WO2024067594A1 - 资源配置方法及相关装置 - Google Patents
资源配置方法及相关装置 Download PDFInfo
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- WO2024067594A1 WO2024067594A1 PCT/CN2023/121586 CN2023121586W WO2024067594A1 WO 2024067594 A1 WO2024067594 A1 WO 2024067594A1 CN 2023121586 W CN2023121586 W CN 2023121586W WO 2024067594 A1 WO2024067594 A1 WO 2024067594A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
- H04W56/004—Synchronisation arrangements compensating for timing error of reception due to propagation delay
- H04W56/0045—Synchronisation arrangements compensating for timing error of reception due to propagation delay compensating for timing error by altering transmission time
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/002—Transmission of channel access control information
- H04W74/006—Transmission of channel access control information in the downlink, i.e. towards the terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
- H04W74/0833—Random access procedures, e.g. with 4-step access
Definitions
- the present application belongs to the field of communication technology, and specifically relates to a resource configuration method and related devices.
- TRP transmission and reception points
- PRACH Physical Random Access Channel
- the embodiment of the present application provides a resource configuration method and related devices, in order to configure random access related resources for at least one TPR among multiple TRPs, so as to effectively support the TA of each TRP and improve the random access efficiency and quality of the terminal device.
- an embodiment of the present application provides a resource configuration method, the method comprising:
- Acquire configuration information where the configuration information is used to indicate a random access resource of at least one TRP among a plurality of transmission reception points TRPs;
- an embodiment of the present application provides a resource configuration method, the method comprising:
- Send configuration information where the configuration information is used to indicate the random access resources of at least one TRP among multiple transmission receiving points TRP.
- an embodiment of the present community provides a resource configuration device, the device comprising:
- An acquisition unit configured to acquire configuration information, wherein the configuration information is used to indicate a random access resource of at least one TRP among a plurality of transmission reception points TRPs;
- a random access unit is used to perform random access according to the configuration information.
- an embodiment of the present application provides a resource configuration device, the device comprising:
- a sending unit is used to send configuration information, where the configuration information is used to indicate the random access resources of at least one TRP among multiple transmission receiving points TRP.
- an embodiment of the present application provides a terminal device, comprising a processor, a memory, a communication interface, and one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by the processor, and the program includes instructions for executing the steps of any method in the first aspect of the embodiment of the present application.
- an embodiment of the present application provides a network device, comprising a processor, a memory, a communication interface, and one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by the processor, and the program includes instructions for executing the steps of any method in the second aspect of the embodiment of the present application.
- an embodiment of the present application provides a chip, comprising: a processor, for calling and running a computer program from a memory, so that a device equipped with the chip executes part or all of the steps described in any method of the first aspect or the second aspect of the embodiment of the present application.
- an embodiment of the present application provides a chip module, comprising the chip described in an seventh aspect of the embodiment of the present application.
- an embodiment of the present application provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program for electronic data exchange, wherein the computer program enables a computer to execute part or all of the steps described in any method of the first aspect or the second aspect of the embodiment of the present application.
- an embodiment of the present application provides a computer program, wherein the computer program is operable to cause a computer to execute some or all of the steps described in any method of the first aspect or the second aspect of the embodiment of the present application.
- the computer program can be a software installation package.
- the configuration information used for random access of the terminal device includes random access resources configured for at least one TRP among multiple TRPs, so that each TRP has corresponding random access resources, which can effectively support the TA of each TRP and improve the random access efficiency and quality of the terminal device.
- FIG. 1a is a diagram of a network system architecture provided by an embodiment of the present application.
- FIG1b is a schematic diagram of the structure of a terminal device provided in an embodiment of the present application.
- FIG1c is a schematic diagram of the structure of a network device provided in an embodiment of the present application.
- FIG2a is a schematic diagram of a flow chart of a resource configuration method provided in an embodiment of the present application.
- FIG2b is a schematic diagram of a preamble configuration provided in an embodiment of the present application.
- FIG2c is a schematic diagram of another preamble configuration provided in an embodiment of the present application.
- FIG2d is a schematic diagram of another preamble configuration provided in an embodiment of the present application.
- FIG3 is a block diagram of functional units of a resource configuration device provided in an embodiment of the present application.
- FIG4 is a block diagram of functional units of another resource configuration device provided in an embodiment of the present application.
- FIG5 is a block diagram of functional units of another resource configuration device provided in an embodiment of the present application.
- FIG6 is a block diagram of the functional units of another resource configuration device provided in an embodiment of the present application.
- the random access process refers to the process from when the terminal device sends a random access preamble to try to access the network to when the basic signaling connection is established between the terminal device and the network device.
- the types of random access can be divided into two-step random access and four-step random access.
- the whole process includes four steps: transmission of random access request message, transmission of random access response (RAR) message, transmission of message 3 (Msg3) and transmission of message 4 (Msg4).
- RAR random access response
- Msg3 message 3
- Msg4 message 4
- Step 1 Transmission of a random access request message, that is, the terminal device sends a random access request message to the network device.
- the random access request message may also be referred to as message 1 (Msg1).
- the random access request message may include a random access preamble (RA preamble).
- the main function of the RA preamble may be to request access to the network device, so that the network device can estimate the transmission delay between the network device and the terminal device based on the RA preamble and calibrate the uplink timing, and indicate it to the terminal device through the RAR message.
- Step 2 Transmission of the RAR message: The network device receives the random access request message and sends the RAR message to the terminal device.
- the RAR message may also be referred to as message 2 (Msg2).
- Step 3 Transmission of message 3: The terminal device receives the RAR message and sends Msg3 to the network device.
- Step 4 Transmission of message 4: The network device receives Msg3 and sends message 4 to the terminal device. Message 4 may also be referred to as Msg4.
- the network device carries the flag used to uniquely identify the terminal device in Msg4 to indicate the winning terminal device, and other terminal devices that have not won in the conflict resolution will re-initiate random access.
- the two-step random access process helps to reduce the access delay of the terminal device.
- the two-step random access process may include the following two steps:
- Step 1 Transmission of message A (i.e. MsgA).
- the terminal device sends MsgA to the network device, wherein MsgA may include a random access request message, and the random access request message here may be Msg1 in the above four-step random access process.
- MsgA can include two parts: Random Access Preamble and PUSCH payload.
- Step 2 Transmission of message B (ie MsgB).
- the network device receives MsgA and sends MsgB to the terminal device, wherein MsgB may include RAR.
- Random Access Channel Occasion In the downlink communication of the wireless communication system, the system periodically sends the synchronization signal and broadcast channel to the terminal device through the synchronization signal block (SSB). At the same time, the base station will configure a physical random access channel (PRACH) configuration period. A certain number of RACH transmission opportunities, namely RO, are configured in this PRACH configuration period.
- PRACH physical random access channel
- the number of ROs that can be configured in the frequency domain can be ⁇ 1, 2, 4, 8 ⁇ , which is configured by the high-level parameter msg1-FDM.
- the mapping period of SSB and RO refers to the RO period required for at least a complete mapping of one round of SSB index. Starting from frame 0, one mapping period can be one PRACH period or multiple PRACH periods, depending on the configuration of RO time domain resources and frequency domain resources.
- the number of available preambles can be divided into N parts, and the index of the first competing preamble that each SSB can take is (n refers to the SSB index). It can be indicated by the higher layer parameter totalNumberOfRA-Preambles or msgA-TotalNumberOfRA-Preambles.
- the second type of random access and the first type of random access use a common RO configuration, if one SSB can be mapped to multiple ROs (N ⁇ 1), among the preambles available (or associated) on each RO, among the preambles available (or associated) for each SSB, the P preambles that can be used for the second type of random access start from index Q;
- Q represents the number of preambles per SSB association per RO association for the first type of random access
- P represents the number of preambles per SSB association per RO association for the second type of random access.
- Figure 1a is a network system architecture diagram provided by an embodiment of the present application.
- the network system includes multiple network devices 120 and terminal devices 110, and the network device 120 can be regarded as any TRP in this solution.
- the network device 120 can send configuration information to the terminal device 110, and then the terminal device 110 can perform random access according to the configuration information.
- the terminal device 110 is a device with wireless transceiver functions, which can be either an electronic device or a server. It can be called user equipment (UE), terminal equipment, terminal equipment, mobile station (MS), mobile terminal equipment (MT), access terminal equipment, vehicle-mounted terminal equipment, industrial control terminal equipment, UE unit, UE station, mobile station, remote station, remote terminal equipment, mobile equipment, UE terminal equipment, wireless communication equipment, UE agent or UE device, etc.
- the user equipment can be fixed or mobile.
- the terminal equipment can support at least one wireless communication technology, such as LTE, new radio (NR), wide band code division multiple access (WCDMA), etc.
- the electronic device may be a mobile phone, a tablet computer, a desktop computer, a laptop computer, an all-in-one computer, a vehicle-mounted terminal device, a virtual reality (VR) terminal device, an augmented reality (AR) terminal device, a wireless terminal device in industrial control, a wireless terminal device in self-driving, a wireless terminal device in remote medical surgery, a wireless terminal device in smart grid, a wireless terminal device in transportation safety, etc.
- VR virtual reality
- AR augmented reality
- the present invention relates to a wireless terminal device in a smart city, a wireless terminal device in a smart home, a cellular phone, a cordless phone, a session initiation protocol (SIP) phone, a wireless local loop (WLL) station, a personal digital assistant (PDA), a handheld device with a wireless communication function, a computing device or other processing device connected to a wireless modem, a wearable device, a terminal device in a future mobile communication network, or a terminal device in a future evolved public mobile land network (PLMN), etc.
- the terminal device may also be a device with a transceiver function, such as a chip system.
- the chip system may include a chip and may also include other discrete devices.
- the network device is a device that provides wireless communication functions for user equipment, and can also be referred to as access network equipment, access network element, radio access network (RAN) equipment, etc.
- the network device can support at least one wireless communication technology, such as LTE, NR, WCDMA, etc.
- the access network equipment includes but is not limited to: the next generation base station (generation node B, gNB) in the fifth generation mobile communication system (5th-generation, 5G), evolved node B (evolved node B, eNB), radio network controller (radio network controller, RNC), node B (node B, NB), base station controller (base station controller, BSC), base transceiver station (base transceiver station, BTS), home base station (for example, home evolved node B, or home node B, HNB), base band unit (base band unit, BBU), transmission and reception point (Transmission and Reception Point, TRP), transmitting point (transmitting point, TP), mobile switching center, etc.
- generation node B generation node B, gNB
- 5G fifth generation mobile communication system
- 5G fifth generation mobile communication system
- evolved node B evolved node B
- eNB evolved node B
- RNC radio network controller
- node B node B
- base station controller base station controller
- BSC
- the network device may also be a wireless controller, a centralized unit (CU), and/or a distributed unit (DU) in a cloud radio access network (CRAN) scenario, or the network device may be a relay station, an access point, a vehicle-mounted device, a terminal device, a wearable device, and an access network device in future mobile communications or an access network device in a future evolved PLMN.
- the network device may also be a device that provides wireless communication functions for user equipment, such as a chip system.
- the chip system may include a chip and may also include other discrete devices.
- the network device may be any one of the multiple sites that perform coherent joint transmission (CJT) with the terminal device, or other sites outside the multiple sites, or other network devices that perform network communication with the terminal device, and there is no specific limitation on this.
- CJT coherent joint transmission
- multi-site coherent joint transmission may be multiple sites coherent transmission, or different data belonging to the same physical downlink shared channel (PDSCH) are sent from different sites to the terminal device, or multiple sites are virtualized into one site for transmission. Names with the same meaning specified in other standards also apply to this application, that is, this application does not limit the names of these parameters.
- the sites in multi-site coherent joint transmission may be remote radio heads (RRH), TRP, etc., and there is no specific limitation on this.
- the network device may be any one of the multiple sites that perform incoherent joint transmission with the terminal device, or other sites outside the multiple sites, or other network devices that perform network communication with the terminal device, and there is no specific limitation on this.
- the multi-site incoherent joint transmission may be multiple sites joint incoherent transmission, or different data belonging to the same PDSCH is sent from different sites to the terminal device, and the names with the same meaning specified in other standards are also applicable to this application, that is, this application does not limit the names of these parameters.
- the sites in the multi-site incoherent joint transmission may be RRH, TRP, etc., and there is no specific limitation on this.
- TRP of the present application is not limited to coherent joint transmission or incoherent joint transmission scenarios, but can also be applied to other scenarios without specific restrictions.
- the terminal device 110 includes a processor 210, a memory 210, and a 20, a communication interface 230, and one or more programs 221, wherein the one or more programs 221 are stored in the memory 220 and are configured to be executed by the processor 210, and the program 221 includes a program for executing the operations performed by the device on the terminal device side in the method described in the method embodiment of the present application.
- the network device 120 includes a processor 310, a memory 320, a communication interface 330, and one or more programs 321.
- the one or more programs 321 are stored in the memory 320 and are configured to be executed by the processor 310.
- the program 321 includes operations performed by the network-side device in the method described in the method embodiment of the present application.
- Figure 2a is a schematic diagram of a process flow of a resource configuration method provided in an embodiment of the present application.
- the resource configuration method includes the following steps:
- Step 201 The network device sends configuration information to the terminal device.
- the terminal device obtains the configuration information from the network device.
- the configuration information is used to indicate the random access resources of at least one TRP among multiple transmission receiving points TRP.
- the configuration information may be a random access resource configured for each TRP in a plurality of TRPs, or may be a random access resource configured for only some of the TRPs in a plurality of TRPs, and the random access resources of other TRPs in the plurality of TRPs may be derived by inference.
- a network device may configure a plurality of TRPs to a terminal device.
- TRP can be represented by transmission configuration indication state (TCI state), channel sounding reference signal (SRS) resources, SRS resource set or spatial information, etc.
- TCI state transmission configuration indication state
- SRS channel sounding reference signal
- SRS resource set or spatial information etc.
- TCI state, SRS resources, SRS resource set or spatial information, etc. can also be regarded as the concept of TRP.
- the TRP in this application can be associated with spatial information or a vacancy direction (e.g., one or a group of beams); or, the TRP can be characterized by spatial information or a vacancy direction (e.g., one or a group of beams); or, the TRP can be characterized by a power control parameter.
- the TRP in this application can be a functional module (e.g., implemented by software functions) or can be implemented by hardware. This application does not specifically limit the implementation method of the TRP.
- the random access resource may include a common random access configuration information element (RACH-ConfigCommon information element) and/or RACH-ConfigCommonTwoStepRA and/or RACH-ConfigDedicated and/or RACH-ConfigGeneric and/or RACH-ConfigGenericTwoStepRA.
- the configured random access resources include time domain resources for random access, and/or frequency domain resources and/or random access preambles, and/or a mapping relationship between a physical broadcast synchronization signal block (Synchronization Signal and PBCH block, SSB) and random access resources for configuration.
- the terminal device may determine its corresponding random resource subset based on the mapping relationship between the SSB and the random access resource, or based on the SSB that meets the conditions in the measurement results.
- Step 202 The terminal device performs random access according to the configuration information.
- the random access resources corresponding to at least one TRP may include two-step random access and/or four-step random access resources configured for the terminal device.
- the random access process can be divided into a contention-based random access process and a non-contention-based random access process.
- Contention-based random access means that the access resources are randomly acquired by the terminal device itself, and non-contention-based random access means that the access resources of the terminal device are allocated by the base station. The essential difference between the two lies in whether the terminal device receives a dedicated random access resource allocated by the network before initiating random access.
- the random access resources configured by the network device for the terminal device include at least one of the multiple TRPs.
- a TRP is configured with random access resources so that each TRP has corresponding random access resources, which can effectively support the TA of each TRP and improve the random access efficiency and quality of terminal devices.
- each of the multiple TRPs corresponds to a set of random access resources.
- the configuration information may include configuring a set of random access resources for each TRP, that is, a set of random access common configuration information (RACH-ConfigCommon) and/or two-step random access common configuration information (RACH-ConfigCommonTwoStepRA) and/or RACH-ConfigDedicated and/or RACH-ConfigGeneric and/or RACH-ConfigGenericTwoStepRA is associated with one TRP, and another set of RACH-ConfigCommon and/or RACH-ConfigCommonTwoStepRA) and/or RACH-ConfigDedicated and/or RACH-ConfigGeneric and/or RACH-ConfigGenericTwoStepRA is associated with another TRP.
- RACH-ConfigCommon random access common configuration information
- RACH-ConfigCommonTwoStepRA two-step random access common configuration information
- a set of random access resources can be configured for each TRP in the configuration information, so that each TRP has corresponding random access resources, which can effectively support the TA of each TRP and improve the random access efficiency and quality of the terminal equipment.
- the multiple TRPs include a first TRP and a second TRP
- the configuration information includes: a first random access resource of the first TRP and/or a second random access resource of the second TRP.
- the random access resources of the other TRP can be derived by inference.
- the first random access resource is a resource corresponding to a first physical cell identifier PCI
- the second random access resource is a resource corresponding to a second PCI
- the first PCI is the PCI of a serving cell
- the second PCI is the PCI of any one of one or more non-serving cells.
- random access resources can be configured for each second service cell, that is, non-service cell.
- the physical cell identifier Physical Cell Identifier, PCI
- PCI Physical Cell Identifier
- the association relationship between the SSB and PCI of the non-service cell can be configured through SSB-MTC-Additional PCI.
- PCI can be used to distinguish different cells or signals of different cells, that is, PCI can be associated with cells. Therefore, the present application can associate parameters with PCI so as to realize parameter-associated cells, that is, to distinguish different cells or signals of different cells by parameters.
- the random access resources of one TRP are resources corresponding to the PCI of the service cell, and the random access resources of the other TRP can be resources corresponding to the PCI of any non-service cell in the non-service cell.
- the random access resources of the two TRPs are the resources corresponding to the PCI of the service cell and the non-service cell, respectively, which can effectively support the TA of each TRP and improve the random access efficiency and quality of the terminal equipment.
- the second PCI is a PCI of a non-serving cell associated with an active transmission configuration indication TCI state for a physical downlink shared channel PDSCH
- the second random access resource is available.
- the second random access resource being available means that the terminal device can perform random access according to the random access resource configured for the second TRP.
- the TCI of the transmission service cell is usually configured for the terminal device, that is, the beam configuration of the service cell is performed for the terminal device.
- the multiple TRPs correspond to a set of random access resources.
- the multiple TRPs corresponding to a set of random access resources may be that some of the multiple TRPs correspond to the same set of random access resources, and the other TRPs correspond to another set of random access resources. Alternatively, each TRP in the multiple TRPs corresponds to the same set of random access resources.
- a set of random access resources corresponding to the multiple TRPs includes Preamble information associated with at least one TRP in a random access channel opportunity RO.
- the preamble is the actual content sent by the terminal device in the PRACH, and is composed of a cyclic prefix CP with a length of Tcp and a sequence Sequence with a length of Tseq.
- the preamble information included in a set of random access resources includes the number of preambles associated with each TRP in the same RO and/or the index of the preamble.
- the random resource configuration of each TRP is achieved by associating different preamble codes with different TRPs of the same RO, which can effectively support the TA of each TRP and improve the random access efficiency and quality of the terminal device.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access for the terminal device, and the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is X1, where X1 is an integer.
- the number of available (or associated) preambles for each SSB can be indicated by the high-level parameters CB-PreamblesPerSSB or ssb-perRACH-OccasionAndCB-PreamblesPerSSB or msgA-SSB-PerRACH-OccasionAndCB-PreamblesPerSSB or msgA-CB-PreamblesPerSSB-PerSharedRO, and the number of SSBs mapped to each RO can also be known according to the mapping relationship between RO and SSB.
- the X1 can be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the first type of random access, there are X1 preambles that are available for an SSB mapped by the RO.
- the random access type corresponding to the first type of random access may be the four-step random access mentioned above.
- the number X1 can be understood as the number of preamble codes associated with one RO for competitive access, or the number of preamble codes associated with one RO for non-competitive access.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preamble codes associated with each SSB, the first X1-L1 preamble codes are associated with the first TRP, and the last L1 preamble codes are associated with the second TRP, and L1 is an integer.
- each SSB described in this scheme refers to each SSB associated with each RO.
- the X1 and/or L1 and/or X1-L1 can be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the first type of random access, there are X1 preambles that are available preambles for an SSB mapped by the RO, and among the X1 preambles, L1 preambles are related to the first TRP, and X1-L1 preambles are related to the second TRP.
- (a) in Figure 2b shows the number of preambles associated with each TRP associated with an SSB when the mapping relationship between SSB and RO is the first type of mapping relationship. That is, at this time, among the X1 preambles, the first X1-L1 preambles are associated with the first TRP, and the last L1 preambles are associated with the second TRP. (b) in Figure 2b shows the number of preambles associated with each TRP associated with an SSB when the mapping relationship between SSB and RO is the second type of mapping relationship.
- the X1 preambles associated with an SSB are only a part of all the preambles associated with the RO.
- the first X1-L1 preambles are associated with the first TRP, and the last L1 preambles are associated with the second TRP.
- the X1 preambles associated with the nth SSB start from the preamble indexed (n-1)*X1.
- the X1 preambles of the first SSB start from the preamble indexed 0
- the X1 preambles of the second SSB start from the preamble indexed X1. Code starts.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preambles associated with each SSB, the number of preambles associated with the first TRP is K, and the number of preambles associated with the second TRP is inferred based on the number of preambles associated with the first TRP, and K is an integer.
- the K may be indicated by the preamble information included in a set of random access resources corresponding to the first TRP and the second TRP, that is, among the preambles available for an RO related to the first type of random access, there are X1 preambles that are available for an SSB mapped by the RO, and among the X1 preambles, K preambles are related to the first TRP.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preambles associated with each SSB, the first TRP is associated with X preambles, and the second TRP is associated with Y preambles, wherein X and/or Y are network configuration information or protocol predefined information, and X and Y are integers.
- the number of preambles corresponding to the first TRP and/or the second TRP can be obtained directly or indirectly in a manner predetermined by the protocol.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preamble codes associated with each SSB, the proportional factor of the first TRP is ⁇ , and the proportional factor of the second TRP is (1- ⁇ ), and the proportional factor is used to indicate the number of preamble codes associated with the first TRP and/or the number of preamble codes associated with the second TRP. That is, at this time, the number of preamble codes associated with the first TRP is X1* ⁇ , and the number of preamble codes associated with the second TRP is X1*(1- ⁇ ).
- the network can configure the proportional factor for the first TRP and/or the second TRP.
- the network only configures the proportional factor for the first TRP, then the number of preamble codes associated with the second TRP at this time is derived.
- the value of X1* ⁇ is not an integer, it is necessary to round the value, and the rounding method can be rounding up or rounding down or taking the integer part of the value.
- the network can configure the proportional factor for the first TRP and/or the second TRP.
- a set of random access resources corresponding to the multiple TRPs also includes a second type of random access configured for the terminal device, the first type of random access and the second type of random access respectively correspond to a set of physical random access channel PRACH configurations, and the preamble code information associated with at least one TRP in an RO is associated with the first type of random access and/or associated with the second type of random access.
- the random access type corresponding to the second type of random access can be the two-step random access mentioned above.
- the first type of random access and the second type of random access are configured at the same time, but the first type of random access process and the second type of random access process use separate physical random access channels (PRACH) configurations, then the number of preambles associated with each SSB associated with each RO related to the second type of random access is X2, and X2 is an integer.
- PRACH physical random access channels
- the at least one TRP includes a first TRP and a second TRP, and among the X2 preambles associated with each SSB, the first X2-L4 preambles are associated with the first TRP, and the last L4 preambles are associated with the second TRP, and L4 is an integer.
- the X2 and/or L4 and/or X2-L4 may be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the second type of random access, there are X2 preambles that are preambles available for an SSB mapped by the RO, and among the X2 preambles, L4 preambles are related to the first TRP, and X2-L4 preambles are related to the second TRP.
- the configuration method of the preamble associated with each SSB in the RO associated with the first type of random access and the RO associated with the second type of random access is the same, and the configuration method of the preamble associated with each SSB TRP is also the same. It should be noted that although the configuration method is the same, the number of configured preambles may be different.
- TRPs are associated with different preamble codes for the same RO to achieve each
- the random resource configuration of TRP can effectively support the TA of each TRP and improve the random access efficiency and quality of terminal devices.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access and a second type of random access for the terminal device, the first type of random access and the second type of random access share the same set of PRACH configurations, the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is Q, and the number of preamble codes associated with each SSB associated with each RO related to the second type of random access is P, and Q and P are integers.
- the random access type corresponding to the first type of random access may be the four-step random access mentioned above, and the second type of random access may be the two-step random access mentioned above.
- the first type of mapping relationship i.e., the case where N ⁇ 1 in the mapping relationship between SSB and RO mentioned above
- the number Q can be understood as the number of preamble codes associated with an RO for competitive access in a four-step random access process, or the number of preamble codes associated with an RO for non-competitive access in a four-step random access process.
- the number P can be understood as the number of preamble codes associated with an RO for competitive access in a two-step random access process, or the number of preamble codes associated with an RO for non-competitive access in a two-step random access process.
- the Q and/or P may be indicated by the preamble code information included in a set of random access resources corresponding to the first TPR and the second TRP.
- the number of preamble codes associated with the first type of random access for each SSB is Q, and the number of preamble codes associated with the second type of random access for each SSB is P
- the number of preamble codes associated with one RO for contention access of the second type of random access process, or the number of preamble codes associated with one RO for non-contention access of the second type of random access process is N*P.
- the at least one TRP includes a first TRP and a second TRP, and among the Q preamble codes, the first Q-L2 preamble codes are associated with the first TRP, and the last L2 preamble codes are associated with the second TRP, and L2 is an integer.
- the Q and/or L2 and/or Q-L2 can be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the first type of random access, there are Q preambles that are available preambles for an SSB mapped by the RO, and among the Q preambles, L2 preambles are related to the first TRP, and Q-L2 preambles are related to the second TRP.
- FIG. 2c shows the number of preambles associated with each TRP among the Q preambles related to the first type of random access when the mapping relationship between SSB and RO is the first type of mapping relationship, and an SSB associated with an RO is associated with the Q preambles. That is, at this time, among the Q preambles, the first Q-L2 preambles are associated with the first TRP, and the last L2 preambles are associated with the second TRP.
- the Q preambles associated with the nth SSB among the N SSBs are indexed from For example, the Q preambles of the first SSB start with the preamble with index 0, and the Q preambles of the second SSB start with the preamble with index 1. It should be noted that if If the value of is not an integer, you need to The value is rounded, which can be rounded up or down or the The integer part of the value, etc. It can be indicated by the higher layer parameter totalNumberOfRA-Preambles or msgA-TotalNumberOfRA-Preambles.
- the at least one TRP includes a first TRP and a second TRP, and among the Q preambles, the number of preambles associated with the first TRP is K, and the number of preambles associated with the second TRP is inferred based on the number of preambles associated with the first TRP, and K is an integer.
- the network may configure preamble information for only one of the two TRPs, and the preamble information of the other TRP is obtained by deduction.
- the K may be indicated by the preamble information included in a set of random access resources corresponding to the first TRP and the second TRP, that is, among the preambles available for an RO related to the first type of random access, there are Q preambles that are available preambles for an SSB mapped by the RO, and among the Q preambles, K preambles are related to the first TRP.
- the at least one TRP includes a first TRP and a second TRP, among the Q preambles, the first TRP is associated with X preambles, the second TRP is associated with Y preambles, the X and/or the Y are network configuration information or protocol predefined information, and the X and Y are integers.
- the number of preambles corresponding to the first TRP and/or the second TRP can be obtained directly or indirectly in a manner predetermined by the protocol.
- the at least one TRP includes a first TRP and a second TRP, and among the Q preambles, the proportional factor of the first TRP is ⁇ , and the proportional factor of the second TRP is (1- ⁇ ), and the proportional factor is used to indicate the number of preambles associated with the first TRP and/or the number of preambles associated with the second TRP. That is, at this time, the number of preambles associated with the first TRP is Q* ⁇ , and the number of preambles associated with the second TRP is Q*(1- ⁇ ).
- the network can configure the proportional factor for the first TRP and/or the second TRP.
- the network only configures the proportional factor for the first TRP, then the number of preambles associated with the second TRP at this time is derived.
- the value of Q* ⁇ is not an integer, it is necessary to round the value, and the rounding method can be rounding up or rounding down or taking the integer part of the value.
- the network can also configure the proportional factor for the first TRP and/or the second TRP.
- the at least one TRP includes a first TRP and a second TRP, and among the P preamble codes, the first P-L3 preamble codes are associated with the first TRP, and the last L3 preamble codes are associated with the second TRP, and L3 is an integer.
- the P and/or L3 and/or P-L3 can be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the second type of random access, there are P preambles available for an SSB mapped by the RO, and among the P preambles, L3 preambles are related to the first TRP, and P-L3 preambles are related to the second TRP.
- FIG. 2d shows the number of preambles associated with each TRP among the P preambles related to the second type of random access when the mapping relationship between SSB and RO is the first type of mapping relationship, and an SSB associated with an RO is associated with the P preambles. That is, at this time, among the P preambles, the first P-L3 preambles are associated with the first TRP, and the last L3 preambles are associated with the second TRP.
- FIG. 2d shows the number of preambles associated with each TRP among the P preambles related to the second type of random access for any one of the multiple SSBs associated with an RO when the mapping relationship between the SSB and the RO is the second type of mapping relationship.
- the P preambles associated with an SSB are only a part of all the preambles associated with the RO, in which the first P-L3 preambles are associated with the first TRP, and the last L3 preambles are associated with the second TRP.
- the at least one TRP includes a first TRP and a second TRP.
- the number of preambles associated with the first TRP is K
- the number of preambles associated with the second TRP is K according to the number of preambles associated with the first TRP.
- the number of preambles associated with the first TRP is inferred, and K is an integer.
- the network can configure preamble information for only one of the two TRPs, and the preamble information of the other TRP is obtained by deduction.
- the K is indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP, that is, among the preambles available for an RO related to the second type of random access, there are P preambles that are available for an SSB mapped by the RO, and among the P preambles, K preambles are related to the first TRP.
- the at least one TRP includes a first TRP and a second TRP, among the P preambles, the first TRP is associated with X preambles, the second TRP is associated with Y preambles, the X and/or the Y are network configuration information or protocol predefined information, and the X and Y are integers.
- the number of preambles corresponding to the first TRP and/or the second TRP can be obtained directly or indirectly in a manner predetermined by the protocol.
- the at least one TRP includes a first TRP and a second TRP, and among the P preambles, the proportional factor of the first TRP is ⁇ , and the proportional factor of the second TRP is (1- ⁇ ), and the proportional factor is used to indicate the number of preambles associated with the first TRP and/or the number of preambles associated with the second TRP. That is, at this time, the number of preambles associated with the first TRP is P* ⁇ , and the number of preambles associated with the second TRP is P*(1- ⁇ ).
- the network can configure the proportional factor for the first TRP and/or the second TRP.
- the network only configures the proportional factor for the first TRP, then the number of preambles associated with the second TRP at this time is derived.
- the value of P* ⁇ is not an integer, it is necessary to round the value, and the rounding method can be rounding up or rounding down or taking the integer part of the value.
- the network can also configure the proportional factor for the first TRP and/or the second TRP.
- a set of random access resources corresponding to the multiple TRPs includes information of a RO associated with at least one TRP among the multiple TRPs.
- TRPs When multiple TRPs share the same random access resources, different TRPs may be associated with different ROs.
- the at least one TRP includes a first TRP and a second TRP, the first TRP is associated with T ROs, the second TRP is associated with M-T ROs, M is the number of ROs mapped to an SSB, and T is an integer.
- the M and/or M-T can be indicated by the preamble information included in a set of random access resources corresponding to the first TPR and the second TRP. That is, among the preambles available for an RO, there are M preambles that are available for an SSB mapped by the RO, and among the M preambles, T preambles are related to the first TRP, and M-T preambles are related to the second TRP.
- the at least one TRP includes a first TRP and a second TRP
- the first TRP is associated with T ROs
- the number of ROs associated with the second TRP is inferred based on the number of ROs associated with the first TRP.
- the network may configure RO information for only one of the two TRPs, and the information of the RO of the other TRP is obtained by deduction.
- the at least one TRP includes a first TRP and a second TRP, and among the M preambles, the number of ROs associated with the first TRP is F, the number of ROs associated with the second TRP is J, and the F and/or J are network configuration information or protocol predefined information, and F and J are integers.
- the number of ROs associated with the first TRP and/or the second TRP can be obtained directly or indirectly in a manner predetermined by the protocol.
- the at least one TRP includes a first TRP and a second TRP, and among the M preambles, the proportional factor of the first TRP is ⁇ , and the proportional factor of the second TRP is (1- ⁇ ), and the proportional factor is used to indicate the number of ROs associated with the first TRP and/or the number of ROs associated with the second TRP. That is, at this time, the number of ROs associated with the first TRP is M* ⁇ , and the number of preambles associated with the second TRP is M*(1- ⁇ ).
- the network can configure the proportional factor for the first TRP and/or the second TRP.
- the network only configures the proportional factor for the first TRP, then the number of preambles associated with the second TRP at this time is derived.
- the value of M* ⁇ is not an integer, it is necessary to round the value, and the rounding method can be rounding up or rounding down or taking the integer part of the value.
- the network can also configure the proportional factor for the first TRP and/or the second TRP.
- the indexes of the T ROs in the M ROs are continuous, or the indexes of the T ROs in the M ROs are discontinuous.
- the M ROs are divided into two parts according to the index, one part is associated with the first TRP, and the other part is associated with the second TRP.
- the M ROs can be associated with the first TRP and the second TRP in an alternating manner.
- the alternating method can be alternating with one RO, that is, the index of each RO in the M ROs is not continuous, or it can be alternating with multiple ROs, that is, the indexes of some ROs in the M ROs are continuous.
- the embodiment of the present application provides a resource configuration device, which can be used to execute the steps executed by the terminal device in the above method.
- the resource configuration device may include units corresponding to the corresponding steps.
- the embodiment of the present application can divide the functional modules of the resource configuration device according to the above method.
- each functional module can be divided according to each function, or two or more functions can be integrated into one processing module.
- the above integrated module can be implemented in the form of hardware or in the form of software functional modules.
- the division of modules in the embodiment of the present application is schematic and is only a logical function division. There may be other division methods in actual implementation.
- Figure 3 is a functional unit composition block diagram of a resource configuration device provided in an embodiment of the present application.
- the resource configuration device 3 includes: an acquisition unit 301, used to acquire configuration information, the configuration information is used to indicate the random access resource of at least one TRP among multiple transmission reception points TRP; a random access unit 302, used to perform random access according to the configuration information.
- each of the multiple TRPs corresponds to a set of random access resources.
- the multiple TRPs include a first TRP and a second TRP
- the configuration information includes: a first random access resource of the first TRP and/or a second random access resource of the second TRP.
- the first random access resource is a resource corresponding to a first physical cell identifier PCI
- the second random access resource is a resource corresponding to a second PCI
- the first PCI is the PCI of a serving cell
- the second PCI is the PCI of any one of one or more non-serving cells.
- the second PCI is a PCI of a non-serving cell associated with an active transmission configuration indication TCI state for a physical downlink shared channel PDSCH
- the second random access resource is available.
- the multiple TRPs correspond to a set of random access resources.
- a set of random access resources corresponding to the multiple TRPs includes preamble code information associated with at least one TRP among the multiple TRPs in a random access channel opportunity RO.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access for the terminal device, and the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is X1, where X1 is an integer.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preamble codes associated with each SSB, the first X1-L1 preamble codes are associated with the first TRP, and the last L1 preamble codes are associated with the second TRP, and L1 is an integer.
- a set of random access resources corresponding to the multiple TRPs also includes a second type of random access configured for the terminal device, the first type of random access and the second type of random access respectively correspond to a set of physical random access channel PRACH configurations, and the preamble code information associated with at least one TRP in an RO is associated with the first type of random access and/or associated with the second type of random access.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access and a second type of random access for the terminal device, the first type of random access and the second type of random access share the same set of PRACH configurations, the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is Q, and the number of preamble codes associated with each SSB associated with each RO related to the second type of random access is P, and Q and P are integers.
- the at least one TRP includes a first TRP and a second TRP, and among the Q preamble codes, the first Q-L2 preamble codes are associated with the first TRP, and the last L2 preamble codes are associated with the second TRP, and L2 is an integer.
- the at least one TRP includes a first TRP and a second TRP, and among the P preamble codes, the first P-L3 preamble codes are associated with the first TRP, and the last L3 preamble codes are associated with the second TRP, and L3 is an integer.
- a set of random access resources corresponding to the multiple TRPs includes information of a RO associated with at least one TRP among the multiple TRPs.
- the at least one TRP includes a first TRP and a second TRP, the first TRP is associated with T ROs, the second TRP is associated with M-T ROs, M is the number of ROs mapped to an SSB, and T is an integer.
- the indexes of the T ROs in the M ROs are continuous, or the indexes of the T ROs in the M ROs are discontinuous.
- the resource configuration device provided in the embodiment of the present application includes but is not limited to the above units, for example: the resource configuration device may also include a storage unit.
- the storage unit can be used to store the program code and data of the resource configuration device.
- the resource configuration device 4 includes: a processing module 40 and a communication module 41.
- the processing module 40 is used to control and manage the actions of the resource configuration device, for example, the steps performed by the acquisition unit 301 and the random access unit 302, and/or other processes for performing the technology described herein.
- the communication module 41 is used to support the interaction between the resource configuration device and other devices.
- the resource configuration device may also include a storage module 42, which is used to store resource The program code and data of the configuration device, for example, store the contents stored in the above-mentioned storage unit.
- the processing module 40 can be a processor or a controller, for example, it can be a central processing unit (CPU), a general processor, a digital signal processor (DSP), an ASIC, an FPGA or other programmable logic device, a transistor logic device, a hardware component or any combination thereof. It can implement or execute various exemplary logic boxes, modules and circuits described in conjunction with the disclosure of this application.
- the processor can also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of DSP and microprocessor, etc.
- the communication module 41 can be a transceiver, an RF circuit or a communication interface, etc.
- the storage module 42 can be a memory.
- the above resource configuration device 3 and resource configuration device 4 can both execute the steps executed by the terminal device in the resource configuration method shown in Figure 2a.
- the embodiment of the present application provides a resource configuration device, which can be used to execute the steps executed by the network device in the above method.
- the resource configuration device can include units corresponding to the corresponding steps.
- the embodiment of the present application can divide the functional modules of the resource configuration device according to the above method.
- each functional module can be divided according to each function, or two or more functions can be integrated into one processing module.
- the above integrated module can be implemented in the form of hardware or in the form of software functional modules.
- the division of modules in the embodiment of the present application is schematic and is only a logical function division. There may be other division methods in actual implementation.
- Figure 5 is a functional unit composition block diagram of another resource configuration device provided by an embodiment of the present application.
- the resource configuration device 5 includes: a sending unit 501, which is used to send configuration information, and the configuration information is used to indicate the random access resource of at least one TRP among multiple transmission reception points TRP.
- each of the multiple TRPs corresponds to a set of random access resources.
- the multiple TRPs include a first TRP and a second TRP
- the configuration information includes: a first random access resource for the first TRP and a second random access resource for the second TRP.
- the first random access resource is a resource corresponding to a first physical cell identifier PCI
- the second random access resource is a resource corresponding to a second PCI
- the first PCI is the PCI of a serving cell
- the second PCI is the PCI of any one of a plurality of non-serving cells.
- the second PCI is a PCI of a non-serving cell associated with an active transmission configuration indication TCI state for a physical downlink shared channel PDSCH
- the second random access resource is available.
- the multiple TRPs correspond to a set of random access resources.
- a set of random access resources corresponding to the multiple TRPs includes preamble code information associated with at least one TRP among the multiple TRPs in a random access channel opportunity RO.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access for the terminal device, and the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is X1, where X1 is an integer.
- the at least one TRP includes a first TRP and a second TRP, and among the X1 preamble codes associated with each SSB, the first X1-L1 preamble codes are associated with the first TRP, and the last L1 preamble codes are associated with the second TRP, and L1 is an integer.
- the set of random access resources corresponding to the multiple TRPs also includes a random access resource for the terminal device.
- a second type of random access is configured, wherein the first type of random access and the second type of random access respectively correspond to a set of physical random access channel PRACH configurations, and the preamble code information associated with at least one TRP in an RO is associated with the first type of random access and/or associated with the second type of random access.
- a set of random access resources corresponding to the multiple TRPs includes configuring a first type of random access and a second type of random access for the terminal device, the first type of random access and the second type of random access share the same set of PRACH configurations, the number of preamble codes associated with each SSB associated with each RO related to the first type of random access is Q, and the number of preamble codes associated with each SSB associated with each RO related to the second type of random access is P, and Q and P are integers.
- the at least one TRP includes a first TRP and a second TRP, and among the Q preamble codes, the first Q-L2 preamble codes are associated with the first TRP, and the last L2 preamble codes are associated with the second TRP, and L2 is an integer.
- the at least one TRP includes a first TRP and a second TRP, and among the P preamble codes, the first P-L3 preamble codes are associated with the first TRP, and the last L3 preamble codes are associated with the second TRP, and L3 is an integer.
- a set of random access resources corresponding to the multiple TRPs includes information of a RO associated with at least one TRP among the multiple TRPs.
- the at least one TRP includes a first TRP and a second TRP, the first TRP is associated with T ROs, the second TRP is associated with M-T ROs, M is the number of ROs mapped to an SSB, and T is an integer.
- the indexes of the T ROs in the M ROs are continuous, or the indexes of the T ROs in the M ROs are discontinuous.
- the resource configuration device provided in the embodiment of the present application includes but is not limited to the above units, for example: the resource configuration device may also include a storage unit.
- the storage unit can be used to store the program code and data of the resource configuration device.
- the resource configuration device 6 includes: a processing module 60 and a communication module 61.
- the processing module 60 is used to control and manage the actions of the resource configuration device, for example, the steps performed by the sending unit 501, and/or other processes for executing the technology described herein.
- the communication module 61 is used to support the interaction between the resource configuration device and other devices.
- the resource configuration device may also include a storage module 62, which is used to store program codes and data of the resource configuration device, such as storing the content stored in the above-mentioned storage unit.
- the processing module 60 can be a processor or a controller, for example, it can be a central processing unit (CPU), a general processor, a digital signal processor (DSP), an ASIC, an FPGA or other programmable logic device, a transistor logic device, a hardware component or any combination thereof. It can implement or execute various exemplary logic boxes, modules and circuits described in conjunction with the disclosure of this application.
- the processor can also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of DSP and microprocessors, and the like.
- the communication module 61 can be a transceiver, an RF circuit or a communication interface, and the like.
- the storage module 62 can be a memory.
- the above resource configuration device 5 and the resource configuration device 6 can both execute the resource configuration shown in FIG. 2a. The steps performed by a network device in a configuration method.
- An embodiment of the present application also provides a chip, wherein the chip includes a processor for calling and running a computer program from a memory, so that a device equipped with the chip executes some or all of the steps described by the terminal device in the above method embodiment.
- An embodiment of the present application also provides a chip module, including a transceiver component and a chip, wherein the chip includes a processor for calling and running a computer program from a memory, so that a device equipped with the chip executes some or all of the steps described by the terminal device in the above method embodiment.
- An embodiment of the present application also provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program for electronic data exchange, wherein the computer program enables a computer to execute part or all of the steps described by the network-side device in the above method embodiment.
- the present application also provides a computer program product, wherein the computer program product includes a computer program, and the computer program is operable to cause a computer to execute some or all of the steps described by the terminal device in the above method embodiment.
- the computer program product can be a software installation package.
- the steps of the method or algorithm described in the embodiment of the present application can be implemented in hardware or by executing software instructions by a processor.
- the software instructions can be composed of corresponding software modules, and the software modules can be stored in random access memory (Random Access Memory, RAM), flash memory, read-only memory (Read Only Memory, ROM), erasable programmable read-only memory (Erasable Programmable ROM, EPROM), electrically erasable programmable read-only memory (Electrically EPROM, EEPROM), registers, hard disks, mobile hard disks, read-only compact disks (CD-ROMs) or any other form of storage medium known in the art.
- An exemplary storage medium is coupled to a processor so that the processor can read information from the storage medium and write information to the storage medium.
- the storage medium can also be a component of the processor.
- the processor and the storage medium can be located in an ASIC.
- the ASIC can be located in an access network device, a target network device, or a core network device.
- the processor and the storage medium can also exist as discrete components in an access network device, a target network device, or a core network device.
- the functions described in the embodiments of the present application can be implemented in whole or in part by software, hardware, firmware or any combination thereof.
- software When implemented using software, it can be implemented in whole or in part in the form of a computer program product.
- the computer program product includes one or more computer instructions.
- the computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device.
- the computer instructions may be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium.
- the computer instructions may be transmitted from one website, computer, server or data center to another website, computer, server or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means.
- the computer-readable storage medium may be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more available media integrated.
- the available medium may be a magnetic medium (e.g., a floppy disk, a hard disk, a magnetic tape), an optical medium (e.g., a digital video disc (DVD)), or a semiconductor medium (e.g., a solid state drive (SSD)), etc.
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Abstract
Description
Claims (26)
- 一种资源配置方法,其特征在于,所述方法包括:获取配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源;根据所述配置信息进行随机接入。
- 根据权利要求1所述的方法,其特征在于,所述多个TRP中每个TRP分别对应一套随机接入资源。
- 根据权利要求2所述的方法,其特征在于,所述多个TRP中包括第一TRP和第二TRP,所述配置信息包括:所述第一TRP的第一随机接入资源和/或所述第二TRP的第二随机接入资源。
- 根据权利要求3所述的方法,其特征在于,所述第一随机接入资源为相应于第一物理小区标识PCI的资源,所述第二随机接入资源为相应于第二PCI的资源,所述第一PCI为服务小区的PCI,所述第二PCI为1个或多个非服务小区中的任意一个非服务小区的PCI。
- 根据权利要求4所述的方法,其特征在于,当所述第二PCI为用于物理下行共享信道PDSCH的活跃的传输配置指示TCI状态所关联的非服务小区的PCI,所述第二随机接入资源可用。
- 根据权利要求1所述的方法,其特征在于,所述多个TRP对应一套随机接入资源。
- 根据权利要求6所述的方法,其特征在于,所述多个TRP对应的一套随机接入资源中包括所述多个TRP中至少一个TRP在一个随机接入信道机会RO中关联的前导码信息。
- 根据权利要求6所述的方法,其特征在于,所述多个TRP对应的一套随机接入资源中包括为所述终端设备配置第一类随机接入,与所述第一类随机接入有关的每个RO关联的每个SSB关联的前导码的数量为X1个,所述X1为整数。
- 根据权利要求8所述的方法,其特征在于,所述至少一个TRP包括第一TRP和第二TRP,所述每个SSB关联的X1个前导码中,前X1-L1个前导码与所述第一TRP关联,后L1个前导码与所述第二TRP关联,所述L1为整数。
- 根据权利要求8或9所述的方法,其特征在于,所述多个TRP对应的一套随机接入资源中还包括为所述终端设备配置第二类随机接入,所述第一类随机接入与所述第二类随机接入分别对应一套物理随机接入信道PRACH配置,所述至少一个TRP在一个RO中关联的前导码信息与所述第一类随机接入关联和/或与所述第二类随机接入关联。
- 根据权利要求7所述的方法,其特征在于,所述多个TRP对应的一套随机接入资源中包括为所述终端设备配置第一类随机接入和第二类随机接入,所述第一类随机接入与所述第二类随机接入共享同一套PRACH配置,与所述第一类随机接入有关的每个RO关联的每个SSB关联的前导码的数量为Q个,与所述第二类随机接入有关的每个RO关联的每个SSB关联的前导码的数量为P个,所述Q和所述P为整数。
- 根据权利要求11所述的方法,其特征在于,所述至少一个TRP中包括第一TRP和第二TRP,所述Q个前导码中,前Q-L2个前导码与所述第一TRP关联,后L2个前导码与所述第二TRP关联,所述L2为整数。
- 根据权利要求11或12所述的方法,其特征在于,所述至少一个TRP中包括第一TRP和第二TRP,所述P个前导码中,前P-L3个前导码与所述第一TRP关联,后L3个前导码与所述第二TRP关联,所述L3为整数。
- 根据权利要求6所述的方法,其特征在于,所述多个TRP对应的一套随机接入资源中包括所述多个TRP中至少一个TRP关联的RO的信息。
- 根据权利要求14所述的方法,其特征在于,所述至少一个TRP中包括第一TRP和第二TRP,所述第一TRP关联T个RO,所述第二TRP关联M-T个RO,所述M为一个SSB映射的RO的数量,所述T为整数。
- 根据权利要求15所述的方法,其特征在于,所述T个RO在所述M个RO中的索引连续,或者所述T个RO在所述M个RO中的索引不连续。
- 一种资源配置方法,其特征在于,所述方法包括:发送配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源。
- 一种资源配置装置,其特征在于,所述装置包括:获取单元,用于获取配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源;随机接入单元,用于根据所述配置信息进行随机接入。
- 一种资源配置装置,其特征在于,所述装置包括:发送单元,用于发送配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源。
- 一种终端设备,其特征在于,包括处理器、存储器,以及一个或多个程序,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行如权利要求1-16任一项所述的方法中的步骤的指令。
- 一种网络设备,其特征在于,包括处理器、存储器,以及一个或多个程序,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行如权利要求17所述的方法中的步骤的指令。
- 一种计算机可读存储介质,其特征在于,存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如权利要求1-16任一项或权利要求17所述的方法。
- 一种芯片,其特征在于,所述芯片,用于获取配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源;以及用于根据所述配置信息进行随机接入。
- 一种芯片模组,其特征在于,包括收发组件和芯片,所述芯片,用于获取配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源;以及用于根据所述配置信息进行随机接入。
- 一种芯片,其特征在于,所述芯片,用于发送配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源。
- 一种芯片模组,其特征在于,包括收发组件和芯片,所述芯片,用于发送配置信息,所述配置信息用于指示多个传输接收点TRP中至少一个TRP的随机接入资源。
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| CN107734632A (zh) * | 2016-08-12 | 2018-02-23 | 电信科学技术研究院 | 一种随机接入的方法、网络侧设备及终端 |
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| CN114830554A (zh) * | 2019-12-20 | 2022-07-29 | 高通股份有限公司 | 基于波束扫描的随机接入Msg 1和Msg 2 |
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| CN107734632A (zh) * | 2016-08-12 | 2018-02-23 | 电信科学技术研究院 | 一种随机接入的方法、网络侧设备及终端 |
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| EP4598097A1 (en) | 2025-08-06 |
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