WO2023011164A1 - 直通链路定位方法、装置及用户设备 - Google Patents
直通链路定位方法、装置及用户设备 Download PDFInfo
- Publication number
- WO2023011164A1 WO2023011164A1 PCT/CN2022/106475 CN2022106475W WO2023011164A1 WO 2023011164 A1 WO2023011164 A1 WO 2023011164A1 CN 2022106475 W CN2022106475 W CN 2022106475W WO 2023011164 A1 WO2023011164 A1 WO 2023011164A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- user equipment
- information
- prs
- sci
- transmission
- Prior art date
Links
- 238000000034 method Methods 0.000 title claims abstract description 112
- 230000005540 biological transmission Effects 0.000 claims abstract description 161
- 238000012545 processing Methods 0.000 claims description 37
- 230000003993 interaction Effects 0.000 claims description 32
- 238000004364 calculation method Methods 0.000 claims description 19
- 238000005259 measurement Methods 0.000 claims description 18
- 239000013078 crystal Substances 0.000 claims description 17
- 238000012423 maintenance Methods 0.000 claims description 17
- 230000008569 process Effects 0.000 claims description 14
- 238000004590 computer program Methods 0.000 claims description 13
- 230000011664 signaling Effects 0.000 claims description 10
- 244000126211 Hericium coralloides Species 0.000 claims description 6
- 238000001514 detection method Methods 0.000 claims description 4
- 230000007717 exclusion Effects 0.000 claims description 4
- 230000002452 interceptive effect Effects 0.000 claims description 2
- 238000005516 engineering process Methods 0.000 abstract description 12
- 238000004891 communication Methods 0.000 description 20
- 238000013461 design Methods 0.000 description 11
- 230000001413 cellular effect Effects 0.000 description 7
- 238000010586 diagram Methods 0.000 description 5
- 230000006855 networking Effects 0.000 description 5
- 230000006872 improvement Effects 0.000 description 4
- 238000012986 modification Methods 0.000 description 3
- 230000004048 modification Effects 0.000 description 3
- 238000012544 monitoring process Methods 0.000 description 3
- 239000000969 carrier Substances 0.000 description 2
- 230000003247 decreasing effect Effects 0.000 description 2
- 230000006870 function Effects 0.000 description 2
- 238000000691 measurement method Methods 0.000 description 2
- 230000007246 mechanism Effects 0.000 description 2
- 230000001360 synchronised effect Effects 0.000 description 2
- 230000009286 beneficial effect Effects 0.000 description 1
- 239000003245 coal Substances 0.000 description 1
- 238000010276 construction Methods 0.000 description 1
- 238000000354 decomposition reaction Methods 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 230000007774 longterm Effects 0.000 description 1
- 238000010295 mobile communication Methods 0.000 description 1
- 230000003287 optical effect Effects 0.000 description 1
- 230000000737 periodic effect Effects 0.000 description 1
- 230000002093 peripheral effect Effects 0.000 description 1
- 230000006798 recombination Effects 0.000 description 1
- 238000005215 recombination Methods 0.000 description 1
- 238000011160 research Methods 0.000 description 1
- 238000001228 spectrum Methods 0.000 description 1
Images
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W4/00—Services specially adapted for wireless communication networks; Facilities therefor
- H04W4/30—Services specially adapted for particular environments, situations or purposes
- H04W4/40—Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P]
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W64/00—Locating users or terminals or network equipment for network management purposes, e.g. mobility management
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/40—Resource management for direct mode communication, e.g. D2D or sidelink
Definitions
- the present disclosure relates to the technical field of direct links, and in particular, to a direct link positioning method, device, and user equipment.
- V2X Vehicle to everything
- mobile terminals including on-board units (On Board Unit, OBU), vulnerable road traffic participants (Vulnerable Road Users, VRU) etc.
- GNSS Global Navigation Satellite System
- Conventional positioning methods are based on Global Navigation Satellite System (GNSS) or enhanced GNSS positioning, but in areas with poor GNSS signal coverage (such as urban canyons) and areas without GNSS signal coverage (tunnels, underground parking Fields, underground coal mines, underground transportation channels, etc.), it is necessary to ensure positioning performance through other positioning technologies.
- GNSS Global Navigation Satellite System
- GNSS Global Navigation Satellite System
- GNSS Global Navigation Satellite System
- enhanced GNSS positioning but in areas with poor GNSS signal coverage (such as urban canyons) and areas without GNSS signal coverage (tunnels, underground parking Fields, underground coal mines, underground transportation channels, etc.), it is necessary to ensure positioning performance through other positioning technologies.
- C-V2X includes Long Term Evolution Vehicle to Vehicle (LTE-V2X) and New Radio Vehicle to Vehicle (NR-V2X), supporting direct chain
- LTE-V2X Long Term Evolution Vehicle to Vehicle
- NR-V2X New Radio Vehicle to Vehicle
- the C-V2X device can communicate with the base station within the coverage of the cellular network signal; within and outside the coverage of the cellular network signal, C-V2X can communicate through the direct link.
- the 3rd Generation Partnership Project (3GPP) Version 16 (3GPP Release 16) carried out the research and standardization of NR Positioning.
- the base station sends the downlink positioning reference of a specific cell (cell-specific) Signal (Positioning Reference Signal, PRS) signal
- the terminal sends an uplink sounding reference signal (Sounding Reference Signal, SRS) for positioning.
- 3GPP 3rd Generation Partnership Project
- the terminal can measure the reference signal time difference (Reference Signal Time Difference, RSTD), or measure the downlink The reference signal received power (Reference Signal Received Power, RSRP) of the positioning reference signal (Downlink Positioning Reference Signal, DL PRS), or measure the time difference between the terminal receiving the DL PRS and sending the SRS;
- the base station can measure the uplink relative arrival time (Relative Time of Arrival, RTOA), SRS RSRP, the fifth generation mobile communication technology (5th-Generation, 5G) base station (the next Generation Node B, gNB) time difference between receiving SRS and gNB sending DL PRS, and angle measurement value, etc.
- the position of the user equipment User Equipment, UE
- UE User Equipment
- V2X application scenarios need to support communication within or outside the coverage of the cellular network. Outside the coverage of the cellular network, a special positioning technology needs to be designed for the direct link to determine the location of the user equipment.
- the purpose of the present disclosure is to provide a direct link positioning method, device and user equipment, so as to solve the problem that there is no special positioning technology for the direct link in the related art.
- an embodiment of the present disclosure provides a direct link positioning method, which is applied to a first user equipment, and the method includes:
- Performing the first transmission on the through link where the first transmission includes: transmission of a sidelink positioning reference signal (Sidelink Positioning Reference Signal, SL PRS), or transmission of the SL PRS and first information.
- SL PRS Sidelink Positioning Reference Signal
- the method also includes at least one of the following:
- the first information is carried by at least one of the following:
- SCI Sidelink Control Information
- SPI Sidelink Positioning Information
- MAC CE Media Access Control Element
- PSCCH Physical Sidelink Control Channel
- PSSCH Physical Sidelink Shared Channel
- PSBCH Physical Sidelink Broadcast Channel
- PSFCH Physical Sidelink Feedback Channel
- PSDCH Physical Sidelink Discover Channel
- PSPCH Physical Sidelink Positioning Channel
- the first information includes at least one of the following:
- the interaction mode of the SL PRS includes at least one of the following:
- SW-RT Single Way-Round Trip
- TW-RT Two Way Round Trip
- the interaction mode of the SL PRS is one-way, and at least one of the following methods is adopted:
- the first user equipment maintains high-precision time synchronization with other anchor nodes
- the number of other user equipments maintaining high-precision time synchronization with the first user equipment meets a preset number threshold
- the first user equipment determines the estimated time difference between the maintenance time and the reference time.
- the interaction mode of the SL PRS is a one-way round-trip mode, and at least one of the following modes is adopted:
- the first user equipment determines a frequency offset rate of a local timing device
- the first user equipment determines a frequency offset value of a local timing device and a corresponding reference time
- the different antenna elements of the first user equipment have no processing time offset
- the first user equipment determines processing time offset values for different antenna elements.
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- the location information of the first user equipment is a first value, it indicates that the first user equipment cannot serve as an anchor node, and that the first user equipment can support relative positioning.
- the calculation process of the frequency offset value of the local timing device of the first user equipment includes:
- the first user equipment can receive the GNSS signal, within the first time, when receiving the second pulse sent by the GNSS module of the global navigation satellite system or receiving the second pulse multiple times continuously, according to the following Any one calculates the frequency offset value of the local timing device of the first user equipment, wherein the first time is the reference time set by the first user equipment or the first time corresponds to the GNSS module output Interval of pulses in seconds:
- the content indicated by the second information includes at least one of the following:
- BWP Bandwidth Part
- Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity are Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity.
- the time domain resource location includes at least one of the following:
- the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period is the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period.
- the second information is carried by at least one of the following:
- the SCI is used to indicate the resource location of the SPI transmission.
- the SCI only includes the first SCI, or, the SCI includes the first SCI and at least one of the second SCI and the third SCI.
- the SCI includes the first SCI, and at least one of the second SCI and the third SCI
- the content indicated by the first SCI further includes:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI;
- Fifth indication information used to indicate whether the currently transmitted signal and/or information is used to indicate through-link positioning, where the fifth indication information is carried in N bits in the first SCI, and N is a positive integer .
- the transmission modes of the SCI, the SPI, the SL PRS and the PSSCH include:
- the transmission of the SCI, the SPI and the SL PRS in different frequency bands includes:
- At least one of the SCI and the SPI is transmitted in a first frequency band, and the SL PRS is transmitted in a second frequency band; the first frequency band is lower than the second frequency band;
- At least one of the SCI and the SPI is transmitted in a licensed frequency band, and the SL PRS is transmitted in a license-free frequency band.
- an embodiment of the present disclosure further provides a direct link positioning method, which is applied to a second user equipment, and the method includes:
- the first transmission comprising: transmission of the SL PRS, or transmission of the SL PRS and first information;
- the method also includes at least one of the following:
- the method also includes:
- the first information includes at least one of the following:
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- the second indication information indicates that the first user equipment can serve as an anchor node
- the information implicitly indicated by the second indication information is that the first user equipment can support absolute positioning or Calculate the position by itself
- the second indication information indicates that the first user equipment cannot serve as an anchor node
- it is determined that the information implicitly indicated by the second indication information is that the first user equipment can only support relative positioning or support Auxiliary solution position.
- the third indication information indicates that the first user equipment maintains high-precision time synchronization with other anchor nodes, or, the number of other user equipments that maintain high-precision time synchronization with the first user equipment satisfies a preset number threshold, or, when the third information includes an estimated time difference between the maintenance time of the first user equipment and a reference time, the second user equipment determines that the SL PRS can be transmitted based on the first user equipment one-way way of positioning.
- the third information includes a frequency offset rate of the local timing device of the first user equipment, or the third information includes a frequency offset value of the local timing device of the first user equipment and the corresponding reference time, or, the third information includes and indicates that different antenna units of the first user equipment do not have a processing time offset, or, the third information includes different antennas of the first user equipment
- the second user equipment determines that positioning can be performed based on the SL PRS interaction mode of the one-way round-trip SW-RT performed by the first user equipment.
- an embodiment of the present disclosure further provides a user equipment, including a transceiver, a memory, a processor, and a computer program stored in the memory and running on the processor, and the processor executes the The computer program implements the method for locating a direct link as described in the first aspect, or the method for locating a direct link as described in the second aspect.
- an embodiment of the present disclosure further provides a direct link positioning apparatus applied to a first user equipment, including:
- a transmission module configured to perform a first transmission on the through link, where the first transmission includes: transmission of the through link positioning reference signal SL PRS, or transmission of the SL PRS and the first information.
- the embodiment of the present disclosure further provides a direct link positioning apparatus, which is applied to the second user equipment, including:
- the first receiving module is configured to receive the first transmission on the direct link, the first transmission includes: the transmission of the SL PRS, or the transmission of the SL PRS and the first information;
- a measurement module configured to measure the SL PRS in the first transmission.
- an embodiment of the present disclosure further provides a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, the method for locating a direct link as described in the first aspect is implemented, or, The direct link positioning method described in the second aspect.
- the direct link positioning method, device, and user equipment of the embodiments of the present disclosure relate to the technical field of direct links.
- the method is applied to the first user equipment, and the method includes: performing a first transmission on the direct link, the first The transmission includes: the transmission of the direct link positioning reference signal SL PRS, or the transmission of the SL PRS and the first information, so that the user equipment at the receiving end can measure the SL PRS, thereby realizing positioning based on the direct link (sidelink) .
- FIG. 1 is one of the schematic flow diagrams of a direct link positioning method according to an embodiment of the present disclosure
- FIG. 2 is the second schematic flow diagram of the direct link positioning method according to the embodiment of the present disclosure
- Fig. 3 is one of the structural schematic diagrams of the direct link positioning device according to the embodiment of the present disclosure.
- FIG. 4 is the second structural schematic diagram of the direct link positioning device according to the embodiment of the present disclosure.
- Fig. 5 is a schematic structural diagram of a user equipment according to an embodiment of the present disclosure.
- sequence numbers of the following processes do not mean the order of execution, and the execution order of each process should be determined by its functions and internal logic, and should not be implemented in the present disclosure.
- the implementation of the examples constitutes no limitation.
- B corresponding to A means that B is associated with A, and B can be determined according to A.
- determining B according to A does not mean determining B only according to A, and B may also be determined according to A and/or other information.
- the embodiment of the present disclosure provides a direct link positioning method, which is applied to a first user equipment, and the first user equipment is a typical application scenario (vehicle networking application scenario) applied in the technical field of direct link
- the user equipment that is, the first user equipment is a vehicle networking communication device that supports direct link positioning, such as: Road Side Unit (Road Side Unit, RSU), OBU, VRU, etc.
- the methods include:
- Step 101 Perform a first transmission on the through link, where the first transmission includes: transmission of a sidelink positioning reference signal (Sidelink Positioning Reference Signal, SL PRS), or transmission of the SL PRS and first information.
- SL PRS Sidelink Positioning Reference Signal
- the first information includes at least SL PRS configuration information and/or information related to positioning, but is not limited thereto.
- the first transmission is performed on the direct link, and the first transmission includes the transmission of the SL PRS, or the transmission of the SL PRS and the first information; that is, the transmission is performed on the direct link.
- SL PRS or, send SL PRS and the first information on the direct link, so that the receiving end can perform sidelink-based positioning based on the received signal/information, which solves the limitation that the positioning of the Internet of Vehicles in related technologies mainly relies on GNSS The problem.
- the method further includes at least one of the following:
- the first configuration parameters include SL PRS bandwidth part (BandWidth Part, BWP) configuration parameters, and/or, SL PRS resource configuration parameters, but not limited thereto.
- BWP BandWidth Part
- the configuration of the SL PRS is realized by obtaining the first configuration parameter of the SL PRS; by sending the second information, the user equipment at the receiving end receives the information sent by the first user equipment according to the resource of the first transmission. signal/information.
- the first configuration parameter can be acquired in at least one of the following ways:
- MIB Master Information Block
- the direct link positioning configuration broadcast message is a message sent by the user equipment (Internet of Vehicles communication equipment).
- the first information is carried by at least one of the following:
- SCI Sidelink Control Information
- SPI Sidelink Positioning Information
- MAC CE Media Access Control Element
- PSCCH Physical Sidelink Control Channel
- PSSCH Physical Sidelink Shared Channel
- PSBCH Physical Sidelink Broadcast Channel
- PSFCH Physical Sidelink Feedback Channel
- PSDCH Physical Sidelink Discover Channel
- PSPCH Physical Sidelink Positioning Channel
- SPI refers to an indication information type used to indicate positioning-related information on the direct link, but the name of the indication information type indicating positioning-related information is not limited to SPI.
- the design format of the MAC CE supporting direct link positioning/the design format of the RRC signaling (transmission indication) supporting direct link positioning/the design format of the direct link data packet includes the following indication information At least one of:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the relevant content of the first information, the second SCI and the third SCI can refer to the subsequent content, and the description will not be repeated here.
- This optional implementation through the improvement of the existing MAC CE and RRC signaling, supports the indication or transmission of positioning reference signals and positioning information, so as to flexibly schedule positioning signal resources and support different positioning signal/information monitoring way, so as to realize the positioning based on sidelink.
- the first information includes at least one of the following:
- SL PRS type of SL PRS includes at least one of the following, but not limited to:
- C-PRS Carrier Phase Positioning Reference Signal
- the interaction mode of the SL PRS includes at least one of the following:
- SW-RT Single Way-Round Trip
- TW-RT Two Way Round Trip
- the interaction mode of the SL PRS is one-way, and at least one of the following methods is adopted:
- the first user equipment maintains high-precision time synchronization with other anchor nodes
- the number of other user equipments maintaining high-precision time synchronization with the first user equipment meets a preset number threshold
- the first user equipment determines the estimated time difference between the maintenance time and the reference time.
- the interaction method for determining the SL PRS can be one-way, wherein the first condition includes at least one of the above three conditions, that is, when the first user equipment meets the above three
- the interaction method for determining the SL PRS may be one-way, so that the second user equipment can perform positioning based on the one-way transmission of the SL PRS by the first user equipment.
- At least one of the following methods is adopted to determine that the interaction mode of the SL PRS is a one-way round-trip mode:
- the first user equipment determines a frequency offset rate of a local timing device
- the first user equipment determines a frequency offset value of a local timing device and a corresponding reference time
- the different antenna elements of the first user equipment have no processing time offset
- the first user equipment determines processing time offset values for different antenna elements.
- the interaction method for determining the SL PRS can be a one-way round-trip; that is, when the first user equipment meets at least one of the above four conditions, determine the SL PRS
- the interaction mode may be a one-way round-trip mode, so that the second user equipment can perform positioning based on the SL PRS mode of the one-way round-trip transmission of the first user equipment.
- the above two optional implementation methods support different synchronization methods of direct links, different sources of positioning information, different time synchronization accuracy, different signal priorities, and consider whether to perform local clock offset indication and antenna unit processing delay calibration.
- the equipment supporting direct link positioning can confirm the interaction mode and type of the positioning signal, and then confirm the absolute/relative positioning, UE self-positioning/UE-assisted positioning, etc., and realize the positioning of the complex environment of the Internet of Vehicles and flexible configuration. Positioning in various ways.
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- assisted location calculation refers to user equipment-assisted (UE-assisted) location information calculation
- self-calculated location refers to user equipment (UE-based) location information calculation
- the third information includes at least one of the above multiple contents, so that the user equipment at the receiving end can confirm the interaction mode and type of the positioning signal according to the corresponding information, and then confirm the absolute/relative positioning, and the UE can automatically Positioning/UE-assisted positioning, etc., realize positioning in multiple ways under complex environment and flexible configuration of the Internet of Vehicles.
- the location information of the first user equipment is a first value, it is indicated that the first user equipment cannot serve as an anchor node, and that the first user equipment can support relative positioning.
- the first value may be 0, and in particular, for an indication of multiple bits, the first value is represented as all 0s, that is, in the first user equipment When the location information is 0, it indicates that the first user equipment cannot be used as an anchor node, and the first user equipment performs relative positioning.
- the second indication information indicates that the first user equipment can serve as an anchor node, it implicitly indicates that the first user equipment can support absolute positioning or UE-based positioning; or In a case where the second indication information indicates that the first user equipment cannot serve as an anchor node, implicitly indicate that the first user equipment can only support relative positioning or UE-assisted positioning.
- the calculation process of the frequency offset value of the local timing device of the first user equipment includes:
- the first user equipment can receive the GNSS signal, within the first time, when receiving the second pulse sent by the GNSS module of the global navigation satellite system or receiving the second pulse multiple times continuously, according to the following Either one calculates the frequency offset value of the local timing device of the first user equipment, wherein the first time is the reference time set by the first user equipment or the first time corresponds to the GNSS module output Interval of second pulses:
- the time interval of the GNSS module outputting the second pulse is 1s.
- the first user equipment when it can receive the GNSS signal, it performs at least one offset measurement within a certain period of time.
- the second pulse compare the actual timing of the local timer crystal oscillator with the nominal value of the crystal oscillator within the reference time, or compare the reference time with the actual timing of the local timer crystal oscillator to obtain the frequency of the local timing device of the first user equipment offset.
- the offset value satisfies at least one of the following preset conditions, it is determined that the offset value is valid, and the offset value may be transmitted:
- the first user equipment may further send a corresponding condition, so that the user equipment at the receiving end can determine whether the offset value is valid according to the sent condition.
- This optional implementation method proposes a GNSS-based local timing device crystal oscillator frequency shift measurement method, which can be measured when GNSS signals can be received, indicated in the direct link positioning, and can support the situation where user equipment is not synchronized
- high-precision ranging is realized based on the one-way round-trip method.
- the frequency shift is brought into it, which eliminates the problem of decreased positioning accuracy due to timing errors caused by the frequency offset of the local timer.
- the content indicated by the second information includes at least one of the following:
- Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity are Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity.
- the first transmission in the embodiment of the present disclosure may be transmitted on at least one resource above.
- the time domain resource location includes at least one of the following:
- the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period is the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period.
- the second information is carried by at least one of the following:
- the second information is carried by SCI and/or SPI.
- the SCI is used to indicate the resource location of the SPI transmission.
- the SCI includes only the first SCI, or the SCI includes the first SCI and at least one of the second SCI and the third SCI.
- the direct link positioning (SL Positioning) and the direct link communication (SL Communication) coexist, or when the signal/information transmitted through the SL Communication indicates or schedules the SL Positioning signal/information
- the first The second information is carried in the SCI and/or SPI, wherein the SCI includes only the first SCI, or the SCI includes the first SCI and at least one of the second SCI and the third SCI.
- the SCI is designed to include only the first SCI.
- the existing basic format of the first SCI may not be changed or only a bit indicating whether it is used for positioning is added to realize direct link positioning.
- Compatibility with the direct link communication mechanism ensures that the user equipment communicating with the direct link can realize effective resource awareness; the SCI is designed to include the first SCI, and at least one of the second SCI and the third SCI, capable of supporting Indication or transmission of positioning reference signals and positioning information.
- the SCI includes the first SCI, and at least one of the second SCI and the third SCI, specifically, the SCI includes the first SCI and a newly designed second SCI, or the SCI includes the first SCI, the current There is a second SCI and a newly designed third SCI.
- the content indicated by the first SCI includes at least one of the following:
- the resource location of the PSSCH may specifically be the resource location of the PSSCH that bears the first transmission.
- the SCI when the SCI includes the first SCI, and at least one of the second SCI and the third SCI, the content indicated by the first SCI further includes:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI;
- the fifth indication information is used to indicate whether the currently transmitted signal and/or information is used to indicate through-link positioning, where the fifth indication information is carried in N bits in the first SCI, and N is a positive integer .
- the fourth indication information is specifically used to indicate whether only the second SCI is included in the PSSCH, or is used to indicate whether only the second SCI and the third SCI are included in the PSSCH.
- the N bits carrying the fifth indication information are the reserved bits of the existing first-stage SCI, that is, the fifth indication information is performed on the reserved bits of the existing first-stage SCI instruct.
- N can be 1 bit.
- the SCI design that supports direct link positioning under SL Positioning Standalone, or the coexistence of SL Positioning and SL Communication, or the first SCI design when the signal/information transmitted through SL Communication indicates or schedules SL Positioning signal/information Specifically include at least one of the following:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI;
- the fifth indication information is used to indicate whether the currently transmitted signal and/or information is used to indicate direct link positioning.
- the second SCI or the third SCI that supports direct link positioning specifically includes at least one of the following indication information item:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the direct link positioning information SPI includes at least one of the following indication information:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the transmission methods of the SCI, the SPI, the SL PRS and the PSSCH include:
- This optional implementation can support flexible transmission of at least one item of control information or positioning information, SL PRS and first information (necessary positioning information) in the same or different frequency bands, carriers, BWPs, resource pools, and resource sets. Scheduling, and support for different positioning signal/information monitoring methods.
- the transmission of the SCI, the SPI and the SL PRS in different frequency bands includes:
- At least one of the SCI and the SPI is transmitted in a first frequency band, and the SL PRS is transmitted in a second frequency band; the first frequency band is lower than the second frequency band;
- At least one of the SCI and the SPI is transmitted in a licensed frequency band, and the SL PRS is transmitted in a license-free frequency band.
- the second frequency band can also transmit the SCI and the SPI at the same time At least one, alternatively, the second frequency band does not transmit SCI and SPI.
- the unlicensed frequency band can simultaneously transmit at least one of the SCI and the SPI, or the unlicensed frequency band does not Transmit SCI and SPI.
- the preamble information is transmitted in the unlicensed frequency band, and the preamble information (sequence) is used to indicate SL PRS to be transmitted.
- the direct link positioning method of the embodiment of the present disclosure firstly, by performing the first transmission on the direct link, the first transmission includes: the transmission of the direct link positioning reference signal SL PRS, or, the SL PRS and the first
- the transmission of information enables the user equipment at the receiving end to measure SL PRS, thereby realizing positioning based on the direct link sidelink, enabling the user equipment to achieve positioning even when it is working in a scene outside the coverage of the cellular network, and to carry out targeted design for vehicle movement , which improves the positioning accuracy; both, through the design of various signaling/information formats, the direct link positioning technology is compatible with the direct link communication technology, ensuring that the user equipment on the direct link can realize effective resource awareness, and Support the indication or transmission of positioning reference signals and positioning information; the three, through the design of the transmission methods of SCI, SPI, SL PRS and PSSCH, realize that SL PRS and necessary positioning information can be transmitted in the same or different frequency bands, carriers, BWP , resource pool, and resource set for flexible transmission and
- the embodiment of the present disclosure also provides a direct link positioning method, which is applied to a second user equipment, and the second user equipment is a typical application scenario (vehicle networking application scenario) applied in the technical field of direct link
- the user equipment that is, the second user equipment is a vehicle networking communication device that supports direct link positioning, such as: Road Side Unit (Road Side Unit, RSU), OBU, VRU, etc.
- the methods include:
- Step 201 performing reception of a first transmission on the direct link, where the first transmission includes: transmission of the SL PRS, or transmission of the SL PRS and first information;
- the first information includes at least SL PRS configuration information and information related to positioning, but is not limited thereto.
- Step 202 measure the SL PRS in the first transmission.
- the direct link positioning method of the embodiment of the present disclosure performs the receiving of the first transmission on the direct link, and the first transmission includes the transmission of the SL PRS, or the transmission of the SL PRS and the first information; that is, on the direct link Receive the SL PRS on the direct link, or receive the SL PRS and the first information on the direct link to measure the SL PRS in the first transmission, realize sidelink-based positioning based on the received signal/information, and solve the related technology
- the positioning of the Internet of Vehicles in China mainly relies on the limitations of GNSS.
- the method further includes at least one of the following:
- the first configuration parameter includes the bandwidth part BWP configuration parameter of the SL PRS, and/or, the SL PRS resource configuration parameter, but not limited thereto.
- the signal/information sent by the first user equipment is received according to the resources of the first transmission.
- the first configuration parameter can be acquired in at least one of the following ways:
- MIB Master Information Block
- the direct link positioning configuration broadcast message is a message sent by the user equipment (Internet of Vehicles communication equipment).
- the method also includes:
- the first information is carried by at least one of the following items:
- PSDCH Physical direct link discovery channel
- the physical direct link positioning channel PSPCH The physical direct link positioning channel PSPCH.
- SPI refers to an indication information type used to indicate positioning-related information on the direct link, but the name of the indication information type indicating positioning-related information is not limited to SPI.
- the MAC CE design format supporting direct link positioning/the RRC signaling (transmission indication) design format supporting direct link positioning/the direct link data packet design format includes at least one of the following indication information item:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the relevant content of the first information, the second SCI and the third SCI can refer to the subsequent content, and the description will not be repeated here.
- This optional implementation through the improvement of the existing MAC CE and RRC signaling, supports the indication or transmission of positioning reference signals and positioning information, so as to flexibly schedule positioning signal resources and support different positioning signal/information monitoring way, so as to realize the positioning based on sidelink.
- the first information includes at least one of the following:
- SL PRS type of SL PRS includes at least one of the following, but not limited to:
- C-PRS Carrier Phase Positioning Reference Signal
- the interaction mode of the SL PRS includes at least one of the following:
- SW-RT Single Way-Round Trip
- TW-RT Two Way Round Trip
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- the assisted calculation location is UE-assisted calculation location information
- the self-calculation location is UE-based calculation location information
- the third information includes at least one of the above-mentioned multiple contents, so that the second user equipment can confirm the interaction mode and type of the positioning signal according to the corresponding information, and then confirm the absolute/relative positioning, and the UE can automatically Positioning/UE-assisted positioning, etc., realize positioning in multiple ways under complex environment and flexible configuration of the Internet of Vehicles.
- the location information of the first user equipment is a first value, it indicates that the first user equipment cannot serve as an anchor node, and that the first user equipment can support relative positioning.
- the first value may be 0, and in particular, for a multi-bit indication, the first value is represented as all 0s, that is, the location information of the first user equipment is In the case of 0, it indicates that the first user equipment cannot be used as an anchor node, and the first user equipment performs relative positioning.
- the second indication information indicates that the first user equipment can serve as an anchor node
- it is determined that the information implicitly indicated by the second indication information is that the first user equipment can Support absolute positioning or self-calculate the position
- the second indication information indicates that the first user equipment cannot serve as an anchor node
- it is determined that the information implicitly indicated by the second indication information is that the first user equipment can only support relative positioning or support Auxiliary solution position.
- the third indication information indicates that the first user equipment maintains high-precision time synchronization with other anchor nodes, or other user equipment that maintains high-precision time synchronization with the first user equipment The number satisfies the preset number threshold, or, when the third information includes an estimated time difference between the maintenance time of the first user equipment and a reference time, the second user equipment determines that it can be based on the first user equipment One-way transmission of SL PRS for positioning.
- the third information includes the frequency offset rate of the local timing device of the first user equipment, or the third information includes the frequency offset rate of the local timing device of the first user equipment.
- a frequency offset value and a corresponding reference time or, the third information includes and indicates that different antenna units of the first user equipment do not have a processing time offset, or, the third information includes the first user equipment
- the second user equipment determines that positioning can be performed based on the SL PRS interactive mode of the one-way round-trip SW-RT performed by the first user equipment.
- the above two optional implementation methods support different synchronization methods of direct links, different sources of positioning information, different time synchronization accuracy, different signal priorities, and consider whether to perform local clock offset indication and antenna unit processing delay calibration.
- the equipment supporting direct link positioning can confirm the interaction mode and type of the positioning signal, and then confirm the absolute/relative positioning, UE self-positioning/UE-assisted positioning, etc., and realize the positioning of the complex environment of the Internet of Vehicles and flexible configuration. Multiple ways of positioning.
- the first user equipment may further send corresponding conditions, so that the second user equipment can compare the sent conditions with preset conditions to determine the offset value is it effective.
- the frequency offset value is brought in during the positioning process, which eliminates the problem of decreased positioning accuracy due to timing errors caused by the frequency offset of the local timer.
- the content indicated by the second information includes at least one of the following:
- Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity are Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity.
- the time domain resource location includes at least one of the following:
- the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period is the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period.
- the second information is carried by at least one of the following:
- the second information is carried by SCI and/or SPI. Both, when the second information is carried by the SPI, the SCI is used to indicate the resource location of the SPI transmission.
- the second information is carried on the SCI And/or SPI, wherein the SCI only includes the first SCI, or the SCI includes the first SCI and at least one of the second SCI and the third SCI.
- the SCI is designed to include only the first SCI.
- the existing basic format of the first SCI may not be changed or only a bit indicating whether it is used for positioning is added to realize direct link positioning.
- Compatibility with the direct link communication mechanism ensures that the user equipment communicating with the direct link can realize effective resource awareness; the SCI is designed to include the first SCI, and at least one of the second SCI and the third SCI, capable of supporting Indication or transmission of positioning reference signals and positioning information.
- the content indicated by the first SCI includes at least one of the following:
- the resource location of the PSSCH may specifically be the resource location of the PSSCH that bears the first transmission.
- the content indicated by the first SCI further includes:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI;
- the fifth indication information is used to indicate whether the currently transmitted signal and/or information is used to indicate through-link positioning, where the fifth indication information is carried in N bits in the first SCI, and N is a positive integer .
- the second SCI or the third SCI specifically includes at least one item of the following indication information:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the SPI includes at least one of the following indications:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI.
- the transmission of the SCI, the SPI and the SL PRS in different frequency bands includes:
- At least one of the SCI and the SPI is transmitted in a first frequency band, and the SL PRS is transmitted in a second frequency band; the first frequency band is lower than the second frequency band;
- At least one of the SCI and the SPI is transmitted in a licensed frequency band, and the SL PRS is transmitted in a license-free frequency band.
- the second frequency band can also transmit the SCI and the SPI at the same time At least one, alternatively, the second frequency band does not transmit SCI and SPI.
- the unlicensed frequency band can simultaneously transmit at least one of the SCI and the SPI, or the unlicensed frequency band does not Transmit SCI and SPI.
- the preamble information is transmitted in the unlicensed frequency band, and the preamble information (sequence) is used to indicate SL PRS to be transmitted.
- An embodiment of the present disclosure also provides a direct link positioning method, which is applied to a third user equipment, and the method includes:
- the first configuration parameter includes the bandwidth part BWP configuration parameter of the SL PRS, and/or, the SL PRS resource configuration parameter, but not limited thereto.
- the first configuration parameter is configured by at least one of the following:
- the direct link positioning configuration broadcast message is a message sent by the user equipment (Internet of Vehicles communication equipment).
- the embodiment of the present disclosure also provides a direct link positioning device, which is applied to the first user equipment, including:
- the transmission module 301 is configured to perform a first transmission on the through link, where the first transmission includes: transmission of the through link positioning reference signal SL PRS, or transmission of the SL PRS and first information.
- the transmission module 301 performs the first transmission on the direct link, and the first transmission includes the transmission of the SL PRS, or the transmission of the SL PRS and the first information; that is, in the direct link Send SL PRS on the road, or send SL PRS and the first information on the direct link, so that the user equipment at the receiving end can perform sidelink-based positioning based on the received signal/information, which solves the main problem of vehicle networking positioning in related technologies.
- the device also includes at least one of the following:
- An acquisition module configured to acquire the first configuration parameter of the SL PRS
- a sending module configured to send second information, where the second information is used to indicate the resource for the first transmission.
- the first information is carried by at least one of the following:
- PSDCH Physical direct link discovery channel
- the physical direct link positioning channel PSPCH The physical direct link positioning channel PSPCH.
- the first information includes at least one of the following:
- the interaction mode of the SL PRS includes at least one of the following:
- the device also includes a first determining module, configured to:
- the interaction mode of the SL PRS is one-way, and at least one of the following methods is adopted:
- the first user equipment maintains high-precision time synchronization with other anchor nodes
- the number of other user equipments maintaining high-precision time synchronization with the first user equipment meets a preset number threshold
- the first user equipment determines the estimated time difference between the maintenance time and the reference time.
- the device further includes a second determining module, configured to:
- the interaction mode of the SL PRS is a one-way round-trip mode, and at least one of the following modes is adopted:
- the first user equipment determines a frequency offset rate of a local timing device
- the first user equipment determines a frequency offset value of a local timing device and a corresponding reference time
- the different antenna elements of the first user equipment have no processing time offset
- the first user equipment determines processing time offset values for different antenna elements.
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- the location information of the first user equipment is a first value, it indicates that the first user equipment cannot serve as an anchor node, and that the first user equipment can support relative positioning.
- the direct link positioning apparatus further includes a calculation module, configured to calculate a frequency offset value of the local timing device of the first user equipment, specifically for:
- the first user equipment can receive the GNSS signal, within the first time, when receiving the second pulse sent by the GNSS module of the global navigation satellite system or receiving the second pulse multiple times continuously, according to the following Any one calculates the frequency offset value of the local timing device of the first user equipment, wherein the first time is the reference time set by the first user equipment or the first time corresponds to the GNSS module output Interval of pulses in seconds:
- the content indicated by the second information includes at least one of the following:
- Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity are Frequency-domain resource locations with sub-channel and edge combination resources as the scheduling granularity.
- the time domain resource location includes at least one of the following:
- the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period is the time interval between the current SL PRS transmission period and the next adjacent SL PRS transmission period.
- the second information is carried by at least one of the following:
- the SCI is used to indicate the resource location of the SPI transmission.
- the SCI only includes the first SCI, or, the SCI includes the first SCI and at least one of the second SCI and the third SCI.
- the SCI includes the first SCI, and at least one of the second SCI and the third SCI
- the content indicated by the first SCI further includes:
- the fourth indication information is used to indicate whether the PSSCH contains the second SCI and/or the third SCI;
- the fifth indication information is used to indicate whether the currently transmitted signal and/or information is used to indicate through-link positioning, where the fifth indication information is carried in N bits in the first SCI, and N is a positive integer .
- the device further includes: a determining module, configured to:
- Determining the transmission mode of the SCI, the SPI, the SL PRS and the PSSCH includes:
- the determination module includes:
- the first determining submodule is used to determine when the SCI, the SPI and the SL PRS are transmitted in different frequency bands:
- At least one of the SCI and the SPI is transmitted in a first frequency band, and the SL PRS is transmitted in a second frequency band; the first frequency band is lower than the second frequency band;
- At least one of the SCI and the SPI is transmitted in a licensed frequency band, and the SL PRS is transmitted in a license-free frequency band.
- an embodiment of the present disclosure also provides a direct link positioning device, which is applied to a second user equipment, including:
- the first receiving module 401 is configured to receive the first transmission on the direct link, where the first transmission includes: transmission of the SL PRS, or transmission of the SL PRS and first information;
- a measurement module 402 configured to measure the SL PRS in the first transmission.
- the first receiving module 401 performs reception of the first transmission on the direct link, the first transmission includes the transmission of SL PRS, or the transmission of SL PRS and first information; that is , receive the SL PRS on the through link, or receive the SL PRS and the first information on the through link, so that the measurement module 402 measures the SL PRS in the first transmission, and realizes the SL PRS based on the received signal/information
- the positioning based on sidelink solves the problem of the limitation that the positioning of the Internet of Vehicles in the related technology mainly relies on GNSS.
- the device also includes at least one of the following:
- An acquisition module configured to acquire the first configuration parameter of the SL PRS
- the second receiving module is configured to receive second information, where the second information is used to indicate the resources of the first transmission.
- the device also includes:
- a processing module configured to perform detection and/or resource exclusion of the SL PRS according to the second information.
- the first information includes at least one of the following:
- the third information includes at least one of the following:
- the source of the location information of the adjacent user equipment is the source of the location information of the adjacent user equipment
- the first indication information is used to indicate that the current positioning signal/information is used for absolute positioning or relative positioning
- the second indication information is used to indicate whether the first user equipment can serve as an anchor node
- the third indication information is used to indicate whether the first user equipment maintains high-precision time synchronization with other anchor nodes
- the estimated time difference between the maintenance time of the first user equipment and the reference time is the estimated time difference between the maintenance time of the first user equipment and the reference time
- the device also includes a first determining module, configured to:
- the second indication information indicates that the first user equipment can serve as an anchor node
- determine that the information implicitly indicated by the second indication information is that the first user equipment can support absolute positioning or calculate a position by itself ;
- the second indication information indicates that the first user equipment cannot serve as an anchor node
- it is determined that the information implicitly indicated by the second indication information is that the first user equipment can only support relative positioning or support Auxiliary solution position.
- the device further includes a second determining module, configured to:
- the third indication information indicates that the first user equipment maintains high-precision time synchronization with other anchor nodes, or the number of other user equipments that maintain high-precision time synchronization with the first user equipment meets a preset number threshold, or , in the case where the third information includes the estimated time difference between the maintenance time of the first user equipment and a reference time, determining that the second user equipment can perform positioning based on the one-way transmission of SL PRS by the first user equipment .
- the device further includes a third determining module, configured to:
- the third information includes the frequency offset rate of the local timing device of the first user equipment, or the third information includes the frequency offset value of the local timing device of the first user equipment and the corresponding reference time, or, the third information includes and indicates that different antenna units of the first user equipment do not have a processing time offset, or, the third information includes processing time of different antenna units of the first user equipment In the case of a deviation value, it is determined that the second user equipment can perform positioning based on the SL PRS interaction mode of the one-way round-trip SW-RT performed by the first user equipment.
- an embodiment of the present disclosure also provides a direct link positioning device, which is applied to a third user equipment, and the device includes:
- the configuration module is used to configure the first configuration parameter of the SL PRS.
- the first configuration parameter includes the bandwidth part BWP configuration parameter of the SL PRS, and/or, the SL PRS resource configuration parameter, but not limited thereto.
- the configuration module configures the first configuration parameter through at least one of the following:
- the direct link positioning configuration broadcast message is a message sent by the user equipment (Internet of Vehicles communication equipment).
- an embodiment of the present disclosure also provides a user equipment, including a transceiver 510, a memory 520, a processor 500, and a computer program stored in the memory 520 and running on the processor 500,
- the processor 500 executes the computer program, it implements the various processes of the embodiment of the direct link positioning method applied to the first user equipment as described above, or, the above described process applied to the second user equipment In order to avoid repetition, the various processes of the embodiment of the direct link positioning method will not be repeated here.
- the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by the processor 500 and various circuits of the memory represented by the memory 520 are linked together.
- the bus architecture can also link together various other circuits such as peripherals, voltage regulators, and power management circuits, etc., which are well known in the art and therefore will not be further described herein.
- the bus interface provides the interface.
- Transceiver 510 may be a plurality of elements, including a transmitter and a transceiver, providing a means for communicating with various other devices over a transmission medium.
- the user interface 530 may also be an interface capable of connecting externally and internally to required devices, and the connected devices include but are not limited to keypads, displays, speakers, microphones, joysticks, and the like.
- the processor 500 is responsible for managing the bus architecture and general processing, and the memory 520 can store data used by the processor 500 when performing operations.
- an embodiment of the present disclosure also provides a computer-readable storage medium, on which a program is stored, and when the program is executed by a processor, each process in the above-mentioned embodiment of the direct link location method is implemented, and can To achieve the same technical effect, in order to avoid repetition, no more details are given here.
- the computer-readable storage medium is, for example, a read-only memory (Read-Only Memory, ROM), a random access memory (Random Access Memory, RAM), a magnetic disk or an optical disk, and the like.
- each component or each step can be decomposed and/or reassembled. These decompositions and/or recombinations should be considered equivalents of the present disclosure. Also, the steps for performing the above series of processes may naturally be performed in the order described or in chronological order, but not necessarily in chronological order, and some steps may be performed in parallel or independently of each other.
- the object of the present disclosure can also be achieved by running a program or a group of programs on any computing device.
- the computing device may be a known general-purpose device. Therefore, the object of the present disclosure can also be achieved only by providing a program product including program codes for realizing the method or device. That is to say, such a program product also constitutes the present disclosure, and a storage medium storing such a program product can also constitute the present disclosure.
- the storage medium may be any known storage medium or any storage medium developed in the future.
Landscapes
- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Computer Networks & Wireless Communication (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
本公开公开了一种直通链路定位方法、装置及用户设备,涉及直通链路技术领域,该方法应用于第一用户设备,该方法包括:在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输。
Description
相关申请的交叉引用
本公开主张在2021年8月2日在中国提交的中国专利申请号No.202110888814.3的优先权,其全部内容通过引用包含于此。
本公开涉及直通链路技术领域,尤其是涉及一种直通链路定位方法、装置及用户设备。
直通链路应用、特别是直通链路典型场景的车联网(Vehicle to everything,V2X)应用需要获知用户设备特别是移动终端(包括车载单元(On Board Unit,OBU)、弱势道路交通参与者(Vulnerable Road Users,VRU)等)的精确位置。常规的定位方式是基于全球导航卫星系统(Global Navigation Satellite System,GNSS)或者增强的GNSS定位,但在GNSS信号覆盖不佳的区域(如城市峡谷)以及无GNSS信号覆盖的区域(隧道、地下停车场、煤矿井下、地下运输通道等),需要通过其他定位技术保障定位性能。
蜂窝车联网(Cellular Vehicle to Vehicle,C-V2X)包括长期演进车联网(Long Term Evolution Vehicle to Vehicle,LTE-V2X)和新空口车联网(New Radio Vehicle to Vehicle,NR-V2X),支持直通链路和蜂窝网上下行链路通信,C-V2X设备在蜂窝网络信号覆盖内可以与基站进行通信;在蜂窝网络信号覆盖内和覆盖外,C-V2X均可通过直通链路进行通信。
第三代合作伙伴计划(3GPP)的版本16(3GPP Release 16)开展了新空口定位(NR Positioning)的研究和标准化,在蜂窝网覆盖内,基站发送特定小区(cell-specific)的下行定位参考信号(Positioning Reference Signal,PRS)信号,终端发送上行用于定位的上行探测信号(Sounding Reference Signal,SRS),相应的,终端可以测量参考信号的时间差(Reference Signal Time Difference,RSTD),或者测量下行定位参考信号(Downlink Positioning Reference Signal,DL PRS)的参考信号接收功率(Reference Signal Received Power,RSRP),或者测量终端接收到DL PRS和发送出SRS的时间差;基站可以测量上行的相对到达时间(Relative Time of Arrival,RTOA),SRS的RSRP,第五代移动通信技术(5th-Generation,5G)基站(the next Generation Node B,gNB)收到SRS和gNB发送DL PRS的时间差,以及角度测量值等。通过对测量值进行处理,计算出用户设备(User Equipment,UE)的位置。
然而V2X的应用场景需要支持蜂窝网络覆盖内或者覆盖外均可通信,在蜂窝网络覆盖外,需要针对直通链路设计专门的定位技术,以实现用户设备的位置确定。
目前,3GPP尚未开展针对直通链路定位技术开展标准化工作。
发明内容
本公开的目的在于提供一种直通链路定位方法、装置及用户设备,从而解决相关技术没有针对直通链路的专门的定位技术的问题。
第一方面,本公开实施例提供了一种直通链路定位方法,应用于第一用户设备,所述方法包括:
在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号(Sidelink Positioning Reference Signal,SL PRS)的传输,或者,SL PRS和第一信息的传输。
可选地,所述方法还包括下述至少一项:
获取所述SL PRS的第一配置参数;
发送第二信息,所述第二信息用于指示所述第一传输的资源。
可选地,所述第一信息通过下述至少一项承载:
直通链路控制信息(Sidelink Control Information,SCI);
直通链路定位信息(Sidelink Positioning Information,SPI);
媒体接入控制层控制单元(Media Access Control Control Element,MAC CE);
无线资源控制(Radio Resource Control,RRC)信令;
直通链路数据包;
物理直通链路控制信道(Physical Sidelink Control Channel,PSCCH);
物理直通链路共享信道(Physical Sidelink Shared Channel,PSSCH);
物理直通链路广播信道(Physical Sidelink Broadcast Channel,PSBCH);
物理直通链路反馈信道(Physical Sidelink Feedback Channel,PSFCH);
物理直通链路发现信道(Physical Sidelink Discover Channel,PSDCH);
物理直通链路定位信道(Physical Sidelink Positioning Channel,PSPCH)。
可选地,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
所述第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
可选地,所述SL PRS的交互方式包括下述至少一项:
单程;
单程往返方式(Single Way-Round Trip,SW-RT);
双程往返方式(Two Way-Round Trip,TW-RT);
对称双程往返方式(Symmetric Two Way-Round Trip,STW-RT)。
可选地,确定所述SL PRS的交互方式为单程,采用以下方式至少之一:
所述第一用户设备与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限;
所述第一用户设备确定维护时间与参考时间的预计时间差。
可选地,确定所述SL PRS的交互方式为单程往返方式,采用以下方式至少之一:
所述第一用户设备确定本地计时器件的频率偏移率;
所述第一用户设备确定本地计时器件的频率偏移值及对应的参考时间;
所述第一用户设备不同天线单元不具有处理时间偏移;
所述第一用户设备确定不同天线单元的处理时间偏差值。
可选地,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
可选地,在所述第一用户设备的位置信息为第一数值的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备能够支持相对定位。
可选地,所述第一用户设备的本地计时器件的频率偏移值的计算过程包括:
在所述第一用户设备能够接收到GNSS信号的情况下,在第一时间内,收到一次全球导航卫星系统GNSS模块发送的秒脉冲或连续收到多次所述秒脉冲时,根据下述任一项计算所述第一用户设备的本地计时器件的频率偏移值,其中,所述第一时间为所述第一用户设备设定的参考时间或所述第一时间对应于GNSS模块输出秒脉冲的时间间隔:
本地计时器晶振实际计数与本地计时器晶振标称频率值的比较结果;
所述参考时间与所述本地计时器晶振实际计时的比较结果。
可选地,所述第二信息指示的内容包括下述至少一项:
专用频段;
免许可频段;
频带;
载波;
带宽部分(BandWidth Part,BWP);
资源池;
时域资源位置;
以资源集为调度粒度的频域资源位置;
以子信道为调度粒度的频域资源位置;
以梳齿资源块为调度粒度的频域资源位置;
以子信道及边缘组合资源为调度粒度的频域资源位置。
可选地,所述时域资源位置包括下述至少一项:
与当前SCI的时域间隔;
与当前SPI的时域间隔;
所述SL PRS进行重复传输的时间间隔;
所述SL PRS进行重复传输的次数;
所述SL PRS的传输周期;
当前SL PRS的传输周期与相邻的下一SL PRS传输周期的时间间隔。
可选地,所述第二信息通过下述至少一项承载:
SCI;
SPI。
可选地,当所述第二信息通过所述SPI进行承载时,所述SCI用于指示所述SPI传输的资源位置。
可选地,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种。
可选地,当所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种时,所述第一SCI指示的内容还包括:
所述第二SCI的资源位置;
所述第三SCI的资源位置;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;
第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链路定位,其中,所述第五指示信息承载于所述第一SCI中的N个比特,N为正整数。
可选地,所述SCI、所述SPI、所述SL PRS和PSSCH的传输方式包括:
在相同的频段、载波、BWP、资源池或资源集内传输;
或者,在不同的频段、载波、BWP、资源池或资源集内传输。
可选地,所述SCI、所述SPI和所述SL PRS在不同的频段传输包括:
所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输;所述第一频段低于第二频段;
或者,所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输。
第二方面,本公开实施例还提供一种直通链路定位方法,应用于第二用户设备,所述方法包括:
在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;
对所述第一传输中的所述SL PRS进行测量。
可选地,所述方法还包括下述至少一项:
获取所述SL PRS的第一配置参数;
接收第二信息,所述第二信息用于指示所述第一传输的资源。
可选地,所述方法还包括:
根据所述第二信息,进行所述SL PRS的检测和/或资源排除。
可选地,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
可选地,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
可选地,在所述第二指示信息指示所述第一用户设备能够作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备能够支持绝对定位或自行解算位置;
或者,在所述第二指示信息指示所述第一用户设备不能作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备仅能够支 持相对定位或支持辅助解算位置。
可选地,在所述第三指示信息指示所述第一用户设备与其他锚节点保持高精时间同步,或者,与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限,或者,在所述第三信息包括所述第一用户设备的维护时间与参考时间的预计时间差的情况下,所述第二用户设备确定能够基于所述第一用户设备单程传输SL PRS的方式进行定位。
可选地,在所述第三信息包括所述第一用户设备的本地计时器件的频率偏移率,或者,所述第三信息包括所述第一用户设备的本地计时器件的频率偏移值及对应的参考时间,或者,所述第三信息包括并指示所述第一用户设备的不同天线单元不具有处理时间偏移,或者,所述第三信息包括所述第一用户设备的不同天线单元的处理时间偏差值的情况下,所述第二用户设备确定可基于所述第一用户设备进行单程往返方式SW-RT的SL PRS交互方式进行定位。
第三方面,本公开实施例还提供一种用户设备,包括收发机、存储器、处理器及存储在所述存储器上并了在所述处理器上运行的计算机程序,所述处理器执行所述计算机程序时实现如第一方面所述的直通链路定位方法,或者,如第二方面所述的直通链路定位方法。
第四方面,本公开实施例还提供一种直通链路定位装置应用于第一用户设备,包括:
传输模块,用于在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输。
第五方面,本公开实施例还提供一种直通链路定位装置,应用于第二用户设备,包括:
第一接收模块,用于在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;
测量模块,用于对所述第一传输中的所述SL PRS进行测量。
第六方面,本公开实施例还提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现如第一方面所述的直通链路定位方法,或者,如第二方面所述的直通链路定位方法。
本公开的上述技术方案至少具有如下有益效果:
本公开实施例的直通链路定位方法、装置及用户设备,涉及直通链路技术领域,该方法应用于第一用户设备,该方法包括:在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输,如此,能够使接收端的用户设备对SL PRS进行测量,从而实现基于直通链路(sidelink)的定位。
图1为本公开实施例的直通链路定位方法的流程示意图之一;
图2为本公开实施例的直通链路定位方法的流程示意图之二;
图3为本公开实施例的直通链路定位装置的结构示意图之一;
图4为本公开实施例的直通链路定位装置的结构示意图之二;
图5为本公开实施例的用户设备的结构示意图。
为使本公开要解决的技术问题、技术方案和优点更加清楚,下面将结合附图及具体实施例进行详细描述。在下面的描述中,提供诸如具体的配置和组件的特定细节仅仅是为了帮助全面理解本公开的实施例。因此,本领域技术人员应该清楚,可以对这里描述的实施例进行各种改变和修改而不脱离本公开的范围和精神。另外,为了清楚和简洁,省略了对已知功能和构造的描述。
应理解,说明书通篇中提到的“一个实施例”或“一实施例”意味着与实施例有关的特定特征、结构或特性包括在本公开的至少一个实施例中。因此,在整个说明书各处出现的“在一个实施例中”或“在一实施例中”未必一定指相同的实施例。此外,这些特定的特征、结构或特性可以任意适合的方式结合在一个或多个实施例中。
在本公开的各种实施例中,应理解,下述各过程的序号的大小并不意味着执行顺序的先后,各过程的执行顺序应以其功能和内在逻辑确定,而不应对本公开实施例的实施过程构成任何限定。
在本公开所提供的实施例中,应理解,“与A相应的B”表示B与A相关联,根据A可以确定B。但还应理解,根据A确定B并不意味着仅仅根据A确定B,还可以根据A和/或其它信息确定B。
如图1所示,本公开实施例提供了一种直通链路定位方法,应用于第一用户设备,该第一用户设备为应用于直通链路技术领域的典型应用场景(车联网应用场景)的用户设备,亦即,第一用户设备为支持直通链路定位的车联网通信设备,如:路侧设备(Road Side Unit,RSU)、OBU、VRU等。所述方法包括:
步骤101,在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号(Sidelink Positioning Reference Signal,SL PRS)的传输,或者,SL PRS和第一信息的传输。
这里,需要说明的是,该第一信息至少包括SL PRS配置信息和/或与定位相关的信息,但不以此为限。
本公开实施例的直通链路定位方法,在直通链路上执行第一传输,第一传输包括SL PRS的传输,或者,SL PRS和第一信息的传输;亦即,在直通链路上发送SL PRS,或者,在直通链路上发送SL PRS和第一信息,使得接收端能够基于接收到的信号/信息进行基于sidelink的定位,解决了相关技术中的车联网定位主要依靠GNSS的局限性的问题。
进一步地,作为一个可选的实现方式,所述方法还包括下述至少一项:
获取所述SL PRS的第一配置参数;
发送第二信息,所述第二信息用于指示所述第一传输的资源。
这里,需要说明的是,该第一配置参数包括SL PRS的带宽部分(BandWidth Part,BWP)配置参数,和/或,SL PRS资源配置参数,但不以此为限。
本可选的实现方式中,通过获取SL PRS的第一配置参数,实现了对SL PRS的配置;通过发送第二信息,实现了接收端的用户设备根据第一传输的资源接收第一用户设备发送的信号/信息。
这里,需要说明的是,可以通过下述至少一种方式获取所述第一配置参数:
网络侧配置;
预配置信息;
直通链路主信息块(Master Information Block,MIB)信息;
直通链路定位配置广播消息。
这里,还需要说明的是,该直通链路定位配置广播消息为用户设备(车联网通信设备)发送的消息。
作为一个可选的实现方式,所述第一信息通过下述至少一项承载:
直通链路控制信息(Sidelink Control Information,SCI);
直通链路定位信息(Sidelink Positioning Information,SPI);
媒体接入控制层控制单元(Media Access Control Control Element,MAC CE);
无线资源控制(Radio Resource Control,RRC)信令;
直通链路数据包;
物理直通链路控制信道(Physical Sidelink Control Channel,PSCCH);
物理直通链路共享信道(Physical Sidelink Shared Channel,PSSCH);
物理直通链路广播信道(Physical Sidelink Broadcast Channel,PSBCH);
物理直通链路反馈信道(Physical Sidelink Feedback Channel,PSFCH);
物理直通链路发现信道(Physical Sidelink Discover Channel,PSDCH);
物理直通链路定位信道(Physical Sidelink Positioning Channel,PSPCH)。
这里,需要说明的是,“SPI”是指直通链路上用于指示定位相关信息的指示信息类型,但是,指示定位相关信息的指示信息类型的名称并不限于SPI。
这里,还需要说明的是,支持直通链路定位的MAC CE的设计格式/支持直通链路定位的RRC信令(传输指示)的设计格式/直通链路数据包的设计格式,包括以下指示信息的至少一项:
第一信息;
第二SCI的格式;
第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
其中,第一信息、第二SCI和第三SCI的相关内容可以参考后续内容,这里不重复说明。
本可选的实现方式,通过对现有的MAC CE、RRC信令进行改进,实现了支持定位参考信号和定位信息的指示或者传输,以灵活调度定位信号资源以及支持不同的定位信号/信息监听方式,从而实现基于sidelink的定位。
作为一个可选的实现方式,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
所述第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
这里,需要说明的是,SL PRS的类型包括以下至少一项,但不以此为限:
PRS;
载波相位定位参考信号(Carrier Phase Positioning Reference Signal,C-PRS)。
作为一个具体的实现方式,所述SL PRS的交互方式包括下述至少一项:
单程;
单程往返方式(Single Way-Round Trip,SW-RT);
双程往返方式(Two Way-Round Trip,TW-RT);
对称双程往返方式(Symmetric Two Way-Round Trip,STW-RT)。
作为一个可选的实现方式,确定所述SL PRS的交互方式为单程,采用以下方式至少之一:
所述第一用户设备与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限;
所述第一用户设备确定维护时间与参考时间的预计时间差。
也就是说,在满足第一条件的情况下,确定SL PRS的交互方式可为单程,其中,第一条件包括上述三个条件中的至少一个,亦即,在第一用户设备满 足上述三个条件中的至少一个的情况下,确定SL PRS的交互方式可为单程,如此,第二用户设备能够基于第一用户设备单程传输的SL PRS的方式进行定位。
作为又一个可选的实现方式,采用以下方式至少之一,确定所述SL PRS的交互方式为单程往返方式:
所述第一用户设备确定本地计时器件的频率偏移率;
所述第一用户设备确定本地计时器件的频率偏移值及对应的参考时间;
所述第一用户设备不同天线单元不具有处理时间偏移;
所述第一用户设备确定不同天线单元的处理时间偏差值。
也就是说,在满足第二条件的情况下,确定SL PRS的交互方式可为单程往返方式;亦即,在第一用户设备满足上述四个条件中的至少一个的情况下,确定SL PRS的交互方式可为单程往返方式,如此,第二用户设备能够基于第一用户设备单程往返传输的SL PRS的方式进行定位。
上述两个可选的实现方式,支持直通链路不同同步方式、不同定位信息来源、不同时间同步精度、不同信号优先级以及考虑是否进行本地时钟偏移指示、天线单元处理时延校准的情况下,实现支持直通链路定位的设备根据相应信息,确认定位信号交互方式、类型等方式,进而确认绝对/相对定位、UE自行定位/UE辅助定位等,实现车联网定位复杂环境、灵活配置下的多种方式的定位。
作为一个可选的实现方式,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
这里,需要说明的是,辅助解算位置即为用户设备辅助(UE-assisted)解算位置信息,自行解算位置即为基于用户设备(UE-based)解算位置信息。
本可选的实现方式中,第三信息包括上述多个内容中的至少一个,实现了接收端的用户设备根据相应信息,确认定位信号交互方式、类型等方式,进而确认绝对/相对定位、UE自行定位/UE辅助定位等,实现车联网定位复杂环境、灵活配置下的多种方式的定位。
作为一个可选的实现方式,在所述第一用户设备的位置信息为第一数值的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备能够支持相对定位。
这里,需要说明的是,特殊的,第一数值可以为0,特殊的,对于多比特(bit)位的指示、第一数值表示为全0,也就是说,在所述第一用户设备的位置信息为0的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备进行相对定位。
这里,还需要说明的是,在所述第二指示信息指示所述第一用户设备能够作为锚节点的情况下,隐式指示所述第一用户设备能够支持绝对定位或UE-based定位;或者,在所述第二指示信息指示所述第一用户设备不能够作为锚节点的情况下,隐式指示所述第一用户设备仅能够支持相对定位或UE-assisted定位。
作为一个可选的实现方式,所述第一用户设备的本地计时器件的频率偏移值的计算过程包括:
在所述第一用户设备能够接收到GNSS信号的情况下,在第一时间内,收到一次全球导航卫星系统GNSS模块发送的秒脉冲或连续收到多次所述秒脉冲时,根据下述任一项计算所述第一用户设备的本地计时器件的频率偏移值,其中,所述第一时间为所述第一用户设备设定的参考时间或所述第一时间对应于GNSS模块输出秒脉冲的时间间隔:
本地计时器晶振实际计数与本地计时器晶振标称频率值的比较结果;
所述参考时间与所述本地计时器晶振实际计时的比较结果。
这里,需要说明的是,GNSS模块输出秒脉冲的时间间隔为1s。
也就是说,当第一用户设备能够接收到GNSS信号时,在一定时间内,进行至少一次偏移测量,具体的,在一定时间(参考时间或者1s)内,在连续1次或者多次收到秒脉冲时,利用参考时间内的本地计时器晶振实际计时与晶振标称值进行比较,或者,利用参考时间与本地计时器晶振实际计时进行比较,获得第一用户设备的本地计时器件的频率偏移。
进一步地,在偏移值满足以下预设条件的至少一项的情况下,确定所述偏移值有效,可以传输所述偏移值:
预设时间内;
预设温度范围内;
预设湿度范围内。
也就是说,第一用户设备在发送所述偏移值时,还可进一步发送相应的条件,以使接收端的用户设备能够根据发送的条件确定所述偏移值是否有效。
本可选的实现方式,提出了一种基于GNSS的本地计时器件晶振频移测算方法,在可收到GNSS信号时进行测量,在直通链路定位中指示,可支持用户设备间不同步的情况下,基于单程往返方式实现高精测距,在基于单程往返方式计算RTOA或者测距时,将频移量带入,消除了本地计时器频偏带来计时误差引起定位精度下降的问题。
作为一个可选的实现方式,所述第二信息指示的内容包括下述至少一项:
专用频段;
免许可频段;
频带;
载波;
带宽部分BWP;
资源池;
时域资源位置;
以资源集为调度粒度的频域资源位置;
以子信道为调度粒度的频域资源位置;
以梳齿资源块为调度粒度的频域资源位置;
以子信道及边缘组合资源为调度粒度的频域资源位置。
也就是说,本公开实施例的第一传输可以在以上至少一种资源上传输。
作为一个具体的实现方式,所述时域资源位置包括下述至少一项:
与当前SCI的时域间隔;
与当前SPI的时域间隔;
所述SL PRS进行重复传输的时间间隔;
所述SL PRS进行重复传输的次数;
所述SL PRS的传输周期;
当前SL PRS的传输周期与相邻的下一SL PRS传输周期的时间间隔。
作为一个可选的实现方式,所述第二信息通过下述至少一项承载:
SCI;
SPI。
这里,需要说明的是,本可选实现方式中,在只进行直通链路定位(SL Positioning Standalone)时,所述第二信息通过SCI和/或SPI承载。
其中,作为一个具体的实现方式,当所述第二信息通过所述SPI进行承载时,所述SCI用于指示所述SPI传输的资源位置。
作为一个可选的实现方式,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种。
这里,需要说明的是,在直通链路定位(SL Positioning)与直通链路通信(SL Communication)共存,或者,通过SL Communication传输的信号/信息指示或者调度SL Positioning信号/信息时,所述第二信息承载于SCI和/或SPI,其中,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以 及第二SCI和第三SCI的至少一种。
其中,本公开实施例,将SCI设计为仅包括第一SCI,此种情况下,可以不改变现有的第一SCI基本格式或者仅增加指示是否用于定位的比特,实现了直通链路定位与直通链路通信机制的兼容性,保证直通链路通信的用户设备能够实现有效资源感知;将SCI设计为包括第一SCI,以及,第二SCI和第三SCI中的至少一项,能够支持定位参考信号和定位信息的指示或者传输。具体的,SCI包括第一SCI,以及,第二SCI和第三SCI中的至少一项,具体可以为:SCI包括第一SCI和新设计的第二SCI,或者,SCI包括第一SCI、现有的第二SCI和新设计的第三SCI。
这里,需要说明的是,所述第一SCI指示的内容包括以下至少一项:
PSSCH的资源位置;
PSPCH的资源位置;
SPI的资源位置。
具体的,PSSCH的资源位置具体可以是承载所述第一传输的PSSCH资源位置。
作为一个可选的实现方式,当所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种时,所述第一SCI指示的内容还包括:
所述第二SCI的资源位置;
所述第三SCI的资源位置;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;
第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链路定位,其中,所述第五指示信息承载于所述第一SCI中的N个比特,N为正整数。
这里,需要说明的是,一者,第四指示信息具体用于指示PSSCH中是否仅包含第二SCI,或者,用于指示PSSCH中是否仅包含第二SCI和第三SCI。二者,承载所述第五指示信息的N个比特为已有的第一阶段SCI的预留比特, 也就是说,所述第五指示信息是在已有第一阶段SCI的预留比特进行指示。特殊的,N可以为1bit,当对应bit位指示为1,支持直通链路定位的新版本设备接收到该bit位信息,可以获知该第一阶段SCI指示的相关传输用于定位。
也就是说,SL Positioning Standalone下支持直通链路定位的SCI设计,或者,SL Positioning与SL Communication共存,或者,通过SL Communication传输的信号/信息指示或者调度SL Positioning信号/信息时的第一SCI设计具体包括以下至少一项:
PSSCH的资源位置;
PSPCH的资源位置;
SPI的资源位置;
所述第二SCI的资源位置;
所述第三SCI的资源位置;
第二信息;
时域资源位置;
以资源集为调度粒度的频域资源位置;
以子信道为调度粒度的频域资源位置;
以梳齿资源块为调度粒度的频域资源位置;
以子信道及边缘组合资源为调度粒度的频域资源位置;
所述SL PRS的优先级;
所述第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;
第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链路定位。
另外,SL Positioning与SL Communication共存,或者,通过SL Communication传输的信号/信息指示或者调度SL Positioning信号/信息时,支持直通链路定位的第二SCI或第三SCI具体包括以下指示信息的至少一项:
第二信息;
第一信息;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
这里,还需要说明的是,直通链路定位信息SPI包括以下指示信息的至少一项:
第二信息;
第一信息;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
作为一个可选的实现方式,所述SCI、所述SPI、所述SL PRS和PSSCH的传输方式包括:
在相同的频段、载波、BWP、资源池或资源集内传输;
或者,在不同的频段、载波、BWP、资源池或资源集内传输。
本可选的实现方式能够支持控制信息或者定位信息的至少一项与SL PRS以及第一信息(必要的定位信息)在相同或不同的频段、载波、BWP、资源池、资源集进行灵活传输和调度,以及支持不同的定位信号/信息监听方式。
作为一个具体的实现方式,所述SCI、所述SPI和所述SL PRS在不同的频段传输包括:
所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输;所述第一频段低于第二频段;
或者,所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输。
这里,需要说明的是,在所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输的情况下,该第二频段还可同时传输SCI和SPI的至少一项,或者,该第二频段不传输SCI和SPI。
在所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输的情况下,免许可频段可同时传输SCI和SPI的至少一项,或者,免许可频段不传输SCI和SPI。
另外,在所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输的情况下,免许可频段传输前导信息(序列),前导信息(序列)用于指示即将传输的SL PRS。
本公开实施例的直通链路定位方法,一者,通过在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输,使得接收端的用户设备能够对SL PRS进行测量,从而实现基于直通链路sidelink的定位,使得用户设备工作在蜂窝网络覆盖外场景时也能实现定位,且对车辆移动进行针对性设计,提高了定位精度;二者,通过对各种信令/信息格式的设计,使得直通链路定位技术与直通链路通信技术能够兼容,保证直通链路的用户设备能够实现有效资源感知,且支持定位参考信号和定位信息的指示或传输;三者,通过对SCI、SPI、SL PRS和PSSCH的传输方式进行设计,实现了SL PRS以及必要的定位信息能够在相同或不同频段、载波、BWP、资源池、资源集进行灵活传输和调度,解决了定位频谱受限的问题;四者,通过本地及时期晶振频移测算方法,在可收到GNSS信号时进行测量,在直通链路定位中指示,可支持用户设备不同步情况下,基于单程往返方式实现高精测距,在基于单程往返方式计算RTOA或测距时,将频移量带入、消除本地计时器频偏带来即使误差引起定位精度下降的问题,提高了定位精度。
如图2所示,本公开实施例还提供一种直通链路定位方法,应用于第二用户设备,该第二用户设备为应用于直通链路技术领域的典型应用场景(车联网应用场景)的用户设备,亦即,第二用户设备为支持直通链路定位的车 联网通信设备,如:路侧设备(Road Side Unit,RSU)、OBU、VRU等。所述方法包括:
步骤201,在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;
这里,需要说明的是,该第一信息至少包括SL PRS配置信息和与定位相关的信息,但不以此为限。
步骤202,对所述第一传输中的所述SL PRS进行测量。
本公开实施例的直通链路定位方法,在直通链路上执行第一传输的接收,第一传输包括SL PRS的传输,或者,SL PRS和第一信息的传输;亦即,在直通链路上接收SL PRS,或者,在直通链路上接收SL PRS和第一信息,以对第一传输中的SL PRS进行测量,实现基于接收到的信号/信息进行基于sidelink的定位,解决了相关技术中的车联网定位主要依靠GNSS的局限性的问题。
进一步地,作为一个可选的实现方式,所述方法还包括下述至少一项:
获取所述SL PRS的第一配置参数;
接收第二信息,所述第二信息用于指示所述第一传输的资源。
这里,需要说明的是,该第一配置参数包括SL PRS的带宽部分BWP配置参数,和/或,SL PRS资源配置参数,但不以此为限。
本可选的实现方式中,通过接收第二信息,实现了根据第一传输的资源接收第一用户设备发送的信号/信息。
这里,需要说明的是,可以通过下述至少一种方式获取所述第一配置参数:
网络侧配置;
预配置信息;
直通链路主信息块(Master Information Block,MIB)信息;
直通链路定位配置广播消息。
这里,还需要说明的是,该直通链路定位配置广播消息为用户设备(车联网通信设备)发送的消息。
作为一个可选的实现方式,所述方法还包括:
根据所述第二信息,进行所述SL PRS的检测和/或资源排除。
这里,需要说明的是,所述第一信息通过下述至少一项承载:
直通链路控制信息SCI;
直通链路定位信息SPI;
媒体接入控制层控制单元MAC CE;
无线资源控制RRC信令;
直通链路数据包;
物理直通链路控制信道PSCCH;
物理直通链路共享信道PSSCH;
物理直通链路广播信道PSBCH;
物理直通链路反馈信道PSFCH;
物理直通链路发现信道PSDCH;
物理直通链路定位信道PSPCH。
这里,需要说明的是,“SPI”是指直通链路上用于指示定位相关信息的指示信息类型,但是,指示定位相关信息的指示信息类型的名称并不限于SPI。
这里,还需要说明的是,支持直通链路定位的MAC CE设计格式/支持直通链路定位的RRC信令(传输指示)设计格式/直通链路数据包设计格式,包括以下指示信息的至少一项:
第一信息;
第二SCI的格式;
第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
其中,第一信息、第二SCI和第三SCI的相关内容可以参考后续内容,这里不重复说明。
本可选的实现方式,通过对现有的MAC CE、RRC信令进行改进,实现了支持定位参考信号和定位信息的指示或者传输,以灵活调度定位信号资源以及支持不同的定位信号/信息监听方式,从而实现基于sidelink的定位。
作为一个可选的实现方式,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
这里,需要说明的是,SL PRS的类型包括以下至少一项,但不以此为限:
PRS;
载波相位定位参考信号(Carrier Phase Positioning Reference Signal,C-PRS)。
所述SL PRS的交互方式包括下述至少一项:
单程;
单程往返方式(Single Way-Round Trip,SW-RT);
双程往返方式(Two Way-Round Trip,TW-RT);
对称双程往返方式(Symmetric Two Way-Round Trip,STW-RT)。
作为一个可选的实现方式,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
这里,需要说明的是,辅助解算位置即为UE-assisted解算位置信息,自行解算位置即为UE-based解算位置信息。
本可选的实现方式中,第三信息包括上述多个内容中的至少一个,实现了第二用户设备根据相应信息,确认定位信号交互方式、类型等方式,进而确认绝对/相对定位、UE自行定位/UE辅助定位等,实现车联网定位复杂环境、灵活配置下的多种方式的定位。
可选地,在所述第一用户设备的位置信息为第一数值的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备能够支持相对定位。
这里,需要说明的是,特殊的,第一数值可以为0,特殊的,对于多bit位的指示、第一数值表示为全0,也就是说,在所述第一用户设备的位置信息为0的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备进行相对定位。
作为一个可选的实现方式,在所述第二指示信息指示所述第一用户设备能够作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备能够支持绝对定位或自行解算位置;
或者,在所述第二指示信息指示所述第一用户设备不能作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备仅能够支持相对定位或支持辅助解算位置。
作为一个可选的实现方式,在所述第三指示信息指示所述第一用户设备与其他锚节点保持高精时间同步,或者,与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限,或者,在所述第三信息包括所述第一用户设备的维护时间与参考时间的预计时间差的情况下,所述第二用户设备确定能够基于所述第一用户设备单程传输SL PRS的方式进行定位。
作为一个可选的实现方式,在所述第三信息包括所述第一用户设备的本 地计时器件的频率偏移率,或者,所述第三信息包括所述第一用户设备的本地计时器件的频率偏移值及对应的参考时间,或者,所述第三信息包括并指示所述第一用户设备的不同天线单元不具有处理时间偏移,或者,所述第三信息包括所述第一用户设备的不同天线单元的处理时间偏差值的情况下,所述第二用户设备确定可基于所述第一用户设备进行单程往返方式SW-RT的SL PRS交互方式进行定位。
上述两个可选的实现方式,支持直通链路不同同步方式、不同定位信息来源、不同时间同步精度、不同信号优先级以及考虑是否进行本地时钟偏移指示、天线单元处理时延校准的情况下,实现支持直通链路定位的设备根据相应信息,确认定位信号交互方式、类型等方式,进而确认绝对/相对定位、UE自行定位/UE辅助定位等,实现车联网定位复杂环境、灵活配置下的多种方式的定位。
另外,还需要说明的是,第一用户设备计算的本地计时器件的频率偏移值满足以下至少一项的情况下,确定该频率偏移值有效:
预设时间内;
预设温度范围内;
预设湿度范围内。
也就是说,第一用户设备在发送所述偏移值时,还可进一步发送相应的条件,以使第二用户设备能够根据发送的条件与预设条件进行比较,以确定所述偏移值是否有效。
本可选实现方式中,在定位过程中,将频率偏移值带入,消除了本地计时器频偏带来计时误差引起定位精度下降的问题。
另外,在本公开实施例中,所述第二信息指示的内容包括下述至少一项:
专用频段;
免许可频段;
频带;
载波;
带宽部分BWP;
资源池;
时域资源位置;
以资源集为调度粒度的频域资源位置;
以子信道为调度粒度的频域资源位置;
以梳齿资源块为调度粒度的频域资源位置;
以子信道及边缘组合资源为调度粒度的频域资源位置。
具体的,所述时域资源位置包括下述至少一项:
与当前SCI的时域间隔;
与当前SPI的时域间隔;
所述SL PRS进行重复传输的时间间隔;
所述SL PRS进行重复传输的次数;
所述SL PRS的传输周期;
当前SL PRS的传输周期与相邻的下一SL PRS传输周期的时间间隔。
可选地,所述第二信息通过下述至少一项承载:
SCI;
SPI。
其中,一者,在只进行直通链路定位(SL Positioning Standalone)时,所述第二信息通过SCI和/或SPI承载。二者,当所述第二信息通过所述SPI进行承载时,所述SCI用于指示所述SPI传输的资源位置。
另外,在直通链路定位(SL Positioning)与直通链路通信(SL Communication)共存,或者,通过SL Communication传输的信号/信息指示或者调度SL Positioning信号/信息时,所述第二信息承载于SCI和/或SPI,其中,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种。
其中,本公开实施例,将SCI设计为仅包括第一SCI,此种情况下,可以不改变现有的第一SCI基本格式或者仅增加指示是否用于定位的比特,实现了直通链路定位与直通链路通信机制的兼容性,保证直通链路通信的用户设备能够实现有效资源感知;将SCI设计为包括第一SCI,以及,第二SCI和第三SCI中的至少一项,能够支持定位参考信号和定位信息的指示或者传输。
具体的,所述第一SCI指示的内容包括以下至少一项:
PSSCH的资源位置;
PSPCH的资源位置;
SPI的资源位置。
具体的,PSSCH的资源位置具体可以是承载所述第一传输的PSSCH资源位置。
当所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种时,所述第一SCI指示的内容还包括:
所述第二SCI的资源位置;
所述第三SCI的资源位置;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;
第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链路定位,其中,所述第五指示信息承载于所述第一SCI中的N个比特,N为正整数。
第二SCI或第三SCI具体包括以下指示信息的至少一项:
第二信息;
第一信息;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
SPI包括以下指示信息的至少一项:
第二信息;
第一信息;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI。
可选地,所述SCI、所述SPI和所述SL PRS在不同的频段传输包括:
所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输;所述第一频段低于第二频段;
或者,所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输。
这里,需要说明的是,在所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输的情况下,该第二频段还可同时传输SCI和SPI的至少一项,或者,该第二频段不传输SCI和SPI。
在所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输的情况下,免许可频段可同时传输SCI和SPI的至少一项,或者,免许可频段不传输SCI和SPI。
另外,在所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输的情况下,免许可频段传输前导信息(序列),前导信息(序列)用于指示即将传输的SL PRS。
本公开实施例还提供一种直通链路定位方法,应用于第三用户设备,所述方法包括:
配置SL PRS的第一配置参数。
这里,需要说明的是,该第一配置参数包括SL PRS的带宽部分BWP配置参数,和/或,SL PRS资源配置参数,但不以此为限。
作为一个可选的实现方式,通过下述至少一项配置所述第一配置参数:
网络侧配置;
预配置信息;
直通链路MIB消息;
直通链路定位配置广播消息。
这里,需要说明的是,该直通链路定位配置广播消息为用户设备(车联网通信设备)发送的消息。
如图3所示,本公开实施例还提供一种直通链路定位装置,应用于第一 用户设备,包括:
传输模块301,用于在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输。
本公开实施例的直通链路定位装置,传输模块301在直通链路上执行第一传输,第一传输包括SL PRS的传输,或者,SL PRS和第一信息的传输;亦即,在直通链路上发送SL PRS,或者,在直通链路上发送SL PRS和第一信息,使得接收端的用户设备能够基于接收到的信号/信息进行基于sidelink的定位,解决了相关技术中的车联网定位主要依靠GNSS的局限性的问题。
进一步地,所述装置还包括下述至少一项:
获取模块,用于获取所述SL PRS的第一配置参数;
发送模块,用于发送第二信息,所述第二信息用于指示所述第一传输的资源。
可选地,所述第一信息通过下述至少一项承载:
直通链路控制信息SCI;
直通链路定位信息SPI;
媒体接入控制层控制单元MAC CE;
无线资源控制RRC信令;
直通链路数据包;
物理直通链路控制信道PSCCH;
物理直通链路共享信道PSSCH;
物理直通链路广播信道PSBCH;
物理直通链路反馈信道PSFCH;
物理直通链路发现信道PSDCH;
物理直通链路定位信道PSPCH。
可选地,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
所述第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
可选地,所述SL PRS的交互方式包括下述至少一项:
单程;
单程往返方式SW-RT;
双程往返方式TW-RT;
对称双程往返方式STW-RT。
可选地,所述装置还包括第一确定模块,用于:
确定所述SL PRS的交互方式为单程,采用以下方式至少之一:
所述第一用户设备与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限;
所述第一用户设备确定维护时间与参考时间的预计时间差。
可选地,所述装置还包括第二确定模块,用于:
确定所述SL PRS的交互方式为单程往返方式,采用以下方式至少之一:
所述第一用户设备确定本地计时器件的频率偏移率;
所述第一用户设备确定本地计时器件的频率偏移值及对应的参考时间;
所述第一用户设备不同天线单元不具有处理时间偏移;
所述第一用户设备确定不同天线单元的处理时间偏差值。
可选地,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
可选地,在所述第一用户设备的位置信息为第一数值的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备能够支持相对定位。
可选地,所述直通链路定位装置还包括计算模块,用于计算所述第一用户设备的本地计时器件的频率偏移值,具体用于:
在所述第一用户设备能够接收到GNSS信号的情况下,在第一时间内,收到一次全球导航卫星系统GNSS模块发送的秒脉冲或连续收到多次所述秒脉冲时,根据下述任一项计算所述第一用户设备的本地计时器件的频率偏移值,其中,所述第一时间为所述第一用户设备设定的参考时间或所述第一时间对应于GNSS模块输出秒脉冲的时间间隔:
本地计时器晶振实际计数与本地计时器晶振标称频率值的比较结果;
所述参考时间与所述本地计时器晶振实际计时的比较结果。
可选地,所述第二信息指示的内容包括下述至少一项:
专用频段;
免许可频段;
频带;
载波;
带宽部分BWP;
资源池;
时域资源位置;
以资源集为调度粒度的频域资源位置;
以子信道为调度粒度的频域资源位置;
以梳齿资源块为调度粒度的频域资源位置;
以子信道及边缘组合资源为调度粒度的频域资源位置。
可选地,所述时域资源位置包括下述至少一项:
与当前SCI的时域间隔;
与当前SPI的时域间隔;
所述SL PRS进行重复传输的时间间隔;
所述SL PRS进行重复传输的次数;
所述SL PRS的传输周期;
当前SL PRS的传输周期与相邻的下一SL PRS传输周期的时间间隔。
可选地,所述第二信息通过下述至少一项承载:
SCI;
SPI。
可选地,当所述第二信息通过所述SPI进行承载时,所述SCI用于指示所述SPI传输的资源位置。
可选地,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种。
可选地,当所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种时,所述第一SCI指示的内容还包括:
所述第二SCI的资源位置;
所述第三SCI的资源位置;
所述第二SCI的格式;
所述第三SCI的格式;
第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;
第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链路定位,其中,所述第五指示信息承载于所述第一SCI中的N个比特,N为正整数。
可选地,所述装置还包括:确定模块,用于:
确定所述SCI、所述SPI、所述SL PRS和PSSCH的传输方式包括:
在相同的频段、载波、BWP、资源池或资源集内传输;
或者,在不同的频段、载波、BWP、资源池或资源集内传输。
可选地,所述确定模块包括:
第一确定子模块,用于在确定所述SCI、所述SPI和所述SL PRS在不同的频段传输时,确定:
所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输;所述第一频段低于第二频段;
或者,所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输。
如图4所示,本公开实施例还提供一种直通链路定位装置,应用于第二用户设备,包括:
第一接收模块401,用于在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;
测量模块402,用于对所述第一传输中的所述SL PRS进行测量。
本公开实施例的直通链路定位装置,第一接收模块401在直通链路上执行第一传输的接收,第一传输包括SL PRS的传输,或者,SL PRS和第一信息的传输;亦即,在直通链路上接收SL PRS,或者,在直通链路上接收SL PRS和第一信息,以使测量模块402对第一传输中的SL PRS进行测量,实现基于接收到的信号/信息进行基于sidelink的定位,解决了相关技术中的车联网定位主要依靠GNSS的局限性的问题。
可选地,所述装置还包括下述至少一项:
获取模块,用于获取所述SL PRS的第一配置参数;
第二接收模块,用于接收第二信息,所述第二信息用于指示所述第一传输的资源。
可选地,所述装置还包括:
处理模块,用于根据所述第二信息,进行所述SL PRS的检测和/或资源排除。
可选地,所述第一信息包括以下至少一项:
所述SL PRS的优先级;
第一用户设备的位置信息的优先级;
所述第一用户设备的位置信息的置信度;
所述SL PRS的类型;
所述SL PRS的交互方式;
第三信息。
可选地,所述第三信息包括下述至少一项:
所述第一用户设备的位置信息;
所述第一用户设备的标识ID信息;
相邻用户设备的位置信息;
相邻用户设备的ID信息;
相邻用户设备的位置信息的来源;
相邻用户设备的位置信息的置信度;
第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;
第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;
支持辅助解算位置;
支持自行解算位置;
第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;
与所述第一用户设备保持高精时间同步的其他用户设备的信息;
所述第一用户设备的维护时间与参考时间的预计时间差;
所述第一用户设备的本地计时器件的频率偏移率;
所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;
所述第一用户设备的不同天线单元是否具有处理时间偏移;
所述第一用户设备的不同天线单元的处理时间偏差值。
可选地,所述装置还包括第一确定模块,用于:
在所述第二指示信息指示所述第一用户设备能够作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备能够支持绝对定位或自行解算位置;
或者,在所述第二指示信息指示所述第一用户设备不能作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备仅能够支持相对定位或支持辅助解算位置。
可选地,所述装置还包括第二确定模块,用于:
在所述第三指示信息指示所述第一用户设备与其他锚节点保持高精时间同步,或者,与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限,或者,在所述第三信息包括所述第一用户设备的维护时间与参考时间的预计时间差的情况下,确定所述第二用户设备能够基于所述第一用户设备单程传输SL PRS的方式进行定位。
可选地,所述装置还包括第三确定模块,用于:
在所述第三信息包括所述第一用户设备的本地计时器件的频率偏移率,或者,所述第三信息包括所述第一用户设备的本地计时器件的频率偏移值及对应的参考时间,或者,所述第三信息包括并指示所述第一用户设备的不同天线单元不具有处理时间偏移,或者,所述第三信息包括所述第一用户设备的不同天线单元的处理时间偏差值的情况下,确定所述第二用户设备可基于所述第一用户设备进行单程往返方式SW-RT的SL PRS交互方式进行定位。
另外,本公开实施例还提供一种直通链路定位装置,应用于第三用户设备,所述装置包括:
配置模块,用于配置SL PRS的第一配置参数。
这里,需要说明的是,该第一配置参数包括SL PRS的带宽部分BWP配置参数,和/或,SL PRS资源配置参数,但不以此为限。
作为一个可选的实现方式,配置模块通过下述至少一项配置所述第一配置参数:
网络侧配置;
预配置信息;
直通链路MIB消息;
直通链路定位配置广播消息。
这里,需要说明的是,该直通链路定位配置广播消息为用户设备(车联网通信设备)发送的消息。
如图5所示,本公开实施例还提供一种用户设备,包括收发机510、存储器520、处理器500及存储在所述存储器520上并了在所述处理器500上运行的计算机程序,所述处理器500执行所述计算机程序时实现如上所述的应用于第一用户设备的所述的直通链路定位方法实施例的各个过程,或者,如上所述的应用于第二用户设备的所述的直通链路定位方法实施例的各个过程,为了避免重复,这里不再赘述。
其中,在图5中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器500代表的一个或多个处理器和存储器520代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机510可以是多个元件,即包括发送机和收发机,提供用于在传输介质上与各种其他装置通信的单元。针对不同的终端,用户接口530还可以是能够外接内接需要设备的接口,连接的设备包括但不限于小键盘、显示器、扬声器、麦克风、操纵杆等。处理器500负责管理总线架构和通常的处理,存储器520可以存储处理器500在执行操作时所使用的数据。
本领域技术人员可以理解,实现上述实施例的全部或者部分步骤可以通过硬件来完成,也可以通过计算机程序来指示相关的硬件来完成,所述计算机程序包括执行上述方法的部分或者全部步骤的指令;且该计算机程序可以存储于一可读存储介质中,存储介质可以是任何形式的存储介质。
另外,本公开实施例还提供一种计算机可读存储介质,可读存储介质上存储有程序,该程序被处理器执行时实现如上所述的直通链路定位方法实施例的各个过程,且能达到相同的技术效果,为避免重复,这里不再赘述。其中,该计算机可读存储介质,如只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等。
此外,需要指出的是,在本公开的装置和方法中,显然,各部件或各步骤是可以分解和/或重新组合的。这些分解和/或重新组合应视为本公开的等效方案。并且,执行上述系列处理的步骤可以自然地按照说明的顺序或按时间顺序执行,但是并不需要一定按照时间顺序执行,某些步骤可以并行或彼此 独立地执行。对本领域的普通技术人员而言,能够理解本公开的方法和装置的全部或者任何步骤或者部件,可以在任何计算装置(包括处理器、存储介质等)或者计算装置的网络中,以硬件、固件、软件或者它们的组合加以实现,这是本领域普通技术人员在阅读了本公开的说明的情况下运用他们的基本编程技能就能实现的。
因此,本公开的目的还可以通过在任何计算装置上运行一个程序或者一组程序来实现。所述计算装置可以是公知的通用装置。因此,本公开的目的也可以仅仅通过提供包含实现所述方法或者装置的程序代码的程序产品来实现。也就是说,这样的程序产品也构成本公开,并且存储有这样的程序产品的存储介质也能构成本公开。显然,所述存储介质可以是任何公知的存储介质或者将来所开发出来的任何存储介质。
最后,还需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者终端设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括所述要素的过程、方法、物品或者设备中还存在另外的相同要素。
以上所述是本公开的优选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本公开所述原理的前提下,还可以做出若干改进和润饰,这些改进和润饰也应视为本公开的保护范围。
Claims (30)
- 一种直通链路定位方法,应用于第一用户设备,所述方法包括:在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输。
- 根据权利要求1所述的方法,其中,还包括下述至少一项:获取所述SL PRS的第一配置参数;发送第二信息,所述第二信息用于指示所述第一传输的资源。
- 根据权利要求1所述的方法,其中,所述第一信息通过下述至少一项承载:直通链路控制信息SCI;直通链路定位信息SPI;媒体接入控制层控制单元MAC CE;无线资源控制RRC信令;直通链路数据包;物理直通链路控制信道PSCCH;物理直通链路共享信道PSSCH;物理直通链路广播信道PSBCH;物理直通链路反馈信道PSFCH;物理直通链路发现信道PSDCH;物理直通链路定位信道PSPCH。
- 根据权利要求1或3所述的方法,其中,所述第一信息包括以下至少一项:所述SL PRS的优先级;所述第一用户设备的位置信息的优先级;所述第一用户设备的位置信息的置信度;所述SL PRS的类型;所述SL PRS的交互方式;第三信息。
- 根据权利要求4所述的方法,其中,所述SL PRS的交互方式包括下述至少一项:单程;单程往返方式SW-RT;双程往返方式TW-RT;对称双程往返方式STW-RT。
- 根据权利要求5所述的方法,其中,确定所述SL PRS的交互方式为单程,采用以下方式至少之一:所述第一用户设备与其他锚节点保持高精时间同步;与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限;所述第一用户设备确定维护时间与参考时间的预计时间差。
- 根据权利要求5所述的方法,其中,确定所述SL PRS的交互方式为单程往返方式,采用以下方式至少之一:所述第一用户设备确定本地计时器件的频率偏移率;所述第一用户设备确定本地计时器件的频率偏移值及对应的参考时间;所述第一用户设备不同天线单元不具有处理时间偏移;所述第一用户设备确定不同天线单元的处理时间偏差值。
- 根据权利要求4所述的方法,其中,所述第三信息包括下述至少一项:所述第一用户设备的位置信息;所述第一用户设备的标识ID信息;相邻用户设备的位置信息;相邻用户设备的ID信息;相邻用户设备的位置信息的来源;相邻用户设备的位置信息的置信度;第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;支持辅助解算位置;支持自行解算位置;第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;与所述第一用户设备保持高精时间同步的其他用户设备的信息;所述第一用户设备的维护时间与参考时间的预计时间差;所述第一用户设备的本地计时器件的频率偏移率;所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;所述第一用户设备的不同天线单元是否具有处理时间偏移;所述第一用户设备的不同天线单元的处理时间偏差值。
- 根据权利要求8所述的方法,其中,在所述第一用户设备的位置信息为第一数值的情况下,指示所述第一用户设备不能作为锚节点,所述第一用户设备能够支持相对定位。
- 根据权利要求8所述的方法,其中,所述第一用户设备的本地计时器件的频率偏移值的计算过程包括:在所述第一用户设备能够接收到GNSS信号的情况下,在第一时间内,收到一次全球导航卫星系统GNSS模块发送的秒脉冲或连续收到多次所述秒脉冲时,根据下述任一项计算所述第一用户设备的本地计时器件的频率偏移值,其中,所述第一时间为所述第一用户设备设定的参考时间或所述第一时间对应于GNSS模块输出秒脉冲的时间间隔:本地计时器晶振实际计数与本地计时器晶振标称频率值的比较结果;所述参考时间与所述本地计时器晶振实际计时的比较结果。
- 根据权利要求2所述的方法,其中,所述第二信息指示的内容包括下述至少一项:专用频段;免许可频段;频带;载波;带宽部分BWP;资源池;时域资源位置;以资源集为调度粒度的频域资源位置;以子信道为调度粒度的频域资源位置;以梳齿资源块为调度粒度的频域资源位置;以子信道及边缘组合资源为调度粒度的频域资源位置。
- 根据权利要求11所述的方法,其中,所述时域资源位置包括下述至少一项:与当前SCI的时域间隔;与当前SPI的时域间隔;所述SL PRS进行重复传输的时间间隔;所述SL PRS进行重复传输的次数;所述SL PRS的传输周期;当前SL PRS的传输周期与相邻的下一SL PRS传输周期的时间间隔。
- 根据权利要求2所述的方法,其中,所述第二信息通过下述至少一项承载:SCI;SPI。
- 根据权利要求13所述的方法,其中,当所述第二信息通过所述SPI进行承载时,所述SCI用于指示所述SPI传输的资源位置。
- 根据权利要求3或13所述的方法,其中,所述SCI仅包括第一SCI,或者,所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种。
- 根据权利要求15所述的方法,其中,当所述SCI包括第一SCI,以及第二SCI和第三SCI的至少一种时,所述第一SCI指示的内容还包括:所述第二SCI的资源位置;所述第三SCI的资源位置;所述第二SCI的格式;所述第三SCI的格式;第四指示信息,用于指示PSSCH中是否包含所述第二SCI和/或所述第三SCI;第五指示信息,用于指示当前传输的信号和/或信息是否用于指示直通链 路定位,其中,所述第五指示信息承载于所述第一SCI中的N个比特,N为正整数。
- 根据权利要求3或13所述的方法,其中,所述SCI、所述SPI、所述SL PRS和PSSCH的传输方式包括:在相同的频段、载波、BWP、资源池或资源集内传输;或者,在不同的频段、载波、BWP、资源池或资源集内传输。
- 根据权利要求17所述的方法,其中,所述SCI、所述SPI和所述SL PRS在不同的频段传输包括:所述SCI和所述SPI的至少一项在第一频段传输,所述SL PRS在第二频段传输;所述第一频段低于第二频段;或者,所述SCI和所述SPI的至少一项在授权频段传输,所述SL PRS在免许可频段传输。
- 一种直通链路定位方法,应用于第二用户设备,所述方法包括:在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;对所述第一传输中的所述SL PRS进行测量。
- 根据权利要求19所述的方法,其中,所述方法还包括下述至少一项:获取所述SL PRS的第一配置参数;接收第二信息,所述第二信息用于指示所述第一传输的资源。
- 根据权利要求20所述的方法,其中,还包括:根据所述第二信息,进行所述SL PRS的检测和/或资源排除。
- 根据权利要求19所述的方法,其中,所述第一信息包括以下至少一项:所述SL PRS的优先级;第一用户设备的位置信息的优先级;所述第一用户设备的位置信息的置信度;所述SL PRS的类型;所述SL PRS的交互方式;第三信息。
- 根据权利要求22所述的方法,其中,所述第三信息包括下述至少一项:所述第一用户设备的位置信息;所述第一用户设备的标识ID信息;相邻用户设备的位置信息;相邻用户设备的ID信息;相邻用户设备的位置信息的来源;相邻用户设备的位置信息的置信度;第一指示信息,用于指示当前的定位信号/信息用于绝对定位或相对定位;第二指示信息,用于指示所述第一用户设备是否能够作为锚节点;支持辅助解算位置;支持自行解算位置;第三指示信息,用于指示所述第一用户设备是否与其他锚节点保持高精时间同步;与所述第一用户设备保持高精时间同步的其他用户设备的信息;所述第一用户设备的维护时间与参考时间的预计时间差;所述第一用户设备的本地计时器件的频率偏移率;所述第一用户设备的本地计时器件的频率偏移值及对应的参考测量时间;所述第一用户设备的不同天线单元是否具有处理时间偏移;所述第一用户设备的不同天线单元的处理时间偏差值。
- 根据权利要求23所述的方法,其中,在所述第二指示信息指示所述第一用户设备能够作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备能够支持绝对定位或自行解算位置;或者,在所述第二指示信息指示所述第一用户设备不能作为锚节点的情况下,确定所述第二指示信息隐式指示的信息为所述第一用户设备仅能够支持相对定位或支持辅助解算位置。
- 根据权利要求23所述的方法,其中,在所述第三指示信息指示所述第一用户设备与其他锚节点保持高精时间同步,或者,与所述第一用户设备保持高精时间同步的其他用户设备数量满足预设数量门限,或者,在所述第 三信息包括所述第一用户设备的维护时间与参考时间的预计时间差的情况下,所述第二用户设备确定能够基于所述第一用户设备单程传输SL PRS的方式进行定位。
- 根据权利要求23所述的方法,其中,在所述第三信息包括所述第一用户设备的本地计时器件的频率偏移率,或者,所述第三信息包括所述第一用户设备的本地计时器件的频率偏移值及对应的参考时间,或者,所述第三信息包括并指示所述第一用户设备的不同天线单元不具有处理时间偏移,或者,所述第三信息包括所述第一用户设备的不同天线单元的处理时间偏差值的情况下,所述第二用户设备确定可基于所述第一用户设备进行单程往返方式SW-RT的SL PRS交互方式进行定位。
- 一种用户设备,包括收发机、存储器、处理器及存储在所述存储器上并了在所述处理器上运行的计算机程序,所述处理器执行所述计算机程序时实现如权利要求1至18中任一项所述的直通链路定位方法,或者,如权利要求19至26中任一项所述的直通链路定位方法。
- 一种直通链路定位装置,应用于第一用户设备,包括:传输模块,用于在直通链路上执行第一传输,所述第一传输包括:直通链路定位参考信号SL PRS的传输,或者,SL PRS和第一信息的传输。
- 一种直通链路定位装置,应用于第二用户设备,包括:第一接收模块,用于在直通链路上执行第一传输的接收,所述第一传输包括:SL PRS的传输,或者,所述SL PRS和第一信息的传输;测量模块,用于对所述第一传输中的所述SL PRS进行测量。
- 一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求1至18中任一项所述的直通链路定位方法,或者,如权利要求19至26中任一项所述的直通链路定位方法。
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
CN202110888814.3A CN115706630B (zh) | 2021-08-02 | 直通链路定位方法、装置及用户设备 | |
CN202110888814.3 | 2021-08-02 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO2023011164A1 true WO2023011164A1 (zh) | 2023-02-09 |
Family
ID=85155145
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/CN2022/106475 WO2023011164A1 (zh) | 2021-08-02 | 2022-07-19 | 直通链路定位方法、装置及用户设备 |
Country Status (1)
Country | Link |
---|---|
WO (1) | WO2023011164A1 (zh) |
Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2021034076A1 (ko) * | 2019-08-16 | 2021-02-25 | 엘지전자 주식회사 | Nr v2x에서 sl prs를 전송하는 방법 및 장치 |
CN112584487A (zh) * | 2019-09-29 | 2021-03-30 | 大唐移动通信设备有限公司 | 信号传输方法及装置 |
CN112583553A (zh) * | 2019-09-29 | 2021-03-30 | 大唐移动通信设备有限公司 | 信号传输方法及装置 |
CN113055136A (zh) * | 2019-12-26 | 2021-06-29 | 大唐移动通信设备有限公司 | 一种定位参考信号的传输资源的配置、接收方法及终端 |
-
2022
- 2022-07-19 WO PCT/CN2022/106475 patent/WO2023011164A1/zh active Application Filing
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2021034076A1 (ko) * | 2019-08-16 | 2021-02-25 | 엘지전자 주식회사 | Nr v2x에서 sl prs를 전송하는 방법 및 장치 |
CN112584487A (zh) * | 2019-09-29 | 2021-03-30 | 大唐移动通信设备有限公司 | 信号传输方法及装置 |
CN112583553A (zh) * | 2019-09-29 | 2021-03-30 | 大唐移动通信设备有限公司 | 信号传输方法及装置 |
CN113055136A (zh) * | 2019-12-26 | 2021-06-29 | 大唐移动通信设备有限公司 | 一种定位参考信号的传输资源的配置、接收方法及终端 |
Non-Patent Citations (1)
Title |
---|
SESSION CHAIR (MEDIATEK): "Report from session on Rel-15 and 16 LTE and NR positioning", 3GPP DRAFT; R2-2001665, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG2, no. 20200224 - 20200306, 11 March 2020 (2020-03-11), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France , XP051864429 * |
Also Published As
Publication number | Publication date |
---|---|
CN115706630A (zh) | 2023-02-17 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
WO2022116777A1 (zh) | 一种位置确定方法、装置及车联网设备 | |
CN110971326B (zh) | 一种时间同步的方法和装置 | |
Hasan et al. | GNSS time synchronization in vehicular ad-hoc networks: Benefits and feasibility | |
EP3902292A1 (en) | Positioning method and related device | |
EP3742829A1 (en) | Positioning method and related device | |
US11432109B2 (en) | Positioning of vehicles and pedestrians leveraging ranging signal | |
US20090257426A1 (en) | Inserting time of departure information in frames to support multi-channel location techniques | |
US11363530B2 (en) | Sidelink positioning based on physical ranging signals | |
KR20230148157A (ko) | 사이드링크 포지셔닝이 가능한 ue에서의 레인징 세션들의동적 병합 및 분리 | |
WO2023011164A1 (zh) | 直通链路定位方法、装置及用户设备 | |
CN115706630B (zh) | 直通链路定位方法、装置及用户设备 | |
US20240306109A1 (en) | Position determination method, synchronization method, device, apparatus and terminal | |
Hasan et al. | Precise GNSS Time Synchronization With Experimental Validation in Vehicular Networks | |
US11991662B2 (en) | Positioning reference signal adaptation in distributed ranging system | |
Hasan et al. | An experimental validation of accurate and precise GNSS time synchronization in vehicular networks | |
WO2023011178A1 (zh) | 直通链路定位方法、装置及用户设备 | |
WO2023011346A1 (zh) | 一种直通链路的资源选择方法、装置及用户设备 | |
WO2023284497A1 (zh) | 同步方法、装置及终端 | |
US20220272687A1 (en) | Optimization of ranging sessions initiated by vehicle and pedestrian ues |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 22851878 Country of ref document: EP Kind code of ref document: A1 |
|
NENP | Non-entry into the national phase |
Ref country code: DE |
|
122 | Ep: pct application non-entry in european phase |
Ref document number: 22851878 Country of ref document: EP Kind code of ref document: A1 |