特域指示功率余量。
- 如权利要求16-18任一所述的方法,其特征在于,所述方法还包括:向所述终端设备发送第二信令,所述第二信令用于指示通过MAC CE包括的第三比特域指示功率余量。
- 一种信号接收方法,其特征在于,包括:从终端设备接收媒体接入控制MAC控制元素CE,所述MAC CE用于指示第一功率余量集合中的功率余量,或者第二功率余量集合中的功率余量,所述MAC CE包括第一比特域和第二比特域;若所述MAC CE用于指示所述第一功率余量集合中的功率余量,根据所述第二比特域确定所述第一功率余量集合中的功率余量,所述第一比特域为预留比特域;或,若所述MAC CE用于指示所述第二功率余量集合中的功率余量,根据所述第一比特域和所述第二比特域确定所述第二功率余量集合中的功率余量。
- 如权利要求20所述的方法,其特征在于,所述MAC CE还包括第四比特域,所述方法还包括:若所述MAC CE用于指示所述第一功率余量集合中的功率余量,所述第四比特域为所述MAC CE中的预留比特域;若所述MAC CE用于指示所述第二功率余量集合中的功率余量,根据所述第四比特域确定通过所述第一比特域和所述第二比特域指示功率余量。
- 如权利要求20或21所述的方法,其特征在于,所述方法还包括:从所述终端设备接收第一信令,所述第一信令用于指示通过所述第一比特域和所述第二比特域指示功率余量;或,通过CCCH从所述终端设备接收所述MAC CE,所述CCCH的逻辑信道号标识为第一标识,所述第一标识用于指示通过所述第一比特域和所述第二比特域指示功率余量。
- 如权利要求20-22任一所述的方法,其特征在于,所述方法还包括:向所述终端设备发送第二信令,所述第二信令用于指示通过MAC CE包括的第一比特域和第二比特域指示功率余量。
- 如权利要求20-23任一所述的方法,其特征在于,从终端设备接收MAC CE,包括:从所述终端设备接收第三消息msg3,所述msg3携带所述MAC CE。
- 一种信号接收方法,其特征在于,包括:从终端设备接收媒体接入控制MAC控制元素CE;根据所述MAC CE包括的至少3个比特确定所述终端设备的功率余量,以及,从所述MAC CE中获得缓冲状态报告BSR。
- 如权利要求25所述的方法,其特征在于,所述方法还包括:向所述终端设备发送第一信令,所述第一信令用于配置所述终端设备在向所述网络设备发送BSR时一并指示功率余量。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权利要求1-9任一所述的方法。
- 如权利要求27所述的装置,其特征在于,还包括:所述存储器。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权利要求10-12任一所述的方法。
- 如权利要求29所述的装置,其特征在于,还包括:所述存储器。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权利要求13所述的方法。
- 如权利要求31所述的装置,其特征在于,还包括:所述存储器。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权利要求14或15所述的方法。
- 如权利要求33所述的装置,其特征在于,还包括:所述存储器。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权 利要求16-24任一所述的方法。
- 如权利要求35所述的装置,其特征在于,还包括:所述存储器。
- 一种通信装置,其特征在于,包括:处理器;所述处理器用于与存储器耦合,读取所述存储器中的指令,并根据所述指令执行如权利要求25或26所述的方法。
- 如权利要求37所述的装置,其特征在于,还包括:所述存储器。
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| PCT/CN2018/074838 WO2019148400A1 (zh) | 2018-01-31 | 2018-01-31 | 一种信号发送、接收、确定资源的方法及设备 |
| JP2020541715A JP7153732B2 (ja) | 2018-01-31 | 2018-01-31 | 信号送信方法、信号受信方法、リソース決定方法及びデバイス |
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| EP25182972.7A EP4661519A2 (en) | 2018-01-31 | 2018-01-31 | Signal sending method, signal receiving method, resource determining method, and device |
| US16/941,276 US11160036B2 (en) | 2018-01-31 | 2020-07-28 | Signal sending method, signal receiving method, resource determining method, and device |
| US17/501,206 US11665651B2 (en) | 2018-01-31 | 2021-10-14 | Signal sending method, signal receiving method, resource determining method, and device |
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| EP4210400A4 (en) * | 2020-09-30 | 2024-03-13 | Huawei Technologies Co., Ltd. | UPLINK POWER CONTROL METHOD AND RELATED APPARATUS |
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| CN110167185B (zh) * | 2018-02-14 | 2022-05-17 | 华为技术有限公司 | 随机接入过程中传输数据的方法和装置 |
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| JP7153732B2 (ja) | 2022-10-14 |
| EP3735021A4 (en) | 2021-04-21 |
| EP3735021C0 (en) | 2025-07-23 |
| EP3735021A1 (en) | 2020-11-04 |
| CN111630889A (zh) | 2020-09-04 |
| US11665651B2 (en) | 2023-05-30 |
| US11160036B2 (en) | 2021-10-26 |
| US20200367179A1 (en) | 2020-11-19 |
| CN111630889B (zh) | 2022-01-14 |
| EP3735021B1 (en) | 2025-07-23 |
| CN114513839B (zh) | 2024-01-16 |
| JP2021513242A (ja) | 2021-05-20 |
| CN114513839A (zh) | 2022-05-17 |
| EP4661519A2 (en) | 2025-12-10 |
| US20220124639A1 (en) | 2022-04-21 |
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