Lateral transmission method and terminal equipment

CN119999154APending Publication Date: 2025-05-13GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP LTD
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Patent Information

Application Number
CN202280100242.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2022-11-03
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

After the time slot structure with multiple candidate transmission start symbols is introduced, it is difficult for the receiving end to determine which symbol the transmitting end will start from for sidelink transmission, causing automatic gain control (AGC) to have an impact on signal reception performance.

Method used

Avoid mapping the second candidate transmission start symbol to the signal/channel corresponding to the transmission based on the first candidate transmission start symbol, thereby reducing the impact of the receiving end on the signal/channel reception performance when the second candidate transmission start symbol performs AGC. .

Benefits of technology

By avoiding the mapping of the second candidate transmission start symbol to the signal/channel, the channel estimation performance and the overall performance of the communication system are improved, and correct reception of the signal is ensured.

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Abstract

The invention provides a sideline transmission method and terminal equipment. The method comprises the following steps: a first terminal device performs sideline transmission in a first time slot; wherein the first time slot at least comprises a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located behind the time domain position of the first candidate transmission start symbol; wherein the second candidate transmission start symbol is not used for mapping the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol.
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Description

Side transmission method and terminal equipment Technical Field

[0001] The present application relates to the field of communication technology, and more specifically, to a sideline transmission method and terminal equipment. Background Art

[0002] In some communication systems, to improve the success rate of terminal devices accessing unlicensed spectrum, a time slot structure containing multiple candidate transmission start symbols is introduced. However, the impact of multiple candidate transmission start symbols on the sidelink transmission process has not yet been studied.

[0003] Summary of the Invention

[0004] The present application provides a side transmission method and terminal device. The following introduces various aspects involved in the present application.

[0005] In a first aspect, a side transmission method is provided, comprising: a first terminal device performs side transmission in a first time slot; wherein, the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein, the second candidate transmission start symbol is not used to map a first signal / channel corresponding to the transmission based on the first candidate transmission start symbol.

[0006] According to a second aspect, a side transmission method is provided, comprising: a first terminal device performs side transmission in a first time slot; wherein, the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein, the first candidate transmission start symbol corresponds to a first demodulation reference signal (DM-RS) pattern, the second candidate transmission start symbol corresponds to a second DM-RS pattern, and the second DM-RS pattern is determined based on one or more of the following: resource pool configuration information; and the first DM-RS pattern.

[0007] According to a third aspect, a sidelink transmission method is provided, comprising: a first terminal device determines a transmission block size corresponding to a physical sidelink shared channel (PSSCH) in a first time slot according to one or more of the following parameters: a first parameter representing the number of sidelink symbols; a second parameter representing the number of resource units RE; and a third parameter representing the number of physical resource blocks (PRB); wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol having different time domain positions.

[0008] In a fourth aspect, a terminal device is provided, which is a first terminal device, and the first terminal device includes: a communication module for performing side transmission in a first time slot; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein the second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol.

[0009] In a fifth aspect, a terminal device is provided, which is a first terminal device, and the first terminal device includes: a communication module for performing side transmission in a first time slot; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein the first candidate transmission start symbol corresponds to a first DM-RS pattern, the second candidate transmission start symbol corresponds to a second DM-RS pattern, and the second DM-RS pattern is determined based on one or more of the following: resource pool configuration information; and the first DM-RS pattern.

[0010] In the sixth aspect, a terminal device is provided, which is a first terminal device, and the first terminal device includes: a determination module, used to determine the transmission block size corresponding to the PSSCH in the first time slot based on one or more of the following parameters: a first parameter, indicating the number of side symbols; a second parameter, indicating the number of resource elements (RE); and a third parameter, indicating the number of PRBs; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol with different time domain positions.

[0011] In the seventh aspect, a terminal device is provided, comprising a transceiver, a memory and a processor, wherein the memory is used to store programs, and the processor is used to call the programs in the memory and control the transceiver to receive or send signals so that the terminal executes the method as described in any one of the first to third aspects.

[0012] In an eighth aspect, a device is provided, comprising a processor for calling a program from a memory so that the device executes a method as described in any one of the first to third aspects.

[0013] In a ninth aspect, a chip is provided, comprising a processor for calling a program from a memory so that a device equipped with the chip executes a method as described in any one of the first to third aspects.

[0014] In a tenth aspect, a computer-readable storage medium is provided, on which a program is stored, wherein the program enables a computer to execute the method as described in any one of the first to third aspects.

[0015] In an eleventh aspect, a computer program product is provided, comprising a program, wherein the program enables a computer to execute the method according to any one of the first to third aspects.

[0016] In a twelfth aspect, a computer program is provided, which enables a computer to execute the method as described in any one of the first to third aspects.

[0017] After introducing a time slot structure containing multiple candidate transmission start symbols, the receiving end cannot know from which symbol the first terminal device as the transmitting end will start side transmission, so it may use the newly introduced candidate transmission start symbol (such as the second candidate transmission symbol mentioned above) to perform automatic gain control (AGC). Taking this into account, an embodiment of the present application proposes to avoid mapping the second candidate transmission symbol to the first signal / channel corresponding to the transmission based on the first candidate transmission symbol, thereby reducing the impact of the receiving end performing AGC on the reception performance of the first signal / channel on the second candidate transmission start symbol. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] FIG1 is a diagram illustrating an example of a system architecture of a wireless communication system to which an embodiment of the present application may be applied.

[0019] FIG2 is an example diagram of a side communication scenario within network coverage.

[0020] FIG3 is an example diagram of a side communication scenario with partial network coverage.

[0021] FIG4 is an example diagram of a side communication scenario outside network coverage.

[0022] FIG5 is a diagram showing an example of a side communication scenario based on a central control node.

[0023] FIG6 is an example diagram of a sideline communication method based on broadcasting.

[0024] FIG7 is an example diagram of a unicast-based sideline communication method.

[0025] FIG8 is an example diagram of a side communication method based on multicast.

[0026] FIG. 9A is a diagram illustrating an example of a time slot structure used by a sideline communication system.

[0027] FIG. 9B is another diagram illustrating an example of a time slot structure used by the sideline communication system.

[0028] FIG10 is a diagram illustrating an example of the time domain relationship between the PSSCH DM-RS and the second-order sidelink control information (SCI).

[0029] FIG11 is a comparison diagram of the time slot structures corresponding to multiple transmissions of the PSSCH.

[0030] FIG12 is a diagram showing an example of a mapping method for PSCCH DM-RS.

[0031] FIG13 is a diagram showing an example of a time domain mapping method for PSSCH DM-RS.

[0032] FIG14 is a diagram showing an example of frequency domain mapping of PSSCH DM-RS.

[0033] FIG15 is a diagram illustrating an example of mapping of a channel state information reference signal (CSI-RS) in a sidelink.

[0034] FIG16 is an example diagram of the listen before talk (LBT) process.

[0035] FIG17 is an example diagram of a comb tooth structure.

[0036] FIG18 is an example diagram of the LBT subband structure.

[0037] FIG19 is a diagram illustrating an example of the relationship between a resource block set and a bandwidth part (BWP) in the sidelink system in the frequency domain.

[0038] FIG20 is a diagram showing an example of a time slot structure supporting multiple transmission start symbols.

[0039] FIG21 is a flow chart of a side transmission method provided in accordance with an embodiment of the present application.

[0040] FIG22 is an example diagram of a scenario in which the time domain position of a DM-RS symbol coincides with the time domain position of a candidate transmission start symbol.

[0041] Figure 23 is an example diagram of the DM-RS symbol mapping method provided in an embodiment of the present application.

[0042] FIG24 is an example diagram of a second-order SCI mapping method provided in an embodiment of the present application.

[0043] Figure 25 is an example diagram of the PSSCH mapping method provided in an embodiment of the present application.

[0044] Figure 26 is an example diagram of DM-RS patterns corresponding to two candidate transmission start symbols provided in an embodiment of the present application.

[0045] Figure 27 is another example diagram of the DM-RS patterns corresponding to two candidate transmission start symbols provided in an embodiment of the present application.

[0046] FIG28 is a flow chart of a side transmission method provided in another embodiment of the present application.

[0047] Figure 29 is a structural diagram of a terminal device provided by an embodiment of the present application.

[0048] Figure 30 is a structural diagram of a terminal device provided in another embodiment of the present application.

[0049] FIG31 is a schematic structural diagram of a terminal device provided in another embodiment of the present application.

[0050] Figure 32 is a schematic diagram of the structure of the device provided in an embodiment of the present application. DETAILED DESCRIPTION

[0051] Communication system architecture

[0052] FIG1 is a diagram illustrating an exemplary system architecture of a wireless communication system 100 to which embodiments of the present application may be applied. The wireless communication system 100 may include a network device 110 and a terminal device 120. The network device 110 may be a device that communicates with the terminal device 120. The network device 110 may provide communication coverage for a specific geographic area and may communicate with the terminal device 120 within the coverage area.

[0053] FIG1 exemplarily shows a network device and a terminal device. Optionally, the wireless communication system 100 may include one or more network devices 110 and / or one or more terminal devices 120. For a network device 110, the one or more terminal devices 120 may all be located within the network coverage of the network device 110, or all be located outside the network coverage of the network device 110, or some may be located within the coverage of the network device 110 and others outside the network coverage of the network device 110. This is not limited in the embodiments of the present application.

[0054] Optionally, the wireless communication system 100 may further include other network entities such as a network controller and a mobility management entity, which is not limited in the embodiment of the present application.

[0055] It should be understood that the technical solutions of the embodiments of the present application can be applied to various communication systems, such as: fifth generation (5G) system or new radio (NR), long term evolution (LTE) system, LTE frequency division duplex (FDD) system, LTE time division duplex (TDD), etc. The technical solutions provided in this application can also be applied to future communication systems, such as the sixth generation mobile communication system, satellite communication system, etc.

[0056] The terminal device in the embodiment of the present application may also be referred to as user equipment (UE), access terminal, user unit, user station, mobile station, mobile station (MS), mobile terminal (MT), remote station, remote terminal device, mobile device, user terminal, wireless communication device, user agent or user device. The terminal device in the embodiment of the present application may be a device that provides voice and / or data connectivity to a user, and can be used to connect people, objects and machines, such as a handheld device with wireless connection function, a vehicle-mounted device, etc. The terminal device in the embodiment of the present application may be a mobile phone, a tablet computer (Pad), a laptop computer, a PDA, a mobile internet device (MID), a wearable device, a vehicle, a wireless terminal in industrial control, a wireless terminal in self-driving, a wireless terminal in remote medical surgery, a wireless terminal in smart grid, a wireless terminal in transportation safety, a wireless terminal in smart city, a wireless terminal in smart home, etc. For example, a terminal device can act as a dispatching entity, providing sidelink signals between terminal devices in vehicle-to-everything (V2X) or device-to-device (D2D) communications. For example, a cell phone and a car can communicate with each other using sidelink signals. A cell phone and a smart home device can also communicate without relaying the communication signal through a base station. Alternatively, the terminal device can be used to act as a base station.

[0057] The network device in the embodiments of the present application may be a device for communicating with a terminal device, and may also be referred to as an access network device or a radio access network device. For example, the network device may be a base station. The network device in the embodiments of the present application may refer to a radio access network (RAN) node (or device) that connects a terminal device to a wireless network. A base station may broadly cover various names as follows, or be replaced with the following names, such as: NodeB, evolved NodeB (eNB), next generation NodeB (gNB), relay station, access point, transmitting and receiving point (TRP), transmitting point (TP), master station MeNB, secondary station SeNB, multi-standard radio (MSR) node, home base station, network controller, access node, wireless node, access point (AP), transmission node, transceiver node, baseband unit (BBU), remote radio unit (RRU), active antenna unit (AAU), remote radio head (RRH), central unit (CU), distributed unit (DU), positioning node, etc. A base station may be a macro base station, a micro base station, a relay node, a donor node, or the like, or a combination thereof. A base station may also refer to a communication module, modem, or chip used to be set in the aforementioned device or apparatus. A base station may also be a mobile switching center and a device that performs base station functions in device-to-device D2D, V2X, or machine-to-machine (M2M) communications, a network-side device in a 6G network, or a device that performs base station functions in future communication systems. A base station may support networks with the same or different access technologies. The embodiments of this application do not limit the specific technology and specific device form used by network devices.

[0058] Base stations can be fixed or mobile. For example, a helicopter or drone can be configured to act as a mobile base station, and one or more cells can move based on the location of the mobile base station. In other examples, a helicopter or drone can be configured to act as a device that communicates with another base station.

[0059] In some deployments, the network device in the embodiments of the present application may refer to a CU or a DU, or the network device may include a CU and a DU. The gNB may also include an AAU.

[0060] The network equipment and terminal devices can be deployed on land, including indoors or outdoors, handheld or vehicle-mounted; they can also be deployed on water; they can also be deployed in the air on aircraft, balloons, and satellites. The embodiments of this application do not limit the scenarios in which the network equipment and terminal devices are located.

[0061] Sideline communication under different network coverage conditions

[0062] Sidelink communication refers to a communication technology based on a sidelink. Sidelink communication can be, for example, device-to-device (D2D) or vehicle-to-everything (V2X) communication. In traditional cellular systems, communication data is received or sent between terminal devices and network devices, while sidelink communication supports direct communication and data transmission between terminal devices. Compared with traditional cellular communication, direct communication data transmission between terminal devices can have higher spectrum efficiency and lower transmission latency. For example, the vehicle networking system adopts sidelink communication technology.

[0063] In side communication, according to the network coverage of the terminal device, the side communication can be divided into side communication within the network coverage, side communication with partial network coverage, and side communication outside the network coverage.

[0064] Figure 2 illustrates an example scenario for sidelink communication within network coverage. In the scenario shown in Figure 2, both terminal devices 120a are within the coverage of network device 110. Therefore, both terminal devices 120a can receive configuration signaling from network device 110 (configuration signaling in this application can also be replaced by configuration information) and determine the sidelink configuration based on the configuration signaling from network device 110. After both terminal devices 120a have configured their sidelinks, sidelink communication can proceed on the sidelink.

[0065] Figure 3 is an example diagram of a sidelink communication scenario with partial network coverage. In the scenario shown in Figure 3, terminal device 120a performs sidelink communication with terminal device 120b. Terminal device 120a is located within the coverage range of network device 110, so terminal device 120a can receive the configuration signaling of network device 110 and determine the sidelink configuration based on the configuration signaling of network device 110. Terminal device 120b is located outside the network coverage and cannot receive the configuration signaling of network device 110. In this case, terminal device 120b can determine the sidelink configuration based on pre-configuration information and / or information carried in the physical sidelink broadcast channel (PSBCH) sent by terminal device 120a within the network coverage. After both terminal device 120a and terminal device 120b perform sidelink configuration, sidelink communication can be performed on the sidelink.

[0066] Figure 4 illustrates an example scenario for sidelink communication outside of network coverage. In the scenario shown in Figure 4, both terminal devices 120b are outside of network coverage. In this scenario, both terminal devices 120b can determine the sidelink configuration based on pre-configured information. After both terminal devices 120b have configured their sidelinks, sidelink communication can proceed over the sidelink.

[0067] Sideline communication based on central control node

[0068] Figure 5 is an example diagram of a sideline communication scenario based on a central control node. In this sideline communication scenario, multiple terminal devices can form a communication group, and the communication group has a central control node. The central control node can be a terminal device in the communication group (such as terminal device 1 in Figure 5), and the terminal device can also be called a cluster head (CH) terminal device. The central control node can be responsible for completing one or more of the following functions: establishing a communication group, joining and leaving group members of the communication group, coordinating resources within the communication group, allocating sideline transmission resources to other terminal devices, receiving sideline feedback information from other terminal devices, and coordinating resources with other communication groups.

[0069] Sideline communication mode

[0070] Some standards or protocols (such as the 3rd Generation Partnership Project (3GPP)) define two sideline communication modes: a first mode and a second mode.

[0071] In the first mode, the resources of the terminal device (the resources mentioned in this application may also be referred to as transmission resources, such as time-frequency resources) are allocated by the network device. The terminal device can send data on the side link according to the resources allocated by the network device. The network device can allocate resources for a single transmission to the terminal device, or it can allocate resources for semi-static transmission to the terminal device. This first mode can be applied to scenarios covered by a network device, such as the scenario shown in Figure 2 above. In the scenario shown in Figure 2, the terminal device 120a is within the network coverage of the network device 110, so the network device 110 can allocate resources used in the side transmission process to the terminal device 120a.

[0072] In the second mode, the terminal device can autonomously select one or more resources from a resource pool (RP). The terminal device can then perform side transmission based on the selected resources. For example, in the scenario shown in FIG4 , the terminal device 120b is located outside the cell coverage area. Therefore, the terminal device 120b can autonomously select resources from a pre-configured resource pool for side transmission. Alternatively, in the scenario shown in FIG2 , the terminal device 120a can also autonomously select one or more resources from a resource pool configured by the network device 110 for side transmission.

[0073] Data transmission method of side communication

[0074] Some sidewalk communication systems (such as long-term evolution vehicle to everything (LTE-V2X)) support broadcast-based data transmission (hereinafter referred to as broadcast transmission). For broadcast transmission, the receiving terminal can be any terminal device around the transmitting terminal. Taking Figure 6 as an example, terminal device 1 is the transmitting terminal, and the receiving terminal corresponding to the transmitting terminal is any terminal device around terminal device 1, for example, terminal device 2 to terminal device 6 in Figure 6.

[0075] In addition to broadcast transmission, some communication systems also support unicast-based data transmission (hereinafter referred to as unicast transmission) and / or multicast-based data transmission (hereinafter referred to as multicast transmission). For example, the new radio vehicle to everything (NR-V2X) hopes to support autonomous driving. Autonomous driving places higher requirements on data interaction between vehicles. For example, data interaction between vehicles requires higher throughput, lower latency, higher reliability, larger coverage, more flexible resource allocation, etc. Therefore, in order to improve the performance of data interaction between vehicles, NR-V2X introduces unicast transmission and multicast transmission.

[0076] For unicast transmission, there is typically only one receiving terminal. For example, in Figure 7, unicast transmission occurs between terminal devices 1 and 2. Terminal device 1 can be the sending terminal, and terminal device 2 can be the receiving terminal, or vice versa.

[0077] For multicast transmission, the receiving terminal can be a terminal device within a communication group, or a terminal device within a certain transmission distance. For example, in Figure 8, terminal devices 1, 2, 3, and 4 form a communication group. If terminal device 1 sends data, all other terminal devices in the group (terminal devices 2 through 4) can be receiving terminals.

[0078] Time slot structure for sideline communication

[0079] The communication system may define a frame, subframe, or time slot structure for sidelink communication. Some sidelink communication systems define multiple time slot structures. For example, NR-V2X defines two time slot structures. One of the two time slot structures does not include a physical sidelink feedback channel (PSFCH), see Figure 9A; the other of the two time slot structures includes a PSFCH, see Figure 9B.

[0080] The physical sidelink control channel (PSCCH) in NR-V2X can start at the second sidelink symbol of the time slot in the time domain, and the PSCCH can occupy 2 or 3 symbols in the time domain (the symbols mentioned here can all refer to orthogonal frequency division multiplexing (OFDM) symbols). The PSCCH can occupy multiple PRBs in the frequency domain. For example, the number of PRBs occupied by the PSCCH can be selected from the following values: {10, 12 15, 20, 25}.

[0081] To reduce the complexity of blind detection of PSCCH by terminal devices, typically, only one number of symbols and PRBs is configured for PSCCH within a resource pool. Furthermore, since NR-V2X uses sub-channels as the minimum granularity for PSSCH resource allocation, the number of PRBs occupied by PSCCH must be less than or equal to the number of PRBs contained in a sub-channel within the resource pool.

[0082] Referring to Figure 9A, for a time slot structure that does not include PSFCH, the PSSCH in NR-V2X can use the second side symbol of the time slot as the starting position in the time domain. The last side symbol in the time slot is used as a guard period (GP), and the remaining symbols can be mapped to PSSCH. The first side symbol in the time slot can be a repetition of the second side symbol. Generally speaking, the terminal device at the receiving end will use the first side symbol as a symbol for automatic gain control (AGC). Therefore, the data on the first side symbol is usually not used for data demodulation. PSSCH can occupy K subchannels in the frequency domain, and each subchannel can include M consecutive PRBs (the values ​​of K and M can be predefined by the protocol, or preconfigured, or configured by the network device, or depend on the terminal device implementation).

[0083] FIG9B illustrates a time slot structure including the PSFCH, schematically illustrating the positions of the symbols occupied by the PSFCH, PSCCH, and PSSCH in a time slot. The primary difference between this time slot structure and FIG9A is that the penultimate and third-to-last symbols in a time slot are used for PSFCH transmission. Furthermore, the symbol preceding the symbol used for PSFCH transmission also serves as the GP. As can be seen from the time slot structure shown in FIG9B , in a time slot, the last symbol serves as the GP, the second-to-last symbol is used for PSFCH transmission, and the data on the third-to-last symbol is the same as the data on the second-to-last symbol used for PSFCH transmission. That is, the third-to-last symbol serves as the symbol for AGC, while the fourth-to-last symbol has the same function as the last symbol and also serves as the GP. Furthermore, the first symbol in a time slot is used for AGC, and the data on this symbol is the same as the data on the second symbol in the time slot. PSCCH occupies three symbols, and the remaining symbols can be used for PSSCH transmission.

[0084] Sideways PSSCH

[0085] In some sideline communication systems (such as NR SL systems), PSSCH can be used to carry the second-order SCI (2 nd The format of the second-stage SCI may be, for example, SCI 2-A, SCI 2-B or SCI 2-C.

[0086] The second-order SCI encoding method may adopt an encoding method based on a polar code (polar code), and adopt a quadrature phase shift keying (QPSK) modulation method for modulation.

[0087] The code rate of the second-order SCI can be dynamically adjusted within a certain range, and the code rate used by the second-order SCI can be indicated by the first-order SCI. Therefore, even if the code rate of the second-order SCI changes, the terminal device as the receiving end does not need to perform blind detection on the second-order SCI. The modulation symbol of the second-order SCI can start from the symbol where the first DM-RS of the PSSCH is located, and is mapped in the frequency domain first and then the time domain. In the symbol where the DM-RS is located, the second-order SCI can be mapped to the RE not occupied by the DM-RS. Taking Figure 10 as an example, the second-order SCI occupies symbols 1 to 4, and the second-order SCI shares symbol 1 with the first PSCCH DM-RS.

[0088] The data information of the PSSCH can be encoded using a low-density parity check (LDPC) code. In addition, the highest modulation order currently supported by the PSSCH is 256-bit quadrature amplitude modulation (QAM).

[0089] Within a resource pool, PSSCH data information can use multiple different modulation and coding scheme (MCS) tables. These multiple different MCS tables can include, for example, a conventional 64QAM MCS table, a 256QAM MCS table, and a low-spectrum-efficiency 64QAM MCS table. During a PSSCH transmission, the MCS table used by the transmitting terminal device can be indicated by the "MCS Table Indication" field in the first-order SCI.

[0090] To control the peak-to-average power ratio (PAPR), the PSSCH typically needs to be transmitted on contiguous PRBs. In NR SL systems, a subchannel is the minimum frequency-domain resource granularity for the PSSCH. Therefore, to control the PAPR, NR SL systems typically require the PSSCH to occupy contiguous subchannels.

[0091] Furthermore, in the NR SL system, the PSSCH supports up to two-stream transmission, and uses a unit matrix precoding matrix to map the data on the two transmission layers corresponding to the two streams to two antenna ports. Currently, at most one transmission block (TB) can be sent in a PSSCH. When the PSSCH adopts a dual-stream transmission mode, the modulation symbols of the second-order SCI on the two streams can be exactly the same. This design can ensure the reception performance of the second-order SCI in highly correlated channels.

[0092] In the NR SL system, the maximum number of retransmissions of a PSSCH is 32 times. Therefore, if there are PSFCH resources in the resource pool and the configuration period of the PSFCH resources is 2 or 4, the number of available symbols in the time slot where the PSSCH is located may change for multiple transmissions of the same PSSCH. For example, referring to Figure 11, the PSSCH is transmitted for the nth time in time slot a and for the n+1th time in time slot b. It can be seen from Figure 11 that there are PSFCH resources and their corresponding related resources (such as AGC symbols and GP symbols corresponding to the PSFCH, etc., see the description of Figure 9B for details) in time slot a, and there is no PSFCH in time slot b. Therefore, due to the change of PSFCH resources, the number of available symbols in the time slot is different in the nth transmission and the n+1th transmission. The change of available symbols in the time slot will cause the transmission block size (TBS) corresponding to the PSSCH to change. Therefore, in order to ensure that the TBS of PSSCH remains unchanged during multiple transmissions, the actual number of PSFCH symbols may not be used when calculating TBS. Instead, the number of PSFCH symbols used to calculate TBS may be determined based on the indication information in the first-order SCI. For detailed description, see the description in the next section.

[0093] Sideways TBS

[0094] In some sideline communication systems (such as NR SL systems), PSSCH follows the TBS determination mechanism of the physical downlink shared channel (PDSCH) and physical uplink shared channel (PUSCH) in the NR system, that is, the TBS is determined according to the reference value of the number of REs used for PSSCH in the time slot where PSSCH is located, so that the actual code rate is as close to the target code rate as possible. In other words, when determining TBS, such sideline communication systems do not use the actual number of REs occupied by PSSCH, but use the reference value of the number of REs of PSSCH. The purpose of this is to ensure that the number of REs used to determine TBS remains unchanged during the retransmission of PSSCH, so that the TBS size determined by different transmission processes of PSSCH is the same. Reference value N of the number of REs occupied by PSSCH RE It can be determined based on formula (1):

[0095]

[0096] In the above formula (1), n PRB Indicates the number of PRBs occupied by PSSCH, Indicates the number of REs occupied by the first-order SCI ( It may include the number of REs occupied by the DM-RS of the PSCCH), Indicates the number of REs occupied by the second-order SCI, N′ RE Indicates the number of reference REs that can be used for PSSCH in a PRB.

[0097] N′ RE It can be determined based on the following formula (2):

[0098]

[0099] In the above formula (2), Indicates the number of subcarriers in a PRB, The value is usually 12. Indicates the number of symbols available for sideline transmission in a time slot. Usually, the last symbol (i.e., GP symbol) and the first symbol (i.e., symbol used for AGC) of a time slot are not included. Taking the time slot structure shown in Figure 10 as an example, A reference value indicating the number of symbols occupied by the PSFCH. The value of can be indicated by the "PSFCH symbol number" field in the first-order SCI. The value of is usually 0 or 3. Indicates the reference value of the number of REs occupied by the phase tracking reference signals (PT-RS) and CSI-RS. The value of can be configured by radio resource control (RRC) parameters. Indicates the average number of REs in the DM-RS pattern in one slot. The value of is related to the DM-RS pattern supported in the resource pool, as shown in Table 1. Referring to Table 1, when the DM-RS pattern includes three patterns {2, 3, 4}, The value of is 18, that is, the average number of REs of the three DM-RS patterns is 18.

[0100] Table 1: DM-RS patterns allowed in a resource pool The corresponding relationship

[0101]

[0102] Sidelink DM-RS

[0103] In the NR SL system, the DM-RS pattern of PSCCH is the same as the DM-RS pattern of PDCCH in the NR system, that is, DM-RS exists on every symbol of PSCCH and is located on the REs corresponding to {#1, #5, #9} in a PRB in the frequency domain, as shown in Figure 12.

[0104] The DM-RS sequence of PSCCH can be generated by formula (3):

[0105]

[0106] In the above formula (3), c(m) represents a pseudo-random sequence. The pseudo-random sequence can be initialized based on the following formula (4):

[0107]

[0108] In the above formula (4), l represents the index of the symbol where the DM-RS is located in the time slot. Indicates the index of the time slot where the DM-RS is located in the system frame. Indicates the number of symbols in a time slot. N ID ∈{0,1,…,65535}. In a resource pool, N ID The value can be configured or pre-configured by the network device.

[0109] The PSSCH of the NR SL system draws on the design of the NR air interface (i.e., Uu interface), that is, it uses multiple time-domain PSSCH DM-RS patterns. Within a resource pool, the number of available DM-RS patterns is related to the number of PSSCH symbols in the resource pool (including the first AGC symbol). For a specific number of PSSCH symbols and PSCCH symbols, the available DM-RS patterns and the position of each DM-RS symbol within the DM-RS pattern can be determined based on Table 2.

[0110] Table 2: Number and position of DM-RS symbols in a time slot for different PSSCH and PSCCH symbol numbers

[0111]

[0112] Taking the number of PSSCH symbols as 13 as an example, see Figure 13, when the number of DM-RS symbols is 4, the 4 DM-RS symbols occupy the 1st, 4th, 7th, and 10th symbol positions (or symbol indexes) in the time slot respectively.

[0113] If multiple DM-RS patterns are configured in the time domain within a resource pool, the transmitting terminal device can select the specific DM-RS pattern to use and indicate this in the first-order SCI. This design allows high-speed terminal devices to select a high-density DM-RS pattern, thereby ensuring channel estimation accuracy; correspondingly, for low-speed terminal devices, a low-density DM-RS pattern can be used, thereby improving spectral efficiency.

[0114] The generation method of the PSSCH DM-RS sequence is similar to that of the PSCCH DM-RS sequence. The difference between the two lies in the initialization formula of the pseudo-random sequence c(m) (corresponding to the formula (4) above) where N ID The value of. In the pseudo-random sequence c(m) used to generate the PSSCH DM-RS sequence, Among them, p i represents the cyclic redundancy check (CRC) of the PSCCH that schedules the PSSCH, L represents the number of bits of the PSCCH CRC, and the value of L is usually 24.

[0115] In the NR system, PDSCH and PUSCH support two frequency domain DM-RS patterns, namely DM-RS frequency domain type 1 and DM-RS frequency domain type 2. Furthermore, for each frequency domain type of DM-RS, there are two different symbol types: single symbol and dual symbol. Single symbol DM-RS frequency domain type 1 can support 4 DM-RS ports. Single symbol DM-RS frequency domain type 2 can support 6 DM-RS ports. The number of DM-RS ports supported by dual symbol DM-RS frequency domain type 1 is twice the number of DM-RS ports supported by single symbol DM-RS frequency domain type 1. The number of DM-RS ports supported by dual symbol DM-RS frequency domain type 2 is twice the number of DM-RS ports supported by single symbol DM-RS frequency domain type 2. However, in some sideline communication systems (such as NR SL systems), since PSSCH needs to support a maximum of two DM-RS ports, such communication systems generally only support single symbol DM-RS frequency domain type 1, and the frequency domain pattern of this type of DM-RS is shown in Figure 14.

[0116] Side CSI-RS

[0117] To better support unicast communication, the NR-V2X system supports SL CSI-RS. The NR-V2X system specifies that SL CSI-RS will be sent only when the following three conditions are met:

[0118] Condition 1: The terminal device needs to send the PSSCH corresponding to the SL CSI-RS, that is, the terminal device cannot only send the SL CSI-RS.

[0119] Condition 2: Sidelink CSI reporting is activated through higher layer signaling.

[0120] Condition 3: When high-layer signaling activates sidelink CSI reporting, the corresponding bit in the second-order SCI sent by the terminal device triggers sidelink CSI reporting.

[0121] The maximum number of ports supported by SL CSI-RS is 2. For two ports, SL CSI-RSs from different ports are code-division multiplexed on two adjacent REs in the same sidelink symbol. Within a PRB, the number of SL CSI-RSs per port is 1, meaning the density is 1. Therefore, within a PRB, an SL CSI-RS appears on at most one sidelink symbol. The specific location of this sidelink symbol is determined by the terminal device transmitting the SL CSI-RS.

[0122] Generally, to avoid affecting the resource mapping of PSCCH and second-order SCI, SL CSI-RS cannot be located in the same sidebar symbol as PSCCH and second-order SCI.

[0123] In addition, since the channel estimation accuracy of the sidelink symbol where the PSSCH DM-RS is located is higher and the SL CSI-RS of the two ports will need to occupy two consecutive REs in the frequency domain, the SL CSI-RS and the PSSCH DM-RS cannot be sent through the same sidelink symbol.

[0124] In some cases, the position of the side symbol occupied by the SL CSI-RS can be indicated by the sl-CSI-RS-FirstSymbol parameter in PC5RRC. In addition, the position of the first RE occupied by the SL CSI-RS in a PRB is indicated by the "sl-CSI-RS-FreqAllocation" parameter in PC5RRC. If the SL CSI-RS corresponds to one port, the parameter is a bitmap with a length of 12, corresponding to 12 REs in one PRB. If the SL CSI-RS corresponds to two ports, the parameter is a bitmap with a length of 6. In this case, the SL CSI-RS occupies two REs, 2f(1) and 2f(1)+1, where f(1) represents the identifier of the bit with a value of 1 in the above bitmap.

[0125] The frequency domain position occupied by the SL CSI-RS is also determined by the terminal device that sends the SL CSI-RS, and it should be noted that the determined frequency domain position of the SL CSI-RS cannot conflict with the frequency domain position occupied by the PT-RS.

[0126] Figure 15 shows a schematic diagram of the time-frequency resources occupied by the SL CSI-RS. Assume in Figure 15 that the number of ports corresponding to the SL CSI-RS is 2, sl-CSI-RS-FirstSymbol indicates that the SL CSI-RS occupies side symbol position 8, and sl-CSI-RS-FreqAllocation indicates that the position of the first RE occupied by the SL CSI-RS within a PRB is [b5, b4, b3, b2, b1, b0] = [0, 0, 0, 1, 0, 0].

[0127] Unlicensed spectrum and channel monitoring

[0128] Unlicensed spectrum is a spectrum designated by countries and regions for use by radio equipment. This spectrum is generally considered shared. This means that communications equipment within the same or different systems can use this spectrum as long as they meet national or regional regulatory requirements for that spectrum, without having to apply for exclusive spectrum authorization from the government.

[0129] To ensure friendly coexistence among various communication devices (or communication systems) using unlicensed spectrum for wireless communications, some countries or regions have established regulatory requirements for the use of unlicensed spectrum. For example, communication devices adhere to the listen before talk (LBT) principle. LBT means that before a communication device transmits a signal on an unlicensed spectrum channel, it must first perform channel sensing. If the channel sensing result indicates that the channel is idle, the communication device can use the unlicensed spectrum channel for signal transmission; if the channel sensing result indicates that the channel is busy, the communication device is generally not allowed to use the unlicensed spectrum channel for signal transmission. To ensure fairness, the duration of a communication device's signal transmission using an unlicensed spectrum channel cannot exceed the maximum channel occupancy time (MCOT) during a single transmission. Figure 16 shows an example of a channel occupancy time obtained by a communication device after successful LBT on an unlicensed spectrum channel, and the use of resources within the channel occupancy time for signal transmission.

[0130] Although channel monitoring based on LBT is not a global regulatory requirement, channel monitoring can bring the benefits of interference avoidance and friendly coexistence to communication transmissions between communication systems on shared spectrum. Therefore, in the design process of NR systems on unlicensed spectrum, channel monitoring is a feature that must be supported by communication equipment in the system. From the perspective of system networking, channel monitoring includes two mechanisms. One is LBT based on load-based equipment (LBE), also known as dynamic channel monitoring or dynamic channel occupancy; the other is LBT based on frame-based equipment (FBE), also known as semi-static channel monitoring or semi-static channel occupancy.

[0131] The following focuses on several different types of LBT methods (i.e., several different types of channel access methods).

[0132] Type 1 LBT method (Type 1 LBT method) can also be called multi-slot channel detection based on random backoff of contention window size adjustment. In Type 1 LBT method, the communication device can initiate a channel access priority p with a length of T mcot The following table shows the channel access priority and corresponding parameters when the terminal device performs type 1 LBT.

[0133] Table 3 Channel access parameters corresponding to different channel priorities

[0134]

[0135] In the above Table 1, m p Refers to the number of fallback slots corresponding to the channel access priority p, CW p Refers to the contention window size corresponding to the channel access priority p, CW min,p Refers to the CW corresponding to the channel access priority p p Minimum value, CW max,p Refers to the CW corresponding to the channel access priority p p The maximum value, T mcot,p Refers to the maximum channel occupancy time length corresponding to the channel access priority p. Among the four channel access priorities shown in Table 1, p=1 is the highest priority.

[0136] If a network device uses the Type 1 LBT method, the network device can not only send its own data during the channel occupancy period, but also share the channel occupancy time (COT) with the terminal device. Correspondingly, if a terminal device uses the Type 1 LBT method, the terminal device can not only send its own data during the channel occupancy period, but also share the COT with the network device or other terminal devices. Resource sharing within the COT can use the Type 2 LBT method (Type 2 LBT method) for channel access. The Type 2 LBT method (Type 2 LBT method) can also be called a channel access method based on a fixed-length channel listening time slot. The Type 2 LBT method includes the Type 2A LBT method (Type 2A LBT method), the Type 2B LBT method (Type 2B LBT method), and the Type 2C LBT method (Type 2C LBT method).

[0137] In Type 2A LBT, a communication device can use a 25us channel detection cycle. This means the device can begin channel detection 25us before starting to send data. This 25us channel detection cycle can include one 16us channel detection cycle and one 9us channel detection cycle. If both detections indicate the channel is idle, the channel is considered idle and can be accessed.

[0138] In Type 2B LBT, a communication device can use 16us channel detection. During the channel detection process, if the communication device detects that the channel is idle for at least 5us within the 26us, and that the channel is idle for more than 4us within the last 9us, the channel is considered idle.

[0139] In Type 2C LBT, communication devices can transmit data directly over the channel without performing channel detection. In Type 2C LBT, the time difference between the current transmission and the previous transmission must be less than or equal to 16µs. In other words, if the time difference between two transmissions is less than or equal to 16µs, they are considered the same transmission and channel detection is not required. It should be noted that in Type 2C LBT, the transmission duration of communication devices is limited and generally cannot exceed 584µs.

[0140] Comb structure

[0141] In the NR-U (NR-based access to Unlicensed spectrum) system, if a terminal uses an unlicensed frequency band for communication, some regulations stipulate that the frequency band occupied by the terminal device must generally be greater than or equal to 80% of the system bandwidth. Therefore, in order to allow as many terminal devices as possible to access the channel in the same amount of time, NR-U defines a resource allocation method based on interlace. Interlace can also be called interleaving.

[0142] A comb tooth resource may include N PRBs that are discrete in the frequency domain. For example, if a frequency band includes a total of M comb tooth resources, the position number of the PRB included in the mth comb tooth in the N PRBs is as follows: {m, M+m, 2M+m, 3M+m, ...}. Taking Figure 17 as an example, the system bandwidth includes 30 PRBs. The 30 PRBs include 5 comb tooth resources, and each comb tooth resource includes 6 PRBs. It can be seen from Figure 17 that the frequency domain intervals of two adjacent PRBs in a comb tooth are the same, that is, they are 5 PRBs apart. It should be noted that the PRBs included in a comb tooth resource can also be called an interlaced resource block (IRB). Therefore, the comb teeth are sometimes directly referred to as IRBs.

[0143] Resource block set in NR-U system

[0144] In the NR-U system, due to the requirements of the unlicensed spectrum usage regulations, each transmission is carried out with a granularity of 20MHz. The design of the NR system has taken into account large bandwidth and high throughput transmission, so NR transmission in the unlicensed spectrum should not be limited to 20M bandwidth transmission. Therefore, NR-U needs to support transmission with a larger bandwidth. The larger bandwidth transmission mentioned here can refer to transmission with a bandwidth of the order of several times of 20MHz.

[0145] For example, a terminal device can be configured with one or more bandwidth parts (BWPs). BWPs have a large bandwidth. Generally speaking, BWPs cover multiple 20MHz channel bandwidths. These 20MHz bandwidths were called LBT sub-bands in the early design of NR-U, and there are guard bands between sub-bands, as shown in Figure 18. The function of the guard band is to prevent interference between sub-bands caused by out-of-band power leakage. The interference mentioned here is called inter-sub-band interference. Inter-sub-band interference refers to the interference caused by the transmission of other terminal devices (or communication devices of other systems) on the adjacent sub-bands of a terminal device on a sub-band when the terminal device transmits on the sub-band.

[0146] Furthermore, LBT subbands are also collectively referred to as resource block sets (RB sets). Resource block sets and guard bands between resource block sets can be configured in the manner shown in Figure 19. Referring to Figure 19, the network device can first configure a carrier bandwidth based on a common resource block (CRB) as a benchmark, and configure one or more guard bands (or intra-cell guard bands) within the carrier bandwidth. The configuration of the guard band may include the CRB position of the starting point of the guard band and the length of the guard band. When the configuration of the guard band is completed, the entire carrier bandwidth is divided into multiple resource block sets. The network device can then map the resource block set to the BWP by configuring the BWP. It is worth noting that the 3GPP protocol requires that the BWP configured by the network device include an integer number of resource block sets. In the example shown in Figure 19, a BWP includes two resource block sets, namely resource block set 1 and resource block set 2.

[0147] Slot structure of multiple candidate transmission start symbols

[0148] In some communication systems, such as the sidelink over unlicensed spectrum (SL-U) system operating on unlicensed spectrum, in order to improve the success rate of terminal equipment accessing the unlicensed spectrum, a time slot structure containing multiple candidate transmission start symbols in one time slot is introduced for the transmission of PSSCH / PSCCH. As shown in Figure 20, two candidate transmission start symbols are configured in one time slot, located at symbol 0 and symbol 6 respectively. If the terminal device succeeds in LBT before symbol 0, the terminal device can start sidelink transmission from symbol 0, as shown in (a) in Figure 20. If the terminal device fails in LBT before symbol 0, but succeeds in LBT before symbol 6, the terminal device can start sidelink transmission from symbol 6, as shown in (b) in Figure 20. It can be seen from the example of Figure 20 that due to the introduction of two candidate transmission starting points in one time slot, the probability of the terminal device accessing the channel is improved.

[0149] If a time slot contains multiple candidate transmission start symbols, the receiver cannot know which symbol the transmitter will begin sidelink transmission from, so it uses the candidate transmission start symbols for AGC adjustment. In other words, the multiple candidate transmission start symbols in a time slot are typically used for AGC. Still using Figure 20 as an example, symbols 0 and 6 in a time slot are two candidate transmission start symbols in a time slot. These symbols 0 and 6 are used as AGC symbols.

[0150] It can be seen that when the terminal device starts to transmit at the first candidate transmission start symbol, if the terminal device maps a certain signal / channel to the second candidate transmission start symbol whose time domain position is after the first candidate transmission start symbol, since the second candidate transmission start symbol is used by the receiving end for AGC adjustment, it is very likely that the receiving end will not be able to receive the signal / channel, thereby reducing the overall performance of the communication system. Taking DM-RS as an example, if the terminal device maps DM-RS to the second candidate transmission start symbol, it may cause the receiving end to be unable to use the DM-RS for channel estimation, thereby reducing the performance of channel estimation. Taking the second-order SCI as an example, if the terminal device maps the second-order SCI to the second candidate transmission start symbol, it may cause the receiving end to be unable to receive the second-order SCI, thereby causing communication errors.

[0151] In order to solve the above problems, the embodiments of the present application are described in detail below.

[0152] FIG21 is a schematic flow chart of a sideline transmission method provided in an embodiment of the present application. The method of FIG21 can be executed by a first terminal device. The first terminal device can be any type of terminal device mentioned above.

[0153] Referring to Figure 21, in step S2110, the first terminal device performs sideline transmission in the first time slot. The sideline transmission may refer to sideline transmission or sideline reception. The sideline transmission may include transmission for one or more of the following: PSCCH and PSSCH.

[0154] The first time slot may include (or be configured with) multiple candidate transmission start symbols. In some implementations, the candidate transmission start symbol may be a candidate transmission start symbol for the PSCCH or PSSCH. That is, the PSCCH or PSSCH may be transmitted starting from the candidate transmission start symbol. It should be understood that starting transmission from the candidate transmission start symbol does not necessarily require mapping the PSCCH or PSSCH to be transmitted on the candidate transmission start symbol. For example, the candidate transmission start symbol may be an AGC symbol, and the PSCCH or PSSCH may be mapped starting from the symbol following the candidate transmission start symbol.

[0155] The candidate transmission start symbol mentioned in the embodiments of the present application may also be referred to as or replaced by one of the following: candidate transmission starting point, symbol corresponding to the candidate transmission starting point, candidate transmission starting point symbol, candidate transmission starting position, candidate transmission starting symbol position.

[0156] The embodiments of the present application do not specifically limit the number of candidate transmission start symbols included in the first time slot. In some implementations, the first time slot may include two candidate transmission start symbols. In other implementations, the first time slot may include three or more candidate transmission start symbols.

[0157] For the convenience of description, the following text mainly uses the example that the first time slot includes the first candidate transmission start symbol and the second candidate transmission start symbol. The first candidate transmission start symbol mentioned in the embodiment of the present application can be a candidate transmission start symbol with a front time domain position among the multiple candidate transmission start symbols contained in the first time slot (relative to the front time domain position of the second candidate transmission start symbol); the second candidate transmission start symbol mentioned in the embodiment of the present application can be a candidate transmission start symbol with a back time domain position among the multiple candidate transmission start symbols contained in the first time slot (relative to the back time domain position of the first candidate transmission start symbol). Of course, the first time slot can only include the first candidate transmission start symbol and the second candidate transmission start symbol; or, in addition to the first candidate transmission start symbol and the second candidate transmission start symbol, the first time slot can also include more candidate transmission start symbols.

[0158] In some implementations, the first candidate transmission start symbol may correspond to the first candidate transmission start symbol among multiple candidate transmission start symbols contained in the first time slot (i.e., the candidate transmission start symbol with the earliest time domain position in the first time slot), and the second candidate transmission start symbol may correspond to any candidate transmission start symbol in the first time slot except the first candidate transmission start symbol.

[0159] In some implementations, the first candidate transmission start symbol may correspond to the i-th candidate transmission start symbol (i≠1) among multiple candidate transmission start symbols included in the first time slot, and the second candidate transmission start symbol may correspond to any candidate transmission start symbol whose time domain position in the first time domain is located after the i-th candidate transmission start symbol. For example, if the first time slot includes three candidate transmission start symbols, the first candidate transmission start symbol is the second candidate transmission start symbol among the three candidate transmission start symbols, and the second candidate transmission start symbol is the last candidate transmission start symbol among the three candidate transmission start symbols.

[0160] In some implementations, the second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol, so as to avoid a degradation in the communication system performance due to the inability of the receiving end to correctly receive the first signal / channel.

[0161] The second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol. It can also be expressed or replaced by one or more of the following: the second candidate transmission start symbol is not used to map the first signal / channel determined based on the first candidate transmission start symbol; or, the second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission starting from the first candidate transmission start symbol; or, the second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission starting from the first candidate transmission start symbol.

[0162] In some implementations, the second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol, which may mean that: the time domain position of the second candidate transmission start symbol does not overlap with the first signal / channel; or the first terminal device avoids the time domain position of the second candidate transmission start symbol from overlapping with the first signal / channel. For example, if the time domain position of the second candidate transmission start symbol overlaps with the first signal / channel, the first signal / channel is mapped to other symbols in the first time slot except the second candidate transmission start symbol.

[0163] The embodiments of the present application do not specifically limit the type of the first signal / channel. The first signal / channel can be any type of signal / channel corresponding to the transmission based on the first candidate transmission start symbol. In some embodiments, the first signal / channel can include one or more of the following: a first PSSCH; a first PSCCH; a first CSI-RS; a DM-RS of the first PSSCH; and a second SCI.

[0164] The mapping manner of the first signal / channel is described in more detail below with reference to multiple embodiments, taking the case where the first signal / channel is a signal / channel of different types as an example.

[0165] Example 1: Avoiding the overlap of the time domain position of the DM-RS of the first PSSCH and the second candidate transmission start symbol

[0166] The first PSSCH refers to the PSSCH corresponding to the transmission based on the first candidate transmission start symbol. In other words, the first PSSCH may be the PSSCH that is transmitted starting from the first candidate transmission start symbol. The DM-RS of the first PSSCH can be used for channel estimation at the receiving end, so as to demodulate the data information in the first PSSCH. The DM-RS of the first PSSCH can be mapped to some symbols in the symbols corresponding to the first PSSCH, and the specific mapping method is related to the DM-RS pattern selected by the first terminal device. Taking Figure 13 in the previous text as an example, the DM-RS can be mapped to symbols 1, 4, 7 and 10 in the time slot.

[0167] To maintain channel estimation performance, mapping the DM-RS of the first PSSCH to the second candidate transmission start symbol can be avoided. In other words, the time domain positions of the DM-RS of the first PSSCH and the second candidate transmission start symbol can be avoided from overlapping. There are various ways to avoid the time domain positions of the DM-RS of the first PSSCH and the second candidate transmission start symbol from overlapping. Three specific implementations are described below.

[0168] Implementation method 1:

[0169] In implementation method 1, if the DM-RS pattern selected by the first terminal device includes a first DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol, the first DM-RS symbol may be mapped to symbols other than the second candidate transmission start symbol. That is, if the DM-RS pattern selected by the first terminal device includes a first DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol, the mapping method of the DM-RS is adjusted to avoid overlap between the two. As an example, the first DM-RS symbol may be mapped to the symbol before or after the second candidate transmission start symbol.

[0170] Take Figure 22 as an example for explanation. Referring to Figure 22, two candidate transmission start symbols are configured in a time slot, located at symbol 0 and symbol 6 respectively. In this example, the candidate transmission start symbol located at symbol 0 corresponds to the first candidate transmission start symbol mentioned above, and the candidate transmission start symbol located at symbol 6 corresponds to the second candidate transmission start symbol mentioned above. If the first terminal device starts side transmission from symbol 0, and the DM-RS pattern selected by the first terminal device includes 3 DM-RS symbols. Referring to Table 2 in the above text, it can be seen that the 3 DM-RS symbols are respectively located at the following symbol positions in a time slot: symbol 1, symbol 6 and symbol 11. In combination with Figure 22, it can be seen that DM-RS symbol 6 and the second candidate transmission start symbol overlap in the time domain. If the DM-RS is mapped to the above 3 symbol positions, since the terminal device as the receiving end (hereinafter referred to as the second terminal device) will use symbol 6 for AGC adjustment, the second terminal device cannot use the DM-RS symbol on symbol 6 for channel estimation. That is, the available DM-RS symbols in the time slot only include DM-RS symbols on symbol 1 and symbol 11, which may degrade channel estimation performance.

[0171] To improve channel estimation performance, if the DM-RS symbol of the first PSSCH coincides with the second candidate transmission start symbol, the DM-RS symbol can be mapped to a symbol other than the second candidate transmission start symbol, such as the symbol before or after the second candidate transmission start symbol. Referring to (a) in Figure 23, the DM-RS symbol is not mapped to symbol 1, symbol 6, and symbol 11, but is mapped to symbol 1, symbol 7, and symbol 11. In other words, the DM-RS that originally needed to be mapped to symbol 6 is mapped to the symbol after symbol 6, that is, symbol 7. Referring to (b) in Figure 23, the DM-RS symbol is not mapped to symbol 1, symbol 6, and symbol 11, but is mapped to symbol 1, symbol 5, and symbol 11. In other words, the DM-RS that originally needed to be mapped to symbol 6 is mapped to the symbol before symbol 6, that is, symbol 5.

[0172] Implementation 2:

[0173] In implementation 2, the first terminal device does not expect the selected DM-RS pattern to include a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol. Alternatively, the first terminal device does not expect the received DM-RS pattern to include a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol.

[0174] For example, the first terminal device can obtain the time domain position of the candidate transmission start symbol in the time slot based on the configuration information. If the first terminal device starts transmitting from the first candidate transmission start symbol, the first terminal device can avoid selecting a DM-RS pattern containing a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol. Similarly, as a receiving end, the first terminal device does not expect to receive a DM-RS pattern containing a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol.

[0175] Still taking the scenario shown in Figure 22 as an example, two candidate transmission start symbols are configured in one time slot, located at symbol 0 and symbol 6 respectively. In addition, assuming that the PSCCH occupies two symbols, it can be seen from Table 2 in the previous text that for the side transmission starting from the first candidate transmission start symbol, the DM-RS pattern configured by the resource pool includes three patterns, namely, a pattern of 2 DM-RS symbols, a pattern of 3 DM-RS symbols, and a pattern of 4 DM-RS symbols. For the pattern of 3 DM-RS symbols, as shown in Figure 22, the corresponding DM-RS symbols are symbol 1, symbol 6, and symbol 11, respectively, where symbol 6 coincides with the second candidate transmission start symbol. Therefore, in implementation method 2, the first terminal device will not select the pattern of the three DM-RS symbols, but will only select the pattern of 2 DM-RS symbols or the pattern of 4 DM-RS symbols. Similarly, the receiving terminal does not expect to receive the pattern of the three DM-RS symbols.

[0176] Implementation 3:

[0177] In implementation 3, the first terminal device may obtain configuration information (the configuration information may include, for example, sidelink BWP configuration information and / or resource pool configuration information). The configuration information may be used to configure the DM-RS pattern available in the resource pool, and the DM-RS pattern configured by the configuration information does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol. In other words, when the DM-RS pattern is configured using the configuration information, the configuration of a DM-RS pattern that includes a symbol that coincides with the time domain position of the second candidate transmission start symbol is avoided.

[0178] For example, when the configuration information configures a second candidate transmission start symbol, when configuring the DM-RS pattern available in the resource pool, the configured DM-RS pattern does not coincide with the time domain position of the second candidate transmission start symbol, or avoids configuring a DM-RS pattern that coincides with the second candidate transmission start symbol.

[0179] For example, according to the configuration information, the time slot is determined to include two candidate transmission start symbols, namely a first candidate transmission start symbol located at symbol 0 and a second candidate transmission start symbol located at symbol 6. For the first candidate transmission start symbol, the total number of symbols available for sideline transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) are available for sideline transmission. In addition, according to the configuration information, it is determined that the PSCCH in the resource pool occupies 2 symbols. Therefore, when configuring the DM-RS pattern supported by the resource pool, the DM-RS pattern supported by the resource pool can be configured to include DM-RS patterns with 2 or 4 DM-RS symbols, and cannot support DM-RS patterns with 3 DM-RS symbols. When the DM-RS pattern contains 2 DM-RS symbols, according to Table 2, the symbols corresponding to the DM-RS pattern are located at symbols 3 and 10, respectively; when the DM-RS pattern contains 4 DM-RS symbols, the symbols corresponding to the DM-RS pattern are located at symbols 1, 4, 7, and 10, respectively. The DM-RS symbols corresponding to the above two DM-RS patterns do not overlap with the time domain position of the second candidate transmission start symbol (i.e., symbol 6). When the number of DM-RS symbols included in the DM-RS pattern is 3, according to Table 2, the symbols corresponding to this DM-RS pattern are located at symbols 1, 6, and 11, respectively. The DM-RS symbols corresponding to this DM-RS pattern overlap with the time domain position of the second candidate transmission start symbol (i.e., symbol 6). Therefore, when configuring DM-RS patterns supported by the resource pool, avoid configuring this DM-RS pattern.

[0180] For another example, according to the configuration information, it is determined that the time slot includes two candidate transmission start symbols, namely the first candidate transmission start symbol located at symbol 0, and the second candidate transmission start symbol located at symbol 4. For the first candidate transmission start symbol, the total number of symbols available for sideline transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) can be used for sideline transmission. In addition, according to the configuration information, it is determined that the PSCCH in the resource pool occupies 3 symbols. Therefore, when configuring the DM-RS pattern supported by the resource pool, the DM-RS pattern supported by the resource pool can be configured to include a DM-RS pattern with a DM-RS symbol number of 3, and cannot support a DM-RS pattern with a DM-RS symbol number of 2 or 4. When the DM-RS pattern includes a DM-RS symbol number of 2, according to Table 2, the symbols corresponding to the DM-RS pattern are located at symbols 4 and 10 respectively; when the DM-RS pattern includes a DM-RS symbol number of 4, the symbols corresponding to the DM-RS pattern are located at symbols 1, symbol 4, symbol 7, and symbol 10 respectively. The DM-RS symbols corresponding to the above two DM-RS patterns coincide with the time domain position of the second candidate transmission start symbol (i.e., symbol 4). Therefore, when configuring the DM-RS pattern supported by the resource pool, avoid configuring this DM-RS pattern.

[0181] Embodiment 2: Avoiding the overlap of the time domain position of the second-order SCI and the second candidate transmission start symbol

[0182] In some implementations, the second-stage SCI may include, for example, SCI 2-A, SCI 2-B, or SCI 2-C.

[0183] In some implementations, if the symbol used to map the second-order SCI coincides with the time-domain position of the second candidate transmission start symbol, the second-order SCI may be mapped to a symbol other than the second candidate transmission start symbol in the time slot. For example, if the symbol used to map the second-order SCI coincides with the time-domain position of the second candidate transmission start symbol, the second candidate transmission start symbol may be skipped and the second-order SCI may be mapped to the symbol following the second candidate transmission start symbol. Furthermore, in some implementations, the second-order SCI following the second-order SCI may be mapped accordingly.

[0184] For example, as shown in FIG24 , according to the configuration information, it is determined that the time slot includes two candidate transmission start symbols, namely the first candidate transmission start symbol located at symbol 0, and the second candidate transmission start symbol located at symbol 4. Since the first candidate transmission start symbol is located at symbol 0, relative to the first candidate transmission start symbol, the total number of symbols available for side transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) can be used for side transmission. When the first terminal device starts transmitting from the first candidate transmission start symbol, its corresponding second-order SCI is mapped from the first DM-RS symbol (such as symbol 1 in (a) of FIG24 ) and mapped to symbol 5. Among symbols 1 to 5, symbol 4 used to map the second-order SCI coincides with the time domain position of the second candidate transmission start symbol. Therefore, in order to avoid the second candidate transmission start symbol affecting the detection performance of the second-order SCI, the second-order SCI is not mapped to symbol 4, but continues to be mapped from symbol 5, as shown in (b) of FIG24 .

[0185] Embodiment 3: Avoiding the time domain position overlap between the first PSSCH (or data information in the first PSSCH) and the second candidate transmission start symbol

[0186] As mentioned earlier, the second candidate transmission start symbol is typically used for AGC adjustments at the receiving end, so the data on this symbol is generally not used for demodulation. To reduce the impact of the second candidate transmission start symbol on the demodulation performance of the first PSSCH, if the symbol used to map the first PSSCH coincides with the time domain position of the second candidate transmission start symbol, the first PSSCH may not be mapped to the second candidate transmission start symbol. For example, the second candidate transmission start symbol may be skipped, and mapping of the first PSSCH may continue from the symbol following the second candidate transmission start symbol.

[0187] As shown in Figure 25 , two candidate transmission start symbols are configured in the time slot: a first candidate transmission start symbol located at symbol 0, and a second candidate transmission start symbol located at symbol 6. When the first PSSCH is transmitted starting from the first candidate transmission position (i.e., symbol 0), resource mapping for the first PSSCH begins at symbol 1 (symbol 0 is used as an AGC symbol, and the data on this symbol is a repetition of the data on symbol 1). As can be seen from (a) in Figure 25 , the first PSSCH is mapped to symbols 1-5, 7-12, but not to symbol 6.

[0188] In some implementations, the second candidate transmission start symbol may not be considered when determining the TBS of the PSSCH.

[0189] Example 4: Avoiding the overlap of the time domain positions of the first PSCCH and the second candidate transmission start symbol

[0190] In embodiment 4, the time domain position of the second candidate transmission start symbol may be configured so that the time domain position of the second candidate transmission start symbol does not overlap with the time domain position of the first PSCCH.

[0191] For example, in order to avoid the second candidate transmission start symbol from coinciding with the first PSCCH, the symbol index corresponding to the second candidate transmission start symbol can be set to be greater than the symbol index corresponding to the last symbol in the symbols used to map the PSCCH. Taking the symbol index corresponding to the first candidate transmission start symbol as I1, the symbol index corresponding to the second candidate transmission start symbol as I2, and the number of symbols corresponding to the first PSCCH as A as an example, the symbol index corresponding to the second candidate transmission start symbol can be set to satisfy: I2>I1+A, or I2≥I1+A+1. For another example, taking the symbol index corresponding to the second candidate transmission start symbol as I1, the symbol index corresponding to the first symbol mapped by the first PSCCH as I3, and the number of symbols corresponding to the first PSCCH as A as an example, the symbol index corresponding to the second candidate transmission start symbol can be set to satisfy: I2>I3+A-1, or I2≥I3+A.

[0192] Embodiment 5: Avoiding the overlap of the time domain position of the first CSI-RS and the second candidate transmission start symbol

[0193] In embodiment 5, the first terminal device may generate or obtain second configuration information. The second configuration information may include resource pool configuration information and / or PC5-RRC signaling. The second configuration information can be used to configure the symbol of the first CSI-RS. The symbol of the first CSI-RS may not include a symbol that coincides with the time domain position of the second candidate transmission start symbol. For example, the second candidate transmission start symbol is located at symbol B, and the symbol for mapping CSI-RS corresponding to the transmission starting from the first candidate transmission start symbol includes symbol C, then the values ​​of B and C cannot be the same. That is to say, when configuring the second candidate transmission start symbol and / or the symbol corresponding to the CSI-RS, the two are not configured at the same symbol. As a more specific example, the second candidate transmission start symbol is configured to be located at symbol B in the resource pool configuration information. When configuring the symbol information of the CSI-RS through PC5-RRC signaling, the symbol corresponding to the configured CSI-RS does not include symbol B.

[0194] In some implementations, if the time domain position of the first CSI-RS coincides with the time domain position of the second candidate transmission start symbol, the symbol of the first CSI-RS may be mapped to the preceding symbol or the succeeding symbol of the second candidate transmission start symbol.

[0195] As mentioned above, the second candidate transmission start symbol is not used to map the first channel / signal. In some implementations, the second candidate transmission start symbol can be used to carry repeated data of data in the symbol before or after the second candidate transmission start symbol. This repeated data may include one or more of the following: second-order SCI, PSSCH, DM-RS, or PSCCH.

[0196] Taking (b) in Figure 24 as an example, when the symbol used to map the second-order SCI coincides with the time domain position of the second candidate transmission start symbol, the second-order SCI is not mapped to the second candidate transmission start symbol, but is deferred to the next symbol to continue mapping the second-order SCI. In this case, the data carried in the second candidate transmission start symbol can be repeated data of the data carried on the next symbol or the previous symbol of the second candidate transmission start symbol. For example, the data carried in symbol 4 can be repeated data of the data carried in symbol 5 (which can include second-order SCI, PSSCH, DM-RS, etc.). Alternatively, the data carried in symbol 4 can be repeated data of the data carried in symbol 3 (which can include second-order SCI, PSSCH, DM-RS or PSCCH, etc.).

[0197] Taking Figure 25 as an example, symbols 1-5 and 7-12 are mapped to the PSSCH. Symbol 6 can be used to carry the data in symbol 7 or symbol 5. That is, the data in symbol 7 or symbol 5 can be copied to symbol 6. If symbol 7 or symbol 5 includes a DM-RS or other signal, the DM-RS or other signal is also copied to symbol 6.

[0198] The previous section discussed the impact of introducing multiple candidate transmission start symbols on signal / channel mapping. The introduction of multiple candidate transmission start symbols may also impact the configuration and / or indication of the DM-RS pattern. This issue is discussed below.

[0199] The DM-RS pattern supported by the resource pool is usually configured based on the resource pool configuration information. During actual side transmission, the first terminal device can select a DM-RS pattern from the DM-RS patterns supported by the resource pool and indicate the selected DM-RS pattern in the first-order SCI. When multiple candidate transmission start symbols are configured in a time slot, how to configure the DM-RS pattern supported by the resource pool, or how to indicate the DM-RS pattern is also a problem that needs to be solved. Taking the first candidate transmission start symbol and the second candidate transmission start symbol as an example, since the time domain positions of the first candidate transmission start symbol and the second candidate transmission start symbol are different, the DM-RS pattern corresponding to the second candidate transmission start symbol (hereinafter referred to as the second DM-RS pattern) may be different from the DM-RS pattern corresponding to the first candidate transmission start symbol (hereinafter referred to as the first DM-RS pattern). Therefore, it is necessary to introduce a rule for determining the second DM-RS pattern.

[0200] In some implementations, the second DM-RS pattern may be determined based on resource pool configuration information or based on the first DM-RS pattern. The two above-mentioned methods for determining the second DM-RS pattern are described below.

[0201] Method 1 for determining the second DM-RS pattern: based on resource pool configuration information

[0202] In some implementations, first configuration information and second configuration information may be set in the resource pool configuration information, wherein the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern. For example, the first configuration information included in the resource pool configuration information may be sl-PSSCH-DM-RS-TimePatternList-r16SEQUENCE(SIZE(1..3))OF INTEGER(2..4). The second configuration information included in the resource pool configuration information may be: sl-PSSCH-DM-RS-TimePatternList-r18SEQUENCE(SIZE(1..3))OF INTEGER(2..4). Based on the above two types of configuration information, the first DM-RS pattern and the second DM-RS pattern can be configured respectively.

[0203] In some implementations, the first configuration information and the second configuration information may be the same configuration information, that is, the first DM-RS pattern and the second DM-RS pattern are configured simultaneously through one configuration information.

[0204] After configuring the first DM-RS pattern and the second DM-RS pattern, if the first terminal device starts transmission from the first candidate transmission start symbol, the DM-RS pattern actually used can be selected from the first DM-RS pattern; if the first terminal device starts transmission from the second candidate transmission start symbol, the DM-RS pattern actually used can be selected from the second DM-RS pattern.

[0205] In some implementations, if the first terminal device starts sideways transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the first DM-RS pattern.

[0206] In some implementations, if the first terminal device starts sideways transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the second DM-RS pattern.

[0207] In some implementations, if the first terminal device starts sideways transmission from the first candidate transmission start symbol, the number of information bits included in the DM-RS information field (which can be used to carry DM-RS pattern indication information) in the first-order SCI is determined based on the number of DM-RS patterns included in the first DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured, Represents log2(N pattern1 ) rounded up.

[0208] In some implementations, if the first terminal device starts sideways transmission from the second candidate transmission start symbol, the number of information bits included in the DM-RS information field in the first-order SCI is determined based on the number of DM-RS patterns included in the second DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern2 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured, Represents log2(N pattern2 ) rounded up.

[0209] In some implementations, if the number of DM-RS patterns included in the first DM-RS pattern is 1, the first-order SCI may not include the DM-RS information field.

[0210] In some implementations, if the number of DM-RS patterns included in the second DM-RS pattern is 1, the second-order SCI may not include the DM-RS information field.

[0211] A specific example is given below.

[0212] First, it can be determined based on the configuration information that the time slot includes a first candidate transmission start symbol and a second candidate transmission start symbol, corresponding to symbol 0 and symbol 6, respectively. For the first candidate transmission start symbol 0, the number of symbols available for sideline transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) can be used for sideline transmission. For the second candidate transmission start symbol 6, the number of symbols available for sideline transmission in the time slot is 7 (excluding the last GP symbol in the time slot), that is, all symbols starting from symbol 6 in the time slot (excluding the last GP symbol) can be used for sideline transmission. The number of symbols occupied by the PSCCH in the resource pool is 2. The resource pool configuration information may include first configuration information and second configuration information, which are respectively used to configure the first DM-RS pattern (corresponding to the first candidate transmission start symbol 0) and the second DM-RS pattern (corresponding to the second candidate transmission start symbol 6).

[0213] The first DM-RS pattern configured by the first configuration information may include, for example, three DM-RS patterns, each of which includes two DM-RS symbols (hereinafter referred to as DM-RS pattern 1), three DM-RS symbols (hereinafter referred to as DM-RS pattern 2), and four symbols (hereinafter referred to as DM-RS pattern 3). As shown in Table 2 above, the relative positions of the symbols in DM-RS pattern 1 relative to the first sideline transmission start symbol are 3 and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 1 are located at symbols 3 and 10. The relative positions of the symbols in DM-RS pattern 2 relative to the first sideline transmission start symbol are 1, 6, and 11, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 2 are located at symbols 1, 6, and 11. The relative positions of the symbols in DM-RS pattern 3 relative to the first sideline transmission start symbol are 1, 4, 7, and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 3 are located at symbols 1, 4, 7, and 10. The position arrangement of DM-RS pattern 1 to DM-RS pattern 3 in the time slot can be seen in (a)-(c) of Figure 26.

[0214] The second DM-RS pattern configured by the second configuration information may include, for example, one DM-RS pattern. This DM-RS pattern includes two DM-RS symbols (hereinafter referred to as DM-RS pattern 4). As shown in Table 2 above, the relative positions of the symbols in DM-RS pattern 4 relative to the first sideline transmission start symbol are 1 and 5, respectively. Since the first sideline transmission start symbol is symbol 6, the symbols in DM-RS pattern 4 are located at symbols 7 and 11. The position arrangement of DM-RS pattern 4 in the time slot can be seen in (d) of Figure 26.

[0215] When the first terminal device performs side transmission starting from the first candidate transmission start symbol, the first terminal device can select a DM-RS pattern from DM-RS pattern 1 to DM-RS pattern 3, and indicate the selected DM-RS pattern in the first-order SCI. When the first terminal device performs side transmission starting from the second candidate transmission start symbol, the second DM-RS pattern corresponding to the candidate transmission start position only contains one DM-RS pattern, that is, the DM-RS pattern 4 mentioned above, so the first terminal device can select the DM-RS pattern. Since the second DM-RS pattern only contains one DM-RS pattern, the first-order SCI may or may not indicate the DM-RS pattern selected by the first terminal device. For the terminal device as the receiving end (hereinafter referred to as the second terminal device), when the second terminal device successfully detects the PSCCH on the PSCCH resources (i.e., symbol 1 and symbol 2) corresponding to the first candidate transmission start symbol, it can be determined that the first terminal device performs side transmission starting from the first candidate transmission start symbol, and according to the configuration information, it can be determined that the first candidate transmission start symbol corresponds to 3 available DM-RS patterns. Furthermore, the second terminal device can determine the corresponding DM-RS pattern based on the DM-RS pattern indication information in the first-order SCI. When the second terminal device successfully detects the PSCCH on the PSCCH resources corresponding to the second candidate transmission start symbol (i.e., symbol 7 and symbol 8), it can be determined that the first terminal device starts side transmission from the second candidate transmission start symbol, and according to the configuration information, it can be determined that the candidate transmission start position corresponds to 1 available DM-RS pattern, i.e., the DM-RS pattern 4 mentioned above.

[0216] In some implementations, if the first terminal device starts sideways transmission from the first candidate transmission start symbol, the number of information bits included in the DM-RS information field (which can be used to carry DM-RS pattern indication information) in the first-order SCI is determined based on the number of DM-RS patterns included in the first DM-RS pattern and / or the number of DM-RS patterns included in the second DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern According to N pattern1 and / or N pattern2 Determine, where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission starting position configured, N pattern2 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured. For example, N pattern =N pattern1 +N pattern2 ; or, N pattern =max(N pattern1 ,Npattern2 ). Represents log2(N pattern ) rounded up, max(N pattern1 ,N pattern2 ) means select N pattern1 and N pattern2 The maximum value in .

[0217] In some implementations, if the first terminal device starts sideline transmission from the second candidate transmission start symbol, the number of information bits included in the DM-RS information field (which can be used to carry DM-RS pattern indication information) in the second-order SCI is determined based on the number of DM-RS patterns included in the first DM-RS pattern and / or the number of DM-RS patterns included in the second DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern According to N pattern1 and / or N pattern2 Determine, where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission starting position configured, N pattern2 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured. For example, N pattern =N pattern1 +N pattern2 ; or, N pattern =max(N pattern1 ,N pattern2 ). Represents log2(N pattern ) rounded up, max(N pattern1 ,N pattern2 ) means select N pattern1 and N pattern2 The maximum value in .

[0218] A specific example is given below.

[0219] First, it can be determined based on the configuration information that the time slot includes a first candidate transmission start symbol and a second candidate transmission start symbol, corresponding to symbol 0 and symbol 6, respectively. For the first candidate transmission start symbol 0, the number of symbols available for sideline transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) can be used for sideline transmission. For the second candidate transmission start symbol 6, the number of symbols available for sideline transmission in the time slot is 7 (excluding the last GP symbol in the time slot), that is, all symbols starting from symbol 6 in the time slot (excluding the last GP symbol) can be used for sideline transmission. The number of symbols occupied by the PSCCH in the resource pool is 2. The resource pool configuration information may include first configuration information and second configuration information, which are respectively used to configure the first DM-RS pattern (corresponding to the first candidate transmission start symbol 0) and the second DM-RS pattern (corresponding to the second candidate transmission start symbol 6).

[0220] The first DM-RS pattern configured by the first configuration information may include, for example, three DM-RS patterns, each of which includes two DM-RS symbols (hereinafter referred to as DM-RS pattern 1), three DM-RS symbols (hereinafter referred to as DM-RS pattern 2), and four symbols (hereinafter referred to as DM-RS pattern 3). As shown in Table 2 above, the relative positions of the symbols in DM-RS pattern 1 relative to the first sideline transmission start symbol are 3 and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 1 are located at symbols 3 and 10. The relative positions of the symbols in DM-RS pattern 2 relative to the first sideline transmission start symbol are 1, 6, and 11, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 2 are located at symbols 1, 6, and 11. The relative positions of the symbols in DM-RS pattern 3 relative to the first sideline transmission start symbol are 1, 4, 7, and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 3 are located at symbols 1, 4, 7, and 10. The position arrangement of DM-RS pattern 1 to DM-RS pattern 3 in the time slot can be seen in (a)-(c) of Figure 26.

[0221] The second DM-RS pattern configured by the second configuration information may include, for example, one DM-RS pattern. This DM-RS pattern includes two DM-RS symbols (hereinafter referred to as DM-RS pattern 4). As shown in Table 2 above, the relative positions of the symbols in DM-RS pattern 4 relative to the first sideline transmission start symbol are 1 and 5, respectively. Since the first sideline transmission start symbol is symbol 6, the symbols in DM-RS pattern 4 are located at symbols 7 and 11. The position arrangement of DM-RS pattern 4 in the time slot can be seen in (d) of Figure 26.

[0222] Since the first DM-RS pattern includes three DM-RS patterns and the second DM-RS pattern includes one DM-RS pattern, the first DM-RS pattern and the second DM-RS pattern include a total of four possible DM-RS patterns. The DM-RS information field in the first-order SCI may include two bits, each indicating the four possible DM-RS patterns. The first DM-RS pattern corresponds to the first to third values ​​of the two bits, and the second DM-RS pattern corresponds to the fourth value of the two bits.

[0223] When the first terminal device performs side transmission starting from the first candidate transmission start symbol, the first terminal device can select a DM-RS pattern from DM-RS pattern 1 to DM-RS pattern 3, and indicate the selected DM-RS pattern in the first-order SCI, that is, set the value of the DM-RS information field of the first-order SCI to one of the above-mentioned first to third values. When the first terminal device performs side transmission starting from the second candidate transmission start symbol, the second DM-RS pattern corresponding to the candidate transmission start position contains only one DM-RS pattern, that is, the DM-RS pattern 4 mentioned above. Therefore, the first terminal device can select the DM-RS pattern and indicate the selected DM-RS pattern in the first-order SCI, that is, set the value of the DM-RS information field of the first-order SCI to the above-mentioned fourth value. For the terminal device serving as the receiving end (hereinafter referred to as the second terminal device), when the second terminal device successfully detects the PSCCH on the PSCCH resources corresponding to the first candidate transmission start symbol (i.e., symbol 1 and symbol 2), it can be determined that the first terminal device performs side transmission starting from the first candidate transmission start symbol, and according to the configuration information, it can be determined that the first candidate transmission start symbol corresponds to 3 available DM-RS patterns. Furthermore, the second terminal device can determine the corresponding DM-RS pattern according to the DM-RS pattern indication information in the first-order SCI. When the second terminal device successfully detects the PSCCH on the PSCCH resources corresponding to the second candidate transmission start symbol (i.e., symbol 7 and symbol 8), it can be determined that the first terminal device performs side transmission starting from the second candidate transmission start symbol, and according to the configuration information, it can be determined that the candidate transmission start position corresponds to 1 available DM-RS pattern, i.e., the DM-RS pattern 4 mentioned above.

[0224] Method 2 for determining the second DM-RS pattern: determining based on the first DM-RS pattern

[0225] In some implementations, the first DM-RS pattern may be obtained by the first terminal device from resource pool configuration information. For example, the resource pool configuration information may include third configuration information, where the third configuration information is used to configure the first DM-RS pattern.

[0226] In some implementations, the second DM-RS pattern is determined based on a first relative position. The first relative position may be determined based on a relative position of a DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol. For example, the first relative position may represent the number of symbols that differ between the DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

[0227] In some implementations, determining the second DM-RS pattern based on the first relative position may include: determining a symbol index corresponding to the second DM-RS pattern based on the first relative position and the second candidate transmission start symbol. For example, if the first DM-RS pattern includes two DM-RS symbols, and the symbol intervals between the two DM-RS symbols and the first candidate transmission start symbol are m and n, respectively, and the symbol index of the second candidate transmission start symbol is x, then the symbol index corresponding to the second DM-RS pattern may be x+m and x+n. If a symbol index among the above symbol indices is greater than or equal to the symbol index of the last symbol in a time slot, then the symbol index may be removed from the symbol index corresponding to the second DM-RS pattern.

[0228] In some implementations, the index of the second DM-RS pattern may be determined based on the index of the first DM-RS pattern. For example, the index of the second DM-RS pattern is the same as the index of the first DM-RS pattern.

[0229] In some implementations, the resource pool configuration information may only configure the DM-RS pattern corresponding to the first candidate transmission start symbol (i.e., the first DM-RS pattern), and not configure the DM-RS pattern corresponding to the second candidate transmission start symbol (i.e., the second DM-RS pattern).

[0230] In some implementations, if the first terminal device starts sideways transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate an index associated with the first DM-RS pattern.

[0231] In some implementations, if the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern. In other words, regardless of whether the first terminal device starts sideline transmission from the first candidate transmission start symbol or the second candidate transmission start symbol, the first-order SCI can be used to indicate the index associated with the first DM-RS pattern.

[0232] In some implementations, if the first terminal device starts sideways transmission from the first candidate transmission start symbol, the number of information bits included in the DM-RS information field (which can be used to carry DM-RS pattern indication information) in the first-order SCI is determined based on the number of DM-RS patterns included in the first DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured, Represents log2(N pattern1 ) rounded up.

[0233] In some implementations, if the first terminal device starts sideways transmission from the second candidate transmission start symbol, the number of information bits included in the DM-RS information field (which can be used to carry DM-RS pattern indication information) in the first-order SCI is determined based on the number of DM-RS patterns included in the first DM-RS pattern. For example, the number of information bits included in the DM-RS information field is where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured, Represents log2(N pattern1 ) rounded up.

[0234] A specific example is given below.

[0235] First, it can be determined based on the configuration information that the time slot includes the first candidate transmission start symbol and the second candidate transmission start symbol, which correspond to symbol 0 and symbol 6, respectively. For the first candidate transmission start symbol 0, the number of symbols available for sideline transmission in the time slot is 13 (excluding the last GP symbol in the time slot), that is, all symbols in the time slot (excluding the last GP symbol) can be used for sideline transmission. For the second candidate transmission start symbol 6, the number of symbols available for sideline transmission in the time slot is 7 (excluding the last GP symbol in the time slot), that is, all symbols starting from symbol 6 in the time slot (excluding the last GP symbol) can be used for sideline transmission. The number of symbols occupied by the PSCCH in the resource pool is 2. The resource pool configuration information only includes the configuration information for configuring the first DM-RS pattern (that is, the third configuration information mentioned above), and does not include the configuration information for configuring the second DM-RS pattern.

[0236] The first DM-RS pattern configured by the third configuration information may, for example, include three DM-RS patterns, each of which includes two DM-RS symbols (hereinafter referred to as DM-RS pattern 1), three DM-RS symbols (hereinafter referred to as DM-RS pattern 2), and four symbols (hereinafter referred to as DM-RS pattern 3). As shown in Table 2 above, the relative positions of the symbols in DM-RS pattern 1 relative to the first sideline transmission start symbol are 3 and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 1 are located at symbols 3 and 10. The relative positions of the symbols in DM-RS pattern 2 relative to the first sideline transmission start symbol are 1, 6, and 11, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 2 are located at symbols 1, 6, and 11. The relative positions of the symbols in DM-RS pattern 3 relative to the first sideline transmission start symbol are 1, 4, 7, and 10, respectively. Since the first sideline transmission start symbol is symbol 0, the symbols in DM-RS pattern 3 are located at symbols 1, 4, 7, and 10. The position arrangement of DM-RS pattern 1 to DM-RS pattern 3 in the time slot can be seen in (a)-(c) of Figure 27.

[0237] When the first terminal device performs side transmission starting from the first candidate transmission start symbol, the first terminal device can select a DM-RS pattern from DM-RS pattern 1 to DM-RS pattern 3 corresponding to the first candidate transmission start position, and indicate the selected DM-RS pattern in the first-order SCI. When the first terminal device performs side transmission starting from the second candidate transmission start symbol, the first terminal device can select a DM-RS pattern from DM-RS pattern 1 to DM-RS pattern 3, and determine the position of the DM-RS symbol corresponding to the transmission starting from the second candidate transmission start symbol based on the relative position between the DM-RS symbol in the selected DM-RS pattern and the first side transmission start symbol. For example, when the DM-RS pattern selected by the first terminal device is DM-RS pattern 1, according to Table 2 in the above text, the relative positions of the two DM-RS symbols in DM-RS pattern 1 relative to the second candidate transmission start symbol (i.e., symbol 6) are 3 and 10. Therefore, the first terminal device can determine that when transmitting from the second candidate transmission start symbol, the DM-RS symbol can be transmitted on symbol 9 and symbol 16. However, since symbol 16 no longer belongs to the current time slot, when transmission starts from the second candidate transmission start symbol, the first terminal device will only transmit DM-RS on symbol 9, as shown in DM-RS pattern 1' in (d) of Figure 27. For another example, when the DM-RS pattern selected by the first terminal device is DM-RS pattern 2, according to Table 2 in the previous text, the relative positions of the three DM-RS symbols in DM-RS pattern 2 relative to the second candidate transmission start symbol (i.e., symbol 6) are 1, 6, and 11. Therefore, the first terminal device can determine that when transmission starts from the second candidate transmission start symbol, DM-RS symbols can be transmitted on symbols 7, 12, and 17. However, since symbol 17 no longer belongs to the current time slot, when transmission starts from the second candidate transmission start symbol, the first terminal device will only transmit DM-RS on symbols 7 and 12, as shown in DM-RS pattern 2' in (e) of Figure 27. For another example, when the DM-RS pattern selected by the first terminal device is DM-RS pattern 3, according to Table 2 above, the relative positions of the four DM-RS symbols in DM-RS pattern 3 relative to the second candidate transmission start symbol (i.e., symbol 6) are 1, 4, 7, and 10. Therefore, the first terminal device can determine that when transmission starts from the second candidate transmission start symbol, DM-RS symbols can be transmitted on symbols 7, 10, 13, and 16. However, since symbol 16 no longer belongs to the current time slot and symbol 13 is a GP symbol, no data or signal is transmitted on this symbol. Therefore, when transmission starts from the second candidate transmission start symbol, the first terminal device will only transmit DM-RS on symbols 7 and 10, as shown in DM-RS pattern 3' in (f) of Figure 27.

[0238] When the sideline transmission starts from the first candidate transmission start symbol, the number of information bits included in the DM-RS information field in the first-order SCI is where N pattern1 Indicates the total number of DM-RS patterns corresponding to the first candidate transmission start position configured. The corresponding DM-RS patterns are DM-RS pattern 1 to DM-RS pattern 3 in Figure 27. When the sideline transmission starts from the second candidate transmission start symbol, the number of information bits included in the DM-RS information field in the first-order SCI is also The corresponding DM-RS patterns are shown as DM-RS pattern 1 ′ to DM-RS pattern 3 ′ in FIG. 27 .

[0239] The previous section discussed the impact of introducing multiple candidate transmission start symbols on signal / channel mapping, DM-RS pattern configuration, and / or indication. The introduction of multiple candidate transmission start symbols may also impact the TBS determination method. This issue is discussed below.

[0240] Regardless of which candidate transmission start symbol the first terminal device starts transmitting from, the transmission block size TBS corresponding to the PSSCH should be the same, otherwise the receiving end will not be able to detect. From the previous description in the "Sideline TBS" section, it can be seen that TBS is determined based on some parameters. The introduction of multiple candidate transmission start symbols may have an impact on certain parameters. In this case, how TBS should be determined is a problem that needs to be solved. For example, the number of symbols used for sideline transmission corresponding to the first candidate transmission start symbol and the second candidate transmission start symbol is different. At this time, it is necessary to determine the method for determining the "number of symbols used for sideline transmission" to ensure that the transmission block size TBS corresponding to the PSSCH remains unchanged.

[0241] In response to the above problems, the embodiment of the present application is described in detail below in conjunction with Figure 28.

[0242] Referring to Figure 28, in step S2810, the first terminal device determines the TBS corresponding to the PSSCH in the first time slot. The first information mentioned here includes at least a first candidate transmission start symbol and a second candidate transmission start symbol having different time domain positions. The description of the first candidate transmission start symbol and the second candidate transmission start symbol is as described above and will not be repeated here.

[0243] The TBS may be determined based on a variety of parameters. For example, the TBS may be determined based on one or more of a first parameter (indicating the number of sidebar symbols), a second parameter (indicating the number of REs), and a third parameter (indicating the number of PRBs).

[0244] The first parameter can also be called the first symbol number, and the first parameter can be used In some implementations, the first parameter may be determined based on one or more of the following: pre-configuration information; network configuration information (i.e., configuration information of a network device); indication information sent by a second terminal device; the number of symbols used for side transmission determined based on a first candidate transmission start symbol; and the number of symbols used for side transmission determined based on a second candidate transmission start symbol. The "symbols used for side transmission" mentioned in various embodiments of the present application may be replaced with "symbols available for side transmission."

[0245] In some implementations, the symbols for sideline transmission determined based on the first candidate transmission start symbol may not include one or more of the following: the last symbol for sideline transmission in the first time slot; the first candidate transmission start symbol; and the second candidate transmission start symbol. For example, the symbols for sideline transmission determined based on the first candidate transmission start symbol do not include the last symbol for sideline transmission in the first time slot, which may serve as a GP symbol. In another example, the symbols for sideline transmission determined based on the first candidate transmission start symbol do not include the first candidate transmission start symbol, which may serve as an AGC symbol and is typically used to carry repetitions of data in other symbols. Therefore, this symbol may not be considered when determining the TBS. In another example, the symbols for sideline transmission determined based on the first candidate transmission start symbol do not include the second candidate transmission start symbol, which may serve as an AGC symbol and is typically used to carry repetitions of data in other symbols. Therefore, this symbol may not be considered when determining the TBS.

[0246] As a specific example, the first parameter may satisfy: sl-LengthSymbols represents the number of symbols used for sidelink transmission in a time slot, and this parameter can be determined based on the first candidate transmission start symbol in a time slot. Removing two symbols from this parameter can indicate that the first parameter does not include the last symbol in the time slot and the first candidate transmission start symbol.

[0247] As another specific example, the first parameter may satisfy: sl-LengthSymbols represents the number of symbols used for sidelink transmission in a time slot, and this parameter can be determined based on the first candidate transmission start symbol in a time slot. Removing three symbols from this parameter indicates that the first parameter does not include the last symbol in the time slot, the first candidate transmission start symbol, and the second candidate transmission start symbol.

[0248] In some implementations, the symbols for sideline transmission determined based on the second candidate transmission start symbol may not include one or more of: the last symbol for sideline transmission in the first time slot; and the second candidate transmission start symbol.

[0249] In some implementations, the indication information sent by the second terminal device mentioned above (used to determine the first parameter) can be referred to as the first indication information. The first indication information may include one or more bits. If the value of the one or more bits is a first value, it means that the first parameter is determined based on a first quantity (referring to the number of symbols used for side transmission determined based on the first candidate transmission start symbol, and the first quantity is used hereinafter); if the value of the one or more bits is a second value, it means that the first parameter is determined based on a second quantity (referring to the number of symbols used for side transmission determined based on the second candidate transmission start symbol, and the second quantity is used hereinafter).

[0250] In some implementations, the first indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the first parameter is determined based on an average of the first quantity and the second quantity; if the value of the one or more bits is a second value, it indicates that the first parameter is determined based on the first quantity.

[0251] In some implementations, the first indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the first parameter is determined based on an average of the first quantity and the second quantity; if the value of the one or more bits is a second value, it indicates that the first parameter is determined based on the second quantity.

[0252] In some implementations, the first indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the first parameter is determined based on an average of the first quantity and the second quantity; if the value of the one or more bits is a second value, it indicates that the first parameter is determined based on higher-layer configuration information (such as RRC signaling).

[0253] In some implementations, the first terminal device may obtain first mapping relationship information. The mapping relationship information may be used to indicate a mapping relationship between an index and a number of symbols. The first indication information may indicate a first index value recorded in the first mapping relationship information, and a value of the first parameter may be determined based on the first index value and the first mapping relationship information.

[0254] In some implementations, the first indication information may be carried by an SCI (such as a first-order SCI or a second-order SCI), a medium access control element (MAC CE), or a PC5-RRC.

[0255] In some implementations, the value of the first parameter may be equal to the first quantity.

[0256] In some implementations, the value of the first parameter may be equal to the second quantity.

[0257] In some implementations, the value of the first parameter may be equal to the maximum value, minimum value, or average value of the first quantity and the second quantity.

[0258] In some implementations, if the symbol index corresponding to the second candidate transmission start symbol is greater than or equal to the first value or the first threshold, the value of the first parameter may be equal to the second quantity.

[0259] In some implementations, if the symbol index corresponding to the second candidate transmission start symbol is less than the first value or the first threshold, the value of the first parameter may be equal to the first quantity.

[0260] In some implementations, if the symbol index corresponding to the second candidate transmission start symbol is less than or equal to a second value or a second threshold, the value of the first parameter may be equal to the second quantity.

[0261] In some implementations, if the symbol index corresponding to the second candidate transmission start symbol is greater than a second value or a second threshold, the value of the first parameter may be equal to the first quantity.

[0262] In some implementations, if the second number is greater than or equal to a third value or a third threshold, the value of the first parameter may be equal to the second number.

[0263] In some implementations, if the second number is less than a third value or a third threshold, the value of the first parameter may be equal to the first number.

[0264] In some implementations, if the second number is less than or equal to a fourth value or a fourth threshold, the value of the first parameter may be equal to the second number.

[0265] In some implementations, if the second number is greater than a fourth value or a fourth threshold, the value of the first parameter may be equal to the first number.

[0266] In some implementations, one or more of the following is determined based on pre-configuration information or network configuration information: a first value, a first threshold, a second value, a second threshold, a third value, a third threshold, a fourth value, and a fourth threshold.

[0267] In some implementations, the first parameter can be determined based on pre-configuration information or network device configuration information. For example, the resource pool configuration information may include first information that can be used to determine the first parameter. The first terminal device can determine the value of the first parameter based on the first information. For example, the first information indicates a fifth value, and the value of the first parameter is equal to the fifth value. For another example, the first information indicates a sixth value, and the value of the first parameter is determined based on the sixth value and the first quantity, or the value of the first parameter is determined based on the sixth value and the second quantity. For example, the value of the first parameter is recorded as V1, then or or or, Wherein, K6 represents the sixth value, N1 represents the first number, and N2 represents the second number. Indicates rounding up operation. Indicates a floor operation.

[0268] In some embodiments, the first terminal device may determine a first parameter and then determine the TBS based on the first parameter. The first terminal device may then send second indication information to the second terminal device, where the second indication information may be used to determine the first parameter. After receiving the second indication information sent by the first terminal device, the second terminal device may determine the first parameter based on the second indication information. Optionally, the second indication information may be carried in a first-order SCI, a second-order SCI, or a MAC CE; optionally, the second indication information may be carried in a PC5-RRC.

[0269] The second parameter mentioned above can be used In some embodiments, the second parameter may be determined based on the number of REs of the DM-RS or the number of reference REs of the DM-RS.

[0270] In some embodiments, the second parameter may be determined based on one or more of the following: pre-configuration information; configuration information of a network device; indication information sent by a second terminal device; a number of REs determined based on a first DM-RS pattern; and a number of REs determined based on a second DM-RS pattern. The first DM-RS pattern corresponds to the first candidate transmission start symbol, and the second DM-RS pattern corresponds to the second candidate transmission start symbol.

[0271] In some embodiments, the second parameter can be determined based on the "number of REs determined based on the first DM-RS pattern". For example, the value of the second parameter can be equal to the "number of REs determined based on the first DM-RS pattern". As an example, assume that a first candidate transmission start symbol and a second candidate transmission start symbol are configured in the time slot. The first DM-RS pattern corresponding to the first candidate transmission start symbol includes 2 DM-RS symbols, 3 DM-RS symbols and 4 DM-RS symbols; the second DM-RS pattern corresponding to the second candidate transmission start symbol includes 2 DM-RS symbols. The second parameter can be determined based on the average number of DM-RS REs of the first DM-RS pattern. Referring to the last row in Table 1 above, it can be seen that the average number of DM-RS REs of the first DM-RS pattern is 18, so the value of the second parameter can also be 18.

[0272] In some embodiments, the second parameter can be determined based on the "number of REs determined based on the second DM-RS pattern". For example, the value of the second parameter can be equal to the "number of REs determined based on the second DM-RS pattern". As an example, assume that a first candidate transmission start symbol and a second candidate transmission start symbol are configured in the time slot. The first DM-RS pattern corresponding to the first candidate transmission start symbol includes 2 DM-RS symbols, 3 DM-RS symbols and 4 DM-RS symbols; the second DM-RS pattern corresponding to the second candidate transmission start symbol includes 2 DM-RS symbols. The second parameter can be determined based on the average number of DM-RS REs of the second DM-RS pattern. Referring to the first row in Table 1 above, it can be seen that the average number of DM-RS REs of the second DM-RS pattern is 12, so the value of the second parameter can also be 12.

[0273] In some embodiments, the second parameter may be determined based on the maximum, minimum, or average value of the third number (i.e., the "number of REs determined based on the first DM-RS pattern" mentioned above) and the fourth number (i.e., the "number of REs determined based on the second DM-RS pattern" mentioned above). For example, the value of the second parameter may be equal to the maximum, minimum, or average value of the third and fourth numbers.

[0274] For example, the second parameter can satisfy: in, Represents the second parameter, represents the third quantity, Represents the fourth quantity, and min() represents the minimum value operation.

[0275] For example, the second parameter can satisfy: in, Represents the second parameter, represents the third quantity, Represents the fourth quantity, and max() represents the maximum value operation.

[0276] For example, the second parameter can satisfy: in, Represents the second parameter, represents the third quantity, Indicates the fourth quantity.

[0277] As an example, assume that a first candidate transmission start symbol and a second candidate transmission start symbol are configured in a time slot. The first DM-RS pattern corresponding to the first candidate transmission start symbol includes 2 DM-RS symbols, 3 DM-RS symbols, and 4 DM-RS symbols; the second DM-RS pattern corresponding to the second candidate transmission start symbol includes 2 DM-RS symbols. The second parameter can be determined based on the average number of DM-RS REs of the first DM-RS pattern and the average number of DM-RS REs of the second DM-RS pattern. Referring to the last row of Table 1 in the previous text, it can be seen that the average number of DM-RS REs of the first DM-RS pattern is 18; referring to the first row of Table 1, it can be seen that the average number of DM-RS REs of the second DM-RS pattern is 12. The value of the second parameter can be equal to the average of the two, that is, 15.

[0278] In some implementations, the second parameter may be determined based on preconfigured information or network device configuration information. For example, the resource pool configuration information includes second information for determining the value of the second parameter. When determining the TBS, the first terminal device may determine the value of the second parameter based on the second information.

[0279] In some implementations, the second parameter may be determined based on indication information sent by the second terminal device. This indication information may be referred to as third indication information. This third indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the second parameter is determined based on the third quantity; if the value of the one or more bits is a second value, it indicates that the first parameter is determined based on the fourth quantity.

[0280] In some implementations, the third indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the second parameter is determined based on an average of the third quantity and the fourth quantity; if the value of the one or more bits is a second value, it indicates that the second parameter is determined based on the third quantity.

[0281] In some implementations, the third indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the second parameter is determined based on an average of the third quantity and the fourth quantity; if the value of the one or more bits is a second value, it indicates that the second parameter is determined based on the fourth quantity.

[0282] In some implementations, the third indication information may include one or more bits. If the value of the one or more bits is a first value, it indicates that the second parameter is determined based on an average of the third quantity and the fourth quantity; if the value of the one or more bits is a second value, it indicates that the second parameter is determined based on higher-layer configuration information (such as RRC signaling).

[0283] In some implementations, the first terminal device may obtain first mapping relationship information. The mapping relationship information may be used to indicate a mapping relationship between an index and a number of symbols. The third indication information may indicate a first index value recorded in the first mapping relationship information, and a value of the second parameter may be determined based on the first index value and the first mapping relationship information.

[0284] In some implementations, the third indication information may be carried by SCI (such as first-order SCI or second-order SCI), MAC CE, or PC5-RRC.

[0285] As mentioned above, the method for determining the second parameter can be related to the first DM-RS pattern (the DM-RS pattern corresponding to the first candidate transmission start symbol) and the second DM-RS pattern (the DM-RS pattern corresponding to the second candidate transmission start symbol). For example, the first DM-RS pattern and the second DM-RS pattern can be configured using different configuration information. Alternatively, the second DM-RS pattern can be determined based on the first DM-RS pattern. For the configuration and / or indication method of the first DM-RS pattern and the second DM-RS pattern, please refer to the description above and will not be repeated here.

[0286] The third parameter mentioned above can be n PRB In some implementations, the third parameter may be determined based on a reference number of PRBs. The reference number of PRBs may be determined based on a number of PRBs corresponding to a subchannel or a number of PRBs corresponding to a comb tooth.

[0287] In some implementations, the third parameter may be determined based on one or more of the following information: sub-channel information; comb information; pre-configuration information; and network configuration information.

[0288] In some implementations, the subchannel information may include one or more of the following: subchannel size; the average number of PRBs included in the subchannel; the maximum number of PRBs included in the subchannel; the minimum number of PRBs included in the subchannel; the number of subchannels corresponding to the frequency domain resources of the PSSCH; and the number of comb teeth included in the subchannel.

[0289] In some implementations, the comb teeth information may include: the average number of PRBs included in the comb teeth; the maximum number of PRBs included in the comb teeth; the minimum number of PRBs included in the comb teeth; and the number of comb teeth corresponding to the frequency domain resources of the PSSCH.

[0290] In some implementations, the third parameter may be determined based on the number of PRBs corresponding to the frequency domain resources of the PSSCH. For example, the third parameter may be equal to the number of PRBs corresponding to the frequency domain resources of the PSSCH.

[0291] In some implementations, the third parameter may be determined based on a sub-channel size. For example, the third parameter may satisfy: in, Indicates the subchannel size, that is, the number of PRBs included in a subchannel determined according to the configuration information. N sub-chanel Indicates the number of subchannels. This parameter is determined based on the number of subchannels corresponding to the frequency domain resources of the PSSCH.

[0292] In some embodiments, the third parameter is determined based on the number or average number of PRBs included in the comb tooth. The comb tooth may represent a comb tooth in a resource block set (RB set); or, the comb tooth may also represent a comb tooth in multiple resource block sets.

[0293] In some implementations, the third parameter may be determined based on the number of PRBs included in the comb teeth. For example, the third parameter may satisfy: in, Indicates the number of comb teeth included in the sub-channel. This parameter is determined based on pre-configuration information or network configuration information. Indicates the number of PRBs included in a comb tooth. This parameter can be determined based on the maximum, minimum, or average value of the number of PRBs included in the comb tooth, or the parameter is determined based on pre-configuration information or network configuration information. N sub-chane Indicates the number of subchannels. This parameter is determined based on the number of subchannels corresponding to the frequency domain resources of the PSSCH.

[0294] In some embodiments, the third parameter is determined based on preconfigured information or network configuration information. For example, the resource pool configuration information may include third information for determining the value of the third parameter. For example, the third information included in the resource pool configuration information indicates the number of PRBs corresponding to a subchannel or a comb tooth. That is, the number of PRBs corresponding to a subchannel or a comb tooth may correspond to a reference number of PRBs. The value of the third parameter can be determined based on the reference number of PRBs.

[0295] In addition to the first, second, and third parameters mentioned above, the TBS corresponding to the PSSCH can also be determined based on other parameters. The following describes other parameters that may be used to determine the TBS.

[0296] In some implementations, TBS can be determined based on a fourth parameter. The fourth parameter can be The fourth parameter may be determined based on the number of REs occupied by the first-order SCI. Further, in some implementations, the number of REs occupied by the first-order SCI may include REs occupied by DM-RSs of the PSCCH.

[0297] In some implementations, TBS can be determined based on a fifth parameter. The fifth parameter can be Indicates. The fifth parameter can be determined based on the number of REs occupied by the second-order SCI. It should be noted that when the data on the second candidate transmission start symbol is a duplicate of the data on other symbols (or a copy of the data on other symbols), and the data on the other symbols include the second-order SCI, the fifth parameter may not include the number of REs occupied by the second-order SCI in the second candidate transmission start symbol. For example, in (b) of Figure 24, when calculating the number of REs occupied by the second-order SCI, the number of REs used to map the second-order SCI on symbols 1 to 3 and symbols 5 to 6 can be counted, but the number of REs used to map the second-order SCI on symbol 4 can be not counted because the data on symbol 4 is a duplicate of the data on symbol 5.

[0298] In some implementations, TBS may be determined based on a sixth parameter. The sixth parameter may be N′ RE The sixth parameter may be determined based on one or more of the following: the first parameter (see the above description), the second parameter (see the above description), the seventh parameter, the eighth parameter, and the ninth parameter.

[0299] The sixth parameter is determined based on the first parameter and / or the second parameter. It can be understood that the sixth parameter is first determined based on the first parameter and / or the second parameter, and then the TBS is determined based on the sixth parameter.

[0300] The seventh parameter can be used The seventh parameter may refer to the number of subcarriers in a PRB.

[0301] The eighth parameter can be used The eighth parameter may indicate a reference value for the number of symbols occupied by the PSFCH, the specific value of which is indicated by the "PSFCH overhead indication" field in the first-order SCI. The value of the eighth parameter may be 0 or 3.

[0302] The ninth parameter can be used Indicates. The value of the ninth parameter can be determined or configured by an RRC layer parameter. For example, the value of the ninth parameter can be determined according to the parameter sl-X-Overhead. sl-X-Overhead can be used to represent the overhead of PT-RS and CSI-RS, or a reference value of the number of REs occupied by PT-RS and CSI-RS.

[0303] An example of a more specific method of determining TBS is given below.

[0304] The first terminal device can be based on N RE Determine TBS. N RE It can represent the reference value of RE quantity. RE Can be based on N' RE 、n PRB , as well as One or more of N′ RE Corresponding to the sixth parameter mentioned above, n PRB Corresponding to the third parameter mentioned above, Corresponding to the fourth parameter mentioned above, Corresponding to the fifth parameter mentioned above, the meaning and determination method of these parameters can be found in the previous description and will not be repeated here.

[0305] For example, N RE Can satisfy:

[0306] Furthermore, N′ RE Can satisfy: in, Corresponding to the seventh parameter mentioned above, Corresponding to the first parameter mentioned above, Corresponding to the eighth parameter mentioned above, Corresponding to the ninth parameter mentioned above, The meaning and determination method of these parameters can be found in the above description and will not be repeated here.

[0307] It should be noted that the symbols mentioned above may refer to time domain symbols or sidelink symbols, for example, may refer to OFDM symbols.

[0308] The method embodiment of the present application is described in detail above in conjunction with Figures 1 to 28. The device embodiment of the present application is described in detail below in conjunction with Figures 29 to 32. It should be understood that the description of the method embodiment corresponds to the description of the device embodiment. Therefore, for parts not described in detail, reference can be made to the above method embodiment.

[0309] Figure 29 is a schematic diagram of the structure of a terminal device provided by an embodiment of the present application. The terminal device 2900 shown in Figure 29 may be the first terminal device mentioned above.

[0310] The terminal device 2900 may include a communication module 2910. The communication module 2910 may be configured to perform sidelink transmission in a first time slot; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein the second candidate transmission start symbol is not used for mapping a first signal / channel corresponding to a transmission based on the first candidate transmission start symbol.

[0311] In some implementations, the first signal / channel includes one or more of: a first PSSCH; a first PSCCH; a first CSI-RS; a DM-RS of the first PSSCH; and a second-order SCI.

[0312] In some implementations, if the DM-RS pattern selected by the first terminal device includes a first DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol, the first DM-RS symbol is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

[0313] In some implementations, the first terminal device does not expect the selected DM-RS pattern to include a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol; or, the first terminal device does not expect the received DM-RS pattern to include a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol.

[0314] In some implementations, the terminal device 2900 also includes: a first acquisition module, used to obtain first configuration information, the first configuration information is used to configure the DM-RS pattern available in the resource pool, and the DM-RS pattern configured by the first configuration information does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol.

[0315] In some implementations, the symbol index corresponding to the second candidate transmission start symbol is greater than the symbol index corresponding to the last symbol among the symbols used to map the first PSCCH.

[0316] In some implementations, the symbol index corresponding to the first candidate transmission start symbol is I1, the symbol index corresponding to the second candidate transmission start symbol is I2, and the number of symbols corresponding to the first PSCCH is A; wherein, I2>I1+A, or I2≥I1+A+1.

[0317] In some implementations, if the symbol used to map the second-order SCI coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped and mapping of the second-order SCI continues from the symbol following the second candidate transmission start symbol.

[0318] In some implementations, if the symbol used to map the first PSSCH coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped and mapping of the first PSSCH continues from the symbol following the second candidate transmission start symbol.

[0319] In some implementations, the terminal device 2900 also includes: a second acquisition module, used to generate or obtain second configuration information, the second configuration information is used to configure the symbol of the first CSI-RS, and the symbol of the first CSI-RS does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol.

[0320] In some implementations, if the symbol used to map the first CSI-RS coincides with the time domain position of the second candidate transmission start symbol, the symbol of the first CSI-RS is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

[0321] In some implementations, the second candidate transmission start symbol is used to carry repeated data of data in a symbol preceding or following the second candidate transmission start symbol.

[0322] Figure 30 is a schematic diagram of the structure of a terminal device provided in another embodiment of the present application. The terminal device 3000 in Figure 30 may be the first terminal device mentioned above.

[0323] The terminal device 3000 may include a communication module 3010. The communication module 3010 may be configured to perform sidelink transmission in a first time slot; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; wherein the first candidate transmission start symbol corresponds to a first DM-RS pattern, the second candidate transmission start symbol corresponds to a second DM-RS pattern, and the second DM-RS pattern is determined based on one or more of: resource pool configuration information; and the first DM-RS pattern.

[0324] In some implementations, the second DM-RS pattern is determined based on resource pool configuration information, including: the resource pool configuration information includes first configuration information and second configuration information, the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

[0325] In some implementations, if the first terminal device starts sideline transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the first DM-RS pattern; or, if the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the second DM-RS pattern.

[0326] In some implementations, the second DM-RS pattern is determined based on the first DM-RS pattern, including: the second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on the relative position of the DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

[0327] In some implementations, the symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

[0328] In some implementations, the index of the second DM-RS pattern is determined based on the index of the first DM-RS pattern; or, the index of the second DM-RS pattern is the same as the index of the first DM-RS pattern.

[0329] In some implementations, the terminal device 3000 further includes: a first acquisition module, configured to acquire resource pool configuration information, where the resource pool configuration information includes third configuration information, and the third configuration information is used to configure the first DM-RS pattern.

[0330] In some implementations, if the first terminal device starts sideline transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern; or, if the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern.

[0331] Figure 31 is a schematic diagram of the structure of a terminal device provided by an embodiment of the present application. The terminal device 3100 shown in Figure 31 can be the first terminal device mentioned above.

[0332] The terminal device 3100 may include a determination module 3110. The determination module 3110 may be configured to determine a transport block size corresponding to a PSSCH in a first time slot based on one or more of the following parameters: a first parameter representing the number of sidelink symbols; a second parameter representing the number of REs; and a third parameter representing the number of PRBs; wherein the first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol having different time domain positions.

[0333] In some implementations, the first parameter is determined based on one or more of: a number of symbols for side transmission determined based on the first candidate transmission start symbol; and a number of symbols for side transmission determined based on the second candidate transmission start symbol.

[0334] In some implementations, the symbols for side transmission determined based on the first candidate transmission start symbol do not include one or more of: the last symbol for side transmission in the first time slot; the first candidate transmission start symbol; and the second candidate transmission start symbol.

[0335] In some implementations, the symbols for sideline transmission determined based on the second candidate transmission start symbol do not include one or more of: the last symbol for sideline transmission in the first time slot; and the second candidate transmission start symbol.

[0336] In some implementations, the number of symbols for side transmission determined based on the first candidate transmission start symbol is a first number, the number of symbols for side transmission determined based on the second candidate transmission start symbol is a second number, and the first parameter is determined based on one or more of the following: the value of the first parameter is equal to the first number; the value of the first parameter is equal to the second number; the value of the first parameter is equal to the maximum value, minimum value or mean value of the first number and the second number; if the symbol index corresponding to the second candidate transmission start symbol is greater than or equal to the first threshold, the value of the first parameter is equal to the second number; if the symbol index corresponding to the second candidate transmission start symbol is less than the first threshold, the first parameter is equal to the second number. The value of the first parameter is equal to the first quantity; if the symbol index corresponding to the second candidate transmission start symbol is less than or equal to the second threshold, the value of the first parameter is equal to the second quantity; if the symbol index corresponding to the second candidate transmission start symbol is greater than the second threshold, the value of the first parameter is equal to the first quantity; if the second quantity is greater than or equal to the third threshold, the value of the first parameter is equal to the second quantity; if the second quantity is less than the third threshold, the value of the first parameter is equal to the first quantity; if the second quantity is less than or equal to the fourth threshold, the value of the first parameter is equal to the second quantity; and if the second quantity is greater than the fourth threshold, the value of the first parameter is equal to the first quantity.

[0337] In some implementations, the second parameter is determined based on one or more of: the number of REs determined based on a first DM-RS pattern; and the number of REs determined based on a second DM-RS pattern; wherein the first DM-RS pattern corresponds to the first candidate transmission start symbol, and the second DM-RS pattern corresponds to the second candidate transmission start symbol.

[0338] In some implementations, the terminal device 3100 further includes: a first acquisition module, configured to acquire first configuration information and second configuration information, wherein the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

[0339] In some implementations, the terminal device 3100 further includes: a second acquisition module, configured to acquire third configuration information, where the third configuration information is used to configure the first DM-RS pattern, and the second DM-RS pattern is determined based on the first DM-RS pattern.

[0340] In some implementations, the second DM-RS pattern is determined based on the first DM-RS pattern, including: the second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on the relative position of the DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

[0341] In some implementations, the symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

[0342] In some implementations, the second parameter is determined based on a maximum value, a minimum value, or an average value of a third number and a fourth number, wherein the third number is the number of REs determined based on the first DM-RS pattern, and the fourth number is the number of REs determined based on the second DM-RS pattern.

[0343] In some implementations, the first parameter and / or the second parameter are determined based on pre-configuration information or configuration information of the network device.

[0344] In some implementations, the first parameter and / or the second parameter are determined based on indication information sent by the second terminal device.

[0345] In some implementations, the indication information is carried via SCI, MAC CE or PC5-RRC.

[0346] In some implementations, the third parameter is determined based on one or more of the following information: subchannel information; comb information; pre-configuration information; and network configuration information.

[0347] In some implementations, the subchannel information includes one or more of the following: subchannel size; the average number of PRBs included in the subchannel; the maximum number of PRBs included in the subchannel; the minimum number of PRBs included in the subchannel; the number of subchannels corresponding to the frequency domain resources of the PSSCH; and the number of comb teeth included in the subchannel.

[0348] In some implementations, the comb teeth information includes: an average value of the number of PRBs included in the comb teeth; a maximum value of the number of PRBs included in the comb teeth; a minimum value of the number of PRBs included in the comb teeth; and the number of comb teeth corresponding to the frequency domain resources of the PSSCH.

[0349] Figure 32 is a schematic diagram of the structure of an apparatus according to an embodiment of the present application. The dotted lines in Figure 32 indicate that the unit or module is optional. Apparatus 3200 may be used to implement the method described in the above method embodiment. Apparatus 3200 may be a chip or a terminal device.

[0350] The device 3200 may include one or more processors 3210. The processor 3210 may support the device 3200 to implement the method described in the above method embodiment. The processor 3210 may be a general-purpose processor or a special-purpose processor. For example, the processor may be a central processing unit (CPU). Alternatively, the processor may be another general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, etc. The general-purpose processor may be a microprocessor or the processor may be any conventional processor, etc.

[0351] The apparatus 3200 may further include one or more memories 3220. The memories 3220 store programs that can be executed by the processor 3210, causing the processor 3210 to perform the methods described in the above method embodiments. The memories 3220 may be independent of the processor 3210 or integrated into the processor 3210.

[0352] The apparatus 3200 may further include a transceiver 3230. The processor 3210 may communicate with other devices or chips via the transceiver 3230. For example, the processor 3210 may transmit and receive data with other devices or chips via the transceiver 3230.

[0353] The present invention also provides a computer-readable storage medium for storing a program. The computer-readable storage medium can be applied to a terminal device provided in the present invention, and the program enables a computer to execute the method performed by the terminal device in each embodiment of the present invention.

[0354] The present application also provides a computer program product. The computer program product includes a program. The computer program product can be applied to the terminal device provided in the present application, and the program causes a computer to execute the method performed by the terminal device in each embodiment of the present application.

[0355] The embodiments of the present application also provide a computer program. The computer program can be applied to the terminal device provided in the embodiments of the present application, and the computer program enables a computer to execute the method executed by the terminal device in each embodiment of the present application.

[0356] It should be understood that the terms "system" and "network" in this application can be used interchangeably. In addition, the terms used in this application are only used to explain the specific embodiments of this application and are not intended to limit this application. The terms "first", "second", "third", and "fourth" in the specification and claims of this application and the accompanying drawings are used to distinguish different objects rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions.

[0357] In the embodiments of this application, the term "indication" may refer to a direct indication, an indirect indication, or an indication of an association. For example, "A indicates B" may refer to a direct indication of B, e.g., B can obtain information through A; it may refer to an indirect indication of B, e.g., A indicates C, e.g., B can obtain information through C; or it may refer to an association between A and B.

[0358] In the embodiment of the present application, "B corresponding to A" means that B is associated with A and B can be determined based on A. However, it should be understood that determining B based on A does not mean determining B based solely on A, but B can also be determined based on A and / or other information.

[0359] In the embodiments of the present application, the term "corresponding" may indicate a direct or indirect correspondence between the two, or an association relationship between the two, or a relationship between indication and indication, configuration and configuration, etc.

[0360] In the embodiments of the present application, "pre-definition" or "pre-configuration" may be implemented by pre-storing corresponding codes, tables, or other methods that can be used to indicate relevant information in a device (e.g., a terminal device and a network device). The present application does not limit the specific implementation method. For example, pre-definition may refer to information defined in a protocol.

[0361] In the embodiments of the present application, the “protocol” may refer to a standard protocol in the communications field, for example, it may include an LTE protocol, an NR protocol, and related protocols used in future communication systems, and the present application does not limit this.

[0362] In the embodiments of this application, the term "and / or" is simply a description of the association relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this document generally indicates that the related objects are in an "or" relationship.

[0363] In various embodiments of the present application, the size of the serial numbers of the above-mentioned processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.

[0364] In the several embodiments provided in this application, it should be understood that the disclosed systems, devices and methods can be implemented in other ways. For example, the device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.

[0365] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0366] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.

[0367] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. 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. When the computer program instructions are loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. The computer-readable storage medium can be any available medium that can be read by a computer or a data storage device such as a server or data center that includes one or more available media integrated therein. The available medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a digital versatile disc (DVD)), or a semiconductor medium (eg, a solid state disk (SSD)).

[0368] The above description is merely a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included in the scope of protection of this application. Therefore, the scope of protection of this application should be based on the scope of protection of the claims.

Claims

1. A side transmission method, characterized in that: include: The first terminal device performs sideline transmission in the first time slot; The first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; The second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol.

2. The method according to claim 1, characterized in that The first signal / channel includes one or more of the following: First physical sidelink shared channel PSSCH; First physical sideline control channel PSCCH; a first channel state information reference signal CSI-RS; a demodulation reference signal DM-RS of the first PSSCH; as well as Second-order side control information SCI.

3. The method according to claim 2, characterized in that If the DM-RS pattern selected by the first terminal device includes a first DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol, the first DM-RS symbol is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

4. The method according to claim 2, wherein: The DM-RS pattern that the first terminal device does not expect to select includes a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol; or The DM-RS pattern that the first terminal device does not expect to receive includes a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol.

5. The method according to claim 2, characterized in that The method further comprises: The first terminal device obtains first configuration information, where the first configuration information is used to configure the DM-RS pattern available in the resource pool, and the DM-RS pattern configured by the first configuration information does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol.

6. The method according to claim 2, characterized in that The symbol index corresponding to the second candidate transmission start symbol is greater than the symbol index corresponding to the last symbol among the symbols used to map the first PSCCH.

7. The method according to claim 6, characterized in that The symbol index corresponding to the first candidate transmission start symbol is I1, the symbol index corresponding to the second candidate transmission start symbol is I2, and the number of symbols corresponding to the first PSCCH is A; wherein, I2>I1+A, or I2≥I1+A+1.

8. The method according to claim 2, characterized in that If the symbol used to map the second-order SCI coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped, and mapping of the second-order SCI continues from the symbol following the second candidate transmission start symbol.

9. The method according to claim 2, characterized in that If the symbol used to map the first PSSCH coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped and mapping of the first PSSCH continues from the symbol following the second candidate transmission start symbol.

10. The method according to claim 2, characterized in that The method further comprises: The first terminal device generates or obtains second configuration information, where the second configuration information is used to configure the symbols of the first CSI-RS, and the symbols of the first CSI-RS do not include symbols that coincide with the time domain position of the second candidate transmission start symbol.

11. The method according to claim 2, characterized in that If the symbol used to map the first CSI-RS coincides with the time domain position of the second candidate transmission start symbol, the symbol of the first CSI-RS is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

12. The method according to any one of claims 1 to 11, characterized in that The second candidate transmission start symbol is used to carry repeated data of data in a symbol before or after the second candidate transmission start symbol.

13. A side transmission method, characterized in that: include: The first terminal device performs sideline transmission in the first time slot; The first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; The first candidate transmission start symbol corresponds to a first demodulation reference signal DM-RS pattern, the second candidate transmission start symbol corresponds to a second DM-RS pattern, and the second DM-RS pattern is determined based on one or more of the following: Resource pool configuration information; and The first DM-RS pattern.

14. The method according to claim 13, characterized in that The second DM-RS pattern is determined based on resource pool configuration information, including: The resource pool configuration information includes first configuration information and second configuration information, the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

15. The method according to claim 14, characterized in that: If the first terminal device starts sidelink transmission from the first candidate transmission start symbol, the first-order sidelink control information SCI transmitted by the first terminal device is used to indicate index information associated with the first DM-RS pattern; or, If the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the second DM-RS pattern.

16. The method according to claim 13, characterized in that The second DM-RS pattern is determined based on the first DM-RS pattern, including: The second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on a relative position of a DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

17. The method according to claim 16, characterized in that The symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

18. The method according to claim 16 or 17, characterized in that: The index of the second DM-RS pattern is determined based on the index of the first DM-RS pattern; or, The index of the second DM-RS pattern is the same as the index of the first DM-RS pattern.

19. The method according to any one of claims 16 to 18, characterized in that The method further comprises: The first terminal device obtains resource pool configuration information, where the resource pool configuration information includes third configuration information, and the third configuration information is used to configure the first DM-RS pattern.

20. The method according to any one of claims 16 to 19, characterized in that: If the first terminal device starts sideline transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern; or, If the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern.

21. A side transmission method, characterized in that: include: The first terminal device determines the transport block size corresponding to the physical sidelink shared channel PSSCH in the first time slot according to one or more of the following parameters: The first parameter indicates the number of side symbols; The second parameter indicates the number of resource units RE; and The third parameter indicates the number of physical resource blocks (PRBs). The first time slot at least includes a first candidate transmission start symbol and a second candidate transmission start symbol with different time domain positions.

22. The method according to claim 21, characterized in that The first parameter is determined based on one or more of the following: the number of symbols used for sidelink transmission determined based on the first candidate transmission start symbol; and The number of symbols used for sidelink transmission is determined based on the second candidate transmission start symbol.

23. The method according to claim 22, characterized in that The symbols for sidelink transmission determined based on the first candidate transmission start symbol do not include one or more of the following: a last symbol for sideline transmission in the first time slot; the first candidate transmission start symbol; and The second candidate transmission start symbol.

24. The method according to claim 22 or 23, characterized in that The symbols for sidelink transmission determined based on the second candidate transmission start symbol do not include one or more of the following: The last symbol used for sidelink transmission in the first time slot; and The second candidate transmission start symbol.

25. The method according to any one of claims 22 to 24, characterized in that The number of symbols used for sidelink transmission determined based on the first candidate transmission start symbol is a first number, the number of symbols used for sidelink transmission determined based on the second candidate transmission start symbol is a second number, and the first parameter is determined based on one or more of the following: The value of the first parameter is equal to the first quantity; The value of the first parameter is equal to the second quantity; The value of the first parameter is equal to the maximum value, minimum value or mean value of the first quantity and the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is greater than or equal to the first threshold, the value of the first parameter is equal to the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is less than the first threshold, the value of the first parameter is equal to the first quantity; If the symbol index corresponding to the second candidate transmission start symbol is less than or equal to a second threshold, the value of the first parameter is equal to the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is greater than the second threshold, the value of the first parameter is equal to the first quantity; If the second number is greater than or equal to a third threshold, the value of the first parameter is equal to the second number; If the second number is less than the third threshold, the value of the first parameter is equal to the first number; If the second number is less than or equal to a fourth threshold, the value of the first parameter is equal to the second number; and If the second number is greater than the fourth threshold, the value of the first parameter is equal to the first number.

26. The method according to any one of claims 21 to 25, characterized in that The second parameter is determined based on one or more of the following: a number of REs determined based on the first DM-RS pattern; and a number of REs determined based on a second DM-RS pattern; The first DM-RS pattern corresponds to the first candidate transmission start symbol, and the second DM-RS pattern corresponds to the second candidate transmission start symbol.

27. The method according to claim 26, characterized in that The method further comprises: The first terminal device obtains first configuration information and second configuration information, the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

28. The method according to claim 26, characterized in that The method further comprises: The first terminal device obtains third configuration information, where the third configuration information is used to configure the first DM-RS pattern, and the second DM-RS pattern is determined based on the first DM-RS pattern.

29. The method according to claim 28, characterized in that The second DM-RS pattern is determined based on the first DM-RS pattern, including: The second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on a relative position of a DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

30. The method according to claim 29, wherein The symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

31. The method according to any one of claims 26 to 30, characterized in that The second parameter is determined based on a maximum value, a minimum value or an average value of a third number and a fourth number, wherein the third number is the number of REs determined based on the first DM-RS pattern, and the fourth number is the number of REs determined based on the second DM-RS pattern.

32. The method according to any one of claims 21 to 31, characterized in that The first parameter and / or the second parameter are determined based on pre-configuration information or configuration information of the network device.

33. The method according to any one of claims 21 to 31, characterized in that The first parameter and / or the second parameter is determined based on the indication information sent by the second terminal device.

34. The method according to claim 33, wherein The indication information is carried via sidelink control information SCI, media access control element MAC CE or PC5-radio resource control RRC.

35. The method according to any one of claims 21 to 34, characterized in that The third parameter is determined based on one or more of the following information: Subchannel information; Comb information; Pre-configuration information; and Network configuration information.

36. The method according to claim 35, characterized in that The sub-channel information includes one or more of the following: subchannel size; The average number of PRBs included in the subchannel; The maximum number of PRBs included in a subchannel; The minimum number of PRBs included in a subchannel; The number of sub-channels corresponding to the frequency domain resources of the PSSCH; and The number of comb teeth included in the subchannel.

37. The method according to claim 35 or 36, characterized in that The comb information includes: The average number of PRBs included in the comb teeth; The maximum number of PRBs included in the comb teeth; The minimum number of PRBs included in a comb; and The number of comb teeth corresponding to the frequency domain resources of the PSSCH.

38. A terminal device, characterized in that: The terminal device is a first terminal device, and the first terminal device includes: A communication module, configured to perform side transmission in a first time slot; The first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; The second candidate transmission start symbol is not used to map the first signal / channel corresponding to the transmission based on the first candidate transmission start symbol.

39. The terminal device according to claim 38, characterized in that The first signal / channel includes one or more of the following: First physical sidelink shared channel PSSCH; First physical sideline control channel PSCCH; a first channel state information reference signal CSI-RS; a demodulation reference signal DM-RS of the first PSSCH; as well as Second-order side control information SCI.

40. The terminal device according to claim 39, characterized in that If the DM-RS pattern selected by the first terminal device includes a first DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol, the first DM-RS symbol is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

41. The terminal device according to claim 39, wherein: The DM-RS pattern that the first terminal device does not expect to select includes a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol; or The DM-RS pattern that the first terminal device does not expect to receive includes a DM-RS symbol that coincides with the time domain position of the second candidate transmission start symbol.

42. The terminal device according to claim 39, characterized in that Also includes: The first acquisition module is used to obtain first configuration information, where the first configuration information is used to configure the DM-RS pattern available in the resource pool, and the DM-RS pattern configured by the first configuration information does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol.

43. The terminal device according to claim 39, characterized in that The symbol index corresponding to the second candidate transmission start symbol is greater than the symbol index corresponding to the last symbol among the symbols used to map the first PSCCH.

44. The terminal device according to claim 43, characterized in that The symbol index corresponding to the first candidate transmission start symbol is I1, the symbol index corresponding to the second candidate transmission start symbol is I2, and the number of symbols corresponding to the first PSCCH is A; wherein, I2>I1+A, or I2≥I1+A+1.

45. The terminal device according to claim 39, characterized in that If the symbol used to map the second-order SCI coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped, and mapping of the second-order SCI continues from the symbol following the second candidate transmission start symbol.

46. ​​The terminal device according to claim 39, characterized in that If the symbol used to map the first PSSCH coincides with the time domain position of the second candidate transmission start symbol, the second candidate transmission start symbol is skipped and mapping of the first PSSCH continues from the symbol following the second candidate transmission start symbol.

47. The terminal device according to claim 39, characterized in that The terminal device further includes: The second acquisition module is used to generate or obtain second configuration information, where the second configuration information is used to configure the symbol of the first CSI-RS, and the symbol of the first CSI-RS does not include a symbol that coincides with the time domain position of the second candidate transmission start symbol.

48. The terminal device according to claim 39, characterized in that If the symbol used to map the first CSI-RS coincides with the time domain position of the second candidate transmission start symbol, the symbol of the first CSI-RS is mapped to the previous symbol or the next symbol of the second candidate transmission start symbol.

49. The terminal device according to any one of claims 38 to 48, characterized in that: The second candidate transmission start symbol is used to carry repeated data of data in a symbol before or after the second candidate transmission start symbol.

50. A terminal device, characterized in that: The terminal device is a first terminal device, and the first terminal device includes: A communication module, configured to perform side transmission in a first time slot; The first time slot includes at least a first candidate transmission start symbol and a second candidate transmission start symbol, and the time domain position of the second candidate transmission start symbol is located after the time domain position of the first candidate transmission start symbol; The first candidate transmission start symbol corresponds to a first demodulation reference signal DM-RS pattern, the second candidate transmission start symbol corresponds to a second DM-RS pattern, and the second DM-RS pattern is determined based on one or more of the following: Resource pool configuration information; and The first DM-RS pattern.

51. The terminal device according to claim 50, characterized in that The second DM-RS pattern is determined based on resource pool configuration information, including: The resource pool configuration information includes first configuration information and second configuration information, the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

52. The terminal device according to claim 51, characterized in that: If the first terminal device starts sidelink transmission from the first candidate transmission start symbol, the first-order sidelink control information SCI transmitted by the first terminal device is used to indicate index information associated with the first DM-RS pattern; or, If the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate index information associated with the second DM-RS pattern.

53. The terminal device according to claim 50, characterized in that The second DM-RS pattern is determined based on the first DM-RS pattern, including: The second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on a relative position of a DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

54. The terminal device according to claim 53, characterized in that The symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

55. The terminal device according to claim 53 or 54, characterized in that: The index of the second DM-RS pattern is determined based on the index of the first DM-RS pattern; or, The index of the second DM-RS pattern is the same as the index of the first DM-RS pattern.

56. The terminal device according to any one of claims 53 to 55, characterized in that: The terminal device further includes: The first acquisition module is configured to acquire resource pool configuration information, where the resource pool configuration information includes third configuration information, and the third configuration information is used to configure the first DM-RS pattern.

57. The terminal device according to any one of claims 53 to 56, characterized in that: If the first terminal device starts sideline transmission from the first candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern; or, If the first terminal device starts sideline transmission from the second candidate transmission start symbol, the first-order SCI transmitted by the first terminal device is used to indicate the index associated with the first DM-RS pattern.

58. A terminal device, characterized in that: The terminal device is a first terminal device, and the first terminal device includes: A determination module is configured to determine a transport block size corresponding to a physical sidelink shared channel PSSCH in a first time slot according to one or more of the following parameters: The first parameter indicates the number of side symbols; The second parameter indicates the number of resource units RE; and The third parameter indicates the number of physical resource blocks (PRBs). The first time slot at least includes a first candidate transmission start symbol and a second candidate transmission start symbol with different time domain positions.

59. The terminal device according to claim 58, characterized in that The first parameter is determined based on one or more of the following: the number of symbols used for sidelink transmission determined based on the first candidate transmission start symbol; and The number of symbols used for sidelink transmission is determined based on the second candidate transmission start symbol.

60. The terminal device according to claim 59, characterized in that The symbols for sidelink transmission determined based on the first candidate transmission start symbol do not include one or more of the following: a last symbol for sideline transmission in the first time slot; the first candidate transmission start symbol; and The second candidate transmission start symbol.

61. The terminal device according to claim 59 or 60, characterized in that: The symbols for sidelink transmission determined based on the second candidate transmission start symbol do not include one or more of the following: The last symbol used for sidelink transmission in the first time slot; and The second candidate transmission start symbol.

62. The terminal device according to any one of claims 59 to 61, characterized in that: The number of symbols used for sidelink transmission determined based on the first candidate transmission start symbol is a first number, the number of symbols used for sidelink transmission determined based on the second candidate transmission start symbol is a second number, and the first parameter is determined based on one or more of the following: The value of the first parameter is equal to the first quantity; The value of the first parameter is equal to the second quantity; The value of the first parameter is equal to the maximum value, minimum value or mean value of the first quantity and the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is greater than or equal to the first threshold, the value of the first parameter is equal to the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is less than the first threshold, the value of the first parameter is equal to the first quantity; If the symbol index corresponding to the second candidate transmission start symbol is less than or equal to a second threshold, the value of the first parameter is equal to the second quantity; If the symbol index corresponding to the second candidate transmission start symbol is greater than the second threshold, the value of the first parameter is equal to the first quantity; If the second number is greater than or equal to a third threshold, the value of the first parameter is equal to the second number; If the second number is less than the third threshold, the value of the first parameter is equal to the first number; If the second number is less than or equal to a fourth threshold, the value of the first parameter is equal to the second number; and If the second number is greater than the fourth threshold, the value of the first parameter is equal to the first number.

63. The terminal device according to any one of claims 58 to 62, characterized in that: The second parameter is determined based on one or more of the following: a number of REs determined based on the first DM-RS pattern; and a number of REs determined based on a second DM-RS pattern; The first DM-RS pattern corresponds to the first candidate transmission start symbol, and the second DM-RS pattern corresponds to the second candidate transmission start symbol.

64. The terminal device according to claim 63, characterized in that The terminal device further includes: The first acquisition module is configured to acquire first configuration information and second configuration information, where the first configuration information is used to configure the first DM-RS pattern, and the second configuration information is used to configure the second DM-RS pattern.

65. The terminal device according to claim 63, characterized in that The terminal device further includes: The second acquisition module is used to acquire third configuration information, where the third configuration information is used to configure the first DM-RS pattern, and the second DM-RS pattern is determined based on the first DM-RS pattern.

66. The terminal device according to claim 65, characterized in that The second DM-RS pattern is determined based on the first DM-RS pattern, including: The second DM-RS pattern is determined based on a first relative position, wherein the first relative position is determined based on a relative position of a DM-RS symbol in the first DM-RS pattern and the first candidate transmission start symbol.

67. The terminal device according to claim 66, characterized in that The symbol index corresponding to the second DM-RS pattern is determined based on the first relative position and the second candidate transmission start symbol.

68. The terminal device according to any one of claims 63 to 67, characterized in that: The second parameter is determined based on a maximum value, a minimum value or an average value of a third number and a fourth number, wherein the third number is the number of REs determined based on the first DM-RS pattern, and the fourth number is the number of REs determined based on the second DM-RS pattern.

69. The terminal device according to any one of claims 58 to 68, characterized in that The first parameter and / or the second parameter are determined based on pre-configuration information or configuration information of the network device.

70. The terminal device according to any one of claims 58 to 68, characterized in that: The first parameter and / or the second parameter is determined based on the indication information sent by the second terminal device.

71. The terminal device according to claim 70, characterized in that The indication information is carried via sidelink control information SCI, media access control element MAC CE or PC5-radio resource control RRC.

72. The terminal device according to any one of claims 58 to 71, characterized in that: The third parameter is determined based on one or more of the following information: Subchannel information; Comb information; Pre-configuration information; and Network configuration information.

73. The terminal device according to claim 72, characterized in that The sub-channel information includes one or more of the following: subchannel size; The average number of PRBs included in the subchannel; The maximum number of PRBs included in a subchannel; The minimum number of PRBs included in a subchannel; The number of sub-channels corresponding to the frequency domain resources of the PSSCH; and The number of comb teeth included in the subchannel.

74. The terminal device according to claim 72 or 73, characterized in that The comb information includes: The average number of PRBs included in the comb teeth; The maximum number of PRBs included in the comb teeth; The minimum number of PRBs included in a comb; and The number of comb teeth corresponding to the frequency domain resources of the PSSCH.

75. A terminal device, characterized in that: The terminal comprises a transceiver, a memory and a processor, wherein the memory is used to store a program, and the processor is used to call the program in the memory and control the transceiver to receive or send a signal so that the terminal executes the method as described in any one of claims 1-12, 13-20, or 21-37.

76. A device, characterized in that The device comprises a processor configured to call a program from a memory so as to cause the device to execute the method according to any one of claims 1-12, 13-20, or 21-37.

77. A chip, characterized in that The device comprises a processor configured to call a program from a memory so that a device equipped with the chip executes the method according to any one of claims 1 to 12, 13 to 20, or 21 to 37.

78. A computer-readable storage medium, characterized in that A program is stored thereon, the program causing a computer to execute the method according to any one of claims 1-12, 13-20, or 21-37.

79. A computer program product, characterized in that The method comprises a program for causing a computer to execute the method according to any one of claims 1 to 12, 13 to 20, or 21 to 37.

80. A computer program, characterized in that The computer program causes a computer to execute the method of any one of claims 1-12, 13-20, or 21-37.