WO2023197270A1 - 一种资源配置的方法及其装置 - Google Patents

一种资源配置的方法及其装置 Download PDF

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Publication number
WO2023197270A1
WO2023197270A1 PCT/CN2022/086926 CN2022086926W WO2023197270A1 WO 2023197270 A1 WO2023197270 A1 WO 2023197270A1 CN 2022086926 W CN2022086926 W CN 2022086926W WO 2023197270 A1 WO2023197270 A1 WO 2023197270A1
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Prior art keywords
comb
resource block
resource pool
resource
mapped
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PCT/CN2022/086926
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English (en)
French (fr)
Inventor
赵文素
赵群
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北京小米移动软件有限公司
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Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to PCT/CN2022/086926 priority Critical patent/WO2023197270A1/zh
Priority to CN202280001224.7A priority patent/CN114938719A/zh
Publication of WO2023197270A1 publication Critical patent/WO2023197270A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA

Definitions

  • the present application relates to the field of communication technology, and in particular, to a resource allocation method and device.
  • Terminal direct-connect communication also called sidelink, SL
  • performance requirements such as transmission width, communication speed domain, communication delay, reliability, and scalability. Will be getting higher and higher. If we only rely on operators' limited licensed spectrum, we will not be able to meet the potential diverse application scenarios and needs in the future. Therefore, we need to study terminal sidelinks (sidelink-unlicensed) that can be applied in unlicensed frequency bands. ,SL-U) technology.
  • OCB OccupiedChannel Bandwidth, occupied bandwidth for sending signals on the unlicensed spectrum
  • LBT Listen before Talk, listen before talking sub-band
  • Embodiments of the present application provide a resource allocation method and device, which can be applied to the Internet of Vehicles, such as vehicle to everything (V2X) communication and workshop communication long term evolution-vehicle (LTE-V) ), vehicle to vehicle (V2V) communication, etc., or can be used in fields such as intelligent driving and intelligent connected vehicles, by designing the mapping method between the resource pool and the IRB index of the comb resource block to realize the resource pool.
  • the configuration of resources can meet OCB requirements on the unlicensed frequency band of the terminal side link, thereby meeting potential diverse application scenarios and needs in the future.
  • embodiments of the present application provide a resource configuration method, which is executed by a first terminal device.
  • the method includes:
  • the configuration information of each resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; the resource block value between two consecutive comb resource block indexes in the same comb resource block index is M , the M is determined by the size of the subcarrier spacing.
  • the comb resource block is divided into one or more resource pools to form configuration information of each resource pool, where the configuration information of each resource pool indicates the comb resource block configured in the corresponding resource pool.
  • the number and location of indexes It can be seen that this application provides a mapping method between the resource pool and the comb ruler resource block index to realize the resource configuration of the resource pool, and can meet the OCB requirements on the unlicensed frequency band of the terminal side link, thereby meeting the Potential diverse application scenarios and needs in the future.
  • mapping the comb resource block to at least one resource pool includes: determining the number and number of comb resource block indexes contained in a resource pool according to the mapping rules between the resource pool and the comb resource block index. The position of the comb resource block index; according to the number of comb resource block indexes contained in the one resource pool and the position of the comb resource block index, map the comb resource block to at least one resource pool.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N1 consecutive or non-continuous N1 comb resource block indexes in a listen-before-talk LBT subband. above; wherein, the N1 is a positive integer less than or equal to the M.
  • the resource pool is mapped to consecutive or non-continuous integer N1 comb rule resource block indexes in a listen-before-talk LBT subband, including: from the one LBT subband Starting from the first comb resource block index, map the continuous or non-continuous integer N1 IRB indexes one by one to the corresponding resource pool according to the logical number where the comb resource block index is located; wherein, the N1 is smaller than the M.
  • the configuration information of each resource pool includes a bitmap, the length of the bitmap is the M, wherein each bit in the bitmap corresponds to a Comb resource block index, the bit value of 1 in the bitmap is used to indicate mapping to the corresponding resource pool, the bit value of 0 in the bitmap is used to indicate not to be mapped to the corresponding resource pool Resource pool.
  • the mapping rule between the resource pool and the comb resource block index is: a resource pool is mapped to a continuous integer N1 comb resource block indexes in an LBT subband; wherein, each The configuration information of each of the resource pools includes indication information used to indicate the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool.
  • the resource pool includes X sub-channels
  • the resource block index includes: X sub-channels in the one resource pool are mapped to the N1 comb resource block indexes, where the mapping rule between the sub-channels and the comb resource block index is: Starting from the first comb resource block index mapped by a resource pool, the N1 comb resource block indexes are mapped to the sub-channels in the one resource pool according to the logical number where the comb resource block index is located.
  • the one resource pool is mapped to a continuous or non-continuous integer N1 comb rule resource block indexes in a listen-before-talk LBT sub-band, including: the one resource pool is mapped to an LBT sub-band. on the M IRB indexes in the band; where the N1 is equal to the M.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N2 consecutive or non-continuous N2 comb resource block indexes in an LBT subband; wherein, the N2 is a non-integer greater than 1 and less than M.
  • the one resource pool is mapped to N2 consecutive or non-continuous N2 comb rule resource block indexes in one LBT subband, including: starting from the first one in the one LBT subband.
  • the continuous or non-continuous N2 comb resource block indexes are mapped one by one to the corresponding resource pool according to the logical number where the comb resource block index is located; wherein, the N2 comb resource blocks
  • the index includes: the first comb resource block index to the Lth comb resource block index, and l comb resource blocks in the L+1th comb resource block index; the L is the The integer obtained by rounding down the N2, and the value of l is based on the relationship between the decimal part of the N2 and the M.
  • the resource pool includes X sub-channels
  • the index includes: X sub-channels in the one resource pool are mapped to the N2 comb resource block indexes, where the mapping rule between the sub-channels and the comb resource block indexes is: the one resource pool Starting from the mapped first comb resource block index, the N2 comb resource block indexes are mapped to the sub-channels in the one resource pool according to the logical number where the comb resource block index is located.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N3 comb resource block indexes in multiple LBT subbands; wherein the N3 is greater than the M is an integer, and the resource pool is mapped continuously or discontinuously to the comb resource block index of the same serial number in each LBT subband.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, wherein the subband indication information is used to indicate the corresponding resource pool mapped There are multiple LBT subbands, and the comb resource block index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N3 IRB indexes in multiple LBT subbands; wherein the N3 is greater than the M Integer, the comb resource block index sequence number mapped in each LBT subband of the resource pool is different.
  • the configuration information of each resource pool includes indication information, and the indication information is used to indicate the logical number of the comb resource block index mapped by the corresponding resource pool; or, each The configuration information of the resource pool includes subband indication information and comb resource block index indication information, wherein the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource block The index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • embodiments of the present application provide another resource configuration method, which is executed by a terminal device.
  • the method includes:
  • the configuration information of the resource pool indicates the number and position of the comb resource block indexes configured in the corresponding resource pool; the resource block value between two consecutive comb resource block indexes in the same comb resource block index is M , the M is determined by the size of the subcarrier spacing.
  • embodiments of the present application provide a communication device that has some or all of the functions of the first terminal device in implementing the method described in the first aspect.
  • the functions of the communication device may include some of the functions in this application. Or the functions in all embodiments may also be used to implement any one embodiment of the present application independently.
  • the functions described can be implemented by hardware, or can be implemented by hardware executing corresponding software.
  • the hardware or software includes one or more units or modules corresponding to the above functions.
  • the structure of the communication device may include a transceiver module and a processing module, and the processing module is configured to support the communication device to perform corresponding functions in the above method.
  • the transceiver module is used to support communication between the communication device and other devices.
  • the communication device may further include a storage module coupled to the transceiver module and the processing module, which stores necessary computer programs and data for the communication device.
  • the processing module may be a processor
  • the transceiver module may be a transceiver or a communication interface
  • the storage module may be a memory
  • the processing module is configured to map the comb resource block to at least one resource pool
  • the processing module is also used to determine the configuration information of each resource pool in the at least one resource pool;
  • the configuration information of each resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; the resource block value between two consecutive comb resource block indexes in the same comb resource block index is M , the M is determined by the size of the subcarrier spacing.
  • the processing module includes:
  • the determination unit is used to determine the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index according to the mapping rules between the resource pool and the comb resource block index;
  • a mapping unit configured to map the comb resource block to at least one resource pool according to the number of comb resource block indexes contained in the one resource pool and the position of the comb resource block index.
  • the determination unit is specifically configured to determine, according to the mapping rules between the resource pool and the comb resource block index, that a resource pool is mapped to N1 consecutive or non-consecutive N1 listen-before-talk LBT subbands. On the comb resource block index; wherein, the N1 is a positive integer less than or equal to the M;
  • the mapping unit is specifically configured to map the comb resource blocks to at least one resource pool according to the mapping of the one resource pool to N1 consecutive or non-continuous N1 comb resource block indexes in a listen-before-talk LBT subband.
  • the mapping unit is specifically configured to: starting from the first comb ruler resource block index in the one LBT subband, according to the logical number where the comb ruler resource block index is located, the continuous or non- N1 consecutive integer IRB indexes are mapped to the corresponding resource pool one by one; wherein the N1 is smaller than the M.
  • the configuration information of each resource pool includes a bitmap, the length of the bitmap is M, wherein each bit in the bitmap corresponds to a comb Resource block index, the bit value of 1 in the bitmap is used to indicate mapping to the corresponding resource pool, the bit value of 0 in the bitmap is used to indicate not to be mapped to the corresponding resource Pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to a continuous integer N1 comb-size resource block indexes in an LBT subband; wherein, the configuration of each resource pool
  • the information includes indication information used to indicate the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool.
  • the one resource pool includes X sub-channels, and the X is a positive integer; the determining unit is specifically configured to determine whether the on a comb resource block index, wherein the mapping rule between the sub-channel and the comb resource block index is: starting from the first comb resource block index mapped by the one resource pool, according to the comb resource block index The logical number maps the N1 comb resource block indexes to the sub-channels in the one resource pool.
  • the determining unit is specifically configured to: determine that the one resource pool is mapped to the M IRB indexes in one LBT subband; wherein the N1 is equal to the M.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to N2 consecutive or non-continuous N2 comb-rule resource block indexes in an LBT subband; where N2 is greater than 1 and less than The M is a non-integer.
  • the determining unit is specifically configured to: determine starting from the first comb ruler resource block index in the one LBT subband, and assign the comb ruler resource block index according to the logical number where the comb ruler resource block index is located. Continuous or non-continuous N2 comb resource block indexes are mapped one by one to the corresponding resource pool; wherein, the N2 comb resource block indexes include: the first comb resource block index to the Lth comb resource block index, and l comb resource blocks in the L+1th comb resource block index; the L is an integer obtained by rounding down the N2, and the value of l is based on the Describe the relationship between the decimal part of N2 and M.
  • the one resource pool includes X sub-channels, and the X is a positive integer; the determining unit is specifically configured to determine whether the on a comb resource block index, wherein the mapping rule between the sub-channel and the comb resource block index is: starting from the first comb resource block index mapped by the one resource pool, according to the location of the comb resource block index The logical number maps the N2 comb resource block indexes to the sub-channels in the one resource pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to N3 comb-size resource block indexes in multiple LBT subbands; wherein the N3 is an integer greater than the M , the one resource pool is continuously or discontinuously mapped to the comb resource block index of the same serial number in each LBT subband.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, wherein the subband indication information is used to indicate multiple mappings of the corresponding resource pool. LBT subbands, and the comb resource block index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to N3 IRB indexes in multiple LBT subbands; wherein the N3 is an integer greater than the M, and the A resource pool maps different comb resource block index numbers in each LBT subband.
  • the configuration information of each resource pool includes indication information, and the indication information is used to indicate the logical number of the comb resource block index mapped by the corresponding resource pool; or, each The configuration information of the resource pool includes subband indication information and comb resource block index indication information, wherein the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource block index The indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • embodiments of the present application provide another communication device that has part or all of the functions of the second terminal device in the method example described in the second aspect.
  • the functions of the communication device may be provided in the present application.
  • the functions in some or all of the embodiments may also be used to independently implement any of the embodiments in this application.
  • the functions described can be implemented by hardware, or can be implemented by hardware executing corresponding software.
  • the hardware or software includes one or more units or modules corresponding to the above functions.
  • the structure of the communication device may include a transceiver module and a processing module, and the processing module is configured to support the communication device to perform corresponding functions in the above method.
  • the transceiver module is used to support communication between the communication device and other devices.
  • the communication device may further include a storage module coupled to the transceiver module and the processing module, which stores necessary computer programs and data for the communication device.
  • the processing module may be a processor
  • the transceiver module may be a transceiver or a communication interface
  • the storage module may be a memory
  • the transceiver module is configured to receive the configuration information of the resource pool sent by the network device; wherein the configuration information of the resource pool indicates the number and location of the comb resource block index configured in the corresponding resource pool;
  • the resource block value separated by two consecutive comb-size resource blocks in the same comb-size resource block index is M, and the M is determined by the size of the subcarrier interval.
  • inventions of the present application provide a communication device.
  • the communication device includes a processor.
  • the processor calls a computer program in a memory, it executes the method described in the first aspect.
  • inventions of the present application provide a communication device.
  • the communication device includes a processor.
  • the processor calls a computer program in a memory, it executes the method described in the second aspect.
  • inventions of the present application provide a communication device.
  • the communication device includes a processor and a memory, and a computer program is stored in the memory; the processor executes the computer program stored in the memory, so that the communication device executes The method described in the first aspect above.
  • inventions of the present application provide a communication device.
  • the communication device includes a processor and a memory, and a computer program is stored in the memory; the processor executes the computer program stored in the memory, so that the communication device executes The method described in the second aspect above.
  • inventions of the present application provide a communication device.
  • the device includes a processor and an interface circuit.
  • the interface circuit is used to receive code instructions and transmit them to the processor.
  • the processor is used to run the code instructions to cause the The device performs the method described in the first aspect.
  • inventions of the present application provide a communication device.
  • the device includes a processor and an interface circuit.
  • the interface circuit is used to receive code instructions and transmit them to the processor.
  • the processor is used to run the code instructions to cause the The device performs the method described in the second aspect above.
  • embodiments of the present application provide a resource allocation system.
  • the system includes the communication device described in the third aspect and the communication device described in the fourth aspect.
  • the system includes the communication device described in the fifth aspect.
  • the device and the communication device according to the sixth aspect, or the system includes the communication device according to the seventh aspect and the communication device according to the eighth aspect, or the system includes the communication device according to the ninth aspect and the communication device according to the tenth aspect.
  • embodiments of the present invention provide a computer-readable storage medium for storing instructions used by the above-mentioned terminal equipment. When the instructions are executed, the terminal equipment is caused to execute the above-mentioned first aspect. method.
  • embodiments of the present invention provide a readable storage medium for storing instructions used by the above-mentioned network device. When the instructions are executed, the network device is caused to perform the method described in the second aspect. .
  • the present application also provides a computer program product including a computer program, which when run on a computer causes the computer to execute the method described in the first aspect.
  • the present application also provides a computer program product including a computer program, which when run on a computer causes the computer to execute the method described in the second aspect.
  • the present application provides a chip system.
  • the chip system includes at least one processor and an interface for supporting the first terminal device to implement the functions involved in the first aspect, for example, determining or processing the functions involved in the above method. at least one of data and information.
  • the chip system further includes a memory, and the memory is used to store necessary computer programs and data for the terminal device.
  • the chip system may be composed of chips, or may include chips and other discrete devices.
  • the present application provides a chip system, which includes at least one processor and an interface for supporting a second terminal device to implement the functions involved in the second aspect, for example, determining or processing the functions involved in the above method. at least one of data and information.
  • the chip system further includes a memory, and the memory is used to store necessary computer programs and data for the network device.
  • the chip system may be composed of chips, or may include chips and other discrete devices.
  • the present application provides a computer program that, when run on a computer, causes the computer to execute the method described in the first aspect.
  • this application provides a computer program that, when run on a computer, causes the computer to execute the method described in the second aspect.
  • Figure 1 is a schematic architectural diagram of a communication system provided by an embodiment of the present application.
  • Figure 2 is a flow chart of a resource configuration method provided by an embodiment of the present application.
  • Figure 3 is a structural example of a comb ruler resource block according to the embodiment of the present application.
  • Figure 4 is Figure 2 of a structural example of a comb ruler resource block according to the embodiment of the present application.
  • Figure 5 is a flow chart of another resource configuration method provided by an embodiment of the present application.
  • Figure 6 is an example diagram of mapping a resource pool to a comb resource block index in an embodiment of the present application
  • FIG. 7 is a flow chart of yet another resource allocation method provided by this application.
  • Figure 8 is a schematic structural diagram of a communication device provided by an embodiment of the present application.
  • Figure 9 is a schematic structural diagram of another communication device provided by an embodiment of the present application.
  • Terminal direct-connect communication also called sidelink, SL
  • performance requirements such as transmission width, communication speed domain, communication delay, reliability, and scalability. Will be getting higher and higher. If we only rely on operators' limited licensed spectrum, we will not be able to meet the potential diverse application scenarios and needs in the future. Therefore, we need to study terminal sidelinks (sidelink-unlicensed) that can be applied in unlicensed frequency bands. ,SL-U) technology.
  • the SL-U system includes the following two resource allocation methods:
  • the first one directly uses Interlaced Resource Block (IRB) as the granular resource allocation method.
  • IRB Interlaced Resource Block
  • the second type resource allocation method with sub-channel as the granularity.
  • the resource pool needs to be defined on the LBT sub-band, and the mapping relationship between the resource pool and the IRB index is designed.
  • the mapping relationship between the resource pool and the IRB index is designed.
  • the mapping relationship between the resource pool and the IRB index is designed.
  • this application proposes a resource configuration method and its device, which can be applied to the SL-U system to realize resource configuration of the resource pool by providing a mapping method between the resource pool and the comb resource block index. , can meet OCB requirements on the unlicensed frequency band of the terminal side link, thereby meeting potential diverse application scenarios and needs in the future.
  • Figure 1 is a schematic architectural diagram of a communication system provided by an embodiment of the present application.
  • the communication system may include but is not limited to a network device and a terminal device.
  • the number and form of devices shown in Figure 1 are only for example and constitute a limitation of the embodiments of the present application. In actual applications, it may include two or more networks. Equipment, two or more terminal devices.
  • the communication system shown in Figure 1 includes a network device 101 and a terminal device 102 as an example.
  • LTE long term evolution
  • 5th generation 5th generation
  • 5G new radio 5th generation
  • SL-U SL-U system
  • future new mobile communication systems wait.
  • the network device 101 in the embodiment of this application is an entity on the network side that is used to transmit or receive signals.
  • the network device 101 can be an evolved base station (evolved NodeB, eNB), a transmission point (transmission reception point, TRP), a next generation base station (next generation NodeB, gNB) in an NR system, or other base stations in future mobile communication systems. Or access nodes in wireless fidelity (WiFi) systems, etc.
  • the embodiments of this application do not limit the specific technology and specific equipment form used by the network equipment.
  • the network equipment provided by the embodiments of this application may be composed of a centralized unit (central unit, CU) and a distributed unit (DU).
  • the CU may also be called a control unit (control unit).
  • the structure can separate the protocol layers of network equipment, such as base stations, and place some protocol layer functions under centralized control on the CU. The remaining part or all protocol layer functions are distributed in the DU, and the CU centrally controls the DU.
  • the terminal device in the embodiment of this application is an entity on the user side that is used to receive or transmit signals, such as a mobile phone.
  • the first terminal equipment and the second terminal equipment may also be called terminal equipment, user equipment (user equipment, UE), mobile station (mobile station, MS), mobile terminal equipment (mobile terminal, MT), etc.
  • the terminal device can be a car with communication functions, a smart car, a mobile phone, a wearable device, a tablet computer (Pad), a computer with wireless transceiver functions, a virtual reality (VR) terminal device, an augmented reality (augmented reality (AR) terminal equipment, wireless terminal equipment in industrial control, wireless terminal equipment in self-driving, wireless terminal equipment in remote medical surgery, smart grid ( Wireless terminal equipment in smart grid, wireless terminal equipment in transportation safety, wireless terminal equipment in smart city, wireless terminal equipment in smart home, etc.
  • the embodiments of this application do not limit the specific technology and specific equipment form used by the terminal equipment.
  • Figure 2 is a flow chart of a resource configuration method provided by an embodiment of the present application. It should be noted that the resource configuration method in the embodiment of the present application can be applied to the terminal sidelink unlicensed frequency band system, and the method can be executed by the network device. As shown in Figure 2, the resource configuration method may include but is not limited to the following steps.
  • step 201 map the comb resource block to at least one resource pool.
  • the configuration information of each resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; two consecutive comb resource blocks in the same comb resource block index
  • the number of resource blocks separated by blocks is M, and M is determined by the size of the subcarrier spacing.
  • the comb ruler resource block (also called interlaced resource block, IRB) is introduced in the NR-U system, that is, two consecutive comb ruler resource blocks are separated by M resource blocks.
  • the block index m includes physical resource blocks PRB as ⁇ m, M+m, 2M+m, 3M+m,... ⁇ , where m ⁇ 0,1,...,M-1 ⁇ .
  • the IRB structure is defined for the two sub-carrier intervals of 15kHz and 30kHz, as shown in the following table.
  • the comb ruler resource block index contains the comb resource block PRB ⁇ 0,5,10,15,20,25,30,35,40,45 ⁇ .
  • the comb resource block index contains the comb resource block PRB ⁇ 0,10,20,30,40,50,60,70,80,90 ⁇ .
  • This application continues to introduce comb-size resource blocks. Therefore, by introducing comb-size resource blocks, the overhead of indicating the frequency domain resources to be configured in the SL-U system can be reduced.
  • the network device when configuring the resource pool, can map the comb resource blocks in the system to one or more resource pools.
  • the comb resource block can be mapped to one or more resource pools based on the mapping rules between the resource pool and the comb resource block index.
  • the mapping rule may be agreed upon by the protocol.
  • step 202 configuration information of each resource pool in at least one resource pool is determined.
  • the network device when configuring the resource pool, can map the comb resource blocks in the system to one or more resource pools. That is to say, the comb resource blocks of the system can be divided into one or more resource pools. Multiple resource pools to form the resource pool configuration information of the system.
  • the resource pool configuration information includes the configuration information of each resource pool.
  • the configuration information of each resource pool indicates the comb resource block index configured in the corresponding resource pool. quantity and location, thereby realizing resource allocation in the resource pool.
  • each resource pool can correspond to a unique resource pool index number, and the resource pool index number indicates the use of the comb resource blocks contained in the corresponding resource pool to carry control information and/or data information of the terminal device.
  • the comb resource block is divided into one or more resource pools to form configuration information of each resource pool, where the configuration information of each resource pool indicates the comb resources configured in the corresponding resource pool.
  • the number and location of block indexes It can be seen that this application provides a mapping method between the resource pool and the comb ruler resource block index to realize the resource configuration of the resource pool, and can meet the OCB requirements on the unlicensed frequency band of the terminal side link, thereby meeting the Potential diverse application scenarios and needs in the future.
  • this application also provides another resource configuration method.
  • the resource configuration method may include but is not limited to the following steps.
  • step 501 according to the mapping rules between the resource pool and the comb resource block index, the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index are determined.
  • the mapping rules between the resource pool and the comb resource block index can be agreed upon by a protocol.
  • the mapping rules between the resource pool and the comb resource block index can be agreed upon through a protocol.
  • the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index can be determined according to the mapping rules between the resource pool and the comb resource block index, so that the mapping rules can be used to determine the resource pool for network device configuration. configuration information.
  • step 502 map the comb resource block to at least one resource pool according to the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index, and determine the number of each resource pool in the at least one resource pool. Configuration information.
  • the comb resource block of the system can be mapped to at least one resource pool according to the number of comb resource block indexes that a resource pool should contain and the position of the comb resource block index, so that the network device configuration can be determined.
  • Configuration information of the resource pool which indicates the number and location of the comb resource block indexes configured in the corresponding resource pool.
  • one resource pool can be mapped to one LBT subband, or one resource pool can be mapped to multiple LBT subbands.
  • Different mapping methods correspond to different mapping rules.
  • the mapping rules between the resource pool and the comb resource block index will be introduced below with reference to the embodiment in terms of mapping one resource pool to one LBT subband and mapping one resource pool to multiple LBT subbands.
  • the mapping rule between the resource pool and the comb resource block index is: a resource pool is mapped to N1 consecutive or non-continuous N1 comb resource block indexes in a listen-before-talk LBT subband; where , N1 is a positive integer less than or equal to M.
  • 1 resource pool when 1 resource pool is mapped to 1 LBT subband, in 1 LBT subband, 1 resource pool can be mapped to N1 continuous or non-continuous N1 comb resource block indexes, 1 ⁇ N1 ⁇ M.
  • mapping a resource pool to a continuous or non-continuous integer N1 comb resource block indexes in a listen-before-talk LBT sub-band can be as follows: from the first one in an LBT sub-band Starting from the comb resource block index, the continuous or non-continuous integer N1 IRB indexes are mapped to the corresponding resource pool one by one according to the logical number where the comb resource block index is located; among them, N1 is less than M.
  • the resource pool when the resource pool is mapped to the comb resource block index, the resource pool can start from the first comb resource block index in the first LBT subband, and the resource pool is mapped to the comb resource block index.
  • the logical number where the index is located maps consecutive or non-consecutive integer N1 IRB indexes to the corresponding resource pool one by one.
  • the resource pool when a resource pool is mapped to a comb resource block index, the resource pool can be mapped starting from the comb resource block index with serial number 0 in the first LBT subband.
  • the logical number of the comb resource block index will be consecutive or non- N1 consecutive integer IRB indexes are mapped to the corresponding resource pool one by one.
  • the mapping rule between the resource pool and the comb resource block index can be understood as: 1 resource
  • the pool is mapped to 8 consecutive or non-contiguous comb resource block indexes in one LBT subband.
  • a resource pool can be mapped to comb resource block indexes with serial numbers 0 to 7 in an LBT subband, that is, a resource pool can be mapped to 8 consecutive comb resource blocks in an LBT subband. Index; for another example, a resource pool can be mapped to 8 non-consecutive comb resource block indexes in 1 LBT subband.
  • the non-consecutive 8 comb resource block indexes are index numbers 0 and 1, respectively. 2,3,5,6,7,8.
  • resource pool 0 is mapped to the comb resource block index with serial numbers 0 to 7 in the first LBT subband (such as subband 0).
  • Resource pool 1 is mapped to the comb resource block index with serial numbers 0 to 7 in the second LBT subband (such as subband 1), that is, 1 resource pool is mapped to N1 consecutive combs in 1 LBT subband.
  • a bitmap may be used for indication.
  • the configuration information of each resource pool is in the form of a bitmap, and the length of the bitmap is M, where each bit in the bitmap corresponds to a comb resource block index, and the bitmap A bit value of 1 in the middle bitmap indicates mapping to the corresponding resource pool, and a bit value of 0 in the bitmap indicates not mapping to the corresponding resource pool.
  • a bitmap is used to indicate 10 comb resource block indexes in an LBT subband.
  • Each bit in the bitmap corresponds to a comb resource block index.
  • the number of bits in the bitmap is If it is 1, it means that the comb resource block index corresponding to this bit is mapped to the resource pool. If the bit value in the bitmap is 0, it means that the comb resource block index corresponding to this bit is not mapped to this resource pool.
  • the lowest bit of the bitmap corresponds to the comb resource block index with serial number 0 in the LBT subband. For example, one resource pool is mapped to 5 non-consecutive comb resource blocks in one LBT subband. In terms of index, if the bitmap is 0101010101, for example, it means that the comb resource block indexes are 1,3,5,7,9 and are mapped to the resource pool.
  • the indication may be provided through the indication information of the starting comb resource block index and the number of consecutive comb resource block indexes.
  • the mapping rule between resource pools and comb resource block indexes is: a resource pool is mapped to a continuous integer N1 comb resource block indexes in an LBT subband; where, the configuration of each resource pool
  • the information includes indication information used to indicate the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool.
  • the configuration information of the resource pool configured by the network device Instruction information may be included to indicate the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool. Therefore, the instruction of resource pool configuration can be realized through this instruction method.
  • a resource pool includes X sub-channels
  • the implementation method can be as follows: Starting from the comb resource block index, N1 comb resource block indexes are mapped to sub-channels in a resource pool according to the logical number where the comb resource block index is located.
  • a resource pool is only mapped to part of the comb resource block index in one LBT subband.
  • the mapping of X sub-channels in the resource pool to the comb resource block index can be as follows: X sub-channel mapping to N1 comb resource block indexes, and the mapping of subchannels to comb resource block indexes starts with the first comb resource block index mapped by the resource pool, and is based on the logical number of the comb resource block index.
  • the comb resource block index is mapped to the sub-channel in the resource pool.
  • one resource pool contains two sub-channels, and these two sub-channels are mapped to 12 comb resource block indexes.
  • the 12 comb resource block indexes are from the comb with serial number 0 in the first LBT subband. Starting from the comb resource block index (such as IRB index 0), mapping starts according to the logical number where the comb resource block index is located. Subchannel 0 is mapped to the logical number comb resource block index 0 ⁇ comb resource block index 5, subchannel 1 It is mapped to the logical numbers comb resource block index 6 to comb resource block index 11.
  • the implementation method of mapping a resource pool to a continuous or non-consecutive integer N1 comb-size resource block indexes in a listen-before-talk LBT sub-band can be as follows: a resource pool is mapped to an LBT sub-band. On the M IRB indexes; among them, N1 is equal to M. That is to say, when N1 is equal to M, when the resource pool is mapped to a comb resource block index, one resource pool can be mapped to all M comb resource block indexes in one LBT subband.
  • the mapping rule between the resource pool and the comb resource block index is: a resource pool is mapped to N2 consecutive or non-continuous N2 comb resource block indexes in an LBT subband; where N2 is greater than A non-integer that is 1 and less than M.
  • the first comb resource block index in an LBT sub-band you can start from the first comb resource block index in an LBT sub-band, and add consecutive or non-consecutive N2 according to the logical number of the comb resource block index.
  • the comb resource block indexes are mapped one by one to the corresponding resource pool; among them, the N2 comb resource block indexes include: the first comb resource block index to the Lth comb resource block index, and the L+1th comb resource block index.
  • the comb resource block index is mapped to the comb resource block index with serial number 1, and is mapped to some comb resource blocks in the comb resource block index with serial number 2, such as the comb resource block with serial number 2.
  • the resource pool only maps the 5 comb resource blocks in the comb resource block index with serial number 2.
  • the five comb ruler resource blocks can be the first five comb ruler resource blocks in the comb ruler resource block index with the serial number 2, or the five comb ruler resource blocks can also be the comb ruler resource block index with the serial number 2.
  • the 5 comb ruler resource blocks with odd serial numbers in the comb ruler resource block index, or the 5 comb ruler resource blocks can also be the 5 comb ruler resource blocks with even serial numbers in the comb ruler resource block index with the serial number 2.
  • the details can be determined according to the actual application. , there is no specific limit on this.
  • a resource pool includes X sub-channels, and : X sub-channels in a resource pool are mapped to N2 comb resource block indexes, where the mapping rule between sub-channels and comb resource block indexes is: starting from the first comb resource block index mapped by a resource pool , mapping N2 comb resource block indexes to sub-channels in a resource pool according to the logical number where the comb resource block index is located.
  • mapping of X sub-channels in the resource pool to comb resource block indexes can be as follows: The channel is mapped to N2 comb resource block indexes, and the mapping of sub-channels to comb resource block indexes starts with the first comb resource block index mapped by the resource pool, according to the logic where the comb resource block index is located The numbered comb resource block index is mapped to the sub-channel in the resource pool.
  • a resource pool contains 2 sub-channels, and the 2 sub-channels are mapped to 12.5 comb resource block indexes.
  • the 12.5 comb resource block indexes are obtained from the comb with serial number 0 in the first LBT subband.
  • mapping starts according to the logical number where the comb resource block index is located.
  • Subchannel 0 is mapped to the logical number comb resource block index 0 ⁇ comb resource block index 5, subchannel 1 It is mapped to logically numbered comb resource block indexes 6 to comb resource block index 11, and the subchannel 1 is also mapped to 5 comb resource blocks in the logically numbered comb resource block index 12.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N3 comb resource block indexes in multiple LBT subbands; where N3 is an integer greater than M, A resource pool is continuously or non-contiguously mapped to the comb resource block index of the same sequence number in each LBT subband.
  • one resource pool is mapped to N comb resource block indexes, and the one resource pool is continuously or non-continuously mapped to comb resource block indexes with the same serial number in each LBT subband.
  • one resource pool needs to be mapped to 16 comb resource block indexes, then the resource pool can be mapped to 8 comb resource block indexes with serial numbers 0 to 7 in subband 0, and then continue mapping. Go to the 8 comb resource block indexes with serial numbers 0 to 7 in subband 1.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource block index information The index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the network device configuration information of the resource pool may include subband indication information and comb resource block index indication information, where both the subband indication information and the comb resource block index indication information may be encoded independently, or the subband indication information and the comb resource block index indication information may be encoded independently.
  • the resource block index indication information can also be jointly encoded.
  • the mapping rule between the resource pool and the comb resource block index is: one resource pool is mapped to N3 comb resource block indexes in multiple LBT subbands; where N3 is an integer greater than M, A resource pool maps different comb resource block index numbers in each LBT subband.
  • one resource pool can be mapped to N3 comb resource block indexes in multiple LBT subbands.
  • the comb resource block index sequence numbers mapped by a resource pool in each LBT subband are different and independent. Configuration, there are two configuration methods:
  • Method 1 1 resource pool is mapped to N3 comb resource block indexes, and the comb resource blocks in the subbands are numbered according to the frequency position. For example, the physical number of the comb resource block of subband 0 with the lowest starting frequency is 0-9, the logical number is 0-9, the physical number of the comb resource block of the second lowest subband 1 is 0-9, the logical number is 10-19, and so on; indicate the resource pool mapped during (pre)configuration The logical number of the comb resource block.
  • the configuration information of the resource pool configured by the network device may include indication information. The indication information is used to indicate the logical number where the comb resource block index mapped by the corresponding resource pool is located.
  • N3 12, 1 resource pool is mapped to 12 comb resource block indexes, and for resource pool 0, it is mapped to the first LBT subband (subband 0 in Figure 6)
  • the comb resource block index with serial numbers 0-9 is mapped to the 2 comb resource block indexes with logical numbers 10-11 in the second LBT subband (subband 1 in Figure 6), that is, the The physical numbers of the two LBT subbands are 0-1 on the two comb resource block indexes.
  • Method 2 First indicate the subband mapped by the resource pool, and then indicate the comb resource block index mapped by the corresponding subband.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource The block index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the configuration information of each resource pool includes sub-band indication information and comb-ruler resource block index indication information.
  • the sub-band indication information is used to indicate multiple LBT sub-bands mapped by the corresponding resource pool.
  • the comb-ruler resource block index indication information is used Indicates the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the network device needs to notify the terminal device of the system in a certain manner to map the resource pool configuration information of the comb resource blocks in the system to multiple resource pools.
  • the configuration information of the resource pool configured by the network device is public information and should be known to all available terminal devices. It can be indicated by system predefinition, system broadcast message, or high-level signaling, such as wireless resource control message.
  • the network device or the terminal device with the authority to send the resource pool configuration information can indicate the adopted resource pool configuration through corresponding signaling.
  • the number of comb resource block indexes and the number of comb resource block indexes contained in a resource pool can be determined.
  • Location in order to use this mapping rule to configure the resource pool, can meet OCB requirements on the terminal side link unlicensed frequency band SL-U, thus meeting potential diverse application scenarios and needs in the future.
  • the above embodiment is an implementation manner of describing the resource configuration method of the embodiment of the present application from the network device side.
  • the embodiment of the present application also proposes a resource configuration method.
  • the implementation of the resource configuration method will be described below from the terminal device side.
  • Figure 7, is a flow chart of yet another resource configuration method provided by this application.
  • the resource configuration method in the embodiment of the present application can be applied to the unlicensed frequency band of the side link of the terminal device, and can be executed by the terminal device.
  • the resource configuration method may include but is not limited to the following steps.
  • step 701 the configuration information of the resource pool sent by the network device is received.
  • the configuration information of the resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; two consecutive comb resource blocks in the same comb resource block index are separated by
  • the resource block value is set to M, and M is determined by the size of the subcarrier spacing.
  • the network device maps the comb resource blocks in the system to the resource pool configuration information of multiple resource pools and needs to be notified to the terminal device of the system in a certain way.
  • the network device can indicate the scheduled resource pool resources to the sending end UE and/or the receiving end UE by indicating the resource pool index, for carrying the control information and/or data information of the UE, and the UE can also One or more resource pools can be selected from the available resource pool resources for bearer and transmission of control information and/or data information.
  • the terminal device when the terminal device accesses the network device, it can receive the configuration information of the resource pool sent by the network device. According to the configuration information of the resource pool and the resource pool and comb resource block index According to the mapping rules, the number and position of the comb resource block index configured in the resource pool scheduled by the terminal device can be determined.
  • mapping rules between resource pools and comb resource block indexes please refer to the description of the mapping rules mentioned above in this article, and will not be described again here.
  • the OCB requirements can be met on the unlicensed frequency band of the terminal side link, so that the OCB requirements can be met. Meet potential diverse application scenarios and needs in the future.
  • network equipment and terminal equipment may include hardware structures and software modules to implement the above functions in the form of hardware structures, software modules, or hardware structures plus software modules.
  • a certain function among the above functions can be executed by a hardware structure, a software module, or a hardware structure plus a software module.
  • FIG. 8 is a schematic structural diagram of a communication device 80 provided by an embodiment of the present application.
  • the communication device 80 shown in FIG. 8 may include a transceiver module 801 and a processing module 802.
  • the transceiving module 801 may include a sending module and/or a receiving module.
  • the sending module is used to implement the sending function
  • the receiving module is used to implement the receiving function.
  • the transceiving module 801 may implement the sending function and/or the receiving function.
  • the communication device 80 may be a terminal device, a device in the terminal device, or a device that can be used in conjunction with the terminal device.
  • the communication device 80 may be a network device, a device in the network device, or a device that can be used in conjunction with the network device.
  • the communication device 80 is a network device: in the embodiment of the present application, the processing module 802 is used to map the comb resource block to at least one resource pool; the processing module 802 is also used to determine the configuration of each resource pool in the at least one resource pool. Information; among them, the configuration information of each resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; the resource block value between two consecutive comb resource blocks in the same comb resource block index is M, and M is determined by the size of the subcarrier spacing.
  • the processing module 802 includes: a determining unit and a mapping unit.
  • the determination unit is used to determine the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index according to the mapping rules between the resource pool and the comb resource block index;
  • the mapping unit is used to determine the number of comb resource block indexes contained in a resource pool according to the mapping rules of a resource pool. The number of comb resource block indexes contained in the pool and the position of the comb resource block index map the comb resource block to at least one resource pool.
  • the determination unit is specifically configured to: determine that a resource pool is mapped to N1 consecutive or non-consecutive comb rulers in a listen-before-talk LBT subband according to the mapping rules between the resource pool and the comb ruler resource block index.
  • N1 is a positive integer less than or equal to M
  • the mapping unit is specifically used to: map to N1 consecutive or non-consecutive N1 comb ruler resource block indexes in a listen-before-talk LBT subband according to a resource pool , mapping the comb resource block to at least one resource pool.
  • the mapping unit is specifically used to: starting from the first comb resource block index in an LBT subband, according to the logical number where the comb resource block index is located, the continuous or non-consecutive integers N1 IRBs are The indexes are mapped one by one to the corresponding resource pool; among them, N1 is smaller than M.
  • the configuration information of each resource pool includes a bitmap.
  • the length of the bitmap is M, where each bit in the bitmap corresponds to a comb resource block index.
  • the bitmap A bit value of 1 in the middle bitmap indicates mapping to the corresponding resource pool, and a bit value of 0 in the bitmap indicates not mapping to the corresponding resource pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to a continuous integer N1 comb resource block indexes in an LBT subband; wherein, the configuration information of each resource pool includes: Instruction information indicating the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool.
  • a resource pool includes X sub-channels, and X is a positive integer; the determination unit is specifically used to determine whether the The mapping rule between subchannels and comb resource block indexes is: starting from the first comb resource block index mapped by a resource pool, map N1 comb resource block indexes to the logical number of the comb resource block index. on a sub-channel in a resource pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to M IRB indexes in an LBT subband; where N1 is equal to M.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to N2 consecutive or non-consecutive N2 comb rule resource block indexes in an LBT subband; wherein the N2 is greater than 1 and less than The M is a non-integer.
  • the determining unit is specifically configured to: determine, starting from the first comb resource block index in an LBT subband, the consecutive or non-consecutive N2 according to the logical number where the comb resource block index is located.
  • the comb resource block indexes are mapped one by one to the corresponding resource pool; among them, the N2 comb resource block indexes include: the first comb resource block index to the Lth comb resource block index, and the L+1th comb resource block index.
  • l comb ruler resource blocks in the ruler resource block index L is the integer obtained by rounding down N2, and the value of l is based on the relationship between the decimal part of N2 and M.
  • a resource pool includes X sub-channels, and X is a positive integer; the determination unit is specifically used to: determine whether the The mapping rule between subchannels and comb resource block indexes is: starting from the first comb resource block index mapped by a resource pool, N2 comb resource block indexes are mapped to one according to the logical number of the comb resource block index. on sub-channels in the resource pool.
  • the determining unit is specifically used to: determine that a resource pool is mapped to N3 comb-size resource block indexes in multiple LBT subbands; where N3 is an integer greater than M, and a resource pool is mapped to each Continuous or non-continuous mapping of LBT subbands to comb resource block indexes with the same sequence number.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool.
  • the comb resource block index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the determining unit is specifically used to: determine that a resource pool is mapped to N3 IRB indexes in multiple LBT subbands; where N3 is an integer greater than M, and one resource pool is mapped to each LBT subband.
  • the index numbers of mapped resource blocks are different.
  • the configuration information of each resource pool includes indication information, and the indication information is used to indicate the logical number of the comb resource block index mapped by the corresponding resource pool; or, the configuration information of each resource pool It includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource block index indication information is used to indicate the corresponding resource pool in each The comb resource block index mapped in each LBT subband.
  • the communication device 80 is a terminal device: in the embodiment of the present application, the transceiver module 801 is used to receive the configuration information of the resource pool sent by the network device; wherein the configuration information of the resource pool indicates the comb resource block configured in the corresponding resource pool.
  • the number and position of the index; the resource block value between two consecutive comb resource blocks in the same comb resource block index is M, and M is determined by the size of the subcarrier interval.
  • the comb resource block is divided into one or more resource pools to form configuration information of each resource pool, where the configuration information of each resource pool indicates the comb resources configured in the corresponding resource pool.
  • the number and location of block indexes It can be seen that this application provides a mapping method between the resource pool and the comb ruler resource block index to realize the resource configuration of the resource pool, and can meet the OCB requirements on the unlicensed frequency band of the terminal side link, thereby meeting the Potential diverse application scenarios and needs in the future.
  • FIG. 9 is a schematic structural diagram of another communication device 90 provided by an embodiment of the present application.
  • the communication device 90 may be a network device, a terminal device, a chip, a chip system, or a processor that supports a network device to implement the above method, or a chip, a chip system, or a processor that supports a terminal device to implement the above method. Processor etc.
  • the device can be used to implement the method described in the above method embodiment. For details, please refer to the description in the above method embodiment.
  • Communication device 90 may include one or more processors 901.
  • the processor 901 may be a general-purpose processor or a special-purpose processor, or the like.
  • it can be a baseband processor or a central processing unit.
  • the baseband processor can be used to process communication protocols and communication data.
  • the central processor can be used to control communication devices (such as base stations, baseband chips, terminal equipment, terminal equipment chips, DU or CU, etc.) and execute computer programs. , processing data for computer programs.
  • the communication device 90 may also include one or more memories 902, on which a computer program 904 may be stored.
  • the processor 901 executes the computer program 904, so that the communication device 90 performs the steps described in the above method embodiment. method.
  • the memory 902 may also store data.
  • the communication device 90 and the memory 902 can be provided separately or integrated together.
  • the communication device 90 may also include a transceiver 905 and an antenna 906.
  • the transceiver 905 may be called a transceiver unit, a transceiver, a transceiver circuit, etc., and is used to implement transceiver functions.
  • the transceiver 905 may include a receiver and a transmitter.
  • the receiver may be called a receiver or a receiving circuit, etc., used to implement the receiving function;
  • the transmitter may be called a transmitter, a transmitting circuit, etc., used to implement the transmitting function.
  • the communication device 90 may also include one or more interface circuits 907.
  • the interface circuit 907 is used to receive code instructions and transmit them to the processor 901 .
  • the processor 901 executes the code instructions to cause the communication device 90 to perform the method described in the above method embodiment.
  • the communication device 90 is a network device: the processor 901 is used to execute step 201 and step 202 in Figure 2; and execute step 501 and step 502 in Figure 5.
  • the communication device 90 is a terminal device: the transceiver 905 is used to perform step 701 in Figure 7 .
  • the processor 901 may include a transceiver for implementing receiving and transmitting functions.
  • the transceiver may be a transceiver circuit, an interface, or an interface circuit.
  • the transceiver circuits, interfaces or interface circuits used to implement the receiving and transmitting functions can be separate or integrated together.
  • the above-mentioned transceiver circuit, interface or interface circuit can be used for reading and writing codes/data, or the above-mentioned transceiver circuit, interface or interface circuit can be used for signal transmission or transfer.
  • the processor 901 may store a computer program, and the computer program runs on the processor 901, causing the communication device 90 to perform the method described in the above method embodiment.
  • the computer program may be solidified in the processor 901, in which case the processor 901 may be implemented by hardware.
  • the communication device 90 may include a circuit, and the circuit may implement the functions of sending or receiving or communicating in the foregoing method embodiments.
  • the processor and transceiver described in this application can be implemented in integrated circuits (ICs), analog ICs, radio frequency integrated circuits RFICs, mixed signal ICs, application specific integrated circuits (ASICs), printed circuit boards ( printed circuit board (PCB), electronic equipment, etc.
  • the processor and transceiver can also be manufactured using various IC process technologies, such as complementary metal oxide semiconductor (CMOS), n-type metal oxide-semiconductor (NMOS), P-type Metal oxide semiconductor (positive channel metal oxide semiconductor, PMOS), bipolar junction transistor (BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc.
  • CMOS complementary metal oxide semiconductor
  • NMOS n-type metal oxide-semiconductor
  • PMOS P-type Metal oxide semiconductor
  • BJT bipolar junction transistor
  • BiCMOS bipolar CMOS
  • SiGe silicon germanium
  • GaAs gallium arsenide
  • the communication device described in the above embodiments may be a network device or a terminal device (such as the first terminal device in the foregoing method embodiment), but the scope of the communication device described in this application is not limited thereto, and the structure of the communication device may be Not limited by Figure 9.
  • the communication device may be a stand-alone device or may be part of a larger device.
  • the communication device may be:
  • the IC collection may also include storage components for storing data and computer programs;
  • the communication device may be a chip or a system on a chip.
  • the chip includes the processor and interface.
  • the number of processors may be one or more, and the number of interfaces may be multiple.
  • the processor is used to map the comb resource block to at least one resource pool; the processor is also used to determine the configuration information of each resource pool in the at least one resource pool ; Among them, the configuration information of each resource pool indicates the number and position of the comb resource block index configured in the corresponding resource pool; the resource block value between two consecutive comb resource blocks in the same comb resource block index is M, M is determined by the size of the subcarrier spacing.
  • the processor includes: a determining unit and a mapping unit.
  • the determination unit is used to determine the number of comb resource block indexes contained in a resource pool and the position of the comb resource block index according to the mapping rules between the resource pool and the comb resource block index;
  • the mapping unit is used to determine the number of comb resource block indexes contained in a resource pool according to the mapping rules of a resource pool. The number of comb resource block indexes contained in the pool and the position of the comb resource block index map the comb resource block to at least one resource pool.
  • the determination unit is specifically configured to: determine that a resource pool is mapped to N1 consecutive or non-consecutive comb rulers in a listen-before-talk LBT subband according to the mapping rules between the resource pool and the comb ruler resource block index. On the resource block index; where N1 is a positive integer less than or equal to M;
  • the mapping unit is specifically used to: map the comb resource block to at least one resource pool according to a resource pool mapped to N1 consecutive or non-continuous N1 comb resource block indexes in a listen-before-talk LBT subband.
  • the mapping unit is specifically used to: starting from the first comb resource block index in an LBT subband, according to the logical number where the comb resource block index is located, the continuous or non-consecutive integers N1 IRBs are The indexes are mapped one by one to the corresponding resource pool; among them, N1 is smaller than M.
  • the configuration information of each resource pool includes a bitmap.
  • the length of the bitmap is M, where each bit in the bitmap corresponds to a comb resource block index.
  • the bitmap A bit value of 1 in the middle bitmap indicates mapping to the corresponding resource pool, and a bit value of 0 in the bitmap indicates not mapping to the corresponding resource pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to a continuous integer N1 comb resource block indexes in an LBT subband; wherein, the configuration information of each resource pool includes: Instruction information indicating the starting comb resource block index and the number of consecutive comb resource block indexes configured in the corresponding resource pool.
  • a resource pool includes X sub-channels, and X is a positive integer; the determination unit is specifically used to determine whether the The mapping rule between subchannels and comb resource block indexes is: starting from the first comb resource block index mapped by a resource pool, map N1 comb resource block indexes to the logical number of the comb resource block index. on a sub-channel in a resource pool.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to M IRB indexes in an LBT subband; where N1 is equal to M.
  • the determining unit is specifically configured to: determine that a resource pool is mapped to N2 consecutive or non-consecutive N2 comb rule resource block indexes in an LBT subband; wherein the N2 is greater than 1 and less than The M is a non-integer.
  • the determining unit is specifically configured to: determine, starting from the first comb resource block index in an LBT subband, the consecutive or non-consecutive N2 according to the logical number where the comb resource block index is located.
  • the comb resource block indexes are mapped one by one to the corresponding resource pool; among them, the N2 comb resource block indexes include: the first comb resource block index to the Lth comb resource block index, and the L+1th comb resource block index.
  • l comb ruler resource blocks in the ruler resource block index L is the integer obtained by rounding down N2, and the value of l is based on the relationship between the decimal part of N2 and M.
  • a resource pool includes X sub-channels, and X is a positive integer; the determination unit is specifically used to: determine whether the The mapping rule between subchannels and comb resource block indexes is: starting from the first comb resource block index mapped by a resource pool, N2 comb resource block indexes are mapped to one according to the logical number of the comb resource block index. on sub-channels in the resource pool.
  • the determining unit is specifically used to: determine that a resource pool is mapped to N3 comb-size resource block indexes in multiple LBT subbands; where N3 is an integer greater than M, and a resource pool is mapped to each Continuous or non-continuous mapping of LBT subbands to comb resource block indexes with the same sequence number.
  • the configuration information of each resource pool includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool.
  • the comb resource block index indication information is used to indicate the comb resource block index mapped by the corresponding resource pool in each LBT subband.
  • the determining unit is specifically used to: determine that a resource pool is mapped to N3 IRB indexes in multiple LBT subbands; where N3 is an integer greater than M, and one resource pool is mapped to each LBT subband.
  • the index numbers of mapped resource blocks are different.
  • the configuration information of each resource pool includes indication information, and the indication information is used to indicate the logical number of the comb resource block index mapped by the corresponding resource pool; or, the configuration information of each resource pool It includes subband indication information and comb resource block index indication information, where the subband indication information is used to indicate multiple LBT subbands mapped by the corresponding resource pool, and the comb resource block index indication information is used to indicate the corresponding resource pool in each The comb resource block index mapped in each LBT subband.
  • the interface is used to receive the configuration information of the resource pool sent by the network device; wherein the configuration information of the resource pool indicates the comb resource configured in the corresponding resource pool
  • the number and position of block indexes; the resource block value between two consecutive comb-size resource blocks in the same comb-size resource block index is M, and M is determined by the size of the subcarrier interval.
  • the chip also includes a memory, which is used to store necessary computer programs and data.
  • Embodiments of the present application also provide a system for determining the side link duration.
  • the system includes a communication device as a terminal device and a communication device as a network device in the embodiment of FIG. 8, or the system includes the communication device as in the embodiment of FIG. 9.
  • This application also provides a readable storage medium on which instructions are stored. When the instructions are executed by a computer, the functions of any of the above method embodiments are implemented.
  • This application also provides a computer program product, which when executed by a computer implements the functions of any of the above method embodiments.
  • the computer program product includes one or more computer programs.
  • the computer may be a general purpose computer, a special purpose computer, a computer network, or other programmable device.
  • the computer program may be stored in or transferred from one computer-readable storage medium to another, for example, the computer program may be transferred from a website, computer, server, or data center Transmission to another website, computer, server or data center through wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) means.
  • the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server, data center, etc. that contains one or more available media integrated.
  • the usable media may be magnetic media (e.g., floppy disks, hard disks, magnetic tapes), optical media (e.g., high-density digital video discs (DVD)), or semiconductor media (e.g., solid state disks, SSD)) etc.
  • magnetic media e.g., floppy disks, hard disks, magnetic tapes
  • optical media e.g., high-density digital video discs (DVD)
  • DVD digital video discs
  • semiconductor media e.g., solid state disks, SSD
  • At least one in this application can also be described as one or more, and the plurality can be two, three, four or more, which is not limited by this application.
  • the technical feature is distinguished by “first”, “second”, “third”, “A”, “B”, “C” and “D”, etc.
  • the technical features described in “first”, “second”, “third”, “A”, “B”, “C” and “D” are in no particular order or order.
  • the corresponding relationships shown in each table in this application can be configured or predefined.
  • the values of the information in each table are only examples and can be configured as other values, which are not limited by this application.
  • the corresponding relationships shown in some rows may not be configured.
  • appropriate deformation adjustments can be made based on the above table, such as splitting, merging, etc.
  • the names of the parameters shown in the titles of the above tables may also be other names understandable by the communication device, and the values or expressions of the parameters may also be other values or expressions understandable by the communication device.
  • other data structures can also be used, such as arrays, queues, containers, stacks, linear lists, pointers, linked lists, trees, graphs, structures, classes, heaps, hash tables or hash tables. wait.
  • Predefinition in this application can be understood as definition, pre-definition, storage, pre-storage, pre-negotiation, pre-configuration, solidification, or pre-burning.

Abstract

本申请实施例公开了一种资源配置的方法及其装置,可以应用于终端侧行链路非授权频段,可以应用于车联网、V2X、V2V等系统中,该方法包括:将梳尺资源块映射到至少一个资源池,并确定至少一个资源池中每个资源池的配置信息;其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。通过实施本申请实施例,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。

Description

一种资源配置的方法及其装置 技术领域
本申请涉及通信技术领域,尤其涉及一种资源配置的方法及其装置。
背景技术
目前,多种新业务新应用需求的持续产生,终端直连通信(也叫侧行链路,Sidelink,SL)对传输宽度、通信速域、通信时延、可靠性、可扩展性等性能要求会越来越高,如果仅依靠运营商有限的授权频谱,则无法满足未来潜在的多样化应用场景和需求,所以需要研究涉及能应用在非授权频段上的终端侧行链路(sidelink-unlicensed,SL-U)技术。
在非授权频段上,需要满足OCB(OccupiedChannel Bandwidth,在非授权频谱上针对发送信号的占用带宽)要求,即每次传输需要占满每一个LBT(Listen before Talk,先听后说)子带(如20MHz)带宽的80%。
但是,目前在SL-U系统中尚且缺乏在LBT子带上配置资源池的有效手段。
发明内容
本申请实施例提供一种资源配置的方法及其装置,可以应用于车联网,例如车与任何事物(vehicle to everything,V2X)通信、车间通信长期演进技术(long term evolution-vehicle,LTE-V)、车辆与车辆(vehicle to vehicle,V2V)通信等,或可以用于智能驾驶,智能网联车等领域,通过设计资源池到梳尺资源块IRB索引之间的映射方式,以实现资源池资源的配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
第一方面,本申请实施例提供一种资源配置的方法,所述方法由第一终端设备执行,所述方法包括:
将梳尺资源块映射到至少一个资源池,并确定所述至少一个资源池中每个资源池的配置信息;
其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
在该技术方案中,将梳尺资源块划分为一个或多个资源池,以形成每个资源池的配置信息,其中每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置。由此可见,本申请通过提供一种资源池到梳尺资源块索引之间的映射方式,以实现资源池的资源配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
在一种实现方式中,所述将梳尺资源块映射到至少一个资源池,包括:根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置;根据所述一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池。
在一种可能的实现方式中,所述资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,所述N1为小于或等于所述M的正整数。
在一种可能的实现方式中,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上,包括:从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源 块索引所在的逻辑编号将所述连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,所述N1小于所述M。
在一种可选的实现方式中,每个所述资源池的配置信息包括比特位图,所述比特位图的长度为所述M,其中,所述比特位图中每个比特位对应一个梳尺资源块索引,所述比特位图之中比特位数值为1用于指示映射到所述对应资源池,所述比特位图之中比特位数值为0用于指示不映射到所述对应资源池。
在一种可选的实现方式中,所述资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;其中,每个所述资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
在一种实现方式中,所述一个资源池包括X个子信道,所述X为正整数;所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上,包括:所述一个资源池中的X个子信道映射到所述N1个梳尺资源块索引上,其中,所述子信道与梳尺资源块索引的映射规则为:以所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N1个梳尺资源块索引映射到所述一个资源池中的子信道上。
在一种实现方式中,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上,包括:所述一个资源池映射到一个LBT子带中的所述M个IRB索引上;其中,所述N1等于所述M。
在一种实现方式中,所述资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上;其中,所述N2为大于1且小于所述M的非整数。
在一种可选的实现方式中,所述一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上,包括:从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;其中,所述N2个梳尺资源块索引包括:所述第一个梳尺资源块索引至第L个梳尺资源块索引,以及所述第L+1个梳尺资源块索引中的l个梳尺资源块;所述L为所述N2的向下取整后得到的整数,所述l的取值基于所述N2中小数部分与所述M的关系。
在一种可选的实现方式中,所述一个资源池包括X个子信道,所述X为正整数;所述一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上,包括:所述一个资源池中的X个子信道映射到所述N2个梳尺资源块索引上,其中,所述子信道与梳尺资源块索引的映射规则为:所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N2个梳尺资源块索引映射到所述一个资源池中的子信道上。
在一种实现方式中,所述资源池与梳尺资源块索引的映射规则为:一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
在一种可选的实现方式中,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
在一种实现方式中,所述资源池与梳尺资源块索引的映射规则为:一个资源池映射到多个LBT子 带中N3个IRB索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
在一种可选的实现方式中,每个所述资源池的配置信息包括指示信息,所述指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号;或者,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
第二方面,本申请实施例提供另一种资源配置的方法,所述方法由终端设备执行,所述方法包括:
接收网络设备发送的资源池的配置信息;
其中,所述资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
第三方面,本申请实施例提供一种通信装置,该通信装置具有实现上述第一方面所述的方法中第一终端设备的部分或全部功能,比如通信装置的功能可具备本申请中的部分或全部实施例中的功能,也可以具备单独实施本申请中的任一个实施例的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的单元或模块。
在一种实现方式中,该通信装置的结构中可包括收发模块和处理模块,所述处理模块被配置为支持通信装置执行上述方法中相应的功能。所述收发模块用于支持通信装置与其他设备之间的通信。所述通信装置还可以包括存储模块,所述存储模块用于与收发模块和处理模块耦合,其保存通信装置必要的计算机程序和数据。
作为示例,处理模块可以为处理器,收发模块可以为收发器或通信接口,存储模块可以为存储器。
在一种实现方式中,处理模块,用于将梳尺资源块映射到至少一个资源池;
所述处理模块,还用于确定所述至少一个资源池中每个所资源池的配置信息;
其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
在一种实现方式中,所述处理模块包括:
确定单元,用于根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置;
映射单元,用于根据所述一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,所述确定单元具体用于:根据资源池与梳尺资源块索引的映射规则,确定一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,所述N1为小于或等于所述M的正整数;
所述映射单元具体用于:根据所述一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,所述映射单元具体用于:从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,所述N1小于所述M。
在一种可能的实现方式中,每个所述资源池的配置信息包括比特位图,所述比特位图的长度为所述M,其中,所述比特位图中每个比特位对应一个梳尺资源块索引,所述比特位图之中比特位数值为1用于指示映射到所述对应资源池,所述比特位图之中比特位数值为0用于指示不映射到所述对应资源池。
在一种可能的实现方式中,所述确定单元具体用于:确定一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;其中,每个所述资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
在一种可能的实现方式中,所述一个资源池包括X个子信道,所述X为正整数;所述确定单元具体用于:确定所述一个资源池中的X个子信道映射到所述N1个梳尺资源块索引上,其中,所述子信道与梳尺资源块索引的映射规则为:以所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N1个梳尺资源块索引映射到所述一个资源池中的子信道上。
在一种可能的实现方式中,所述确定单元具体用于:确定所述一个资源池映射到一个LBT子带中的所述M个IRB索引上;其中,所述N1等于所述M。
在一种可能的实现方式中,所述确定单元具体用于:确定一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上;其中,N2为大于1且小于所述M的非整数。
在一种可能的实现方式中,所述确定单元具体用于:确定从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;其中,所述N2个梳尺资源块索引包括:所述第一个梳尺资源块索引至第L个梳尺资源块索引,以及所述第L+1个梳尺资源块索引中的l个梳尺资源块;所述L为所述N2的向下取整后得到的整数,所述l的取值基于所述N2中小数部分与所述M的关系。
在一种可能的实现方式中,所述一个资源池包括X个子信道,所述X为正整数;所述确定单元具体用于:确定所述一个资源池中的X个子信道映射到所述N2个梳尺资源块索引上,其中,所述子信道与梳尺资源块索引的映射规则为:所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N2个梳尺资源块索引映射到所述一个资源池中的子信道上。
在一种可能的实现方式中,所述确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
在一种可能的实现方式中,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
在一种可能的实现方式中,所述确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个IRB索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
在一种可能的实现方式中,每个所述资源池的配置信息包括指示信息,所述指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号;或者,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
第四方面,本申请实施例提供另一种通信装置,该通信装置具有实现上述第二方面所述的方法示例中第二终端设备的部分或全部功能,比如通信装置的功能可具备本申请中的部分或全部实施例中的功能,也可以具备单独实施本申请中的任一个实施例的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的单元或模块。
在一种实现方式中,该通信装置的结构中可包括收发模块和处理模块,该处理模块被配置为支持通信装置执行上述方法中相应的功能。收发模块用于支持通信装置与其他设备之间的通信。所述通信装置还可以包括存储模块,所述存储模块用于与收发模块和处理模块耦合,其保存通信装置必要的计算机程序和数据。
作为示例,处理模块可以为处理器,收发模块可以为收发器或通信接口,存储模块可以为存储器。
在一种实现方式中,收发模块,用于接收网络设备发送的资源池的配置信息;其中,所述资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
第五方面,本申请实施例提供一种通信装置,该通信装置包括处理器,当该处理器调用存储器中的计算机程序时,执行上述第一方面所述的方法。
第六方面,本申请实施例提供一种通信装置,该通信装置包括处理器,当该处理器调用存储器中的计算机程序时,执行上述第二方面所述的方法。
第七方面,本申请实施例提供一种通信装置,该通信装置包括处理器和存储器,该存储器中存储有计算机程序;所述处理器执行该存储器所存储的计算机程序,以使该通信装置执行上述第一方面所述的方法。
第八方面,本申请实施例提供一种通信装置,该通信装置包括处理器和存储器,该存储器中存储有计算机程序;所述处理器执行该存储器所存储的计算机程序,以使该通信装置执行上述第二方面所述的方法。
第九方面,本申请实施例提供一种通信装置,该装置包括处理器和接口电路,该接口电路用于接收代码指令并传输至该处理器,该处理器用于运行所述代码指令以使该装置执行上述第一方面所述的方法。
第十方面,本申请实施例提供一种通信装置,该装置包括处理器和接口电路,该接口电路用于接收代码指令并传输至该处理器,该处理器用于运行所述代码指令以使该装置执行上述第二方面所述的方法。
第十一方面,本申请实施例提供一种资源配置的系统,该系统包括第三方面所述的通信装置以及第四方面所述的通信装置,或者,该系统包括第五方面所述的通信装置以及第六方面所述的通信装置,或者,该系统包括第七方面所述的通信装置以及第八方面所述的通信装置,或者,该系统包括第九方面所述的通信装置以及第十方面所述的通信装置。
第十二方面,本发明实施例提供一种计算机可读存储介质,用于储存为上述终端设备所用的指令,当所述指令被执行时,使所述终端设备执行上述第一方面所述的方法。
第十三方面,本发明实施例提供一种可读存储介质,用于储存为上述网络设备所用的指令,当所述指令被执行时,使所述网络设备执行上述第二方面所述的方法。
第十四方面,本申请还提供一种包括计算机程序的计算机程序产品,当其在计算机上运行时,使得计算机执行上述第一方面所述的方法。
第十五方面,本申请还提供一种包括计算机程序的计算机程序产品,当其在计算机上运行时,使得计算机执行上述第二方面所述的方法。
第十六方面,本申请提供一种芯片系统,该芯片系统包括至少一个处理器和接口,用于支持第一终端设备实现第一方面所涉及的功能,例如,确定或处理上述方法中所涉及的数据和信息中的至少一种。在一种可能的设计中,所述芯片系统还包括存储器,所述存储器,用于保存终端设备必要的计算机程序和数据。该芯片系统,可以由芯片构成,也可以包括芯片和其他分立器件。
第十七方面,本申请提供一种芯片系统,该芯片系统包括至少一个处理器和接口,用于支持第二终端设备实现第二方面所涉及的功能,例如,确定或处理上述方法中所涉及的数据和信息中的至少一种。在一种可能的设计中,所述芯片系统还包括存储器,所述存储器,用于保存网络设备必要的计算机程序和数据。该芯片系统,可以由芯片构成,也可以包括芯片和其他分立器件。
第十八方面,本申请提供一种计算机程序,当其在计算机上运行时,使得计算机执行上述第一方面所述的方法。
第十九方面,本申请提供一种计算机程序,当其在计算机上运行时,使得计算机执行上述第二方面所述的方法。
附图说明
为了更清楚地说明本申请实施例或背景技术中的技术方案,下面将对本申请实施例或背景技术中所需要使用的附图进行说明。
图1是本申请实施例提供的一种通信系统的架构示意图;
图2为本申请实施例提供的一种资源配置的方法的流程图;
图3为本申请实施例的梳尺资源块的结构示例图一;
图4为本申请实施例的梳尺资源块的结构示例图二;
图5为本申请实施例提供的另一种资源配置的方法的流程图;
图6为本申请实施例的资源池映射到梳尺资源块索引的示例图;
图7是本申请提供的又一种资源配置的方法的流程图;
图8为本申请实施例提供的一种通信装置的结构示意图;
图9是本申请实施例提供的另一种通信装置的结构示意图。
具体实施方式
下面详细描述本申请的实施例,所述实施例的示例在附图中示出,其中自始至终相同或类似的标号表示相同或类似的元件或具有相同或类似功能的元件。下面通过参考附图描述的实施例是示例性的,旨在用于解释本申请,而不能理解为对本申请的限制。其中,在本申请的描述中,除非另有说明,“/”表示或的意思,例如,A/B可以表示A或B;本文中的“和/或”仅仅是一种描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。
目前,多种新业务新应用需求的持续产生,终端直连通信(也叫侧行链路,Sidelink,SL)对传输宽度、通信速域、通信时延、可靠性、可扩展性等性能要求会越来越高,如果仅依靠运营商有限的授权频谱,则无法满足未来潜在的多样化应用场景和需求,所以需要研究涉及能应用在非授权频段上的终端 侧行链路(sidelink-unlicensed,SL-U)技术。
在非授权频段上,需要满足OCB(OccupiedChannel Bandwidth,在非授权频谱上针对发送信号的占用带宽)要求,即每次传输需要占满每一个LBT(Listen before Talk,先听后说)子带(如20MHz)带宽的80%。其中,在SL-U系统中包含如下两种资源分配方式:
第一种:直接以梳尺资源块(也叫交错资源块,Interlaced Resource Block,IRB)为粒度的资源分配方式,为了满足OCB,需设计资源池到IRB索引之间的映射关系;
第二种:以子信道为粒度的资源分配方式,资源池需要定义在LBT子带上,设计资源池到IRB索引之间的映射关系,在资源池所映射的IRB索引中,确定子信道到IRB索引的映射。所以,为了满足OCB要求,需要设计资源池到IRB索引之间的映射,以实现资源池的资源配置。然而,不管在SL-U系统中使用上述第一种或第二种资源分配方式,目前在SL-U系统中尚且缺乏在LBT子带上配置资源池的有效手段。
为此,本申请提出了一种资源配置的方法及其装置,可以应用于SL-U系统,通过提供一种资源池到梳尺资源块索引之间的映射方式,以实现资源池的资源配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
为了更好的理解本申请实施例公开的一种资源配置的方法及其装置,下面首先对本申请实施例使用的通信系统进行描述。
请参见图1,图1为本申请实施例提供的一种通信系统的架构示意图。该通信系统可以包括但不限于一个网络设备和终端设备,图1所示的设备数量和形态仅用于举例并构成对本申请实施例的限定,实际应用中可以包括两个或两个以上的网络设备,两个或两个以上的终端设备。图1所示的通信系统以包括一个网络设备101和一个终端设备102为例。
需要说明的是,本申请实施例的技术方案可以应用于各种通信系统。例如:长期演讲(long term evolution,LTE)系统、第五代(5th generation,5G)移动通信系统、5G新空口(new radio,NR)系统、SL-U系统,或者其他未来的新型移动通信系统等。
本申请实施例的网络设备101是网络侧的一种用于发射或接收信号的实体。例如,网络设备101可以为演进型基站(evolved NodeB,eNB)、传输点(transmission reception point,TRP)、NR系统中的下一代基站(next generation NodeB,gNB)、其他未来移动通信系统中的基站或无线保真(wireless fidelity,WiFi)系统中的接入节点等。本申请的实施例对网络设备所采用的具体技术和具体设备形态不做限定。本申请实施例提供的网络设备可以是由集中单元(central unit,CU)与分布式单元(distributed unit,DU)组成的,其中,CU也可以称为控制单元(control unit),采用CU-DU的结构可以将网络设备,例如基站的协议层拆分开,部分协议层的功能放在CU集中控制,剩下部分或全部协议层的功能分布在DU中,由CU集中控制DU。
本申请实施例中的终端设备是用户侧的一种用于接收或发射信号的实体,如手机。第一终端设备和第二终端设备也可以称为终端设备、用户设备(user equipment,UE)、移动台(mobile station,MS)、移动终端设备(mobile terminal,MT)等。终端设备可以是具备通信功能的汽车、智能汽车、手机(mobile phone)、穿戴式设备、平板电脑(Pad)、带无线收发功能的电脑、虚拟现实(virtual reality,VR)终端设备、增强现实(augmented reality,AR)终端设备、工业控制(industrial control)中的无线终端设备、无人驾驶(self-driving)中的无线终端设备、远程手术(remote medical surgery)中的无线终端设备、智能电网(smart grid)中的无线终端设备、运输安全(transportation safety)中的无线终端设备、智慧城市(smart city)中的无线终端设备、智慧家庭(smart home)中的无线终端设备等等。本申请的实施例对终端设备所采用的具体技术和具体设备形态不做限定。
可以理解的是,本申请实施例描述的通信系统是为了更加清楚的说明本申请实施例的技术方案,并不构成对本申请实施例提供的技术方案的限定,本领域普通技术人员可知,随着系统架构的演变和新业务场景的出现,本申请实施例提供的技术方案对于类似的技术问题,同样适用。
下面结合附图对本申请所提供的资源配置的方法及其装置进行详细地描述。
请参见图2,图2为本申请实施例提供的一种资源配置的方法的流程图。需要说明的是,本申请实施例的资源配置的方法可应用于终端侧行链路非授权频段系统上,该方法可以由网络设备执行。如图2所示,该资源配置的方法可以包括但不限于如下步骤。
在步骤201中,将梳尺资源块映射到至少一个资源池。
其中,在本申请的实施例中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。
需要说明的是,在NR-U系统中引入了梳尺资源块(也叫交错资源块,Interlaced Resource Block,IRB),即连续的两个梳尺资源块间隔M个资源块,对于梳尺资源块索引m,其包括的物理资源块PRB为{m,M+m,2M+m,3M+m,…},其中m∈{0,1,…,M-1}。在NR-U系统中,针对15kHz和30kHz两种子载波间隔分别定义了IRB结构,如下表所示。
表4.4.4.6-1:资源块交错的数量
μ M
0 10
1 5
例如,如图3所示,子载波间隔SCS=30khz,M=5时,共有5个梳尺资源块索引,对于1个梳尺资源块索引,如梳尺资源块索引0,该梳尺资源块索引中包含梳尺资源块为PRB{0,5,10,15,20,25,30,35,40,45}。又如,如图4所示,子载波间隔SCS=15khz,M=10时,共有10个梳尺资源块索引,共有100个PRB,其中,对于1个梳尺资源块索引,如梳尺资源块索引0,该梳尺资源块索引中包含梳尺资源块为PRB{0,10,20,30,40,50,60,70,80,90}。本申请继续引入梳尺资源块,由此,通过引入梳尺资源块,可以减少SL-U系统中指示送配置的频域资源的开销。
在本申请的实施例中,网络设备在配置资源池时,可以将系统中的梳尺资源块映射到一个或多个资源池。作为一种示例,可以基于资源池与梳尺资源块索引的映射规则,将梳尺资源块映射到一个或多个资源池。其中,该映射规则可以是协议约定的。
在步骤202中,确定至少一个资源池中每个资源池的配置信息。
在本申请的实施例中,网络设备在配置资源池时,可以将系统中的梳尺资源块映射到一个或多个资源池,也就是说,可以将系统的梳尺资源块划分为一个或多个资源池,以形成系统的资源池配置信息,该资源池配置信息包含每个资源池的配置信息,每个资源池的配置信息中指示了对应资源池所配置的梳尺资源块索引的数量及位置,从而实现了资源池的资源配置。可选的,每个资源池可以对应唯一的资源池索引号,通过该资源池索引号指示使用对应资源池包含的梳尺资源块,用于承载终端设备的控制信息和/或数据信息。
通过实施本申请实施例,将梳尺资源块划分为一个或多个资源池,以形成每个资源池的配置信息,其中每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置。由此可见,本申请通过提供一种资源池到梳尺资源块索引之间的映射方式,以实现资源池的资源配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
为了实现上述实施例,本申请还提供了另一种资源配置的方法。在本申请的一些实施例中,如图5所示,该资源配置的方法可以包括但不限于如下步骤。
在步骤501中,根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置。
可以理解,在本申请的实施例中,该资源池与梳尺资源块索引的映射规则可以是由协议约定的,例如,可以通过协议约定资源池与梳尺资源块索引的映射规则,这样,可以根据该资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,以便利用该映射规则,确定网络设备配置的资源池的配置信息。
在步骤502中,根据一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池,确定至少一个资源池中每个资源池的配置信息。
也就是说,可以根据一个资源池应含有的梳尺资源块索引的数目和梳尺资源块索引的位置,来将系统的梳尺资源块映射到至少一个资源池,以便可以确定网络设备配置的资源池的配置信息,该配置信息指示了对应资源池所配置的梳尺资源块索引的数量和位置。
需要说明的是,在本申请的实施例中,1个资源池可以映射到1个LBT子带中,或者,1个资源池可以映射到多个LBT子带中。不同的映射方式对应着不同的映射规则。下面将结合实施例从1个资源池映射到1个LBT子带中,以及1个资源池映射到多个LBT子带这两个方面分别介绍该资源池与梳尺资源块索引的映射规则。
针对1个资源池映射到1个LBT子带的情况:
在一种实现方式中,该资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,N1为小于或等于M的正整数。
也就是说,当1个资源池映射到1个LBT子带中时,在1个LBT子带中,1个资源池可以映射到连续或非连续的N1个梳尺资源块索引上,1≤N1≤M。
可选的,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块 索引上的实现方式可如下:从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,N1小于M。
举例而言,在1≤N1<M情况下,资源池映射到梳尺资源块索引时,资源池可以从第一个LBT子带中第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的整数N1个IRB索引一一映射到对应资源池上。例如,资源池映射到梳尺资源块索引时,资源池可以从第一个LBT子带中序号为0的梳尺资源块索引开始映射,按照梳尺资源块索引所在的逻辑编号将连续或非连续的整数N1个IRB索引一一映射到对应资源池上。
作为一种示例,以LBT子带的子载波间隔SCS=15khz,M=10,N1=8为例,N1<M,该资源池与梳尺资源块索引的映射规则可理解为:1个资源池映射到1个LBT子带中连续或非连续的8个梳尺资源块索引上。例如,1个资源池可以映射到1个LBT子带中序号为0~7的梳尺资源块索引上,即1个资源池可以映射到1个LBT子带中连续的8个梳尺资源块索引上;又如,1个资源池可以映射到1个LBT子带中非连续8个梳尺资源块索引上,比如该非连续8个梳尺资源块索引分别为索引序号为0,1,2,3,5,6,7,8。举例,以两个资源池(包括资源池0和资源池1)为例,资源池0映射到第一个LBT子带(如子带0)中序号为0~7的梳尺资源块索引上,资源池1映射到第二个LBT子带(如子带1)中序号为0~7的梳尺资源块索引上,即1个资源池映射到1个LBT子带中连续的N1个梳尺资源块索引上。
在本实施例中,利用该资源池与梳尺资源块索引的映射规则进行资源池到梳尺资源块索引映射时,可以使用比特位图进行指示。在一种实现方式中,每个资源池的配置信息为比特位图的形式,比特位图的长度为M,其中,比特位图中每个比特位对应一个梳尺资源块索引,比特位图之中比特位数值为1用于指示映射到对应资源池,比特位图之中比特位数值为0用于指示不映射到对应资源池。
例如,使用比特位图(bitmap)对一个LBT子带中的10个梳尺资源块索引进行指示,该比特位图中每个比特对应一个梳尺资源块索引,该比特位图中比特位数值为1,表示该比特位对应的梳尺资源块索引映射到该资源池,比特位图之中比特位数值为0,表示该比特位对应的梳尺资源块索引不映射到该资源池。需要说明的是,比特位图的最低位对应LBT子带中序号为0的梳尺资源块索引,比如,以1个资源池映射到1个LBT子带中非连续的5个梳尺资源块索引上,比特位图为0101010101为例,则表示梳尺资源块索引为1,3,5,7,9映射到该资源池。
在本实施例中,在资源池可以映射连续的梳尺资源块索引的情况下,可以通过起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息进行指示。在一种实现方式中,资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;其中,每个资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
也就是说,在资源池与梳尺资源块索引的映射规则为一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上时,网络设备配置的资源池的配置信息中可以包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。由此,通过该指示方式可实现资源池配置的指示。
在一种实现方式中,一个资源池包括X个子信道,X为正整数;所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上的实现方式可如下:一个资源池中的X个子信道映射到N1个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:以一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N1个梳尺资源块索引映射到一个资源池中的子信道上。
举例而言,在1个资源池只映射到1个LBT子带中部分的梳尺资源块索引,此时资源池中的X个子信道到梳尺资源块索引的映射可如下:X个子信道映射到N1个梳尺资源块索引上,且子信道到梳尺资源块索引的映射是以该资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号的梳尺资源块索引映射到该资源池中的子信道上。作为一种示例,以1个资源池包含2个子信道, 该2个子信道映射到12个梳尺资源块索引上,12个梳尺资源块索引从第一个LBT子带中序号为0的梳尺资源块索引(如IRB index 0)开始,按照梳尺资源块索引所在的逻辑编号开始映射,子信道0映射到逻辑编号梳尺资源块索引0~梳尺资源块索引5上,子信道1映射到逻辑编号梳尺资源块索引6~梳尺资源块索引11上。
可选的,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上的实现方式可如下:一个资源池映射到一个LBT子带中的M个IRB索引上;其中,N1等于M。也就是说,在N1等于M情况下,资源池映射到梳尺资源块索引时,1个资源池可以映射到1个LBT子带中全部的M个梳尺资源块索引。
在一种实现方式中,该资源池与梳尺资源块索引的映射规则为:一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上;其中,N2为大于1且小于所述M的非整数。
需要说明的是,可选的,在资源池映射时,可以从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;其中,N2个梳尺资源块索引包括:第一个梳尺资源块索引至第L个梳尺资源块索引,以及第L+1个梳尺资源块索引中的l个梳尺资源块;L为N2的向下取整后得到的整数,l的取值基于N2中小数部分与M的关系。也就是说,l的取值可由N2中小数部分与M的关系来确定的,比如M=10,N2=2.5,则可以确定l的取值为5;又如,M=5,N2=2.5,则可以确定l的取值为2;再如,M=10,N2=2.3,则可以确定l的取值为3。
举例而言,在资源池映射时,可以从第一个LBT子带中的第一个梳尺资源块索引开始,如从第一个LBT子带中序号为0的梳尺资源块索引开始映射,按照梳尺资源块索引所在的逻辑编号将连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上。例如,以N2=2.5为例,1个资源池映射到连续的2.5个梳尺资源块索引上,如梳尺资源块索引0,1,2,则该1个资源池可以映射到序号为0的梳尺资源块索引,以及映射到序号为1的梳尺资源块索引,以及映射到序号为2的梳尺资源块索引中的部分梳尺资源块上,比如在序号为2的梳尺资源块索引上,该资源池只映射该序号为2的梳尺资源块索引中的5个梳尺资源块。其中,该5个梳尺资源块可以是序号为2的梳尺资源块索引中前5个梳尺资源块,或者,该5个梳尺资源块还可以是序号为2的梳尺资源块索引中奇数序号的5个梳尺资源块,或者,该5个梳尺资源块还可以是序号为2的梳尺资源块索引中偶数序号的5个梳尺资源块,具体可以根据实际应用来决定,对此不做具体限定。
在一种实现方式中,一个资源池包括X个子信道,X为正整数;所述一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上的实现方式可如下:一个资源池中的X个子信道映射到N2个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N2个梳尺资源块索引映射到一个资源池中的子信道上。
举例而言,在1个资源池只映射到1个LBT子带中部分的N2个梳尺资源块索引,此时资源池中的X个子信道到梳尺资源块索引的映射可如下:X个子信道映射到N2个梳尺资源块索引上,且子信道到梳尺资源块索引的映射是以该资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号的梳尺资源块索引映射到该资源池中的子信道上。
作为一种示例,以1个资源池包含2个子信道,该2个子信道映射到12.5个梳尺资源块索引上,12.5个梳尺资源块索引从第一个LBT子带中序号为0的梳尺资源块索引(如IRB index 0)开始,按照梳尺资源块索引所在的逻辑编号开始映射,子信道0映射到逻辑编号梳尺资源块索引0~梳尺资源块索引5上,子信道1映射到逻辑编号梳尺资源块索引6~梳尺资源块索引11上,该子信道1还映射到逻辑编号梳尺资源块索引12中的5个梳尺资源块。
针对1个资源池映射到多个LBT子带的情况:
在一种实现方式中,该资源池与梳尺资源块索引的映射规则为:一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
举例而言,1个资源池映射到N个梳尺资源块索引上,该1个资源池在每个LBT子带连续或非连续映射到相同序号的梳尺资源块索引。作为一种示例,1个资源池需要映射到16个梳尺资源块索引上,则该资源池可以映射到子带0中序号为0~7的8个梳尺资源块索引上,再继续映射到子带1中序号为0~7的8个梳尺资源块索引上。
可选的,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。也就是说,在该资源池与梳尺资源块索引的映射规则为:1个资源池在每个LBT子带连续或非连续映射到相同序号的梳尺资源块索引的情况下,网络设备配置的资源池的配置信息可以包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息和梳尺资源块索引指示信息两者可以独立编码,或者,该子带指示信息和梳尺资源块索引指示信息也可以联合编码。
在一种实现方式中,该资源池与梳尺资源块索引的映射规则为:一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
也就是说,1个资源池可以映射到多个LBT子带中N3个梳尺资源块索引上,其中,1个资源池在每个LBT子带映射的梳尺资源块索引序号不同,且独立配置,配置方法由如下两种:
方法1:1个资源池映射到N3个梳尺资源块索引上,将子带中的梳尺资源块按照频率位置进行编号,例如起始频率最低的子带0的梳尺资源块物理编号为0-9,逻辑编号为0-9,次低的子带1的梳尺资源块物理编号为0-9,逻辑编号为10-19,依次类推;(预)配置的时候指示资源池所映射的梳尺资源块逻辑编号。基于该配置方式,网络设备配置的资源池的配置信息可以包括指示信息,该指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号。
例如,如图6所示,N3=12,1个资源池映射到12个梳尺资源块索引,对于资源池0,映射到第一个LBT子带(如图6中的子带0)中序号为0-9梳尺资源块索引上,再映射到第2个LBT子带(如图6中的子带1)中逻辑编号为10-11的2个梳尺资源块索引上,即第2个LBT子带的物理编号为0-1的2个梳尺资源块索引上。
方法2:首先指示资源池所映射的子带,再指示对应子带所映射的梳尺资源块索引。在本示例中,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所 映射的梳尺资源块索引。
也就是说,当一个资源池在每个LBT子带映射的梳尺资源块索引序号不同时,可以利用两个指示字段来指示对应资源池所配置的梳尺资源块索引的数量及位置,比如,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,该子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。
需要说明的是,在本申请的一些实施例中,网络设备将系统中的梳尺资源块映射到多个资源池的资源池配置信息需要通过一定的方式通知给系统的终端设备。网络设备配置的资源池的配置信息为公共信息,应为所有可用终端设备共同获知,可以采用系统预定义,系统广播消息,或高层信令,如无线资源控制消息进行指示。网络设备或具有可发送资源池配置信息权限的终端设备可通过相应的信令对采用的资源池配置进行指示。
通过实施本申请实施例,通过系统预定义的资源池与梳尺资源块索引的映射规则进行资源池配置,可以确定1个资源池包含的梳尺资源块索引的数目和梳尺资源块索引的位置,以便利用该映射规则进行资源池的配置,可以在终端侧行链路非授权频段SL-U上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
可以理解,上述实施例是从网络设备侧描述本申请实施例的资源配置的方法的实现方式。本申请实施例还提出了一种资源配置的方法,下面将从终端设备侧描述该资源配置的方法的实现方式。请参见图7,图7是本申请提供的又一种资源配置的方法的流程图。需要说明的是,本申请实施例的资源配置的方法可以应用于终端设备侧行链路非授权频段,可以由终端设备执行。如图7所示,该资源配置的方法可以包括但不限于如下步骤。
在步骤701中,接收网络设备发送的资源池的配置信息。
其中,在本申请的实施例中,资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值定为M,M由子载波间隔的大小确定。
网络设备将系统中的梳尺资源块映射到多个资源池的资源池配置信息需要通过一定的方式通知给系统的终端设备。可选的,基于资源池配置,网络设备可以通过指示资源池索引向发送端UE和/或接收端UE指示所调度的资源池资源,用于承载UE的控制信息和/或数据信息,UE也可以在可用的资源池资源上自行选择一个或多个资源池用于控制信息和/或数据信息的承载发送。
可选的,在本申请的实施例中,终端设备在接入网络设备时,可以接收到网络设备发送的资源池的配置信息,根据该资源池的配置信息和资源池与梳尺资源块索引的映射规则,即可确定终端设备所调度的资源池所配置的梳尺资源块索引的数量及位置。其中,针对资源池与梳尺资源块索引的映射规则的介绍可参见本文前述关于该映射规则的描述,在此不再赘述。
通过实施本申请实施例,通过提供一种资源池到梳尺资源块索引之间的映射方式,以实现资源池的资源配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
上述本申请提供的实施例中,分别从网络设备、终端设备的角度对本申请实施例提供的方法进行了 介绍。为了实现上述本申请实施例提供的方法中的各功能,网络设备和终端设备可以包括硬件结构、软件模块,以硬件结构、软件模块、或硬件结构加软件模块的形式来实现上述各功能。上述各功能中的某个功能可以以硬件结构、软件模块、或者硬件结构加软件模块的方式来执行。
请参见图8,为本申请实施例提供的一种通信装置80的结构示意图。图8所示的通信装置80可包括收发模块801和处理模块802。收发模块801可包括发送模块和/或接收模块,发送模块用于实现发送功能,接收模块用于实现接收功能,收发模块801可以实现发送功能和/或接收功能。
通信装置80可以是终端设备,也可以是终端设备中的装置,还可以是能够与终端设备匹配使用的装置。或者,通信装置80可以是网络设备,也可以是网络设备中的装置,还可以是能够与网络设备匹配使用的装置。
通信装置80为网络设备:在本申请的实施例中,处理模块802用于将梳尺资源块映射到至少一个资源池;处理模块802还用于确定至少一个资源池中每个资源池的配置信息;其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。
在一种实现方式中,处理模块802包括:确定单元和映射单元。其中,确定单元,用于根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置;映射单元,用于根据一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,确定单元具体用于:根据资源池与梳尺资源块索引的映射规则,确定一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,N1为小于或等于M的正整数;映射单元具体用于:根据一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,映射单元具体用于:从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,N1小于M。
在一种可能的实现方式中,每个资源池的配置信息包括比特位图,比特位图的长度为M,其中,比特位图中每个比特位对应一个梳尺资源块索引,比特位图之中比特位数值为1用于指示映射到对应资源池,比特位图之中比特位数值为0用于指示不映射到对应资源池。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;其中,每个资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
在一种可能的实现方式中,一个资源池包括X个子信道,X为正整数;确定单元具体用于:确定一个资源池中的X个子信道映射到N1个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:以一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N1个梳尺资源块索引映射到一个资源池中的子信道上。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中的M个IRB索引上;其中,N1等于M。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上;其中,所述N2为大于1且小于所述M的非整数。
在一种可能的实现方式中,确定单元具体用于:确定从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;其中,N2个梳尺资源块索引包括:第一个梳尺资源块索引至第L个梳尺资源块索引,以及第L+1个梳尺资源块索引中的l个梳尺资源块;L为N2的向下取整后得到的整数,l的取值基于N2中小数部分与M的关系。
在一种可能的实现方式中,一个资源池包括X个子信道,X为正整数;确定单元具体用于:确定一个资源池中的X个子信道映射到N2个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N2个梳尺资源块索引映射到一个资源池中的子信道上。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
在一种可能的实现方式中,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个IRB索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
在一种可能的实现方式中,每个资源池的配置信息包括指示信息,指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号;或者,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。
通信装置80为终端设备:在本申请的实施例中,收发模块801用于接收网络设备发送的资源池的配置信息;其中,资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。
关于上述实施例中的装置,其中各个模块执行操作的具体方式已经在有关该方法的实施例中进行了详细描述,此处将不做详细阐述说明。
通过实施本申请实施例,将梳尺资源块划分为一个或多个资源池,以形成每个资源池的配置信息,其中每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置。由此可见,本申请通过提供一种资源池到梳尺资源块索引之间的映射方式,以实现资源池的资源配置,可以在终端侧行链路非授权频段上满足OCB要求,从而可以满足未来潜在的多样化应用场景和需求。
请参见图9,图9是本申请实施例提供的另一种通信装置90的结构示意图。通信装置90可以是网络设备,也可以是终端设备,也可以是支持网络设备实现上述方法的芯片、芯片系统、或处理器等,还可以是支持终端设备实现上述方法的芯片、芯片系统、或处理器等。该装置可用于实现上述方法实施例中描述的方法,具体可以参见上述方法实施例中的说明。
通信装置90可以包括一个或多个处理器901。处理器901可以是通用处理器或者专用处理器等。例如可以是基带处理器或中央处理器。基带处理器可以用于对通信协议以及通信数据进行处理,中央处理器可以用于对通信装置(如,基站、基带芯片,终端设备、终端设备芯片,DU或CU等)进行控制,执行计算机程序,处理计算机程序的数据。
可选的,通信装置90中还可以包括一个或多个存储器902,其上可以存有计算机程序904,处理器901执行所述计算机程序904,以使得通信装置90执行上述方法实施例中描述的方法。可选的,所述存储器902中还可以存储有数据。通信装置90和存储器902可以单独设置,也可以集成在一起。
可选的,通信装置90还可以包括收发器905、天线906。收发器905可以称为收发单元、收发机、或收发电路等,用于实现收发功能。收发器905可以包括接收器和发送器,接收器可以称为接收机或接收电路等,用于实现接收功能;发送器可以称为发送机或发送电路等,用于实现发送功能。
可选的,通信装置90中还可以包括一个或多个接口电路907。接口电路907用于接收代码指令并传输至处理器901。处理器901运行所述代码指令以使通信装置90执行上述方法实施例中描述的方法。
通信装置90为网络设备:处理器901用于执行图2中的步骤201和步骤202;执行图5中的步骤501和步骤502。
通信装置90为终端设备:收发器905用于执行图7中的步骤701。
在一种实现方式中,处理器901中可以包括用于实现接收和发送功能的收发器。例如该收发器可以是收发电路,或者是接口,或者是接口电路。用于实现接收和发送功能的收发电路、接口或接口电路可以是分开的,也可以集成在一起。上述收发电路、接口或接口电路可以用于代码/数据的读写,或者,上述收发电路、接口或接口电路可以用于信号的传输或传递。
在一种实现方式中,处理器901可以存有计算机程序,计算机程序在处理器901上运行,可使得通信装置90执行上述方法实施例中描述的方法。计算机程序可能固化在处理器901中,该种情况下,处理器901可能由硬件实现。
在一种实现方式中,通信装置90可以包括电路,所述电路可以实现前述方法实施例中发送或接收或者通信的功能。本申请中描述的处理器和收发器可实现在集成电路(integrated circuit,IC)、模拟IC、射频集成电路RFIC、混合信号IC、专用集成电路(application specific integrated circuit,ASIC)、印刷电路板(printed circuit board,PCB)、电子设备等上。该处理器和收发器也可以用各种IC工艺技术来制造,例如互补金属氧化物半导体(complementary metal oxide semiconductor,CMOS)、N型金属氧化物半导体(nMetal-oxide-semiconductor,NMOS)、P型金属氧化物半导体(positive channel metal oxide semiconductor,PMOS)、双极结型晶体管(bipolar junction transistor,BJT)、双极CMOS(BiCMOS)、硅锗(SiGe)、砷化镓(GaAs)等。
以上实施例描述中的通信装置可以是网络设备或者终端设备(如前述方法实施例中的第一终端设备),但本申请中描述的通信装置的范围并不限于此,而且通信装置的结构可以不受图9的限制。通信装置可以是独立的设备或者可以是较大设备的一部分。例如所述通信装置可以是:
(1)独立的集成电路IC,或芯片,或,芯片系统或子系统;
(2)具有一个或多个IC的集合,可选的,该IC集合也可以包括用于存储数据,计算机程序的存储部件;
(3)ASIC,例如调制解调器(Modem);
(4)可嵌入在其他设备内的模块;
(5)接收机、终端设备、智能终端设备、蜂窝电话、无线设备、手持机、移动单元、车载设备、网络设备、云设备、人工智能设备等等;
(6)其他等等。
对于通信装置可以是芯片或芯片系统的情况。芯片包括处理器和接口。其中,处理器的数量可以是一个或多个,接口的数量可以是多个。
对于芯片用于实现本申请实施例中网络设备的功能的情况:处理器用于将梳尺资源块映射到至少一个资源池;处理器还用于确定至少一个资源池中每个资源池的配置信息;其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。
在一种实现方式中,处理器包括:确定单元和映射单元。其中,确定单元,用于根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置;映射单元,用于根据一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,确定单元具体用于:根据资源池与梳尺资源块索引的映射规则,确定一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,N1为小于或等于M的正整数;
映射单元具体用于:根据一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引,将梳尺资源块映射到至少一个资源池。
在一种实现方式中,映射单元具体用于:从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,N1小于M。
在一种可能的实现方式中,每个资源池的配置信息包括比特位图,比特位图的长度为M,其中,比特位图中每个比特位对应一个梳尺资源块索引,比特位图之中比特位数值为1用于指示映射到对应资源池,比特位图之中比特位数值为0用于指示不映射到对应资源池。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;其中,每个资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
在一种可能的实现方式中,一个资源池包括X个子信道,X为正整数;确定单元具体用于:确定一个资源池中的X个子信道映射到N1个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:以一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N1个梳尺资源块索引映射到一个资源池中的子信道上。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中的M个IRB索引上;其中,N1等于M。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到一个LBT子带中连续或非 连续的N2个梳尺资源块索引上;其中,所述N2为大于1且小于所述M的非整数。
在一种可能的实现方式中,确定单元具体用于:确定从一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;其中,N2个梳尺资源块索引包括:第一个梳尺资源块索引至第L个梳尺资源块索引,以及第L+1个梳尺资源块索引中的l个梳尺资源块;L为N2的向下取整后得到的整数,l的取值基于N2中小数部分与M的关系。
在一种可能的实现方式中,一个资源池包括X个子信道,X为正整数;确定单元具体用于:确定一个资源池中的X个子信道映射到N2个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则为:一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将N2个梳尺资源块索引映射到一个资源池中的子信道上。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
在一种可能的实现方式中,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。
在一种可能的实现方式中,确定单元具体用于:确定一个资源池映射到多个LBT子带中N3个IRB索引上;其中,N3为大于M的整数,一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
在一种可能的实现方式中,每个资源池的配置信息包括指示信息,指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号;或者,每个资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,子带指示信息用于指示对应资源池所映射的多个LBT子带,梳尺资源块索引指示信息用于指示对应资源池在每个LBT子带中所映射的梳尺资源块索引。
对于芯片用于实现本申请实施例中终端设备的功能的情况:接口,用于接收网络设备发送的资源池的配置信息;其中,资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,M由子载波间隔的大小确定。
可选的,芯片还包括存储器,存储器用于存储必要的计算机程序和数据。
本领域技术人员还可以了解到本申请实施例列出的各种说明性逻辑块(illustrative logical block)和步骤(step)可以通过电子硬件、电脑软件,或两者的结合进行实现。这样的功能是通过硬件还是软件来实现取决于特定的应用和整个系统的设计要求。本领域技术人员可以对于每种特定的应用,可以使用各种方法实现所述的功能,但这种实现不应被理解为超出本申请实施例保护的范围。
本申请实施例还提供一种确定侧链路时长的系统,该系统包括前述图8实施例中作为终端设备的通信装置和作为网络设备的通信装置,或者,该系统包括前述图9实施例中作为终端设备的通信装置和作为网络设备的通信装置。
本申请还提供一种可读存储介质,其上存储有指令,该指令被计算机执行时实现上述任一方法实施例的功能。
本申请还提供一种计算机程序产品,该计算机程序产品被计算机执行时实现上述任一方法实施例的 功能。
在上述实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。所述计算机程序产品包括一个或多个计算机程序。在计算机上加载和执行所述计算机程序时,全部或部分地产生按照本申请实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机程序可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,所述计算机程序可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(digital subscriber line,DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。所述计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。所述可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如,高密度数字视频光盘(digital video disc,DVD))、或者半导体介质(例如,固态硬盘(solid state disk,SSD))等。
本领域普通技术人员可以理解:本申请中涉及的第一、第二等各种数字编号仅为描述方便进行的区分,并不用来限制本申请实施例的范围,也表示先后顺序。
本申请中的至少一个还可以描述为一个或多个,多个可以是两个、三个、四个或者更多个,本申请不做限制。在本申请实施例中,对于一种技术特征,通过“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”等区分该种技术特征中的技术特征,该“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”描述的技术特征间无先后顺序或者大小顺序。
本申请中各表所示的对应关系可以被配置,也可以是预定义的。各表中的信息的取值仅仅是举例,可以配置为其他值,本申请并不限定。在配置信息与各参数的对应关系时,并不一定要求必须配置各表中示意出的所有对应关系。例如,本申请中的表格中,某些行示出的对应关系也可以不配置。又例如,可以基于上述表格做适当的变形调整,例如,拆分,合并等等。上述各表中标题示出参数的名称也可以采用通信装置可理解的其他名称,其参数的取值或表示方式也可以通信装置可理解的其他取值或表示方式。上述各表在实现时,也可以采用其他的数据结构,例如可以采用数组、队列、容器、栈、线性表、指针、链表、树、图、结构体、类、堆、散列表或哈希表等。
本申请中的预定义可以理解为定义、预先定义、存储、预存储、预协商、预配置、固化、或预烧制。
本领域普通技术人员可以意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,能够以电子硬件、或者计算机软件和电子硬件的结合来实现。这些功能究竟以硬件还是软件方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本申请的范围。
所属领域的技术人员可以清楚地了解到,为描述的方便和简洁,上述描述的系统、装置和单元的具体工作过程,可以参考前述方法实施例中的对应过程,在此不再赘述。
以上所述,仅为本申请的具体实施方式,但本申请的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本申请揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本申请的保护范围之内。因此,本申请的保护范围应以所述权利要求的保护范围为准。

Claims (22)

  1. 一种资源配置的方法,其特征在于,所述方法由网络设备执行,所述方法包括:
    将梳尺资源块映射到至少一个资源池;
    确定所述至少一个资源池中每个资源池的配置信息;
    其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
  2. 如权利要求1所述的方法,其特征在于,所述将梳尺资源块映射到至少一个资源池,包括:
    根据资源池与梳尺资源块索引的映射规则,确定一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置;
    根据所述一个资源池含有的梳尺资源块索引的数目和梳尺资源块索引的位置,将梳尺资源块映射到至少一个资源池。
  3. 如权利要求2所述的方法,其特征在于,所述映射规则为:
    一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上;其中,所述N1为小于或等于所述M的正整数。
  4. 如权利要求3所述的方法,其特征在于,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的N1个梳尺资源块索引上,包括:
    从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述连续或非连续的整数N1个IRB索引一一映射到对应资源池上;其中,所述N1小于所述M。
  5. 如权利要求4所述的方法,其特征在于,每个所述资源池的配置信息包括比特位图,所述比特位图的长度为所述M,其中,所述比特位图中每个比特位对应一个梳尺资源块索引,所述比特位图之中比特位数值为1用于指示映射到所述对应资源池,所述比特位图之中比特位数值为0用于指示不映射到所述对应资源池。
  6. 如权利要求4所述的方法,其特征在于,所述映射规则为:一个资源池映射到一个LBT子带中连续的整数N1个梳尺资源块索引上;
    其中,每个所述资源池的配置信息包括用以指示对应资源池所配置的起始梳尺资源块索引和连续梳尺资源块索引个数的指示信息。
  7. 如权利要求4至6中任一项所述的方法,其特征在于,所述一个资源池包括X个子信道,所述X为正整数;所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上,包括:
    所述X个子信道映射到所述N1个梳尺资源块索引上,其中,子信道与梳尺资源块索引的映射规则 为:以所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N1个梳尺资源块索引映射到所述一个资源池中的子信道上。
  8. 如权利要求3所述的方法,其特征在于,所述一个资源池映射到一个先听后说LBT子带中连续或非连续的整数N1个梳尺资源块索引上,包括:
    所述一个资源池映射到一个LBT子带中的所述M个IRB索引上;其中,所述N1等于所述M。
  9. 如权利要求2所述的方法,其特征在于,所述映射规则为:
    一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上;其中,所述N2为大于1且小于所述M的非整数。
  10. 如权利要求9所述的方法,其特征在于,所述一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上,包括:
    从所述一个LBT子带中的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述连续或非连续的N2个梳尺资源块索引一一映射到对应资源池上;
    其中,所述N2个梳尺资源块索引包括:所述第一个梳尺资源块索引至第L个梳尺资源块索引,以及所述第L+1个梳尺资源块索引中的l个梳尺资源块;所述L为所述N2的向下取整后得到的整数,所述l的取值基于所述N2中小数部分与所述M的关系。
  11. 如权利要求9或10所述的方法,其特征在于,所述一个资源池包括X个子信道,所述X为正整数;所述一个资源池映射到一个LBT子带中连续或非连续的N2个梳尺资源块索引上,包括:
    所述一个资源池中的X个子信道映射到所述N2个梳尺资源块索引上,其中,所述子信道与梳尺资源块索引的映射规则为:所述一个资源池所映射的第一个梳尺资源块索引开始,按照梳尺资源块索引所在的逻辑编号将所述N2个梳尺资源块索引映射到所述一个资源池中的子信道上。
  12. 如权利要求2所述的方法,其特征在于,所述映射规则为:
    一个资源池映射到多个LBT子带中N3个梳尺资源块索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带中连续或非连续映射到相同序号的梳尺资源块索引。
  13. 如权利要求12所述的方法,其特征在于,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
  14. 如权利要求2所述的方法,其特征在于,所述映射规则为:
    一个资源池映射到多个LBT子带中N3个IRB索引上;其中,所述N3为大于所述M的整数,所述一个资源池在每个LBT子带映射的梳尺资源块索引序号不同。
  15. 如权利要求14所述的方法,其特征在于,
    每个所述资源池的配置信息包括指示信息,所述指示信息用于指示对应资源池所映射的梳尺资源块索引所在的逻辑编号;
    或者,每个所述资源池的配置信息包括子带指示信息和梳尺资源块索引指示信息,其中,所述子带指示信息用于指示对应资源池所映射的多个LBT子带,所述梳尺资源块索引指示信息用于指示所述对应资源池在每个LBT子带中所映射的梳尺资源块索引。
  16. 一种资源配置的方法,其特征在于,所述方法由终端设备执行,所述方法包括:
    接收网络设备发送的资源池的配置信息;
    其中,所述资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
  17. 一种通信装置,其特征在于,包括:
    处理模块,用于将梳尺资源块映射到至少一个资源池;
    所述处理模块,还用于确定所述至少一个资源池中每个所资源池的配置信息;
    其中,每个资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
  18. 一种通信装置,其特征在于,包括:
    收发模块,用于接收网络设备发送的资源池的配置信息;
    其中,所述资源池的配置信息指示了对应资源池所配置的梳尺资源块索引的数量及位置;同一个梳尺资源块索引中连续的两个梳尺资源块相隔的资源块数值为M,所述M由子载波间隔的大小确定。
  19. 一种通信装置,其特征在于,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如权利要求1~15中任一项所述的方法。
  20. 一种通信装置,其特征在于,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如权利要求16所述的方法。
  21. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求1至15中任一项所述的方法被实现。
  22. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求16所述的方法被实现。
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