WO2023184436A1 - 一种信号处理方法/装置/设备及存储介质 - Google Patents

一种信号处理方法/装置/设备及存储介质 Download PDF

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Publication number
WO2023184436A1
WO2023184436A1 PCT/CN2022/084657 CN2022084657W WO2023184436A1 WO 2023184436 A1 WO2023184436 A1 WO 2023184436A1 CN 2022084657 W CN2022084657 W CN 2022084657W WO 2023184436 A1 WO2023184436 A1 WO 2023184436A1
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WIPO (PCT)
Prior art keywords
positioning
carrier frequency
positioning signal
resources
network device
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Ceased
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PCT/CN2022/084657
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English (en)
French (fr)
Inventor
李明菊
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Xiaomi Mobile Software Co Ltd
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Beijing Xiaomi Mobile Software Co Ltd
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Filing date
Publication date
Application filed by Beijing Xiaomi Mobile Software Co Ltd filed Critical Beijing Xiaomi Mobile Software Co Ltd
Priority to CN202280000944.1A priority Critical patent/CN118235489A/zh
Priority to US18/852,319 priority patent/US20250203564A1/en
Priority to EP22934273.8A priority patent/EP4503783A4/en
Priority to PCT/CN2022/084657 priority patent/WO2023184436A1/zh
Publication of WO2023184436A1 publication Critical patent/WO2023184436A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • 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
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S5/00—Position-fixing by co-ordinating two or more direction or position line determinations; Position-fixing by co-ordinating two or more distance determinations
    • G01S5/0009—Transmission of position information to remote stations
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S5/00—Position-fixing by co-ordinating two or more direction or position line determinations; Position-fixing by co-ordinating two or more distance determinations
    • G01S5/02—Position-fixing by co-ordinating two or more direction or position line determinations; Position-fixing by co-ordinating two or more distance determinations using radio waves
    • G01S5/0205—Details
    • G01S5/0236—Assistance data, e.g. base station almanac
    • 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
    • H04L5/003—Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
    • H04L5/005—Allocation of pilot signals, i.e. of signals known to the receiver of common pilots, i.e. pilots destined for multiple users or terminals
    • 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
    • H04L5/003—Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W24/00—Supervisory, monitoring or testing arrangements
    • H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W4/00—Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/02—Services making use of location information
    • H04W4/023—Services making use of location information using mutual or relative location information between multiple location based services [LBS] targets or of distance thresholds
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S2205/00—Position-fixing by co-ordinating two or more direction or position line determinations; Position-fixing by co-ordinating two or more distance determinations
    • G01S2205/01—Position-fixing by co-ordinating two or more direction or position line determinations; Position-fixing by co-ordinating two or more distance determinations specially adapted for specific applications

Definitions

  • the present disclosure relates to the field of communication technology, and in particular, to a signal processing method/device/equipment and a storage medium.
  • NR new radio
  • the integer phase number of the positioning signal such as the integer part of the quotient of the transmission distance and the carrier frequency wavelength
  • the fractional part of the phase that is less than the integer phase Such as the decimal part of the quotient of the transmission distance and the carrier frequency wavelength.
  • the signal processing method/device/equipment and storage medium proposed in this disclosure are to solve the technical problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports”.
  • the signal processing method proposed in one aspect of the present disclosure is executed by user equipment and used for downlink signal processing, including:
  • the signal processing method proposed in another aspect of the present disclosure is executed by network equipment and used for downlink signal processing, including:
  • Another aspect of the present disclosure provides a signal processing device, including:
  • a first acquisition module configured to acquire carrier frequency information of at least two carrier frequencies configured by the network device, where the carrier frequencies are used to transmit positioning signals;
  • the second acquisition module is used to acquire positioning signal resources corresponding to each carrier frequency configured by the network device;
  • a processing module configured to measure positioning signals based on the positioning signal resources and obtain a positioning report
  • a reporting module is used to report the positioning report.
  • Another aspect of the present disclosure provides a signal processing device, including:
  • a first configuration module configured to configure carrier frequency information of at least two carrier frequencies, the carrier frequencies being used to transmit positioning signals;
  • the second configuration module is used to configure positioning signal resources corresponding to each carrier frequency.
  • the device includes a processor and a memory.
  • a computer program is stored in the memory.
  • the processor executes the computer program stored in the memory so that the The device performs the method proposed in the embodiment of the above aspect.
  • the device includes a processor and a memory.
  • a computer program is stored in the memory.
  • the processor executes the computer program stored in the memory so that the The device performs the method proposed in the above embodiment.
  • a communication device provided by another embodiment of the present disclosure includes: a processor and an interface circuit
  • the interface circuit is used to receive code instructions and transmit them to the processor
  • the processor is configured to run the code instructions to perform the method proposed in the embodiment of one aspect.
  • a communication device provided by another embodiment of the present disclosure includes: a processor and an interface circuit
  • the interface circuit is used to receive code instructions and transmit them to the processor
  • the processor is configured to run the code instructions to perform the method proposed in another embodiment.
  • a computer-readable storage medium provided by an embodiment of another aspect of the present disclosure is used to store instructions. When the instructions are executed, the method proposed by the embodiment of the present disclosure is implemented.
  • a computer-readable storage medium provided by an embodiment of another aspect of the present disclosure is used to store instructions. When the instructions are executed, the method proposed by the embodiment of another aspect is implemented.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network equipment.
  • the carrier frequency is used for transmitting positioning. signal; then, the user equipment will also obtain the positioning signal resources corresponding to each carrier frequency configured by the network device; and, the user equipment can measure the positioning signal based on the positioning signal resources, obtain a positioning report, and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • 1a-1b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure
  • Figures 2a-2b are a schematic flow chart of a signal processing method provided by yet another embodiment of the present disclosure.
  • Figure 3 is a schematic flow chart of a signal processing method provided by yet another embodiment of the present disclosure.
  • Figures 4a-4e are schematic flow diagrams of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 5a-5c are flow diagrams of a signal processing method provided by an embodiment of the present disclosure.
  • Figures 6a-6b are schematic flow diagrams of a signal processing method provided by yet another embodiment of the present disclosure.
  • Figures 7a-7b are schematic flow diagrams of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 8a-8b are schematic flow diagrams of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 9a-9d are schematic flow diagrams of a signal processing method provided by another embodiment of the present disclosure.
  • FIGS. 10a-10d are flowcharts of a signal processing method provided by another embodiment of the present disclosure.
  • Figure 11 is a schematic flowchart of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 12a-12b are a schematic flow chart of a signal processing method provided by another embodiment of the present disclosure.
  • Figure 13 is a schematic flow chart of a signal processing method provided by another embodiment of the present disclosure.
  • Figure 14 is a schematic flow chart of a signal processing method provided by another embodiment of the present disclosure.
  • Figure 15 is a schematic flowchart of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 16a-16d are flowcharts of a signal processing method provided by another embodiment of the present disclosure.
  • Figures 17a-17d are flowcharts of a signal processing method provided by another embodiment of the present disclosure.
  • Figure 18 is a schematic structural diagram of a signal processing device provided by another embodiment of the present disclosure.
  • Figure 19 is a schematic structural diagram of a signal processing device provided by another embodiment of the present disclosure.
  • Figure 20 is a block diagram of a terminal device provided by an embodiment of the present disclosure.
  • Figure 21 is a block diagram of a network side device provided by an embodiment of the present disclosure.
  • first, second, third, etc. may be used to describe various information in the embodiments of the present disclosure, the information should not be limited to these terms. These terms are only used to distinguish information of the same type from each other.
  • first information may also be called second information, and similarly, the second information may also be called first information.
  • the words "if” and “if” as used herein may be interpreted as “when” or “when” or “in response to determining.”
  • Figure 1a is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a UE (User Equipment) and can be used for downlink positioning.
  • the method can include the following step:
  • Step 101a Obtain carrier frequency information of at least two carrier frequencies configured by the network device.
  • a UE may be a device that provides voice and/or data connectivity to a user.
  • Terminal devices can communicate with one or more core networks via RAN (Radio Access Network).
  • UEs can be IoT terminals, such as sensor devices, mobile phones (or "cellular" phones) and devices with
  • the computer of the network terminal may, for example, be a fixed, portable, pocket-sized, handheld, built-in computer or vehicle-mounted device.
  • station STA
  • subscriber unit subscriber unit
  • subscriber station subscriber station
  • mobile station mobile station
  • mobile station mobile station
  • remote station remote station
  • access point remote terminal
  • remoteterminal access terminal
  • access terminal access terminal
  • user device user terminal
  • user agent useragent
  • the UE may also be a device of an unmanned aerial vehicle.
  • the UE may also be a vehicle-mounted device, for example, it may be a driving computer with a wireless communication function, or a wireless terminal connected to an external driving computer.
  • the UE may also be a roadside device, for example, it may be a streetlight, a signal light, or other roadside device with wireless communication functions.
  • the above-mentioned obtaining the carrier frequency information of at least two carrier frequencies configured by the network device may be: the UE obtains the carrier frequency information of the at least two carrier frequencies issued by the network device. information.
  • the above-mentioned acquisition of the carrier frequency information of at least two carrier frequencies configured by the network device may be: the UE reads the carrier frequency information of the at least two carrier frequencies previously delivered by the locally stored network device. frequency information. That is, after the UE obtains the carrier frequency information of at least two carrier frequencies previously delivered by the network device, the UE can locally store the carrier frequency information of the at least two carrier frequencies, and then directly read it from the local storage. Carrier frequency information of the at least two carrier frequencies.
  • the network device may include at least one of the following:
  • the above-mentioned core network device may be a location management function network element.
  • the location management function network element may include a location server; and the location server may be implemented as any of the following:
  • LMF Location Management Function, location management network element
  • E-SMLC Enhanced Serving Mobile Location Center, enhanced service mobile location center
  • SUPL Secure User Plane Location, secure user plane location
  • SUPL SLP Secure User Plane Positioning Platform
  • the above-mentioned access network device may include at least one of the following:
  • TRP transmission-reception point, sending and receiving point.
  • the above-mentioned carrier frequency can be used to transmit a positioning signal
  • the positioning signal can be used to implement positioning based on carrier phase.
  • the positioning signal can be a downlink positioning signal.
  • the positioning signal can be a PRS (Position Reference Signal, positioning reference signal), or a new reference signal used for downlink positioning.
  • the above-mentioned carrier frequency information may include at least one of the following:
  • Carrier frequency ID (Identity, serial number);
  • Carrier frequency combination IDs corresponding to at least two carrier frequencies
  • Step 102a Obtain positioning signal resources corresponding to each carrier frequency configured by the network device.
  • the above-mentioned acquisition of positioning signal resources corresponding to each carrier frequency configured by the network device may be: the UE obtains the positioning signal resources corresponding to each carrier frequency issued by the network device.
  • the above-mentioned acquisition of positioning signal resources corresponding to each carrier frequency configured by the network device may be: the UE reads the positioning signal resources corresponding to each carrier frequency configured previously by the locally stored network device. That is to say, after the UE obtains the positioning signal resources corresponding to each carrier frequency previously delivered by the network device, it can locally store the positioning signal resources corresponding to each carrier frequency, and then directly read the positioning signal resources corresponding to each carrier frequency from the local storage. The positioning signal resources corresponding to the frequency.
  • the UE may obtain the positioning signal resources corresponding to each carrier frequency by obtaining the parameter information of the positioning signal resources corresponding to each carrier frequency configured by the network device.
  • the parameter information may include at least one of the following:
  • SCS sub-carrier spacing, sub-carrier spacing
  • Starting PRB Physical Resource Block, physical resource block
  • Step 103a Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • the UE can receive network equipment (such as access network equipment) on positioning signal resources on at least two carrier frequencies based on positioning signal resources and carrier frequency information of at least two carrier frequencies.
  • the positioning signal sent is measured and the positioning signal received is measured to obtain the positioning report.
  • the positioning report may include at least one of the following:
  • the phase is less than a fraction of a full cycle
  • phase error group information when the UE receives the positioning signal.
  • the phase error group information may include the ID of the phase error group and/or the error value corresponding to the phase error group;
  • RSRP Reference Signal Receiving Power, reference signal receiving power
  • TDoA time difference of arrival, time difference of arrival
  • RTT (Round trip time, round trip time value
  • RxTEG Rx time error group, receive time error group
  • TxTEG (Tx time error group, sending time error group);
  • TxRxTEG Tx Rx time error group, sending and receiving time error group.
  • the positioning report obtained in the above step 103 may be one or multiple.
  • the above-mentioned at least two carrier frequencies can be used to aggregate to transmit the same positioning signal, or to independently transmit different positioning signals.
  • a positioning report can be obtained by measuring the positioning signals on at least two carrier frequencies; if at least two carrier frequencies are used to independently Different positioning signals are transmitted. At this time, multiple positioning reports are obtained by measuring the positioning signals on each carrier frequency respectively.
  • Step 104a Submit a positioning report.
  • the UE after obtaining the positioning report, the UE will report the positioning report to the network device (such as the core network device), so that the core network device can position the UE based on the positioning report.
  • the network device such as the core network device
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 1b is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 1b, the method can include the following steps:
  • Step 101b Obtain carrier frequency information of at least two carrier frequencies configured by the network device and store it.
  • Step 102b Obtain positioning signal resources corresponding to each carrier frequency configured by the network device and store them.
  • steps 102ba-102b please refer to the above embodiment descriptions, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 2a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 2a, the method can include the following steps:
  • Step 201a Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • the above-mentioned obtaining the carrier frequency information of at least two carrier frequencies configured by the core network device may be: the UE obtains the carrier frequency information of the at least two carrier frequencies issued by the core network device. .
  • the above-mentioned acquisition of the carrier frequency information of at least two carrier frequencies configured by the core network device may be: the UE reads the at least two carrier frequencies configured before by the locally stored core network device. carrier frequency information. That is, after the UE obtains the carrier frequency information of at least two carrier frequencies previously delivered by the core network device, the UE can locally store the carrier frequency information of the at least two carrier frequencies, and then directly read it from the local storage. Get the carrier frequency information of the at least two carrier frequencies.
  • Step 202a Obtain parameter information of positioning signal resources configured independently by the core network device for each carrier frequency.
  • the core network device can independently configure a set of parameter information of positioning signal resources for each carrier frequency.
  • parameter information of independently configured positioning signal resources corresponding to each carrier frequency may be the same. In another embodiment of the present disclosure, parameter information of independently configured positioning signal resources corresponding to each carrier frequency may be different.
  • the above-mentioned acquisition of positioning signal resources corresponding to each carrier frequency configured by the core network device may be: the UE obtains at least positioning signal resources corresponding to each carrier frequency issued by the core network device.
  • the above-mentioned acquisition of positioning signal resources corresponding to each carrier frequency configured by the core network device may be: the UE reads the positioning signal corresponding to each carrier frequency configured previously by the core network device. resource. That is to say, after the UE obtains the positioning signal resources corresponding to each carrier frequency previously delivered by the core network device, the UE can locally store the positioning signal resources corresponding to each carrier frequency, and then directly read the positioning signal resources from the local storage. Positioning signal resources corresponding to each carrier frequency.
  • Step 203a Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • Step 204a Submit a positioning report.
  • steps 201a-204a please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 2b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 2b, the method can include the following steps:
  • Step 201b Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 202b Obtain the first part of parameter information of the core network device configuration.
  • the first part of parameter information corresponding to each carrier frequency is the same. That is to say, the first part of the parameter information may be common to all carrier frequencies.
  • the core network device may configure a set of the first part of parameter information of positioning signal resources for all carrier frequencies.
  • the first part of the parameter information includes part of the following parameter information of the positioning signal resource:
  • the first part of the parameter information may include, for example, the transmission period, the number of occupied symbols, etc.
  • the above-mentioned obtaining the first part of the parameter information of the core network device configuration may be: the UE obtains the first part of the parameter information issued by the core network device.
  • the above-mentioned acquisition of the first part of the parameter information of the core network device configuration may be: the UE reads the first part of the parameter information configured before the core network device is stored locally. That is, after the UE obtains the first part of the parameter information previously delivered by the core network device, the UE can locally store the first part of the parameter information, and then directly read the first part of the parameter information from the local storage.
  • Step 203b Obtain the second part of parameter information configured independently by the core network equipment for each carrier frequency.
  • the core network device can independently configure a set of second part parameter information of positioning signal resources for each carrier frequency.
  • the second part of parameter information may be parameter information in the parameter information of the above-mentioned positioning signal resource in addition to the above-mentioned first part of parameter information.
  • the second part of parameter information corresponding to each carrier frequency may be the same. In another embodiment of the present disclosure, the second part of parameter information corresponding to each carrier frequency may be different.
  • the above-mentioned acquisition of the second part of the parameter information of the core network device configuration may be: the UE acquires the second part of the parameter information issued by the core network device.
  • the above-mentioned acquisition of the second part of the parameter information of the core network device configuration may be: the UE reads the second part of the parameter information previously configured by the locally stored core network device. That is, after the UE obtains the second part of the parameter information previously delivered by the core network device, the UE can locally store the second part of the parameter information, and then directly read the second part of the parameter information from the local storage.
  • Step 204b Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • Step 205b Submit a positioning report.
  • steps 201b-205b please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 3 is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 3, the method can include the following steps:
  • Step 301 Report capability information.
  • the capability information may be used to indicate whether the UE supports simultaneous reception of positioning signals on multiple carrier frequencies.
  • the UE may report capability information to at least one of a core network device and an access network device. So that the core network device can configure the carrier frequency information of at least two carrier frequencies and the positioning signal resources corresponding to each carrier frequency to the UE based on the capability information, and/or so that the access network device can simultaneously and /Or do not send positioning signals at the same time.
  • Step 302 Obtain carrier frequency information of at least two carrier frequencies configured by the core network device.
  • Step 303 Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • the core network device when the above capability information indicates that the UE supports simultaneous reception of positioning signals on multiple carrier frequencies, can configure the same time domain and/or different time domains on each carrier frequency. Positioning signal resources so that positioning signals on multiple carrier frequencies can be transmitted simultaneously or not at the same time.
  • the core network device when the capability information indicates that the UE does not support simultaneous reception of positioning signals on multiple carrier frequencies, can only configure positioning signal resources in different time domains on each carrier frequency to This allows positioning signals on multiple carrier frequencies to be transmitted at different times.
  • Step 304 Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • the UE can receive network equipment (such as access network equipment) on positioning signal resources on at least two carrier frequencies based on positioning signal resources and carrier frequency information of at least two carrier frequencies.
  • the positioning signal sent is measured and the positioning signal received is measured to obtain the positioning report.
  • the core network device when the above capability information indicates that the UE supports simultaneous reception of positioning signals on multiple carrier frequencies, the core network device can configure the same time domain and/or For positioning signal resources in different time domains, the UE needs to receive positioning signals on positioning signal resources on at least two carrier frequencies at the same time and/or at different times.
  • the core network device when the above capability information indicates that the UE does not support simultaneous reception of positioning signals on multiple carrier frequencies, the core network device can only configure positioning signal resources in different time domains on each carrier frequency. The UE only needs to receive positioning signals on positioning signal resources on at least two carrier frequencies at different times.
  • Step 305 Submit a positioning report.
  • steps 301-305 please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the above step 301 is optional. Specifically, in one embodiment of the present disclosure, when performing downlink positioning, the UE may report the above capability information by executing the above step 301. And, when the UE subsequently performs downlink positioning again, if the UE's ability to "support simultaneous transmission of positioning signals on multiple carrier frequencies" has not changed, the UE may not perform the above step 301 (that is, the UE will no longer report the Capability information), if the UE's capability of "whether it supports simultaneous transmission of positioning signals on multiple carrier frequencies" changes, the UE can perform the above step 301 (that is, the UE needs to update and report the capability information).
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 4a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 4a, the method can include the following steps:
  • Step 401a Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 402a Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 403a Determine a set of measurement resources for positioning signals.
  • the measurement resources of the positioning signal may be used by the UE to measure the positioning signal.
  • the measurement resource may include MG (measurement gap, measurement interval) and/or positioning signal processing window (processing window).
  • the above-mentioned measurement interval may specifically include a gap period (for example, the gap period may be 20/40/80/160ms (milliseconds)...etc.), where each gap period It can correspond to a gap duration (i.e. gap duration).
  • a gap duration can be, for example, 1ms, 1.5ms, 2ms, 2.5ms, 3ms, 3.5ms, 4ms, 4.5ms, 5ms, 5.5ms, 6ms...etc.
  • UE Measurement positioning signals can be received within the gap duration that occurs periodically.
  • the above-mentioned positioning signal processing window may specifically include a window period, wherein each window period may correspond to a window (i.e., window duration), and the UE may operate within the periodic window duration.
  • each window period may correspond to a window (i.e., window duration)
  • the UE may operate within the periodic window duration.
  • a method for determining a set of measurement resources for positioning signals may include at least one of the following:
  • Method a Obtain a set of measurement resources configured by a network device (such as an access network device), and determine the configured set of measurement resources as measurement resources for positioning signals.
  • a network device such as an access network device
  • the UE can directly determine the configured set of measurement resources as the measurement resources of the positioning signal.
  • the network device can configure measurement resources to the UE through RRC (Radio Resource Control, Radio Resource Control) signaling.
  • RRC Radio Resource Control, Radio Resource Control
  • Method b Obtain multiple sets of measurement resources configured by network equipment (such as access network equipment), activate one set of the multiple sets of measurement resources based on signaling sent by the network equipment, and determine the activated set of measurement resources as positioning Signal measurement resources.
  • network equipment such as access network equipment
  • the access network device configures multiple sets of measurement resources to the UE, but the access network device only activates one set of measurement resources, then the UE can use the activated set of measurement resources.
  • the measurement resource is determined to be the measurement resource of the positioning signal.
  • the access network device can specifically activate the measurement resources through MAC CE (Medium Access Control-Control Element, Media Access Control-Control Element) signaling.
  • MAC CE Medium Access Control-Control Element, Media Access Control-Control Element
  • Step 404a Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • the specific measurement process when measuring the positioning signal in this step 403a will also be different. Among them, this part will be introduced in detail in subsequent embodiments.
  • Step 405a Submit a positioning report.
  • steps 401a-405a please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method for configuring multi-carrier frequency positioning signals and a method for reporting measurement reports for multi-carrier frequency scenarios, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 4b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 4b, the method can include the following steps:
  • Step 401b Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 402b Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 403b Determine a set of measurement resources for the positioning signal.
  • the measurement resources may include measurement intervals.
  • Step 404b Measure positioning signals on different carrier frequencies within an interval duration (ie gap duration) of a set of measurement intervals to obtain a positioning report.
  • the UE when the UE only determines a set of measurement resources for positioning signals, and the measurement resources are measurement intervals, the UE can receive positioning signals within each gap duration of the set of measurement intervals.
  • the other downlink signals may include at least one of the following:
  • PDCCH Physical Downlink Control Channel, physical downlink control channel
  • PDSCH Physical Downlink Shared Channel, physical downlink shared channel
  • CSI-RS Channel State Information Reference Signal, channel state information reference signal
  • PBCH Physical Broadcast Channel, physical broadcast channel
  • SSB Synchronization Signal Block, synchronization signal block
  • the above-mentioned measurement of positioning signals on different carrier frequencies within the duration of one interval of a set of measurement intervals can be understood as: assuming that the core network device configures the UE with two carrier frequencies. Carrier frequency information, where the two carrier frequencies are carrier frequency #1 and carrier frequency #2 respectively. Then, the UE can receive and measure the positioning signal on carrier frequency #1 in the first half of an interval duration, and receive and measure the positioning signal on carrier frequency #2 in the second half. For example, if the period of this set of measurement intervals is 40ms and the gap duration is 6ms, then the first gap duration is between t0 ⁇ t0+6ms, and the second gap duration is between t0+40ms ⁇ t0+46ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within t0 ⁇ t0+6ms, for example, measure the positioning signal on carrier frequency #1 during t0 ⁇ t0+3ms, and measure the positioning signal on carrier frequency #1 during t0 ⁇ t0+3ms ⁇ Measure the positioning signal on carrier frequency #2 within t0+6ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within the time period of t0+40ms ⁇ t0+46ms.
  • the positioning signal on the carrier frequency #1 can be measured during the period of t0+40ms ⁇ t0+43ms. Measure the positioning signal on carrier frequency #2 within t0+43ms ⁇ t0+46ms.
  • Step 405b Submit a positioning report.
  • steps 401b-405b please refer to the description of the above embodiments, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 4c is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 4c, the method can include the following steps:
  • Step 401c Obtain carrier frequency information of at least two carrier frequencies configured by the core network device.
  • Step 402c Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 403c Determine a set of measurement resources for the positioning signal.
  • the measurement resources may include measurement intervals.
  • Step 404c Measure positioning signals on different carrier frequencies within different interval durations of a set of measurement intervals to obtain a positioning report.
  • the UE when the UE only determines a set of measurement resources for positioning signals, and the measurement resources are MGs, the UE can receive positioning signals within each gap duration of the set of measurement intervals, without receiving other downlink signals, where the other downlink signals may include at least one of the following:
  • the above-mentioned measurement of positioning signals on different carrier frequencies within a set of different interval durations of a set of measurement intervals can be understood as: assuming that the core network device configures the UE with two carrier frequencies. Carrier frequency information, where the two carrier frequencies are carrier frequency #1 and carrier frequency #2 respectively. Then, the UE can receive and measure the positioning signal on carrier frequency #1 during the first interval duration, and receive and measure the positioning signal on carrier frequency #2 during the second interval duration. For example, if the period of this set of measurement intervals is 40ms and the gap duration is 6ms, then the first gap duration is between t0 ⁇ t0+6ms, and the second gap duration is between t0+40ms ⁇ t0+46ms. Then the UE can measure the positioning signal on carrier frequency #1 within t0 ⁇ t0+6ms. The positioning signal on carrier frequency #2 is measured within the time period from t0+40ms to t0+46ms.
  • Step 405c Submit a positioning report.
  • steps 401c-405c please refer to the description of the above embodiments, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 4d is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 4d, the method can include the following steps:
  • Step 401d Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 402d Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 403d Determine a set of measurement resources for the positioning signal.
  • the measurement resources may include a positioning signal processing window.
  • Step 404d Obtain the priority of the positioning signal on the carrier frequency within a set of positioning signal processing windows configured by the access network device.
  • the UE can not only receive the positioning signal, but also can receive other downlink signals.
  • the other downlink signals may include, for example, a first downlink signal and a second downlink signal
  • the first downlink signal may be a downlink signal corresponding to a non-URLLC (Ultra Reliable and Low Latency Communication).
  • the second downlink signal may be the downlink signal corresponding to URLLC.
  • the downlink signal may specifically include at least one of PDCCH, PDSCH, CSI-RS, PBCH, and SSB.
  • the above-mentioned downlink signals corresponding to URLLC and non-URLLC corresponding downlink signals can be based on HARQ-ACK (Hybrid Automatic Retransmission Request Acknowledgment, Hybrid Automatic Repeat Request Response) of the downlink signal.
  • HARQ-ACK Hybrid Automatic Retransmission Request Acknowledgment, Hybrid Automatic Repeat Request Response
  • Prioritization is determined. Specifically, when the HARQ-ACK priority of a certain downlink signal is high, the downlink signal is determined to be the downlink signal corresponding to URLLC. When the HARQ-ACK priority of a certain downlink signal is low, the downlink signal is determined to be non-URLLC.
  • HARQ-ACK Hybrid Automatic Retransmission Request Acknowledgment, Hybrid Automatic Repeat Request Response
  • the priority of the positioning signal needs to be configured for the positioning signal processing window, so that the subsequent UE can process the positioning signal, the first downlink signal and the second downlink signal based on the priority.
  • the positioning signal has a higher priority than the first downlink signal and the second downlink signal;
  • the priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the positioning signal has a lower priority than the first downlink signal and the second downlink signal.
  • a set of positioning signal processing windows can be configured with at least one priority.
  • the positioning signal processing window can be configured with at least one priority.
  • Each window in the set of positioning signal processing windows processes signals based on this priority.
  • the access network device should also configure the correspondence between the multiple priorities and multiple carrier frequencies, where the positioning signals on different carrier frequencies correspond to The priorities are the same or different, and when the subsequent UE processes signals in the window in the positioning signal processing window, it can use the corresponding priority to process the signals on each carrier frequency based on the correspondence between the priority and the carrier frequency.
  • Step 405d Measure positioning signals on different carrier frequencies based on the priority of the positioning signal within a window (ie, window duration) of a set of positioning signal processing windows, and obtain a positioning report.
  • the UE when a set of positioning signal processing windows configured by the access network device in the above step 403d corresponds to a priority of the positioning signal, the UE can process the positioning signal in the set of positioning signals. Positioning signals on different carrier frequencies are measured within a window of the processing window based on a priority of the positioning signal.
  • the access network device configures a priority of the positioning signal in step 403d, which is:
  • Priority #1 The priority of the positioning signal is higher than the first downlink signal and the third downlink signal.
  • Two downlink signals, and the core network equipment configures two carrier frequencies to the UE, namely carrier frequency #1 and carrier frequency #2. Then the UE can receive and measure the positioning signal on carrier frequency #1 based on priority #1 in the first half of a window of the positioning signal processing window, and receive and measure the positioning signal on carrier frequency #2 based on priority #1 in the second half of the window.
  • the period of this set of positioning signal processing windows is 80ms, and the window length is 10ms.
  • the first window time is within the period of t0 ⁇ t0+10ms
  • the second window time is within the period of t0+80ms ⁇ t0+90ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within t0 ⁇ t0+10ms, for example, measure the positioning signal on carrier frequency #1 within t0 ⁇ t0+5ms, and measure the positioning signal on carrier frequency #1 during t0 ⁇ t0+5ms ⁇ Measure the positioning signal on carrier frequency #2 within t0+10ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within t0+80ms ⁇ t0+90ms. For example, measure the positioning signal on carrier frequency #1 during t0+80ms ⁇ t0+85ms. Measure the positioning signal on carrier frequency #2 within t0+85ms ⁇ t0+90ms.
  • the set of positioning signal processing windows configured by the access network device in the above step 403d corresponds to multiple priorities of positioning signals, and the corresponding relationships between multiple priorities and carrier frequencies are configured
  • the UE can measure positioning signals on different carrier frequencies based on priorities corresponding to different carrier frequencies within a window of the set of positioning signal processing windows.
  • the access network device configures two priorities for the positioning signal, which are: Priority #1: The positioning signal has a higher priority than the first downlink signal. and the second downlink signal; Priority #2: The priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal, and the core network equipment configures two carrier frequencies for the UE, namely carrier frequency #1 and carrier frequency #2. Among them, priority #1 corresponds to carrier frequency #1, and priority #2 corresponds to carrier frequency #2.
  • the UE may receive and measure the positioning signal on carrier frequency #1 in the first half of a window of the positioning signal processing window based on priority #1, and in the second half based on priority #2 receives and measures the positioning signal on carrier frequency #2.
  • the period of this set of positioning signal processing windows is 80ms, and the window length is 10ms.
  • the first window time is within the period of t0 ⁇ t0+10ms
  • the second window time is within the period of t0+80ms ⁇ t0+90ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within t0 ⁇ t0+10ms, for example, measure the positioning signal on carrier frequency #1 within t0 ⁇ t0+5ms, and measure the positioning signal on carrier frequency #1 during t0 ⁇ t0+5ms ⁇ Measure the positioning signal on carrier frequency #2 within t0+10ms.
  • the UE can measure the positioning signal on carrier frequency #1 and carrier frequency #2 within t0+80ms ⁇ t0+90ms. For example, measure the positioning signal on carrier frequency #1 during t0+80ms ⁇ t0+85ms. Measure the positioning signal on carrier frequency #2 within t0+85ms ⁇ t0+90ms.
  • the UE will process the positioning signal in the positioning signal processing window.
  • the positioning signal on carrier frequency #1 can be received and measured preferentially based on priority #1. Since the priority of the positioning signal in priority #2 corresponding to carrier frequency #2 is higher than the first downlink signal and lower than the second downlink signal, on the basis that there is a second downlink signal in the window, due to the carrier frequency # The priority of the positioning signal corresponding to 2 is lower than the second downlink signal, and the UE will not receive and measure the positioning signal on carrier frequency #2 within this window of the positioning signal processing window.
  • Step 406d Submit a positioning report.
  • steps 401d-406d please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 4e is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 4e, the method can include the following steps:
  • Step 401e Obtain carrier frequency information of at least two carrier frequencies configured by the core network device.
  • Step 402e Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 403e Determine a set of measurement resources for the positioning signal.
  • the measurement resources may include a positioning signal processing window.
  • Step 404e Obtain the priority of the positioning signal on the carrier frequency within a set of positioning signal processing windows configured by the access network device.
  • the UE can not only receive the positioning signal, but also can receive other downlink signals.
  • the other downlink signal may include, for example, a first downlink signal and a second downlink signal.
  • the first downlink signal may be a downlink signal corresponding to a non-URLLC; and the second downlink signal may be a downlink signal corresponding to URLLC.
  • the downlink signal may specifically include at least one of PDCCH, PDSCH, CSI-RS, PBCH, and SSB.
  • the above-mentioned downlink signals corresponding to URLLC and non-URLLC corresponding downlink signals may be determined based on the priority of HARQ-ACK of the downlink signal. Specifically, when the HARQ-ACK priority of a certain downlink signal is high, the downlink signal is determined to be the downlink signal corresponding to URLLC. When the HARQ-ACK priority of a certain downlink signal is low, the downlink signal is determined to be non-URLLC. Downlink signal corresponding to URLLC.
  • the priority of the positioning signal needs to be configured for the positioning signal processing window, so that the subsequent UE can process the positioning signal, the first downlink signal and the second downlink signal based on the priority.
  • the positioning signal has a higher priority than the first downlink signal and the second downlink signal;
  • the priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the positioning signal has a lower priority than the first downlink signal and the second downlink signal.
  • a set of positioning signal processing windows can be configured with at least one priority.
  • Each window in the set of positioning signal processing windows processes signals based on this priority.
  • the access network device should also configure the correspondence between the multiple priorities and multiple carrier frequencies, where the positioning signals on different carrier frequencies correspond to The priorities are the same or different, and when the subsequent UE processes signals in the window in the positioning signal processing window, it can use the corresponding priority to process the signals on each carrier frequency based on the corresponding relationship between the priority and the carrier frequency.
  • Step 405e Measure positioning signals on different carrier frequencies based on the priorities of the positioning signals in different windows of a set of positioning signal processing windows, and obtain positioning reports.
  • the UE when a set of positioning signal processing windows configured by the access network device in the above step 403e corresponds to a priority of the positioning signal, the UE can process the positioning signal in the set of positioning signals. Positioning signals on different carrier frequencies are measured based on a priority of the positioning signal in different windows of the processing window.
  • the access network device configures a priority of the positioning signal in step 403e, which is: Priority #1: The priority of the positioning signal is higher than the first downlink signal and the third downlink signal.
  • Two downlink signals, and the core network equipment configures two carrier frequencies to the UE, namely carrier frequency #1 and carrier frequency #2. Then the UE can receive and measure the positioning signal on carrier frequency #1 based on priority #1 in the first window, and receive and measure the positioning signal on carrier frequency #2 based on priority #1 in the second window.
  • the period of this set of positioning signal processing windows is 80ms, and the window length is 10ms.
  • the first window time is within the period of t0 ⁇ t0+10ms
  • the second window time is within the period of t0+80ms ⁇ t0+90ms.
  • the UE can measure the positioning signal on carrier frequency #1 within t0 ⁇ t0+10ms. Measure the positioning signal on carrier frequency #2 within the time period from t0+80ms to t0+90ms.
  • the UE when the set of positioning signal processing windows configured by the access network device in the above step 403e corresponds to multiple priorities of positioning signals, and the corresponding relationships between multiple priorities and carrier frequencies are configured Then, the UE can measure positioning signals on different carrier frequencies based on priorities corresponding to different carrier frequencies in different windows of the set of positioning signal processing windows.
  • the access network device configures the priorities of two positioning signals, which are: priority #1: the positioning signal has a higher priority than the first downlink signal. and the second downlink signal; Priority #2: The priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal, and the core network equipment configures two carrier frequencies for the UE, namely carrier frequency #1 and carrier frequency #2. Among them, priority #1 corresponds to carrier frequency #1, and priority #2 corresponds to carrier frequency #2. If there is no second downlink signal in the second window, the UE can receive and measure the positioning signal on carrier frequency #1 in the first window based on priority #1, and receive the positioning signal based on priority #2 in the second window.
  • priority #1 the positioning signal has a higher priority than the first downlink signal. and the second downlink signal
  • Priority #2 The priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the core network equipment configures two carrier frequencies for the UE, namely carrier frequency #1 and carrier frequency #2.
  • priority #1 corresponds to carrier
  • the UE can measure the positioning signal on carrier frequency #1 within t0 ⁇ t0+10ms. Measure the positioning signal on carrier frequency #2 within the time period from t0+80ms to t0+90ms. If there are second downlink signals in all windows, the UE can only receive and measure the positioning signal on carrier frequency #1 based on priority #1 in any window of the positioning signal processing window.
  • Step 406e Submit a positioning report.
  • steps 401e-406e please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 5a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 5a, the method can include the following steps:
  • Step 501a Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 502a Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 503a Determine measurement resources for multiple sets of positioning signals.
  • a method for determining measurement resources of multiple sets of positioning signals may include at least one of the following:
  • Method A Obtain multiple sets of measurement resources configured by a network device (such as an access network device), and directly determine the configured multiple sets of measurement resources as the measurement resources of the multiple sets of positioning signals.
  • a network device such as an access network device
  • the UE can directly determine the configured multiple sets of measurement resources as the measurement resources of the positioning signal.
  • the network device may configure measurement resources to the UE through RRC signaling.
  • Method B Obtain M sets of measurement resources configured by network equipment (such as access network equipment), and activate N sets of measurement resources among the M sets of measurement resources based on signaling sent by the network equipment, where M and N are both integers greater than 1, M is greater than N.
  • network equipment such as access network equipment
  • the access network device configures M sets of measurement resources to the UE, but the access network device only activates N sets of measurement resources among the M sets of measurement resources, then the UE can configure The activated N sets of measurement resources are determined as measurement resources for the positioning signal.
  • the access network device can activate the measurement resources through MAC CE signaling.
  • the number of sets of measurement resources determined in step 504a may be the same as or different from the number of carrier frequencies.
  • Step 505a Measure the positioning signal based on the positioning signal resource and obtain a positioning report.
  • the above-mentioned multiple sets of measurement resources can respectively correspond to different carrier frequencies, and when the UE measures the positioning signal based on the positioning signal resources, the UE can measure the positioning signal on the corresponding carrier frequency based on the measurement resources. Locate the signal on the signal resource.
  • the types of measurement resources corresponding to different carrier frequencies may be the same.
  • the measurement resources corresponding to different carrier frequencies may all be measurement intervals or positioning signal processing windows.
  • the types of measurement resources corresponding to different carrier frequencies may be different.
  • the measurement resources configured for the first part of the at least two carrier frequencies may be measurement intervals
  • the measurement resources configured for the second part of the carrier frequencies may be measurement intervals.
  • Frequency configured measurement resources can be positioning signal processing windows.
  • the measurement interval and the positioning signal processing window can also be configured simultaneously for one carrier frequency.
  • Step 505a Submit a positioning report.
  • steps 501a-505a please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 5b is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 5b, the method can include the following steps:
  • Step 501b Obtain carrier frequency information of at least two carrier frequencies configured by the core network equipment.
  • Step 502b Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 503b Determine measurement resources for multiple sets of positioning signals.
  • the measurement resources may include measurement intervals.
  • Step 504b Obtain the first correspondence between each carrier frequency indicated by the access network device and each set of measurement intervals.
  • the core network device is configured with two carrier frequencies, namely carrier frequency #1 and carrier frequency #2, and that two sets of measurements are determined in step 503b.
  • intervals are respectively measurement interval #1 and measurement interval #2
  • the first correspondence relationship may be: carrier frequency #1 corresponds to measurement interval #1, and carrier frequency #2 corresponds to measurement interval #2.
  • measurement interval #1 corresponds to period #1, slot offset value #1 and interval duration #1
  • measurement interval #2 corresponds to period #2, slot offset value #2 and interval duration #2.
  • Cycle #1 and Cycle #2 can be the same or different.
  • Slot offset value #1 and slot offset value #2 may be the same or different.
  • Interval duration #1 and interval duration #2 may be the same or different.
  • Step 505b Measure the positioning signal on the corresponding carrier frequency within the interval duration of each set of measurement intervals based on the first corresponding relationship.
  • the above-mentioned measurement of the positioning signal on the corresponding carrier frequency within the interval duration of each set of measurement intervals based on the first correspondence relationship can be understood as: assuming that the access network in step 504b The first corresponding relationship indicated by the device is: carrier frequency #1 corresponds to measurement interval #1, and carrier frequency #2 corresponds to measurement interval #2. Then the UE can receive and measure the carrier frequency within the duration of each interval of measurement interval #1. The positioning signal on carrier frequency #1, and the positioning signal on carrier frequency #2 is received and measured for the duration of each interval of measurement interval #2.
  • Step 506b Submit a positioning report.
  • steps 501b-506b please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 5c is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by the UE and can be used for downlink positioning. As shown in Figure 5c, the method can include the following steps:
  • Step 501c Obtain carrier frequency information of at least two carrier frequencies configured by the core network device.
  • Step 502c Obtain positioning signal resources corresponding to each carrier frequency configured by the core network equipment.
  • Step 503c Determine measurement resources for multiple sets of positioning signals.
  • the measurement resources may include positioning signal processing windows.
  • Step 504c Obtain the second correspondence between each carrier frequency indicated by the access network device and each set of positioning signal processing windows.
  • the core network device is configured with two carrier frequencies, namely carrier frequency #1 and carrier frequency #2, and that two sets of positioning are determined in step 503b.
  • the signal processing windows are positioning signal processing window #1 and positioning signal processing window #2 respectively.
  • the second corresponding relationship can be: carrier frequency #1 corresponds to positioning signal processing window #1, and carrier frequency #2 corresponds to positioning signal processing window #1. Window #2 corresponds.
  • Step 505c Obtain the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows configured by the access network device.
  • different sets of positioning signal processing windows may have the same priority for positioning signals. In one embodiment of the present disclosure, different sets of positioning signal processing windows may have different priorities for positioning signals.
  • the access network device configures two sets of positioning signal processing windows for the UE, namely positioning signal processing window #1 and positioning signal processing window #2
  • the UE receives
  • the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows configured by the access network equipment may be: positioning signal processing window #1 corresponds to priority #1, and positioning signal processing window #2 corresponds to priority #2.
  • Step 506c Measure the positioning signal on the corresponding carrier frequency within the window of each set of measurement positioning signal processing windows based on the second correspondence relationship and the priority of the positioning signal corresponding to each set of positioning signal processing windows.
  • the second correspondence relationship is: carrier frequency #1 corresponds to positioning signal processing window #1, carrier frequency #2 corresponds to positioning signal processing window #2, and, positioning signal Processing window #1 corresponds to priority #1, and positioning signal processing window #2 corresponds to priority #2. Then the UE can receive and measure the positioning signal on carrier frequency #1 based on priority #1 within each window of positioning signal processing window #1, and receive and measure based on priority #2 within each window of positioning signal processing window #2. Positioning signal on carrier frequency #2.
  • Positioning signal processing window #1 corresponds to period #1, starting slot value #1, window duration #1, and priority #1, where priority #1 means that the positioning signal has a higher priority than all other downlink signals;
  • positioning Signal processing window #2 corresponds to period #2, starting slot value #2, window duration #2, and priority #2, where priority #2 is the positioning signal priority that is higher than the downlink signal corresponding to non-URLLC and is low
  • Cycle #1 and Cycle #2 can be the same or different.
  • Starting slot value #1 and starting slot value #2 may be the same or different. When period #1 and period #2 are the same, starting slot value #1 and starting slot value #2 cannot be the same.
  • Window duration #1 and window duration #2 can be the same or different.
  • the UE can receive and measure the positioning signal on the carrier frequency #1 within each window of the positioning signal processing window #1.
  • the positioning signal on carrier frequency #2 can be received and measured only when there is no downlink signal corresponding to URLLC.
  • Step 507c Submit a positioning report.
  • steps 501c-507c please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 6a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 6a, the method can include the following steps:
  • Step 601a Configure carrier frequency information of at least two carrier frequencies, where the carrier frequencies are used to transmit positioning signals.
  • Step 602a Configure positioning signal resources corresponding to each carrier frequency.
  • steps 601a-602a please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 6b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 6b, the method can include the following steps:
  • Step 601b Configure carrier frequency information of at least two carrier frequencies, where the carrier frequencies are used to transmit positioning signals.
  • Step 602b Configure positioning signal resources corresponding to each carrier frequency.
  • Step 603b Send the positioning signal on the positioning signal resource.
  • Step 604b Receive the positioning report sent by the UE.
  • steps 601b-604b please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 7a is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 7a, the method can include the following steps:
  • Step 701a The network device configures carrier frequency information of at least two carrier frequencies, and the carrier frequencies are used to transmit positioning signals.
  • Step 702a The network device independently configures parameter information of the positioning signal resources for each carrier frequency, where the parameter information of the positioning signal resources independently configured for each carrier frequency is the same or different.
  • steps 701a-702a please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 7b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 7b, the method can include the following steps:
  • Step 701b The network device configures carrier frequency information of at least two carrier frequencies, and the carrier frequencies are used to transmit positioning signals.
  • Step 702b The network device configures the first part of parameter information to the UE, and the first part of parameter information corresponding to the at least two carrier frequencies is the same.
  • Step 703b The network device independently configures the second part of parameter information for each carrier frequency, wherein the second part of parameter information corresponding to the at least two carrier frequencies is the same or different.
  • steps 701b-703b please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 8a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 8a, the method can include the following steps:
  • Step 801a Obtain capability information reported by the UE, where the capability information is used to indicate whether the UE supports simultaneous reception of positioning signals on multiple carrier frequencies.
  • Step 802a The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 803a The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • configuring positioning signal resources corresponding to each carrier frequency may include:
  • the capability information indicates that the UE supports simultaneous reception of positioning signals on multiple carrier frequencies, configure positioning signal resources in the same time domain and/or different time domains for each carrier frequency;
  • positioning signal resources in different time domains are configured for each carrier frequency.
  • steps 801a-803a please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the above step 801a is optional. Specifically, in one embodiment of the present disclosure, when the network device performs downlink positioning, the network device may first receive the capability information reported by the UE by performing the above step 801a. And, when the network device subsequently performs downlink positioning again, if the UE's ability to "support simultaneous transmission of positioning signals on multiple carrier frequencies" has not changed, the network device can no longer perform the above step 801a (i.e.
  • the network device can perform the above step 801a (that is, the access network device receives the UE update reported capability information).
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 8b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 8b, the method can include the following steps:
  • Step 801b Obtain the capability information reported by the UE, where the capability information is used to indicate whether the UE supports simultaneous reception of positioning signals on multiple carrier frequencies.
  • Step 802b The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 803b The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • configuring positioning signal resources corresponding to each carrier frequency may include:
  • the capability information indicates that the UE supports simultaneous reception of positioning signals on multiple carrier frequencies, configure positioning signal resources in the same time domain and/or different time domains for each carrier frequency;
  • positioning signal resources in different time domains are configured for each carrier frequency.
  • Step 804b The network device sends the positioning signal on the positioning signal resource.
  • sending the positioning signal on the positioning signal resource includes:
  • Positioning signals are not transmitted simultaneously on positioning signal resources on at least two carrier frequencies.
  • Step 805b The network device receives the positioning report sent by the UE.
  • steps 801b-805b please refer to the description of the above embodiments, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the above step 801b is optional. Specifically, in one embodiment of the present disclosure, when the network device performs downlink positioning, the network device may first receive the capability information reported by the UE by performing the above step 801b. And, when the network device subsequently performs downlink positioning again, if the UE's ability to "support simultaneous transmission of positioning signals on multiple carrier frequencies" has not changed, the network device can no longer perform the above step 801b (i.e.
  • the network device can perform the above step 801b (that is, the access network device receives the UE update reported capability information).
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 9a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 9a, the method can include the following steps:
  • Step 901a The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 902a The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 903a The network device configures a set of measurement resources to the UE, where the measurement resources include a measurement interval.
  • Step 904a The network device sends the positioning signal on the positioning signal resource.
  • Step 905a The network device receives the positioning report sent by the UE.
  • steps 901a-905a please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 9b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 9b, the method can include the following steps:
  • Step 901b The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 902b The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 903b The network device configures a set of measurement resources to the UE, where the measurement resources include a positioning signal processing window.
  • Step 904b The network device configures the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows to the UE.
  • a set of positioning signal processing windows is configured with at least one priority.
  • the multiple priorities are related to the multiple priorities.
  • Carrier frequencies have a corresponding relationship, and positioning signals on different carrier frequencies have the same or different priorities.
  • Step 905b The network device sends the positioning signal on the positioning signal resource.
  • Step 906b The network device receives the positioning report sent by the UE.
  • steps 901b-906b please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 9c is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 9c, the method can include the following steps:
  • Step 901c The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 902c The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 903c The network device configures M sets of measurement resources to the UE, where the measurement resources include measurement intervals.
  • Step 904c The network device activates one set of the M sets of measurement resources through signaling.
  • Step 905c The network device sends the positioning signal on the positioning signal resource.
  • Step 906c The network device receives the positioning report sent by the UE.
  • steps 901c-907c please refer to the above embodiment descriptions, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 9d is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 9d, the method can include the following steps:
  • Step 901d The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 902d The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 903d The network device configures M sets of measurement resources to the UE, where the measurement resources include positioning signal processing windows.
  • Step 904d The network device activates one set of the M sets of measurement resources through signaling.
  • Step 905d Configure the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • a set of positioning signal processing windows is configured with at least one priority.
  • the multiple priorities are related to the multiple priorities.
  • Carrier frequencies have a corresponding relationship, and positioning signals on different carrier frequencies have the same or different priorities.
  • Step 906d The network device sends the positioning signal on the positioning signal resource.
  • Step 907d The network device receives the positioning report sent by the UE.
  • steps 901d-907d please refer to the description of the above embodiments, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 10a is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device and can be used for downlink positioning.
  • the method can include the following steps:
  • Step 1001a The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 1002a The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 1003a The network device configures M sets of measurement resources to the UE, where the measurement resources include measurement intervals.
  • Step 1004a The network device indicates the first correspondence between each carrier frequency and each set of measurement intervals.
  • Step 1005a The network device sends a positioning signal on the positioning signal resource.
  • Step 1006a The network device receives the positioning report sent by the UE.
  • steps 1001a-1006a please refer to the above embodiment description, and the embodiments of this disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 10b is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 10b, the method can include the following steps:
  • Step 1001b The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 1002b The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 1003b The network device configures M sets of measurement resources to the UE, where the measurement resources include measurement intervals.
  • Step 1004b The network device activates N sets of measurement resources among the M sets of measurement resources through signaling, where N is an integer greater than 1 and N is less than M.
  • Step 1005b The network device indicates the first correspondence between each carrier frequency and each set of measurement intervals.
  • Step 1006b The network device sends the positioning signal on the positioning signal resource.
  • Step 1007b The network device receives the positioning report sent by the UE.
  • steps 1001b-1007b please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 10c is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 10c, the method can include the following steps:
  • Step 1001c The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 1002c The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 1003c The network device configures M sets of measurement resources to the UE, where the measurement resources include positioning signal processing windows.
  • Step 1004c The network device configures the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1005c The network device indicates the second correspondence between each carrier frequency and each set of positioning signal processing windows.
  • Step 1006c The network device sends the positioning signal on the positioning signal resource.
  • Step 1007c The network device receives the positioning report sent by the UE.
  • steps 1001c-1007c please refer to the above embodiment description, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 10d is a schematic flowchart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device and can be used for downlink positioning. As shown in Figure 10d, the method can include the following steps:
  • Step 1001d The network device configures carrier frequency information of at least two carrier frequencies to the UE, and the carrier frequencies are used to transmit positioning signals.
  • Step 1002d The network device configures positioning signal resources corresponding to each carrier frequency to the UE.
  • Step 1003d The network device configures M sets of measurement resources to the UE, where the measurement resources include positioning signal processing windows.
  • Step 1004d The network device activates N sets of measurement resources among the M sets of measurement resources through signaling, where N is an integer greater than 1 and N is less than M.
  • Step 1005d The network device configures the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1006d The network device indicates the second correspondence between each carrier frequency and each set of positioning signal processing windows.
  • Step 1007d The network device sends the positioning signal on the positioning signal resource.
  • Step 1008d The network device receives the positioning report sent by the UE.
  • steps 1001d-1008d please refer to the description of the above embodiments, and the embodiments of the present disclosure will not be described again here.
  • the network equipment includes at least one of core network equipment and access network equipment.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 11 is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is a core network device and can be used for downlink positioning.
  • the method can Includes the following steps:
  • Step 1101. Configure carrier frequency information of at least two carrier frequencies.
  • the carrier frequencies are used to transmit positioning signals.
  • the core network device may configure the carrier frequency information of at least two carrier frequencies to the UE and the access network device respectively.
  • Step 1102 Configure positioning signal resources corresponding to each carrier frequency.
  • the core network device may configure positioning signal resources corresponding to each carrier frequency to the UE and the access network device respectively.
  • Step 1103 Receive the positioning report sent by the UE.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 12a is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is a core network device and can be used for downlink positioning.
  • the method can Includes the following steps:
  • Step 1201a Configure carrier frequency information of at least two carrier frequencies, where the carrier frequencies are used to transmit positioning signals.
  • Step 1202a Configure parameter information of the positioning signal resource independently for each carrier frequency.
  • Step 1203a Receive the positioning report sent by the UE.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 12b is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is a core network device and can be used for downlink positioning.
  • the method can Includes the following steps:
  • Step 1201b Configure carrier frequency information of at least two carrier frequencies, where the carrier frequencies are used to transmit positioning signals.
  • Step 1202b Configure the first part of parameter information, and the first part of parameter information corresponding to the at least two carrier frequencies is the same.
  • Step 1203b Configure the second part of parameter information independently for each carrier frequency, wherein the second part of parameter information corresponding to the at least two carrier frequencies is the same or different.
  • Step 1204b Receive the positioning report sent by the UE.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 13 is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is a core network device and can be used for downlink positioning.
  • the method can Includes the following steps:
  • Step 1301 Obtain the capability information reported by the UE.
  • Step 1302 Configure carrier frequency information of at least two carrier frequencies, where the carrier frequencies are used to transmit positioning signals.
  • Step 1303 Configure positioning signal resources corresponding to each carrier frequency.
  • Step 1304 Receive the positioning report sent by the UE.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method for configuring multi-carrier frequency positioning signals and a method for reporting measurement reports for multi-carrier frequency scenarios, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 14 is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 14, this method The following steps can be included:
  • Step 1401 Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method for configuring multi-carrier frequency positioning signals and a method for reporting measurement reports for multi-carrier frequency scenarios, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 15 is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 15, the method The following steps can be included:
  • Step 1501 Obtain the capability information reported by the UE.
  • Step 1502 Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method for configuring multi-carrier frequency positioning signals and a method for reporting measurement reports for multi-carrier frequency scenarios, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 16a is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 16a, this method The following steps can be included:
  • Step 1601a Configure a set of measurement resources, where the measurement resources include measurement intervals.
  • Step 1602a Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 16b is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 16b, this method The following steps can be included:
  • Step 1601b Configure a set of measurement resources, which include a positioning signal processing window.
  • Step 1602b Configure the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1603b Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 16c is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 16c, this method The following steps can be included:
  • Step 1601c Configure M sets of measurement resources, where the measurement resources include measurement intervals.
  • Step 1602c Activate one set of the M sets of measurement resources through signaling.
  • Step 1603c Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 16d is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 16d, this method The following steps can be included:
  • Step 1601d Configure M sets of measurement resources, which include positioning signal processing windows.
  • Step 1602d Activate one set of the M sets of measurement resources through signaling.
  • Step 1603d Configure the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1604d Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 17a is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure. The method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 17a, this method The following steps can be included:
  • Step 1701a Configure M sets of measurement resources, where the measurement resources include measurement intervals.
  • Step 1702a Indicate the first correspondence between each carrier frequency and each set of measurement intervals.
  • Step 1703a Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 17b is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 17b, this method The following steps can be included:
  • Step 1701b Configure M sets of measurement resources, which include positioning signal processing windows.
  • Step 1702b Configure the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1703b Indicate the second correspondence between each carrier frequency and each set of positioning signal processing windows.
  • Step 1702b Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 17c is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 17c, this method The following steps can be included:
  • Step 1702c Configure M sets of measurement resources, where the measurement resources include measurement intervals.
  • Step 1703c Activate N sets of measurement resources among the M sets of measurement resources through signaling.
  • Step 1703c Indicate the first correspondence between each carrier frequency and each set of measurement intervals.
  • Step 1704c Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 17d is a schematic flow chart of a signal processing method provided by an embodiment of the present disclosure.
  • the method is executed by a network device.
  • the network device is an access network device and can be used for downlink positioning. As shown in Figure 17d, this method The following steps can be included:
  • Step 1701d Configure M sets of measurement resources, which include positioning signal processing windows.
  • Step 1702d Activate N sets of measurement resources among the M sets of measurement resources through signaling.
  • Step 1703d Configure the priority of the positioning signal on the carrier frequency within each set of positioning signal processing windows.
  • Step 1704d Indicate the second correspondence between each carrier frequency and each set of positioning signal processing windows.
  • Step 1705d Send positioning signals on positioning signal resources on at least two carrier frequencies.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network device.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • Figure 18 is a schematic structural diagram of a signal processing device provided by an embodiment of the present disclosure. As shown in Figure 18, the device may include:
  • a first acquisition module configured to acquire carrier frequency information of at least two carrier frequencies configured by the network device, where the carrier frequencies are used to transmit positioning signals;
  • the second acquisition module is used to acquire positioning signal resources corresponding to each carrier frequency configured by the network device;
  • a processing module configured to measure positioning signals based on the positioning signal resources and obtain a positioning report
  • a reporting module is used to report the positioning report.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network equipment.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • the carrier frequency information includes at least one of the following:
  • Carrier frequency combination IDs corresponding to at least two carrier frequencies
  • the positioning signal is used to implement positioning based on carrier phase.
  • the second acquisition module is used for:
  • parameter information of positioning signal resources corresponding to each carrier frequency configured by the network device includes at least one of the following:
  • the second acquisition module is also used to:
  • the second acquisition module is also used to:
  • the device is also used for:
  • Report capability information where the capability information is used to indicate whether the UE supports simultaneous reception of positioning signals on multiple carrier frequencies.
  • the device is also used for:
  • One or more sets of measurement resources for positioning signals are determined, and the measurement resources include measurement intervals and/or positioning signal processing windows.
  • the device is also used for:
  • the configured set of measurement resources is determined as the measurement resources of the positioning signal.
  • the device is also used for:
  • the activated set of measurement resources is determined as the measurement resources of the positioning signal.
  • the device is also used for:
  • the configured multiple sets of measurement resources are determined as the measurement resources of the multiple sets of positioning signals.
  • the device is also used for:
  • N are both integers greater than 1, and M is greater than N;
  • the activated N sets of measurement resources are determined as measurement resources of the positioning signal.
  • the measurement resources configured for the first part of the at least two carrier frequencies are measurement intervals, and the measurement resources configured for the second part of the carrier frequency are positioning signal processing windows. ;or
  • the processing module is also used to:
  • Positioning signals on different carrier frequencies are measured within an interval duration of a set of said measurement intervals.
  • the processing module is also used to:
  • Positioning signals on different carrier frequencies are measured within different interval durations of a set of said measurement intervals.
  • the device is also used for:
  • the positioning signal has a higher priority than the first downlink signal and the second downlink signal;
  • the priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the priority of the positioning signal is lower than the first downlink signal and the second downlink signal
  • the second downlink signal is a downlink signal corresponding to ultra-reliable low-latency communication URLLC
  • the first downlink signal is a downlink signal corresponding to non-URLLC.
  • the set of positioning signal processing windows is configured with at least one priority.
  • the set of positioning signal processing windows is configured with multiple priorities, the multiple priorities
  • the level has a corresponding relationship with multiple carrier frequencies, and the corresponding priorities of positioning signals on different carrier frequencies are the same or different.
  • the processing module is also used to:
  • Positioning signals on different carrier frequencies are measured within a window of a set of positioning signal processing windows based on the priority of the positioning signal.
  • the processing module is also used to:
  • Positioning signals on different carrier frequencies are measured based on priorities of the positioning signals within different windows of a set of positioning signal processing windows.
  • the device is also used for:
  • the processing module is also used to:
  • the positioning signal on the corresponding carrier frequency is measured within the interval duration of each set of measurement intervals.
  • the device is also used for:
  • the device is also used for:
  • the positioning signal has a higher priority than the first downlink signal and the second downlink signal;
  • the priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the priority of the positioning signal is lower than the first downlink signal and the second downlink signal
  • the second downlink signal is a downlink signal corresponding to URLLC
  • the first downlink signal is a downlink signal corresponding to non-URLLC
  • Different sets of positioning signal processing windows have the same or different priorities for positioning signals.
  • the processing module is also used to:
  • the positioning signal on the corresponding carrier frequency is measured within the window of each set of measurement positioning signal processing windows.
  • the positioning report includes at least one of the following:
  • the phase is less than a fraction of a full cycle
  • the phase error group information when the UE receives the positioning signal includes the ID of the phase error group and/or the error value corresponding to the phase error group;
  • Figure 19 is a schematic structural diagram of a signal processing device provided by an embodiment of the present disclosure. As shown in Figure 19, the device may include:
  • a first configuration module configured to configure carrier frequency information of at least two carrier frequencies, the carrier frequencies being used to transmit positioning signals;
  • the second configuration module is used to configure positioning signal resources corresponding to each carrier frequency.
  • the user equipment will obtain the carrier frequency information of at least two carrier frequencies configured by the network equipment.
  • the carrier frequency is used to transmit positioning signals; then, the user equipment
  • the positioning signal resources corresponding to each carrier frequency configured by the network device are also obtained; and the user equipment can measure the positioning signal based on the positioning signal resources and obtain a positioning report; and report the positioning report.
  • the present disclosure provides a method of configuring multi-carrier frequency positioning signals and a method of reporting measurement reports, thereby solving the problem of "how to configure multi-carrier frequency positioning signals and how to report measurement reports" A technical issue.
  • the device is also used for:
  • the sending module is used to send positioning signals on positioning signal resources
  • Receiving module used to receive the positioning report sent by the UE
  • the carrier frequency information includes at least one of the following:
  • Carrier frequency combination IDs corresponding to at least two carrier frequencies
  • the positioning signal is used to implement carrier Phase-based positioning.
  • configuring positioning signal resources corresponding to each carrier frequency includes:
  • the parameter information includes at least one of the following:
  • the first configuration module is also used to:
  • Parameter information of the positioning signal resources independently configured for each carrier frequency wherein the parameter information of the positioning signal resources independently configured corresponding to each carrier frequency is the same or different.
  • the first configuration module is also used to:
  • the second part of parameter information is independently configured for each carrier frequency, wherein the second part of parameter information corresponding to the at least two carrier frequencies is the same or different.
  • the device is also used for:
  • Capability information reported by the UE is obtained, where the capability information is used to indicate whether the UE supports simultaneous reception of positioning signals on multiple carrier frequencies.
  • the first configuration module is also used to:
  • the capability information indicates that the UE supports simultaneous reception of positioning signals on multiple carrier frequencies, configure positioning signal resources in the same time domain and/or different time domains for each carrier frequency;
  • positioning signal resources in different time domains are configured for each carrier frequency.
  • the sending module is also used to:
  • Positioning signals are not transmitted simultaneously on positioning signal resources on at least two carrier frequencies.
  • the device is also used for:
  • the device is also used for:
  • the device is also used for:
  • the device is also used for:
  • One set of the M sets of measurement resources is activated through signaling.
  • the device is also used for:
  • N sets of measurement resources among the M sets of measurement resources are activated through signaling, where N is an integer greater than 1 and N is less than M.
  • the device is also used for:
  • the device is also used for:
  • the positioning signal has a higher priority than the first downlink signal and the second downlink signal;
  • the priority of the positioning signal is higher than the first downlink signal and lower than the second downlink signal
  • the priority of the positioning signal is lower than the first downlink signal and the second downlink signal
  • the second downlink signal is a downlink signal corresponding to URLLC
  • the first downlink signal is a downlink signal corresponding to non-URLLC.
  • a set of positioning signal processing windows is configured with at least one priority.
  • the multiple priorities are the same as Multiple carrier frequencies have a corresponding relationship, and the corresponding priorities of positioning signals on different carrier frequencies are the same or different.
  • the priorities of positioning signals corresponding to different sets of positioning signal processing windows are the same or different.
  • the device is also used for:
  • the measurement resources configured for the first part of the at least two carrier frequencies are measurement intervals, and the measurement resources configured for the second part of the carrier frequency are positioning signal processing windows. ;or
  • the positioning report includes at least one of the following:
  • the phase is less than a fraction of a full cycle
  • the phase error group information when the UE receives the positioning signal includes the ID of the phase error group and/or the error value corresponding to the phase error group;
  • FIG 20 is a block diagram of a terminal device UE2000 provided by an embodiment of the present disclosure.
  • UE2000 can be a mobile phone, a computer, a digital broadcast terminal device, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc.
  • UE 2000 may include at least one of the following components: a processing component 2002, a memory 2004, a power supply component 2006, a multimedia component 2008, an audio component 2010, an input/output (I/O) interface 2012, a sensor component 2013, and a communication component. 2016.
  • Processing component 2002 generally controls the overall operations of UE 2000, such as operations associated with display, phone calls, data communications, camera operations, and recording operations.
  • the processing component 2002 may include at least one processor 2020 to execute instructions to complete all or part of the steps of the above method. Additionally, processing component 2002 may include at least one module to facilitate interaction between processing component 2002 and other components.
  • processing component 2002 may include a multimedia module to facilitate interaction between multimedia component 2008 and processing component 2002.
  • Memory 2004 is configured to store various types of data to support operations at UE 2000. Examples of this data include instructions for any application or method operating on the UE2000, contact data, phonebook data, messages, pictures, videos, etc.
  • Memory 2004 may be implemented by any type of volatile or non-volatile storage device, or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EEPROM), Programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic or optical disk.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read-only memory
  • EEPROM erasable programmable read-only memory
  • EPROM Programmable read-only memory
  • PROM programmable read-only memory
  • ROM read-only memory
  • magnetic memory flash memory, magnetic or optical disk.
  • Power supply component 2006 provides power to various components of UE 2000.
  • Power supply components 2006 may include a power management system, at least one power supply, and other components associated with generating, managing, and distributing power to UE 2000.
  • Multimedia component 2008 includes a screen that provides an output interface between the UE 2000 and the user.
  • the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user.
  • the touch panel includes at least one touch sensor to sense touches, slides, and gestures on the touch panel. The touch sensor may not only sense the boundary of the touch or sliding operation, but also detect the wake-up time and pressure related to the touch or sliding operation.
  • multimedia component 2008 includes a front-facing camera and/or a rear-facing camera. When UE2000 is in operating mode, such as shooting mode or video mode, the front camera and/or rear camera can receive external multimedia data.
  • Each front-facing camera and rear-facing camera can be a fixed optical lens system or have a focal length and optical zoom capabilities.
  • Audio component 2010 is configured to output and/or input audio signals.
  • audio component 2010 includes a microphone (MIC) configured to receive external audio signals when UE 2000 is in operating modes, such as call mode, recording mode, and voice recognition mode. The received audio signals may be further stored in memory 2004 or sent via communications component 2016 .
  • audio component 2010 also includes a speaker for outputting audio signals.
  • MIC microphone
  • speaker for outputting audio signals.
  • the I/O interface 2012 provides an interface between the processing component 2002 and a peripheral interface module.
  • the peripheral interface module may be a keyboard, a click wheel, a button, etc. These buttons may include, but are not limited to: Home button, Volume buttons, Start button, and Lock button.
  • the sensor component 2013 includes at least one sensor for providing various aspects of status assessment for the UE 2000 .
  • the sensor component 2013 can detect the open/closed state of the device 2000, the relative positioning of components, such as the display and keypad of the UE2000, the sensor component 2013 can also detect the position change of the UE2000 or a component of the UE2000, the user and the The presence or absence of UE2000 contact, UE2000 orientation or acceleration/deceleration and temperature changes of UE2000.
  • Sensor assembly 2013 may include a proximity sensor configured to detect the presence of nearby objects without any physical contact.
  • Sensor assembly 2013 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor component 2013 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 2016 is configured to facilitate wired or wireless communication between UE 2000 and other devices.
  • UE2000 can access wireless networks based on communication standards, such as WiFi, 2G or 3G, or a combination thereof.
  • the communication component 2016 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
  • the communications component 2016 also includes a near field communications (NFC) module to facilitate short-range communications.
  • NFC near field communications
  • the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • UE 2000 may be configured by at least one Application Specific Integrated Circuit (ASIC), Digital Signal Processor (DSP), Digital Signal Processing Device (DSPD), Programmable Logic Device (PLD), Field Programmable Gate Array ( FPGA), controller, microcontroller, microprocessor or other electronic component implementation for executing the above method.
  • ASIC Application Specific Integrated Circuit
  • DSP Digital Signal Processor
  • DSPD Digital Signal Processing Device
  • PLD Programmable Logic Device
  • FPGA Field Programmable Gate Array
  • controller microcontroller, microprocessor or other electronic component implementation for executing the above method.
  • Figure 21 is a block diagram of a network side device 2100 provided by an embodiment of the present disclosure.
  • the network side device 2100 may be provided as a network side device.
  • the network side device 2100 includes a processing component 2111, which further includes at least one processor, and a memory resource represented by a memory 2132 for storing instructions, such as application programs, that can be executed by the processing component 2122.
  • the application program stored in memory 2132 may include one or more modules, each corresponding to a set of instructions.
  • the processing component 2126 is configured to execute instructions to perform any of the foregoing methods applied to the network side device, for example, the method shown in FIG. 1 .
  • the network side device 2100 may also include a power supply component 2126 configured to perform power management of the network side device 2100, a wired or wireless network interface 2150 configured to connect the network side device 2100 to the network, and an input/output (I/O ) interface 2158.
  • the network side device 2100 can operate based on an operating system stored in the memory 2132, such as Windows Server TM, Mac OS X TM, Unix TM, Linux TM, Free BSD TM or similar.
  • the methods provided by the embodiments of the present disclosure are introduced from the perspectives of network side equipment and UE respectively.
  • the network side device and the UE may include a hardware structure and a software module to implement the above functions in the form of a hardware structure, a software module, or a hardware structure plus a software module.
  • a certain function among the above functions can be executed by a hardware structure, a software module, or a hardware structure plus a software module.
  • the methods provided by the embodiments of the present disclosure are introduced from the perspectives of network side equipment and UE respectively.
  • the network side device and the UE may include a hardware structure and a software module to implement the above functions in the form of a hardware structure, a software module, or a hardware structure plus a software module.
  • a certain function among the above functions can be executed by a hardware structure, a software module, or a hardware structure plus a software module.
  • the communication device may include a transceiver module and a processing module.
  • the transceiver module may include a sending module and/or a receiving module.
  • the sending module is used to implement the sending function
  • the receiving module is used to implement the receiving function.
  • the transceiving module may implement the sending function and/or the receiving function.
  • the communication device may be a terminal device (such as the terminal device in the foregoing method embodiment), a device in the terminal device, or a device that can be used in conjunction with the terminal device.
  • the communication device may be a network device, a device in a network device, or a device that can be used in conjunction with the network device.
  • the communication device may be a network device, or may be a terminal device (such as the terminal device in the foregoing method embodiment), or may be a chip, chip system, or processor that supports the network device to implement the above method, or may be a terminal device that supports A chip, chip system, or processor that implements the above method.
  • the device can be used to implement the method described in the above method embodiment. For details, please refer to the description in the above method embodiment.
  • a communications device may include one or more processors.
  • the processor may be a general-purpose processor or a special-purpose processor, etc.
  • it can be a baseband processor or a central processing unit.
  • the baseband processor can be used to process communication protocols and communication data
  • the central processor can be used to control and execute communication devices (such as network side equipment, baseband chips, terminal equipment, terminal equipment chips, DU or CU, etc.)
  • a computer program processes data for a computer program.
  • the communication device may also include one or more memories, on which a computer program may be stored, and the processor executes the computer program, so that the communication device executes the method described in the above method embodiment.
  • data may also be stored in the memory.
  • the communication device and the memory can be provided separately or integrated together.
  • the communication device may also include a transceiver and an antenna.
  • the transceiver can be called a transceiver unit, a transceiver, or a transceiver circuit, etc., and is used to implement transceiver functions.
  • the transceiver can include a receiver and a transmitter.
  • the receiver can be called a receiver or a receiving circuit, etc., and is used to implement the receiving function;
  • the transmitter can be called a transmitter or a transmitting circuit, etc., and is used to implement the transmitting function.
  • the communication device may also include one or more interface circuits.
  • Interface circuitry is used to receive code instructions and transmit them to the processor.
  • the processor executes the code instructions to cause the communication device to perform the method described in the above method embodiment.
  • the communication device is a terminal device (such as the terminal device in the foregoing method embodiment): the processor is configured to execute the method shown in any one of Figures 1-4.
  • the communication device is a network device: a transceiver is used to perform the method shown in any one of Figures 5-7.
  • a transceiver for implementing receiving and transmitting functions may be included in the processor.
  • the transceiver may be a transceiver circuit, an interface, or an interface circuit.
  • the transceiver circuits, interfaces or interface circuits used to implement the receiving and transmitting functions can be separate or integrated together.
  • the above-mentioned transceiver circuit, interface or interface circuit can be used for reading and writing codes/data, or the above-mentioned transceiver circuit, interface or interface circuit can be used for signal transmission or transfer.
  • the processor may store a computer program, and the computer program runs on the processor, which can cause the communication device to perform the method described in the above method embodiment.
  • the computer program may be embedded in the processor, in which case the processor may be implemented in hardware.
  • the communication device may include a circuit, and the circuit may implement the functions of sending or receiving or communicating in the foregoing method embodiments.
  • the processors and transceivers described in this disclosure may be implemented on integrated circuits (ICs), analog ICs, radio frequency integrated circuits (RFICs), mixed signal ICs, application specific integrated circuits (ASICs), printed circuit boards ( printed circuit board (PCB), electronic equipment, etc.
  • the processor and transceiver can also be manufactured using various IC process technologies, such as complementary metal oxide semiconductor (CMOS), n-type metal oxide-semiconductor (NMOS), P-type Metal oxide semiconductor (positive channel metal oxide semiconductor, PMOS), bipolar junction transistor (BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc.
  • CMOS complementary metal oxide semiconductor
  • NMOS n-type metal oxide-semiconductor
  • PMOS P-type Metal oxide semiconductor
  • BJT bipolar junction transistor
  • BiCMOS bipolar CMOS
  • SiGe silicon germanium
  • GaAs gallium arsenide
  • the communication device described in the above embodiments may be a network device or a terminal device (such as the terminal device in the foregoing method embodiment), but the scope of the communication device described in the present disclosure is not limited thereto, and the structure of the communication device may not be limited to limits.
  • the communication device may be a stand-alone device or may be part of a larger device.
  • the communication device may be:
  • the IC collection may also include storage components for storing data and computer programs;
  • the communication device may be a chip or a system on a chip
  • the chip includes a processor and an interface.
  • the number of processors may be one or more, and the number of interfaces may be multiple.
  • the chip also includes a memory, which is used to store necessary computer programs and data.
  • Embodiments of the present disclosure also provide a system for determining side link duration.
  • the system includes a communication device as a terminal device in the foregoing embodiment (such as the first terminal device in the foregoing method embodiment) and a communication device as a network device.
  • the system includes a communication device as a terminal device in the foregoing embodiment (such as the first terminal device in the foregoing method embodiment) and a communication device as a network device.
  • the present disclosure also provides a readable storage medium on which instructions are stored, and when the instructions are executed by a computer, the functions of any of the above method embodiments are implemented.
  • the present disclosure also provides a computer program product, which, when executed by a computer, implements the functions of any of the above method embodiments.
  • the above embodiments it may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
  • software it may be implemented in whole or in part in the form of a computer program product.
  • the computer program product includes one or more computer programs.
  • the computer program When the computer program is loaded and executed on a computer, the processes or functions described in accordance with the embodiments of the present disclosure are generated in whole or in part.
  • the computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device.
  • the computer program may be stored in or transferred from one computer-readable storage medium to another, for example, the computer program may be transferred from a website, computer, server, or data center Transmission to another website, computer, server or data center through wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) means.
  • the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server, data center, etc. that contains one or more available media integrated therein.
  • the available media may be magnetic media (e.g., floppy disks, hard disks, magnetic tapes), optical media (e.g., high-density digital video discs (DVD)), or semiconductor media (e.g., solid state disks, SSD)) etc.
  • magnetic media e.g., floppy disks, hard disks, magnetic tapes
  • optical media e.g., high-density digital video discs (DVD)
  • DVD digital video discs
  • semiconductor media e.g., solid state disks, SSD
  • At least one in the present disclosure can also be described as one or more, and the plurality can be two, three, four or more, and the present disclosure is not limited.
  • the technical feature is distinguished by “first”, “second”, “third”, “A”, “B”, “C” and “D”, etc.
  • the technical features described in “first”, “second”, “third”, “A”, “B”, “C” and “D” are in no particular order or order.

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Abstract

本公开提出一种信号处理方法/装置/设备/存储介质,属于通信技术领域,该方法包括:获取网络设备配置的至少两个载频的载频信息(101a),载频用于传输定位信号;获取网络设备配置的各个载频对应的定位信号资源(102a);基于定位信号资源测量定位信号,得到定位报告(103a);上报定位报告(104a)。本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了"多载频的定位信号如何配置以及如何上报测量报告"这一技术问题。

Description

一种信号处理方法/装置/设备及存储介质 技术领域
本公开涉及通信技术领域,尤其涉及一种信号处理方法/装置/设备及存储介质。
背景技术
在NR(new radio,新空口)系统中,为了提高定位精度,通常会采用基于载波相位(carrier Phase)的定位方法来对设备进行定位。
相关技术,在采用基于载波相位的定位方法进行定位时,通常需要测量和上报定位信号的相位整周数(如传输距离与载频波长的商的整数部分)和相位不足整周的小数部分(如传输距离与载频波长的商的小数部分)。其中,相关技术中,针对于定位信号的相位整周数会存在模糊问题,为了解决相位整周模糊度的问题,通常会利用波长不同但历经传输距离相同的多个载频来分别发送定位信号,来解决相位整周数模糊的问题。
以及,相关技术中把多载频引入到NR系统中后,对于“多载频的定位信号如何配置以及如何上报测量报告”这一问题则是亟需解决的。
发明内容
本公开提出的信号处理方法/装置/设备及存储介质,以解决“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
本公开一方面实施例提出的信号处理方法,被用户设备执行,用于下行信号处理,包括:
获取网络设备配置的至少两个载频的载频信息,所述载频用于传输定位信号;
获取网络设备配置的各个载频对应的定位信号资源;
基于所述定位信号资源测量定位信号,得到定位报告;
上报所述定位报告。
本公开另一方面实施例提出的信号处理方法,被网络设备执行,用于下行信号处理,包括:
配置至少两个载频的载频信息,所述载频用于传输定位信号;
配置各个载频对应的定位信号资源;
在定位信号资源上发送定位信号;
接收UE发送的定位报告。
本公开又一方面实施例提出的一种信号处理装置,包括:
第一获取模块,用于获取网络设备配置的至少两个载频的载频信息,所述载频用于传输定位信号;
第二获取模块,用于获取网络设备配置的各个载频对应的定位信号资源;
处理模块,用于基于所述定位信号资源测量定位信号,得到定位报告;
上报模块,用于上报所述定位报告。
本公开又一方面实施例提出的一种信号处理装置,包括:
第一配置模块,用于配置至少两个载频的载频信息,所述载频用于传输定位信号;
第二配置模块,用于配置各个载频对应的定位信号资源。
本公开又一方面实施例提出的一种通信装置,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如上一方面实施例提出的方法。
本公开又一方面实施例提出的一种通信装置,所述装置包括处理器和存储器,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如上另一方面实施例提出的方法。
本公开又一方面实施例提出的通信装置,包括:处理器和接口电路;
所述接口电路,用于接收代码指令并传输至所述处理器;
所述处理器,用于运行所述代码指令以执行如一方面实施例提出的方法。
本公开又一方面实施例提出的通信装置,包括:处理器和接口电路;
所述接口电路,用于接收代码指令并传输至所述处理器;
所述处理器,用于运行所述代码指令以执行如另一方面实施例提出的方法。
本公开又一方面实施例提出的计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如一方面实施例提出的方法被实现。
本公开又一方面实施例提出的计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如另一方面实施例提出的方法被实现。
综上所述,在本公开实施例提供的信号处理方法/装置/设备及存储介质之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
附图说明
本公开上述的和/或附加的方面和优点从下面结合附图对实施例的描述中将变得明显和容易理解,其中:
图1a-1b为本公开一个实施例所提供的信号处理方法的流程示意图;
图2a-2b为本公开又一个实施例所提供的信号处理方法的流程示意图;
图3为本公开又一个实施例所提供的信号处理方法的流程示意图;
图4a-4e为本公开另一个实施例所提供的信号处理方法的流程示意图;
图5a-5c为本公开一个实施例所提供的信号处理方法的流程示意图;
图6a-6b为本公开又一个实施例所提供的信号处理方法的流程示意图;
图7a-7b为本公开另一个实施例所提供的信号处理方法的流程示意图;
图8a-8b为本公开另一个实施例所提供的信号处理方法的流程示意图;
图9a-9d为本公开另一个实施例所提供的信号处理方法的流程示意图;
图10a-10d为本公开另一个实施例所提供的信号处理方法的流程示意图;
图11为本公开另一个实施例所提供的信号处理方法的流程示意图;
图12a-12b为本公开另一个实施例所提供的信号处理方法的流程示意图;
图13为本公开另一个实施例所提供的信号处理方法的流程示意图;
图14为本公开另一个实施例所提供的信号处理方法的流程示意图;
图15为本公开另一个实施例所提供的信号处理方法的流程示意图;
图16a-16d为本公开另一个实施例所提供的信号处理方法的流程示意图;
图17a-17d为本公开另一个实施例所提供的信号处理方法的流程示意图;
图18为本公开另一个实施例所提供的信号处理装置的结构示意图;
图19为本公开另一个实施例所提供的信号处理装置的结构示意图;
图20是本公开一个实施例所提供的一种终端设备的框图;
图21为本公开一个实施例所提供的一种网络侧设备的框图。
具体实施方式
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本公开实施例相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本公开实施例的一些方面相一致的装置和方法的例子。
在本公开实施例使用的术语是仅仅出于描述特定实施例的目的,而非旨在限制本公开实施例。在本 公开实施例和所附权利要求书中所使用的单数形式的“一种”和“该”也旨在包括多数形式,除非上下文清楚地表示其他含义。还应当理解,本文中使用的术语“和/或”是指并包含一个或多个相关联的列出项目的任何或所有可能组合。
应当理解,尽管在本公开实施例可能采用术语第一、第二、第三等来描述各种信息,但这些信息不应限于这些术语。这些术语仅用来将同一类型的信息彼此区分开。例如,在不脱离本公开实施例范围的情况下,第一信息也可以被称为第二信息,类似地,第二信息也可以被称为第一信息。取决于语境,如在此所使用的词语“如果”及“若”可以被解释成为“在……时”或“当……时”或“响应于确定”。
下面参考附图对本公开实施例所提供的信号处理方法/装置/设备及存储介质进行详细描述。
图1a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE(User Equipment,用户设备)执行,可以用于进行下行定位,如图1所示,该方法可以包括以下步骤:
步骤101a、获取网络设备配置的至少两个载频的载频信息。
在本公开的一个实施例之中,UE可以是指向用户提供语音和/或数据连通性的设备。终端设备可以经RAN(Radio Access Network,无线接入网)与一个或多个核心网进行通信,UE可以是物联网终端,如传感器设备、移动电话(或称为“蜂窝”电话)和具有物联网终端的计算机,例如,可以是固定式、便携式、袖珍式、手持式、计算机内置的或者车载的装置。例如,站(Station,STA)、订户单元(subscriber unit)、订户站(subscriber station),移动站(mobile station)、移动台(mobile)、远程站(remote station)、接入点、远程终端(remoteterminal)、接入终端(access terminal)、用户装置(user terminal)或用户代理(useragent)。或者,UE也可以是无人飞行器的设备。或者,UE也可以是车载设备,比如,可以是具有无线通信功能的行车电脑,或者是外接行车电脑的无线终端。或者,UE也可以是路边设备,比如,可以是具有无线通信功能的路灯、信号灯或者其它路边设备等。
需要说明的是,在本公开的一个实施例之中,上述的获取网络设备配置的至少两个载频的载频信息可以为:UE获取网络设备下发的该至少两个载频的载频信息。在本公开的另一个实施例之中,上述的获取网络设备配置的至少两个载频的载频信息可以为:UE读取本地存储的网络设备之前下发的该至少两个载频的载频信息。也即是,当UE获取到网络设备之前下发的至少两个载频的载频信息之后,UE可以本地存储该至少两个载频的载频信息,之后,可以直接从本地存储中读取该至少两个载频的载频信息。
其中,在本公开的一个实施例之中,该网络设备可以包括以下至少一种:
核心网设备;
接入网设备。
以及,在本公开的一个实施例之中,上述核心网设备可以为位置管理功能网元。其中,该位置管理功能网元可以包括位置服务器(location server);以及,该位置服务器可以实现为以下任意一项:
LMF(Location Management Function,位置管理网元);
E-SMLC(Enhanced Serving Mobile Location Centre,增强服务的流动定位中心);
SUPL(Secure User Plane Location,安全用户平面定位);
SUPL SLP(SUPL Location Platform,安全用户平面定位定位平台)。
进一步地,在本公开的一个实施例之中,上述接入网设备可以包括以下至少一种:
基站;
TRP(transmission-reception point,发送接收点)。
此外,在本公开的一个实施例之中,上述的载频可以用于传输定位信号,该定位信号可以用于实现基于载波相位的定位。以及,该定位信号可以为下行定位信号,具体的,该定位信号可以为PRS(Position Reference Signal,定位参考信号),或新的用于下行定位的参考信号。
以及,在本公开的一个实施例之中,上述的载频信息可以包括以下至少一项:
载频的ID(Identity,序号);
至少两个载频对应的载频组合ID;
载频的起始频点位置;
载频的结束频点位置。
步骤102a、获取网络设备配置的各个载频对应的定位信号资源。
其中,在本公开的一个实施例之中,上述的获取网络设备配置的各个载频对应的定位信号资源可以为:UE获取网络设备下发的各个载频对应的定位信号资源。在本公开的另一个实施例之中,上述的获取网络设备配置的各个载频对应的定位信号资源可以为:UE读取本地存储的网络设备之前所配置的各个载频对应的定位信号资源。也即是,当UE获取到网络设备之前下发的各个载频对应的定位信号资源之后,可以本地存储该各个载频对应的定位信号资源,之后,可以直接从本地存储中读取该各个载频对应的定位信号资源。
以及,在本公开的一个实施例之中,UE具体可以通过获取网络设备配置的各个载频对应的定位信号资源的参数信息来获取各个载频对应的定位信号资源。其中,该参数信息可以包括以下至少一种:
定位信号资源ID;
定位信号资源集合ID;
TRP ID;
传输周期;
slot offset(时隙偏移);
一个周期内的重复传输次数;
每两次重复传输之间的时间间隔;
占用的符号数;
muting pattern(静默图样);
comb-size(梳状值);
起始符号位置;
SCS(sub-carrier spacing,子载波间隔);
QCL(Quasi-CoLocation,准共址)信息;
测量的样本(sample)数;
载频带宽;
起始PRB(Physical Resource Block,物理资源块)位置。
步骤103a、基于定位信号资源测量定位信号,得到定位报告。
其中,在本公开的一个实施例之中,UE可以基于定位信号资源和至少两个载频的载频信息在至少两个载频上的定位信号资源上接收网络设备(如接入网设备)发送的定位信号,并对接收到的定位信号进行测量以得到定位报告。
在本公开的一个实施例之中,该定位报告可以包括以下至少一种:
相位整周数;
相位不足整周的小数部分;
UE接收定位信号时的相位误差组信息,该相位误差组信息可以包括相位误差组的ID和/或相位误差组对应的误差值;
RSRP(Reference Signal Receiving Power,参考信号接收功率);
AoA(angle of arrival,到达角);
AoD(angle of departure,出发角);
ToA(time of arrival,到达时间);
TDoA(time difference of arrival,到达时间差值);
RTT(Round trip time,往返时间值);
RxTEG(Rx time error group,接收时间误差组);
TxTEG(Tx time error group,发送时间误差组);
TxRxTEG(Tx Rx time error group,发送接收时间误差组)。
以及,上述的关于“对测量信号进行测量”的相关内容会在后续实施例进行详细介绍。
此外,还需要说明的是,在本公开的一个实施例之中,上述步骤103中得到的定位报告可以为一份也可以为多份。
具体而言,在本公开的一个实施例之中,上述的至少两个载频可以用于聚合起来传输同一个定位信号,或分别独立传输不同定位信号。其中,若至少两个载频用于聚合起来传输同一个定位信号,此时,通过测量至少两个载频上的定位信号可以得到一份定位报告;若至少两个载频是用于分别独立传输不同定位信号,此时,通过分别测量各个载频上的定位信号以对应得到多份定位报告。
步骤104a、上报定位报告。
在本公开的一个实施例之中,UE在得到定位报告之后,会向网络设备(如核心网设备)上报该定位报告,以便核心网设备基于该定位报告来对UE实现定位。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图1b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图1b所示,该方法可以包括以下步骤:
步骤101b、获取网络设备配置的至少两个载频的载频信息并存储。
步骤102b、获取网络设备配置的各个载频对应的定位信号资源并存储。
其中,关于步骤102ba-102b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图2a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图2a所示,该方法可以包括以下步骤:
步骤201a、获取核心网设备配置的至少两个载频的载频信息。
其中,在本公开的一个实施例之中,上述的获取核心网设备配置的至少两个载频的载频信息可以为:UE获取核心网设备下发的该至少两个载频的载频信息。在本公开的另一个实施例之中,上述的获取核心网设备配置的至少两个载频的载频信息可以为:UE读取本地存储的核心网设备之前所配置的该至少两个载频的载频信息。也即是,当UE获取到核心网设备之前下发的至少两个载频的载频信息之后,UE可以本地存储该至少两个载频的载频信息,之后,可以直接从本地存储中读取该至少两个载频的载频信息。
步骤202a、获取核心网设备针对于各个载频分别独立配置的定位信号资源的参数信息。
也即是,在本公开的一个实施例之中,核心网设备可以分别针对于各个载频独立配置一套定位信号资源的参数信息。
其中,在本公开的一个实施例之中,各个载频对应的分别独立配置的定位信号资源的参数信息可以相同。在本公开的另一个实施例之中,各个载频对应的分别独立配置的定位信号资源的参数信息可以不同。
以及,在本公开的一个实施例之中,上述的获取核心网设备配置的各个载频对应的定位信号资源可以为:UE获取核心网设备下发的至少各个载频对应的定位信号资源。在本公开的另一个实施例之中,上述的获取核心网设备配置的各个载频对应的定位信号资源可以为:UE读取本地存储的核心网设备之前所配置的各个载频对应的定位信号资源。也即是,当UE获取到核心网设备之前下发的各个载频对应 的定位信号资源之后,UE可以本地存储该各个载频对应的定位信号资源,之后,可以直接从本地存储中读取该各个载频对应的定位信号资源。
步骤203a、基于定位信号资源测量定位信号,得到定位报告。
步骤204a、上报定位报告。
其中,关于步骤201a-204a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图2b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图2b所示,该方法可以包括以下步骤:
步骤201b、获取核心网设备配置的至少两个载频的载频信息。
步骤202b、获取核心网设备配置的第一部分参数信息。
其中,在本公开的一个实施例之中,各个载频对应的第一部分参数信息相同。也即是,该第一部分参数信息可以是各个载频所公用的。换言之,在本公开的一个实施例之中,核心网设备可以针对于所有载频配置一套定位信号资源的第一部分参数信息。
示例的,在本公开的一个实施例之中,该第一部分参数信息包括以下定位信号资源的参数信息中的一部分:
定位信号资源ID;
定位信号资源集合ID;
TRP ID;
传输周期;
slot offset(时隙偏移);
一个周期内的重复传输次数;
每两次重复传输之间的时间间隔;
占用的符号数;
muting pattern;
comb-size;
起始符号位置;
SCS;
QCL信息;
测量的样本(sample)数;
载频带宽;
起始PRB位置。
示例的,在本公开的一个实施例之中,该第一部分参数信息比如可以包括传输周期,占用的符号数等。
以及,在本公开的一个实施例之中,上述的获取核心网设备配置的第一部分参数信息可以为:UE获取核心网设备下发的第一部分参数信息。在本公开的另一个实施例之中,上述的获取核心网设备配置的第一部分参数信息可以为:UE读取本地存储的核心网设备之前所配置的第一部分参数信息。也即是,当UE获取到核心网设备之前下发的第一部分参数信息之后,UE可以本地存储该第一部分参数信息,之后,可以直接从本地存储中读取该第一部分参数信息。
步骤203b、获取核心网设备针对各个载频分别独立配置的第二部分参数信息。
也即是,在本公开的一个实施例之中,核心网设备可以针对于各个载频独立配置一套定位信号资源的第二部分参数信息。
其中,在本公开的一个实施例之中,该第二部分参数信息可以是上述定位信号资源的参数信息中除了上述第一部分参数信息之外的参数信息。
以及,在本公开的一个实施例之中,各个载频对应的第二部分参数信息可以相同。在本公开的另一个实施例之中,各个载频对应的第二部分参数信息可以不同。
以及,在本公开的一个实施例之中,上述的获取核心网设备配置的第二部分参数信息可以为:UE获取核心网设备下发的第二部分参数信息。在本公开的另一个实施例之中,上述的获取核心网设备配置的第二部分参数信息可以为:UE读取本地存储的核心网设备之前所配置的第二部分参数信息。也即是,当UE获取到核心网设备之前下发的第二部分参数信息之后,UE可以本地存储该第二部分参数信息,之后,可以直接从本地存储中读取该第二部分参数信息。
步骤204b、基于定位信号资源测量定位信号,得到定位报告。
步骤205b、上报定位报告。
其中,关于步骤201b-205b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图3为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图3所示,该方法可以包括以下步骤:
步骤301、上报能力信息。
其中,在本公开的一个实施例之中,该能力信息可以用于指示UE是否支持多个载频上的定位信号的同时接收。
以及,在本公开的一个实施例之中,UE可以向核心网设备和接入网设备的至少一个上报能力信息。以便核心网设备可以基于该能力信息来向UE配置至少两个载频的载频信息和各个载频对应的定位信号资源,和/或以便接入网设备可以基于该能力信息来向UE同时和/或不同时发送定位信号。
步骤302、获取核心网设备配置的至少两个载频的载频信息。
步骤303、获取核心网设备配置的各个载频对应的定位信号资源。
其中,在本公开的一个实施例之中,当上述能力信息指示UE支持多个载频上的定位信号的同时接收时,核心网设备可以在各个载频配置相同时域和/或不同时域的定位信号资源,以使得多个载频上的定位信号可以同时或不同时传输。
在本公开的另一个实施例之中,当能力信息指示UE不支持多个载频上的定位信号的同时接收时,核心网设备只能在各个载频配置不同时域的定位信号资源,以使得多个载频上的定位信号可以不同时传输。
步骤304、基于定位信号资源测量定位信号,得到定位报告。
其中,在本公开的一个实施例之中,UE可以基于定位信号资源和至少两个载频的载频信息在至少两个载频上的定位信号资源上接收网络设备(如接入网设备)发送的定位信号,并对接收到的定位信号进行测量以得到定位报告。
需要说明的是,在本公开的一个实施例之中,当上述能力信息指示UE支持多个载频上的定位信号的同时接收时,核心网设备可以在各个载频配置相同时域和/或不同时域的定位信号资源,UE需要在至少两个载频上的定位信号资源上同时和/或不同时接收定位信号。在本公开的另一个实施例之中,当上述能力信息指示UE不支持多个载频上的定位信号的同时接收时,核心网设备只能在各个载频配置不同时域的定位信号资源,UE只需要在至少两个载频上的定位信号资源上不同时接收定位信号。
步骤305、上报定位报告。
其中,关于步骤301-305的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
需要说明的是,在本公开的一个实施例之中,上述步骤301是可选执行的。具体而言,在本公开的 一个实施例之中,UE在进行下行定位时,可以通过执行上述步骤301来上报上述能力信息。以及,UE后续再次进行下行定位时,若UE的“是否支持多个载频上的定位信号的同时发送”这一能力未发生改变,则UE可以不执行上述步骤301(即UE不再上报该能力信息),若UE的“是否支持多个载频上的定位信号的同时发送”这一能力发生了改变,则UE可以执行上述步骤301(即UE需要更新上报该能力信息)。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图4a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图4a所示,该方法可以包括以下步骤:
步骤401a、获取核心网设备配置的至少两个载频的载频信息。
步骤402a、获取核心网设备配置的各个载频对应的定位信号资源。
步骤403a、确定一套定位信号的测量资源。
其中,在本公开的一个实施例之中,该定位信号的测量资源具体可以用于UE测量定位信号。以及,该测量资源可以包括MG(measurement gap,测量间隔)和/或定位信号处理窗口(processing window)。
具体的,在本公开的一个实施例之中,上述的测量间隔具体可以包括有gap周期(例如gap周期可以为20/40/80/160ms(毫秒)……等),其中,每个gap周期可以对应一个间隔持续长度(即gap duration),一个间隔持续长度例如可以为1ms,1.5ms,2ms,2.5ms,3ms,3.5ms,4ms,4.5ms,5ms,5.5ms,6ms……等,UE可以在周期性出现的gap duration内接收测量定位信号。
在本公开的另一个实施例之中,上述的定位信号处理窗口具体可以包括有window周期,其中,每个window周期可以对应一个窗口(即window duration),UE可以在周期性出现的window duration内接收测量定位信号。
以及,在本公开的一个实施例之中,确定一套定位信号的测量资源的方法可以包括以下至少一种:
方法a、获取网络设备(如接入网设备)配置的一套测量资源,并将该配置的一套测量资源确定为定位信号的测量资源。
也即是,网络设备仅向UE配置了一套测量资源,则UE可以直接将该配置的一套测量资源确定为定位信号的测量资源。
其中,在本公开的一个实施例之中,网络设备可以通过RRC(Radio Resource Control,无线资源控制)信令向UE配置测量资源。
方法b、获取网络设备(如接入网设备)配置的多套测量资源,基于网络设备发送的信令激活多套测量资源中的一套测量资源,并将激活的一套测量资源确定为定位信号的测量资源。
也即是,在本公开的一个实施例之中,接入网设备会向UE配置多套测量资源,但接入网设备仅激活了其中一套测量资源,则UE可以将该激活的一套测量资源确定为定位信号的测量资源。
其中,在本公开的一个实施例之中,接入网设备具体可以通过MAC CE(Medium Access Control-Control Element,媒体介入控制-控制单元)信令来激活测量资源。
步骤404a、基于定位信号资源测量定位信号,得到定位报告。
其中,在本公开的一个实施例之中,上述步骤403a中的测量资源不同时,本步骤403a中测量定位信号时的具体测量过程也会有所不同。其中,关于该部分内容会在后续实施例进行详细介绍。
步骤405a、上报定位报告。
其中,关于步骤401a-405a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法, 从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图4b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图4b所示,该方法可以包括以下步骤:
步骤401b、获取核心网设备配置的至少两个载频的载频信息。
步骤402b、获取核心网设备配置的各个载频对应的定位信号资源。
步骤403b、确定一套定位信号的测量资源,该测量资源可以包括测量间隔。
步骤404b、在一套测量间隔的一个间隔持续时长(即gap duration)内测量不同载频上的定位信号,得到定位报告。
其中,在本公开的一个实施例之中,当UE仅确定了一套定位信号的测量资源,且该测量资源为测量间隔时,UE可以在该一套测量间隔的各个gap duration内接收定位信号,而不接收其它下行信号,其中,该其它下行信号可以至少包括以下至少一种:
PDCCH(Physical Downlink Control Channel,物理下行控制信道);
PDSCH(Physical Downlink Shared Channel,物理下行共享信道);
CSI-RS(Channel State Information Reference Signal,信道状态信息参考信号);
PBCH(Physical Broadcast Channel,物理广播信道);
SSB(Synchronization Signal Block,同步信号块)。
以及,在本公开的一个实施例之中,上述的在一套测量间隔的一个间隔持续时长内测量不同载频上的定位信号可以理解为:假设核心网设备向UE配置了两个载频的载频信息,其中,该两个载频分别为载频#1和载频#2。则UE可以在一个间隔持续时长的前半部分接收并测量载频#1上的定位信号,以及,在后半部分接收并测量载频#2上的定位信号。比如这套测量间隔的周期是40ms,gap duration是6ms,那么第一个gap duration时间在t0~t0+6ms时间内,而第二个gap duration的时间在t0+40ms~t0+46ms时间内。那么UE可以在t0~t0+6ms时间内测量载频#1和载频#2上的定位信号,比如在t0~t0+3ms时间内测量载频#1上的定位信号,在t0+3ms~t0+6ms时间内测量载频#2上的定位信号。或UE可以在t0+40ms~t0+46ms时间内测量载频#1和载频#2上的定位信号,比如在t0+40ms~t0+43ms时间内测量载频#1上的定位信号,在t0+43ms~t0+46ms时间内测量载频#2上的定位信号。
步骤405b、上报定位报告。
其中,关于步骤401b-405b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图4c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图4c所示,该方法可以包括以下步骤:
步骤401c、获取核心网设备配置的至少两个载频的载频信息。
步骤402c、获取核心网设备配置的各个载频对应的定位信号资源。
步骤403c、确定一套定位信号的测量资源,该测量资源可以包括测量间隔。
步骤404c、在一套测量间隔的不同间隔持续时长内测量不同载频上的定位信号,得到定位报告。
其中,在本公开的一个实施例之中,当UE仅确定了一套定位信号的测量资源,且该测量资源为MG时,UE可以在该一套测量间隔的各个gap duration内接收定位信号,而不接收其它下行信号,其中,该其它下行信号可以至少包括以下至少一种:
PDCCH;
PDSCH;
CSI-RS;
PBCH;
SSB。
以及,在本公开的一个实施例之中,上述的在一套测量间隔的不同间隔持续时长内测量不同载频上的定位信号可以理解为:假设核心网设备向UE配置了两个载频的载频信息,其中,该两个载频分别为载频#1和载频#2。则UE可以在第一个间隔持续时长接收并测量载频#1上的定位信号,以及,在第二个间隔持续时长接收并测量载频#2上的定位信号。比如这套测量间隔的周期是40ms,gap duration是6ms,那么第一个gap duration时间在t0~t0+6ms时间内,而第二个gap duration的时间在t0+40ms~t0+46ms时间内。那么UE可以在t0~t0+6ms时间内测量载频#1上的定位信号。而在t0+40ms~t0+46ms时间内测量载频#2上的定位信号。
步骤405c、上报定位报告。
其中,关于步骤401c-405c的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图4d为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图4d所示,该方法可以包括以下步骤:
步骤401d、获取核心网设备配置的至少两个载频的载频信息。
步骤402d、获取核心网设备配置的各个载频对应的定位信号资源。
步骤403d、确定一套定位信号的测量资源,该测量资源可以包括定位信号处理窗口。
步骤404d、获取接入网设备配置的在一套定位信号处理窗口内载频上的定位信号的优先级。
需要说明的是,在本公开的一个实施例之中,针对于定位信号处理窗口的窗口来说,UE不仅可以接收定位信号,还可以接收其他的下行信号。其中,该其他的下行信号例如可以包括有第一下行信号和第二下行信号,该第一下行信号可以为非URLLC(Ultra Reliable and Low Latency Communication,超可靠低延迟通信)对应的下行信号;该第二下行信号可以为URLLC对应的下行信号。以及,该下行信号具体可以包括PDCCH、PDSCH、CSI-RS、PBCH、SSB中的至少一种。
进一步地,在本公开的一个实施例之中,上述的URLLC对应的下行信号和非URLLC对应的下行信号可以基于下行信号的HARQ-ACK(Hybrid Automatic Retransmission Request Acknowledgement,混合自动重传请求应答)的优先级确定。具体的,当某下行信号的HARQ-ACK优先级较高时,则确定该下行信号为URLLC对应的下行信号,当某下行信号的HARQ-ACK优先级较低时,则确定该下行信号为非URLLC对应的下行信号。
以及,基于上述描述内容,由于定位信号处理窗口的窗口中UE不仅可以接收定位信号,还可以接收其他的下行信号。因此,需要为定位信号处理窗口配置定位信号的优先级,以便后续UE可以基于该优先级来处理定位信号、第一下行信号和第二下行信号。
其中,该定位信号的优先级可以包括以下至少一种:
定位信号优先级高于第一下行信号和第二下行信号;
定位信号优先级高于第一下行信号,并低于第二下行信号;
定位信号优先级低于第一下行信号和第二下行信号。
以及,需要说明的是,在本公开的一个实施例之中,一套定位信号处理窗口可以对应配置至少一个优先级,其中,当一套定位信号处理窗口对应配置了一个优先级时,则该套定位信号处理窗口中的各个窗口均基于该优先级来处理信号。以及,当一套定位信号处理窗口对应配置多个优先级时,接入网设备还应配置该多个优先级与多个载频之间的对应关系,其中,不同载频上的定位信号对应的优先级相同或不同,以及,后续UE在定位信号处理窗口中的窗口处理信号时,即可基于优先级与载频之间的对应关系,采用对应的优先级来处理各个载频上的信号。
步骤405d、在一套定位信号处理窗口的一个窗口(即window duration)内基于定位信号的优先级 测量不同载频上的定位信号,得到定位报告。
需要说明的是,在本公开的一个实施例之中,当上述步骤403d中接入网设备配置的一套定位信号处理窗口对应定位信号的一个优先级时,则UE可以在该一套定位信号处理窗口的一个窗口内基于该定位信号的一个优先级测量不同载频上的定位信号。
示例的,在本公开的一个实施例之中,假设步骤403d中接入网设备配置了定位信号的一个优先级,为:优先级#1:定位信号优先级高于第一下行信号和第二下行信号,且核心网设备向UE配置了两个载频,分别为载频#1和载频#2。则UE可以在定位信号处理窗口的一个窗口的前半部分基于优先级#1接收并测量载频#1上的定位信号,以及,在后半部分基于优先级#1接收并测量载频#2上的定位信号。比如这套定位信号处理窗口的周期是80ms,窗口长度是10ms,那么第一个窗口时间在t0~t0+10ms时间内,而第二个窗口时间在t0+80ms~t0+90ms时间内。那么UE可以在t0~t0+10ms时间内测量载频#1和载频#2上的定位信号,比如在t0~t0+5ms时间内测量载频#1上的定位信号,在t0+5ms~t0+10ms时间内测量载频#2上的定位信号。或UE可以在t0+80ms~t0+90ms时间内测量载频#1和载频#2上的定位信号,比如在t0+80ms~t0+85ms时间内测量载频#1上的定位信号,在t0+85ms~t0+90ms时间内测量载频#2上的定位信号。
在本公开的另一个实施例之中,当上述步骤403d中接入网设备配置的一套定位信号处理窗口对应定位信号的多个优先级,且配置了多个优先级与载频的对应关系时,则UE可以在该一套定位信号处理窗口的一个窗口内基于不同载频对应的优先级测量不同载频上的定位信号。
示例的,在本公开的一个实施例之中,假设步骤403d中接入网设备配置了定位信号的两个优先级,分别为:优先级#1:定位信号优先级高于第一下行信号和第二下行信号;优先级#2:定位信号优先级高于第一下行信号,并低于第二下行信号,且核心网设备向UE配置了两个载频,分别为载频#1和载频#2。其中,优先级#1对应载频#1,优先级#2对应载频#2。若该窗口内没有第二下行信号,则UE可以在定位信号处理窗口的一个窗口的前半部分基于优先级#1接收并测量载频#1上的定位信号,以及,在后半部分基于优先级#2接收并测量载频#2上的定位信号。比如这套定位信号处理窗口的周期是80ms,窗口长度是10ms,那么第一个窗口时间在t0~t0+10ms时间内,而第二个窗口时间在t0+80ms~t0+90ms时间内。那么UE可以在t0~t0+10ms时间内测量载频#1和载频#2上的定位信号,比如在t0~t0+5ms时间内测量载频#1上的定位信号,在t0+5ms~t0+10ms时间内测量载频#2上的定位信号。或UE可以在t0+80ms~t0+90ms时间内测量载频#1和载频#2上的定位信号,比如在t0+80ms~t0+85ms时间内测量载频#1上的定位信号,在t0+85ms~t0+90ms时间内测量载频#2上的定位信号。若该窗口内有第二下行信号,其中,由于载频#1对应的优先级#1中定位信号的优先级高于第一下行信号和第二下行信号,则UE在定位信号处理窗口的该一个窗口内可以基于优先级#1优先接收并测量载频#1上的定位信号。而由于载频#2对应的优先级#2中定位信号优先级高于第一下行信号,并低于第二下行信号,则在窗口内有第二下行信号的基础上,由于载频#2对应的定位信号优先级低于第二下行信号,UE不会在定位信号处理窗口的该一个窗口内接收并测量载频#2上的定位信号。
步骤406d、上报定位报告。
其中,关于步骤401d-406d的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图4e为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图4e所示,该方法可以包括以下步骤:
步骤401e、获取核心网设备配置的至少两个载频的载频信息。
步骤402e、获取核心网设备配置的各个载频对应的定位信号资源。
步骤403e、确定一套定位信号的测量资源,该测量资源可以包括定位信号处理窗口。
步骤404e、获取接入网设备配置的在一套定位信号处理窗口内载频上的定位信号的优先级。
需要说明的是,在本公开的一个实施例之中,针对于定位信号处理窗口的窗口来说,UE不仅可以接收定位信号,还可以接收其他的下行信号。其中,该其他的下行信号例如可以包括有第一下行信号和第二下行信号,该第一下行信号可以为非URLLC对应的下行信号;该第二下行信号可以为URLLC对应的下行信号。以及,该下行信号具体可以包括PDCCH、PDSCH、CSI-RS、PBCH、SSB中的至少一种。
进一步地,在本公开的一个实施例之中,上述的URLLC对应的下行信号和非URLLC对应的下行信号可以基于下行信号的HARQ-ACK的优先级确定。具体的,当某下行信号的HARQ-ACK优先级较高时,则确定该下行信号为URLLC对应的下行信号,当某下行信号的HARQ-ACK优先级较低时,则确定该下行信号为非URLLC对应的下行信号。
以及,基于上述描述内容,由于定位信号处理窗口的窗口中UE不仅可以接收定位信号,还可以接收其他的下行信号。因此,需要为定位信号处理窗口配置定位信号的优先级,以便后续UE可以基于该优先级来处理定位信号、第一下行信号和第二下行信号。
其中,该定位信号的优先级可以包括以下至少一种:
定位信号优先级高于第一下行信号和第二下行信号;
定位信号优先级高于第一下行信号,并低于第二下行信号;
定位信号优先级低于第一下行信号和第二下行信号。
此外,还需要说明的是,在本公开的一个实施例之中,一套定位信号处理窗口可以对应配置至少一个优先级,其中,当一套定位信号处理窗口对应配置了一个优先级时,则该套定位信号处理窗口中的各个窗口均基于该优先级来处理信号。以及,当一套定位信号处理窗口对应配置多个优先级时,接入网设备还应配置该多个优先级与多个载频之间的对应关系,其中,不同载频上的定位信号对应的优先级相同或不同,以及,后续UE在定位信号处理窗口中的窗口处理信号时,即可基于优先级与载频之间的对应关系,采用对应的优先级来处理各个载频上的信号。
步骤405e、在一套定位信号处理窗口的不同窗口内基于定位信号的优先级测量不同载频上的定位信号,得到定位报告。
需要说明的是,在本公开的一个实施例之中,当上述步骤403e中接入网设备配置的一套定位信号处理窗口对应定位信号的一个优先级时,则UE可以在该一套定位信号处理窗口的不同窗口内均基于该定位信号的一个优先级测量不同载频上的定位信号。
示例的,在本公开的一个实施例之中,假设步骤403e中接入网设备配置了定位信号的一个优先级,为:优先级#1:定位信号优先级高于第一下行信号和第二下行信号,且核心网设备向UE配置了两个载频,分别为载频#1和载频#2。则UE可以在第一个窗口基于优先级#1接收并测量载频#1上的定位信号,以及,在第二个窗口基于优先级#1接收并测量载频#2上的定位信号。比如这套定位信号处理窗口的周期是80ms,窗口长度是10ms,那么第一个窗口时间在t0~t0+10ms时间内,而第二个窗口时间在t0+80ms~t0+90ms时间内。那么UE可以在t0~t0+10ms时间内测量载频#1上的定位信号。在t0+80ms~t0+90ms时间内测量载频#2上的定位信号。
在本公开的另一个实施例之中,当上述步骤403e中接入网设备配置的一套定位信号处理窗口对应定位信号的多个优先级,且配置了多个优先级与载频的对应关系后时,则UE可以在该一套定位信号处理窗口的不同窗口内基于不同载频对应的优先级测量不同载频上的定位信号。
示例的,在本公开的一个实施例之中,假设步骤403e中接入网设备配置了两个定位信号的优先级,分别为:优先级#1:定位信号优先级高于第一下行信号和第二下行信号;优先级#2:定位信号优先级高于第一下行信号,并低于第二下行信号,且核心网设备向UE配置了两个载频,分别为载频#1和载频#2。其中,优先级#1对应载频#1,优先级#2对应载频#2。若第二个窗口内没有第二下行信号,则UE可以在第一个窗口基于优先级#1接收并测量载频#1上的定位信号,以及,在第二个窗口基于优先级#2接收并测量载频#2上的定位信号。比如这套定位信号处理窗口的周期是80ms,窗口长度是10ms,那么第一个窗口时间在t0~t0+10ms时间内,而第二个窗口时间在t0+80ms~t0+90ms时间内。若第二个窗 口时间内没有第二下行信号,那么UE可以在t0~t0+10ms时间内测量载频#1上的定位信号。在t0+80ms~t0+90ms时间内测量载频#2上的定位信号。若所有窗口内都有第二下行信号,则UE在定位信号处理窗口的任意一个窗口内只能基于优先级#1接收并测量载频#1上的定位信号。
步骤406e、上报定位报告。
其中,关于步骤401e-406e的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图5a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图5a所示,该方法可以包括以下步骤:
步骤501a、获取核心网设备配置的至少两个载频的载频信息。
步骤502a、获取核心网设备配置的各个载频对应的定位信号资源。
步骤503a、确定多套定位信号的测量资源。
其中,关于测量资源的相关介绍可以参考上述实施例描述,本公开实施例在此不做赘述。
以及,在本公开的一个实施例之中,确定多套定位信号的测量资源的方法可以包括以下至少一种:
方法A、获取网络设备(如接入网设备)配置的多套测量资源,直接将配置的多套测量资源确定为所述多套定位信号的测量资源。
也即是,网络设备向UE配置了多套测量资源,则UE可以直接将该配置的多套测量资源确定为定位信号的测量资源。
其中,在本公开的一个实施例之中,网络设备可以通过RRC信令向UE配置测量资源。
方法B、获取网络设备(如接入网设备)配置的M套测量资源,基于网络设备发送的信令激活M套测量资源中的N套测量资源,其中M,N均为大于1的整数,M大于N。
也即是,在本公开的一个实施例之中,接入网设备会向UE配置M套测量资源,但接入网设备仅激活了M套测量资源中的N套测量资源,则UE可以将该激活的N套测量资源确定为定位信号的测量资源。
其中,在本公开的一个实施例之中,接入网设备可以通过MAC CE信令来激活测量资源。
需要说明的是,在本公开的一个实施例之中,本步骤504a中所确定的测量资源的套数可以与载频的个数相同或不同。
步骤505a、基于定位信号资源测量定位信号,得到定位报告。
其中,在本公开的一个实施例之中,上述的多套测量资源可以分别对应不同的载频,以及,当UE基于定位信号资源测量定位信号时,可以基于测量资源来测量对应载频上的定位信号资源上的信号。
需要说明的是,在本公开的一个实施例之中,不同的载频对应的测量资源的类型可以相同,如不同的载频对应的测量资源可以均为测量间隔或定位信号处理窗口。在本公开的另一个实施例之中,不同的载频对应的测量资源的类型可以不同,如针对至少两个载频中的第一部分载频配置的测量资源可以为测量间隔,第二部分载频配置的测量资源可以为定位信号处理窗口。
或者,在本公开的又一个实施例之中,也可以针对一个载频同时配置测量间隔和定位信号处理窗口。
步骤505a、上报定位报告。
其中,关于步骤501a-505a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图5b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图5b所示,该方法可以包括以下步骤:
步骤501b、获取核心网设备配置的至少两个载频的载频信息。
步骤502b、获取核心网设备配置的各个载频对应的定位信号资源。
步骤503b、确定多套定位信号的测量资源,该测量资源可以包括测量间隔。
步骤504b、获取接入网设备指示的各个载频与各套测量间隔之间的第一对应关系。
示例的,在本公开的一个实施例之中,假设上述步骤501b中核心网设备配置了两个载频,分别为载频#1和载频#2,以及,步骤503b中确定了两套测量间隔,分别为测量间隔#1和测量间隔#2,则该第一对应关系可以为:载频#1与测量间隔#1对应,载频#2与测量间隔#2对应。其中测量间隔#1对应周期#1,时隙偏移值#1和间隔持续时长#1;测量间隔#2对应周期#2,时隙偏移值#2和间隔持续时长#2。周期#1和周期#2可以相同或不同。时隙偏移值#1和时隙偏移值#2可以相同或不同。当周期#1和周期#2相同时,时隙偏移值#1和时隙偏移值#2不能相同。间隔持续时长#1和间隔持续时长#2可以相同或不同。
步骤505b、基于第一对应关系在各套测量间隔的间隔持续时长内测量对应的载频上的定位信号。
示例的,在本公开的一个实施例之中,上述的基于第一对应关系在各套测量间隔的间隔持续时长内测量对应的载频上的定位信号可以理解为:假设步骤504b中接入网设备指示的第一对应关系为:载频#1与测量间隔#1对应,载频#2与测量间隔#2对应,则UE可以在测量间隔#1的各个间隔持续时长内接收并测量载频#1上的定位信号,以及,在测量间隔#2的各个间隔持续时长内接收并测量载频#2上的定位信号。
步骤506b、上报定位报告。
其中,关于步骤501b-506b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图5c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由UE执行,可以用于进行下行定位,如图5c所示,该方法可以包括以下步骤:
步骤501c、获取核心网设备配置的至少两个载频的载频信息。
步骤502c、获取核心网设备配置的各个载频对应的定位信号资源。
步骤503c、确定多套定位信号的测量资源,该测量资源可以包括定位信号处理窗口。
步骤504c、获取接入网设备指示的各个载频与各套定位信号处理窗口之间的第二对应关系。
示例的,在本公开的一个实施例之中,假设上述步骤501b中核心网设备配置了两个载频,分别为载频#1和载频#2,以及,步骤503b中确定了两套定位信号处理窗口,分别为定位信号处理窗口#1和定位信号处理窗口#2,则该第二对应关系可以为:载频#1与定位信号处理窗口#1对应,载频#2与定位信号处理窗口#2对应。
步骤505c、获取接入网设备配置的各套定位信号处理窗口内载频上的定位信号的优先级。
其中,关于优先级的详细介绍可以参考上述实施例描述,本公开实施例在此不做赘述。
以及,在本公开的一个实施例之中,不同套定位信号处理窗口对于定位信号的优先级可以相同。在本公开的一个实施例之中,不同套定位信号处理窗口对于定位信号的优先级可以不同。
示例的,在本公开的一个实施例之中,假设接入网设备向UE配置了两套定位信号处理窗口,分别为定位信号处理窗口#1和定位信号处理窗口#2,则UE接收到的接入网设备配置的各套定位信号处理窗口内载频上的定位信号的优先级可以为:定位信号处理窗口#1对应优先级#1,定位信号处理窗口#2对应优先级#2。
步骤506c、基于第二对应关系和各套定位信号处理窗口对应的定位信号的优先级在各套测量定位 信号处理窗口的窗口内测量对应载频上的定位信号。
示例的,在本公开的一个实施例之中,假设第二对应关系为:载频#1与定位信号处理窗口#1对应,载频#2与定位信号处理窗口#2对应,以及,定位信号处理窗口#1对应优先级#1,定位信号处理窗口#2对应优先级#2。则UE可以在定位信号处理窗口#1的各个窗口内基于优先级#1接收和测量载频#1上的定位信号,在定位信号处理窗口#2的各个窗口内基于优先级#2接收和测量载频#2上的定位信号。其中定位信号处理窗口#1对应周期#1,起始时隙值#1和窗口持续时长#1,以及优先级#1,其中优先级#1为定位信号优先级高于所有其它下行信号;定位信号处理窗口#2对应周期#2,起始时隙值#2和窗口持续时长#2,以及优先级#2,其中优先级#2为定位信号优先级高于非URLLC对应的下行信号且低于URLLC对应的下行信号。周期#1和周期#2可以相同或不同。起始时隙值#1和起始时隙值#2可以相同或不同。当周期#1和周期#2相同时,起始时隙值#1和起始时隙值#2不能相同。窗口持续时长#1和窗口持续时长#2可以相同或不同。那么UE可以在定位信号处理窗口#1的各个窗口内接收和测量载频#1上的定位信号。而在定位信号处理窗口#2的各个窗口内,只有当没有URLLC对应的下行信号时,才能接收和测量载频#2上的定位信号。
步骤507c、上报定位报告。
其中,关于步骤501c-507c的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图6a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图6a所示,该方法可以包括以下步骤:
步骤601a、配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤602a、配置各个载频对应的定位信号资源。
其中,关于步骤601a-602a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图6b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图6b所示,该方法可以包括以下步骤:
步骤601b、配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤602b、配置各个载频对应的定位信号资源。
步骤603b、在定位信号资源上发送定位信号。
步骤604b、接收UE发送的定位报告。
其中,关于步骤601b-604b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图7a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用 于进行下行定位,如图7a所示,该方法可以包括以下步骤:
步骤701a、网络设备配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤702a、网络设备针对于各个载频分别独立配置所述定位信号资源的参数信息,其中,各个载频对应的分别独立配置的所述定位信号资源的参数信息相同或不同。
其中,关于步骤701a-702a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图7b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图7b所示,该方法可以包括以下步骤:
步骤701b、网络设备配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤702b、网络设备向UE配置所述第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同。
步骤703b、网络设备针对于各个载频分别独立配置第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
其中,关于步骤701b-703b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图8a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图8a所示,该方法可以包括以下步骤:
步骤801a、获取UE上报的能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
步骤802a、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤803a、网络设备向UE配置各个载频对应的定位信号资源。
其中,在本公开的一个实施例之中,所述配置各个载频对应的定位信号资源可以包括:
当所述能力信息指示所述UE支持多个载频上的定位信号的同时接收,为各个载频配置相同时域和/或不同时域的定位信号资源;
当所述能力信息指示所述UE不支持多个载频上的定位信号的同时接收,为各个载频配置不同时域的定位信号资源。
其中,关于步骤801a-803a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
需要说明的是,在本公开的一个实施例之中,上述步骤801a是可选执行的。具体而言,在本公开的一个实施例之中,网络设备进行下行定位时,网络设备可以先通过执行上述步骤801a来接收UE上报的能力信息。以及,网络设备后续再次进行下行定位时,若UE的“是否支持多个载频上的定位信号的同时发送”这一能力未发生改变,则网络设备可以不再执行上述步骤801a(即不再接收UE上报的能力信息),若UE的“是否支持多个载频上的定位信号的同时发送”这一能力发生了改变,则网络设备可以执行上述步骤801a(即接入网设备接收UE更新上报的能力信息)。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载 频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图8b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图8b所示,该方法可以包括以下步骤:
步骤801b、获取UE上报的能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
步骤802b、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤803b、网络设备向UE配置各个载频对应的定位信号资源。
其中,在本公开的一个实施例之中,所述配置各个载频对应的定位信号资源可以包括:
当所述能力信息指示所述UE支持多个载频上的定位信号的同时接收,为各个载频配置相同时域和/或不同时域的定位信号资源;
当所述能力信息指示所述UE不支持多个载频上的定位信号的同时接收,为各个载频配置不同时域的定位信号资源。
步骤804b、网络设备在定位信号资源上发送定位信号。
其中,在本公开的一个实施例之中,所述在定位信号资源上发送定位信号,包括:
在至少两个载频上的定位信号资源上同时发送定位信号;和/或
在至少两个载频上的定位信号资源上不同时发送定位信号。
步骤805b、网络设备接收UE发送的定位报告。
其中,关于步骤801b-805b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
需要说明的是,在本公开的一个实施例之中,上述步骤801b是可选执行的。具体而言,在本公开的一个实施例之中,网络设备进行下行定位时,网络设备可以先通过执行上述步骤801b来接收UE上报的能力信息。以及,网络设备后续再次进行下行定位时,若UE的“是否支持多个载频上的定位信号的同时发送”这一能力未发生改变,则网络设备可以不再执行上述步骤801b(即不再接收UE上报的能力信息),若UE的“是否支持多个载频上的定位信号的同时发送”这一能力发生了改变,则网络设备可以执行上述步骤801b(即接入网设备接收UE更新上报的能力信息)。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图9a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图9a所示,该方法可以包括以下步骤:
步骤901a、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤902a、网络设备向UE配置各个载频对应的定位信号资源。
步骤903a、网络设备向UE配置一套测量资源,该测量资源包括测量间隔。
步骤904a、网络设备在定位信号资源上发送定位信号。
步骤905a、网络设备接收UE发送的定位报告。
其中,关于步骤901a-905a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报 告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图9b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图9b所示,该方法可以包括以下步骤:
步骤901b、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤902b、网络设备向UE配置各个载频对应的定位信号资源。
步骤903b、网络设备向UE配置一套测量资源,该测量资源包括定位信号处理窗口。
步骤904b、网络设备向UE配置在每套定位信号处理窗口内载频上的定位信号的优先级。
其中,在本公开的一个实施例之中,一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
步骤905b、网络设备在定位信号资源上发送定位信号。
步骤906b、网络设备接收UE发送的定位报告。
其中,关于步骤901b-906b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图9c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图9c所示,该方法可以包括以下步骤:
步骤901c、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤902c、网络设备向UE配置各个载频对应的定位信号资源。
步骤903c、网络设备向UE配置M套测量资源,该测量资源包括测量间隔。
步骤904c、网络设备通过信令激活所述M套测量资源中的一套测量资源。
步骤905c、网络设备在定位信号资源上发送定位信号。
步骤906c、网络设备接收UE发送的定位报告。
其中,关于步骤901c-907c的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图9d为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图9d所示,该方法可以包括以下步骤:
步骤901d、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤902d、网络设备向UE配置各个载频对应的定位信号资源。
步骤903d、网络设备向UE配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤904d、网络设备通过信令激活所述M套测量资源中的一套测量资源。
步骤905d、配置在每套定位信号处理窗口内载频上的定位信号的优先级。
其中,在本公开的一个实施例之中,一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
步骤906d、网络设备在定位信号资源上发送定位信号。
步骤907d、网络设备接收UE发送的定位报告。
其中,关于步骤901d-907d的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图10a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图10b所示,该方法可以包括以下步骤:
步骤1001a、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1002a、网络设备向UE配置各个载频对应的定位信号资源。
步骤1003a、网络设备向UE配置M套测量资源,该测量资源包括测量间隔。
步骤1004a、网络设备指示各个载频与各套测量间隔之间的第一对应关系。
步骤1005a、网络设备在定位信号资源上发送定位信号。
步骤1006a、网络设备接收UE发送的定位报告。
其中,关于步骤1001a-1006a的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图10b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图10b所示,该方法可以包括以下步骤:
步骤1001b、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1002b、网络设备向UE配置各个载频对应的定位信号资源。
步骤1003b、网络设备向UE配置M套测量资源,该测量资源包括测量间隔。
步骤1004b、网络设备通过信令激活所述M套测量资源中的N套测量资源,N为大于1的整数,N小于M。
步骤1005b、网络设备指示各个载频与各套测量间隔之间的第一对应关系
步骤1006b、网络设备在定位信号资源上发送定位信号。
步骤1007b、网络设备接收UE发送的定位报告。
其中,关于步骤1001b-1007b的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图10c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图10c所示,该方法可以包括以下步骤:
步骤1001c、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1002c、网络设备向UE配置各个载频对应的定位信号资源。
步骤1003c、网络设备向UE配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤1004c、网络设备配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1005c、网络设备指示各个载频与各套定位信号处理窗口之间的第二对应关系
步骤1006c、网络设备在定位信号资源上发送定位信号。
步骤1007c、网络设备接收UE发送的定位报告。
其中,关于步骤1001c-1007c的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图10d为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,可以用于进行下行定位,如图10d所示,该方法可以包括以下步骤:
步骤1001d、网络设备向UE配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1002d、网络设备向UE配置各个载频对应的定位信号资源。
步骤1003d、网络设备向UE配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤1004d、网络设备通过信令激活所述M套测量资源中的N套测量资源,N为大于1的整数,N小于M。
步骤1005d、网络设备配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1006d、网络设备指示各个载频与各套定位信号处理窗口之间的第二对应关系
步骤1007d、网络设备在定位信号资源上发送定位信号。
步骤1008d、网络设备接收UE发送的定位报告。
其中,关于步骤1001d-1008d的其他详细介绍可以参考上述实施例描述,本公开实施例在此不再赘述。
本公开实施例中,网络设备包括核心网设备和接入网设备中的至少一项。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图11为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为核心网设备,可以用于进行下行定位,如图11所示,该方法可以包括以下步骤:
步骤1101、配置至少两个载频的载频信息,所述载频用于传输定位信号。
其中,在本公开的一个实施例之中,核心网设备可以分别向UE和接入网设备配置至少两个载频的载频信息。
步骤1102、配置各个载频对应的定位信号资源。
其中,在本公开的一个实施例之中,核心网设备可以分别向UE和接入网设备配置各个载频对应的定位信号资源。
步骤1103、接收UE发送的定位报告。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的 定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图12a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为核心网设备,可以用于进行下行定位,如图12a所示,该方法可以包括以下步骤:
步骤1201a、配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1202a、针对于各个载频分别独立配置所述定位信号资源的参数信息。
步骤1203a、接收UE发送的定位报告。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图12b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为核心网设备,可以用于进行下行定位,如图12b所示,该方法可以包括以下步骤:
步骤1201b、配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1202b、配置第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同。
步骤1203b、针对于各个载频分别独立配置第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
步骤1204b、接收UE发送的定位报告。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图13为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为核心网设备,可以用于进行下行定位,如图13所示,该方法可以包括以下步骤:
步骤1301、获取UE上报的能力信息。
步骤1302、配置至少两个载频的载频信息,所述载频用于传输定位信号。
步骤1303、配置各个载频对应的定位信号资源。
步骤1304、接收UE发送的定位报告。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图14为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图14所示,该方法可以包括以下步骤:
步骤1401、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图15为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络 设备为接入网设备,可以用于进行下行定位,如图15所示,该方法可以包括以下步骤:
步骤1501、获取UE上报的能力信息。
步骤1502、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图16a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图16a所示,该方法可以包括以下步骤:
步骤1601a、配置一套测量资源,该测量资源包括测量间隔。
步骤1602a、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图16b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图16b所示,该方法可以包括以下步骤:
步骤1601b、配置一套测量资源,该测量资源包括定位信号处理窗口。
步骤1602b、配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1603b、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图16c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图16c所示,该方法可以包括以下步骤:
步骤1601c、配置M套测量资源,该测量资源包括测量间隔。
步骤1602c、通过信令激活所述M套测量资源中的一套测量资源。
步骤1603c、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图16d为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图16d所示,该方法可以包括以下步骤:
步骤1601d、配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤1602d、通过信令激活所述M套测量资源中的一套测量资源。
步骤1603d、配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1604d、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的 定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图17a为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图17a所示,该方法可以包括以下步骤:
步骤1701a、配置M套测量资源,该测量资源包括测量间隔。
步骤1702a、指示各个载频与各套测量间隔之间的第一对应关系。
步骤1703a、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图17b为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图17b所示,该方法可以包括以下步骤:
步骤1701b、配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤1702b、配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1703b、指示各个载频与各套定位信号处理窗口之间的第二对应关系。
步骤1702b、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图17c为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图17c所示,该方法可以包括以下步骤:
步骤1702c、配置M套测量资源,该测量资源包括测量间隔。
步骤1703c、通过信令激活所述M套测量资源中的N套测量资源。
步骤1703c、指示各个载频与各套测量间隔之间的第一对应关系。
步骤1704c、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图17d为本公开实施例所提供的一种信号处理方法的流程示意图,该方法由网络设备执行,该网络设备为接入网设备,可以用于进行下行定位,如图17d所示,该方法可以包括以下步骤:
步骤1701d、配置M套测量资源,该测量资源包括定位信号处理窗口。
步骤1702d、通过信令激活所述M套测量资源中的N套测量资源。
步骤1703d、配置在每套定位信号处理窗口内载频上的定位信号的优先级。
步骤1704d、指示各个载频与各套定位信号处理窗口之间的第二对应关系。
步骤1705d、在至少两个载频上的定位信号资源上发送定位信号。
综上所述,在本公开实施例提供的信号处理方法之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报 告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
图18为本公开实施例所提供的一种信号处理装置的结构示意图,如图18所示,装置可以包括:
第一获取模块,用于获取网络设备配置的至少两个载频的载频信息,所述载频用于传输定位信号;
第二获取模块,用于获取网络设备配置的各个载频对应的定位信号资源;
处理模块,用于基于所述定位信号资源测量定位信号,得到定位报告;
上报模块,用于上报所述定位报告。
综上所述,在本公开实施例提供的信号处理装置之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
可选的,在本公开的一个实施例之中,所述载频信息包括以下至少一项:
载频的序号ID;
至少两个载频对应的载频组合ID;
载频的起始频点位置;
载频的结束频点位置。
可选的,在本公开的一个实施例之中,所述定位信号用于实现基于载波相位carrier Phase的定位。
可选的,在本公开的一个实施例之中,所述第二获取模块,用于:
获取网络设备配置的所述各个载频对应的定位信号资源的参数信息,所述参数信息包括以下至少一种:
定位信号资源ID;
定位信号资源集合ID;
TRP ID;
传输周期;
时隙偏移slot offset;
一个周期内的重复传输次数;
每两次重复传输之间的时间间隔;
占用的符号数;
静默图样muting pattern;
梳状值comb-size;
起始符号位置;
子载波间隔SCS;
准共址QCL信息;
测量的样本sample数;
载频带宽;
起始物理资源块PRB位置。
可选的,在本公开的一个实施例之中,所述第二获取模块,还用于:
接收所述网络设备针对于各个载频分别独立配置的所述定位信号资源的参数信息,其中,各个载频对应的分别独立配置的所述定位信号资源的参数信息相同或不同。
可选的,在本公开的一个实施例之中,所述第二获取模块,还用于:
获取所述网络设备配置的第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同;
接收所述网络设备针对各个载频分别独立配置的第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
可选的,在本公开的一个实施例之中,所述装置还用于:
上报能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
可选的,在本公开的一个实施例之中,所述装置还用于:
确定一套或多套定位信号的测量资源,所述测量资源包括测量间隔和/或定位信号处理窗口。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的一套测量资源;
将所述配置的一套测量资源确定为所述定位信号的测量资源。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的多套测量资源;
基于网络设备发送的信令激活所述多套测量资源中的一套测量资源;
将所述激活的一套测量资源确定为所述定位信号的测量资源。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的多套测量资源;
将所述配置的多套测量资源确定为所述多套定位信号的测量资源。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的M套测量资源;
基于网络设备发送的信令激活所述M套测量资源中的N套测量资源,其中M,N均为大于1的整数,M大于N;
将所述激活的N套测量资源确定为所述定位信号的测量资源。
可选的,在本公开的一个实施例之中,针对所述至少两个载频中的第一部分载频配置的测量资源为测量间隔,第二部分载频配置的测量资源为定位信号处理窗口;或
针对一个载频同时配置测量间隔和定位信号处理窗口。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
在一套所述测量间隔的一个间隔持续时长内测量不同载频上的定位信号。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
在一套所述测量间隔的不同间隔持续时长内测量不同载频上的定位信号。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的在所述一套定位信号处理窗口内载频上的定位信号的优先级;
所述定位信号的优先级包括以下至少一种:
定位信号优先级高于第一下行信号和第二下行信号;
定位信号优先级高于第一下行信号,并低于第二下行信号;
定位信号优先级低于第一下行信号和第二下行信号;
其中,第二下行信号为超可靠低延迟通信URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号。
可选的,在本公开的一个实施例之中,所述一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
在一套所述定位信号处理窗口的一个窗口内基于所述定位信号的优先级测量不同载频上的定位信号。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
在一套所述定位信号处理窗口的不同窗口内基于所述定位信号的优先级测量不同载频上的定位信号。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取所述网络设备指示的各个载频与各套测量间隔之间的第一对应关系。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
基于所述第一对应关系在各套测量间隔的间隔持续时长内测量对应的载频上的定位信号。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取所述网络设备指示的各个载频与各套定位信号处理窗口之间的第二对应关系。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取网络设备配置的各套所述定位信号处理窗口内载频上的定位信号的优先级;
所述定位信号的优先级包括以下至少一种:
定位信号优先级高于第一下行信号和第二下行信号;
定位信号优先级高于第一下行信号,并低于第二下行信号;
定位信号优先级低于第一下行信号和第二下行信号;
其中,第二下行信号为URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号;
其中,不同套定位信号处理窗口对于定位信号的优先级相同或不同。
可选的,在本公开的一个实施例之中,所述处理模块还用于:
基于所述第二对应关系和各套定位信号处理窗口对应的定位信号的优先级在各套测量定位信号处理窗口的窗口内测量对应载频上的定位信号。
可选的,在本公开的一个实施例之中,所述定位报告包括以下至少一种:
相位整周数;
相位不足整周的小数部分;
所述UE接收所述定位信号时的相位误差组信息,所述相位误差组信息包括相位误差组的ID和/或相位误差组对应的误差值;
参考信号接收功率RSRP;
到达角AoA;
出发角AoD;
到达时间ToA;
到达时间差值TDoA;
往返时间值RTT;
接收时间误差组RxTEG;
发送时间误差组TxTEG;
发送接收时间误差组TxRxTEG。
图19为本公开实施例所提供的一种信号处理装置的结构示意图,如图19所示,装置可以包括:
第一配置模块,用于配置至少两个载频的载频信息,所述载频用于传输定位信号;
第二配置模块,用于配置各个载频对应的定位信号资源。
综上所述,在本公开实施例提供的信号处理装置之中,用户设备会获取网络设备配置的至少两个载频的载频信息,该载频用于传输定位信号;之后,该用户设备还会获取网络设备配置的各个载频对应的定位信号资源;以及,用户设备可以基于定位信号资源测量定位信号,得到定位报告;并上报该定位报告。由此可知,本公开针对于多载频场景,提供了多载频的定位信号的配置方法和测量报告的上报方法,从而解决了“多载频的定位信号如何配置以及如何上报测量报告”这一技术问题。
可选的,在本公开的一个实施例之中,所述装置还用于:
发送模块,用于在定位信号资源上发送定位信号;
接收模块,用于接收UE发送的定位报告
可选的,在本公开的一个实施例之中,所述载频信息包括以下至少一项:
载频的序号ID;
至少两个载频对应的载频组合ID;
载频的起始频点位置;
载频的结束频点位置。
可选的,在本公开的一个实施例之中,所述定位信号用于实现基于carrier Phase的定位。
可选的,在本公开的一个实施例之中,所述配置各个载频对应的定位信号资源,包括:
配置各个载频对应的定位信号资源的参数信息,所述参数信息包括以下至少一种:
定位信号资源ID;
定位信号资源集合ID;
TRP ID;
传输周期;
slot offset;
一个周期内的重复传输次数;
每两次重复传输之间的时间间隔;
占用的符号数;
muting pattern;
comb-size;
起始符号位置;
SCS;
QCL信息;
测量的sample数;
载频带宽;
起始PRB位置。
可选的,在本公开的一个实施例之中,所述第一配置模块,还用于:
针对于各个载频分别独立配置所述定位信号资源的参数信息,其中,各个载频对应的分别独立配置的所述定位信号资源的参数信息相同或不同。
可选的,在本公开的一个实施例之中,所述第一配置模块,还用于:
配置第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同;
针对于各个载频分别独立配置第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
可选的,在本公开的一个实施例之中,所述装置还用于:
获取UE上报的能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
可选的,在本公开的一个实施例之中,所述第一配置模块还用于:
当所述能力信息指示所述UE支持多个载频上的定位信号的同时接收,为各个载频配置相同时域和/或不同时域的定位信号资源;
当所述能力信息指示所述UE不支持多个载频上的定位信号的同时接收,为各个载频配置不同时域的定位信号资源。
可选的,在本公开的一个实施例之中,所述发送模块还用于:
在至少两个载频上的定位信号资源上同时发送定位信号;和/或
在至少两个载频上的定位信号资源上不同时发送定位信号。
可选的,在本公开的一个实施例之中,所述装置还用于:
配置一套或多套测量资源,所述测量资源包括测量间隔和/或定位信号处理窗口。
可选的,在本公开的一个实施例之中,所述装置还用于:
配置一套测量资源。
可选的,在本公开的一个实施例之中,所述装置还用于:
配置M套测量资源,M为大于1的整数。
可选的,在本公开的一个实施例之中,所述装置还用于:
通过信令激活所述M套测量资源中的一套测量资源。
可选的,在本公开的一个实施例之中,所述装置还用于:
通过信令激活所述M套测量资源中的N套测量资源,N为大于1的整数,N小于M。
可选的,在本公开的一个实施例之中,所述装置还用于:
指示各个载频与各套测量间隔之间的第一对应关系。
可选的,在本公开的一个实施例之中,所述装置还用于:
配置在每套定位信号处理窗口内载频上的定位信号的优先级;
所述定位信号的优先级包括以下至少一种:
定位信号优先级高于第一下行信号和第二下行信号;
定位信号优先级高于第一下行信号,并低于第二下行信号;
定位信号优先级低于第一下行信号和第二下行信号;
其中,第二下行信号为URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号。
可选的,在本公开的一个实施例之中,一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
可选的,在本公开的一个实施例之中,不同套定位信号处理窗口对应定位信号的优先级相同或不同。
可选的,在本公开的一个实施例之中,所述装置还用于:
指示各个载频与各套定位信号处理窗口之间的第二对应关系。
可选的,在本公开的一个实施例之中,针对所述至少两个载频中的第一部分载频配置的测量资源为测量间隔,第二部分载频配置的测量资源为定位信号处理窗口;或
针对一个载频同时配置测量间隔和定位信号处理窗口。
可选的,在本公开的一个实施例之中,所述定位报告包括以下至少一种:
相位整周数;
相位不足整周的小数部分;
所述UE接收所述定位信号时的相位误差组信息,所述相位误差组信息包括相位误差组的ID和/或相位误差组对应的误差值;
RSRP;
AoA;
AoD;
ToA;
TDoA;
RTT;
RxTEG;
TxTEG;
TxRxTEG。
图20是本公开一个实施例所提供的一种终端设备UE2000的框图。例如,UE2000可以是移动电话,计算机,数字广播终端设备,消息收发设备,游戏控制台,平板设备,医疗设备,健身设备,个人数字助理等。
参照图20,UE2000可以包括以下至少一个组件:处理组件2002,存储器2004,电源组件2006,多媒体组件2008,音频组件2010,输入/输出(I/O)的接口2012,传感器组件2013,以及通信组件2016。
处理组件2002通常控制UE2000的整体操作,诸如与显示,电话呼叫,数据通信,相机操作和记录操作相关联的操作。处理组件2002可以包括至少一个处理器2020来执行指令,以完成上述的方法的全部或部分步骤。此外,处理组件2002可以包括至少一个模块,便于处理组件2002和其他组件之间的交互。例如,处理组件2002可以包括多媒体模块,以方便多媒体组件2008和处理组件2002之间的交互。
存储器2004被配置为存储各种类型的数据以支持在UE2000的操作。这些数据的示例包括用于在UE2000上操作的任何应用程序或方法的指令,联系人数据,电话簿数据,消息,图片,视频等。存储 器2004可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,如静态随机存取存储器(SRAM),电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),可编程只读存储器(PROM),只读存储器(ROM),磁存储器,快闪存储器,磁盘或光盘。
电源组件2006为UE2000的各种组件提供电力。电源组件2006可以包括电源管理系统,至少一个电源,及其他与为UE2000生成、管理和分配电力相关联的组件。
多媒体组件2008包括在所述UE2000和用户之间的提供一个输出接口的屏幕。在一些实施例中,屏幕可以包括液晶显示器(LCD)和触摸面板(TP)。如果屏幕包括触摸面板,屏幕可以被实现为触摸屏,以接收来自用户的输入信号。触摸面板包括至少一个触摸传感器以感测触摸、滑动和触摸面板上的手势。所述触摸传感器可以不仅感测触摸或滑动动作的边界,而且还检测与所述触摸或滑动操作相关的唤醒时间和压力。在一些实施例中,多媒体组件2008包括一个前置摄像头和/或后置摄像头。当UE2000处于操作模式,如拍摄模式或视频模式时,前置摄像头和/或后置摄像头可以接收外部的多媒体数据。每个前置摄像头和后置摄像头可以是一个固定的光学透镜系统或具有焦距和光学变焦能力。
音频组件2010被配置为输出和/或输入音频信号。例如,音频组件2010包括一个麦克风(MIC),当UE2000处于操作模式,如呼叫模式、记录模式和语音识别模式时,麦克风被配置为接收外部音频信号。所接收的音频信号可以被进一步存储在存储器2004或经由通信组件2016发送。在一些实施例中,音频组件2010还包括一个扬声器,用于输出音频信号。
I/O接口2012为处理组件2002和外围接口模块之间提供接口,上述外围接口模块可以是键盘,点击轮,按钮等。这些按钮可包括但不限于:主页按钮、音量按钮、启动按钮和锁定按钮。
传感器组件2013包括至少一个传感器,用于为UE2000提供各个方面的状态评估。例如,传感器组件2013可以检测到设备2000的打开/关闭状态,组件的相对定位,例如所述组件为UE2000的显示器和小键盘,传感器组件2013还可以检测UE2000或UE2000一个组件的位置改变,用户与UE2000接触的存在或不存在,UE2000方位或加速/减速和UE2000的温度变化。传感器组件2013可以包括接近传感器,被配置用来在没有任何的物理接触时检测附近物体的存在。传感器组件2013还可以包括光传感器,如CMOS或CCD图像传感器,用于在成像应用中使用。在一些实施例中,该传感器组件2013还可以包括加速度传感器,陀螺仪传感器,磁传感器,压力传感器或温度传感器。
通信组件2016被配置为便于UE2000和其他设备之间有线或无线方式的通信。UE2000可以接入基于通信标准的无线网络,如WiFi,2G或3G,或它们的组合。在一个示例性实施例中,通信组件2016经由广播信道接收来自外部广播管理系统的广播信号或广播相关信息。在一个示例性实施例中,所述通信组件2016还包括近场通信(NFC)模块,以促进短程通信。例如,在NFC模块可基于射频识别(RFID)技术,红外数据协会(IrDA)技术,超宽带(UWB)技术,蓝牙(BT)技术和其他技术来实现。
在示例性实施例中,UE2000可以被至少一个应用专用集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理设备(DSPD)、可编程逻辑器件(PLD)、现场可编程门阵列(FPGA)、控制器、微控制器、微处理器或其他电子元件实现,用于执行上述方法。
图21是本公开实施例所提供的一种网络侧设备2100的框图。例如,网络侧设备2100可以被提供为一网络侧设备。参照图21,网络侧设备2100包括处理组件2111,其进一步包括至少一个处理器,以及由存储器2132所代表的存储器资源,用于存储可由处理组件2122的执行的指令,例如应用程序。存储器2132中存储的应用程序可以包括一个或一个以上的每一个对应于一组指令的模块。此外,处理组件2126被配置为执行指令,以执行上述方法前述应用在所述网络侧设备的任意方法,例如,如图1所示方法。
网络侧设备2100还可以包括一个电源组件2126被配置为执行网络侧设备2100的电源管理,一个有线或无线网络接口2150被配置为将网络侧设备2100连接到网络,和一个输入输出(I/O)接口2158。网络侧设备2100可以操作基于存储在存储器2132的操作系统,例如Windows Server TM,Mac OS XTM,Unix TM,Linux TM,Free BSDTM或类似。
上述本公开提供的实施例中,分别从网络侧设备、UE的角度对本公开实施例提供的方法进行了介绍。为了实现上述本公开实施例提供的方法中的各功能,网络侧设备和UE可以包括硬件结构、软件模 块,以硬件结构、软件模块、或硬件结构加软件模块的形式来实现上述各功能。上述各功能中的某个功能可以以硬件结构、软件模块、或者硬件结构加软件模块的方式来执行。
上述本公开提供的实施例中,分别从网络侧设备、UE的角度对本公开实施例提供的方法进行了介绍。为了实现上述本公开实施例提供的方法中的各功能,网络侧设备和UE可以包括硬件结构、软件模块,以硬件结构、软件模块、或硬件结构加软件模块的形式来实现上述各功能。上述各功能中的某个功能可以以硬件结构、软件模块、或者硬件结构加软件模块的方式来执行。
本公开实施例提供的一种通信装置。通信装置可包括收发模块和处理模块。收发模块可包括发送模块和/或接收模块,发送模块用于实现发送功能,接收模块用于实现接收功能,收发模块可以实现发送功能和/或接收功能。
通信装置可以是终端设备(如前述方法实施例中的终端设备),也可以是终端设备中的装置,还可以是能够与终端设备匹配使用的装置。或者,通信装置可以是网络设备,也可以是网络设备中的装置,还可以是能够与网络设备匹配使用的装置。
本公开实施例提供的另一种通信装置。通信装置可以是网络设备,也可以是终端设备(如前述方法实施例中的终端设备),也可以是支持网络设备实现上述方法的芯片、芯片系统、或处理器等,还可以是支持终端设备实现上述方法的芯片、芯片系统、或处理器等。该装置可用于实现上述方法实施例中描述的方法,具体可以参见上述方法实施例中的说明。
通信装置可以包括一个或多个处理器。处理器可以是通用处理器或者专用处理器等。例如可以是基带处理器或中央处理器。基带处理器可以用于对通信协议以及通信数据进行处理,中央处理器可以用于对通信装置(如,网络侧设备、基带芯片,终端设备、终端设备芯片,DU或CU等)进行控制,执行计算机程序,处理计算机程序的数据。
可选的,通信装置中还可以包括一个或多个存储器,其上可以存有计算机程序,处理器执行所述计算机程序,以使得通信装置执行上述方法实施例中描述的方法。可选的,所述存储器中还可以存储有数据。通信装置和存储器可以单独设置,也可以集成在一起。
可选的,通信装置还可以包括收发器、天线。收发器可以称为收发单元、收发机、或收发电路等,用于实现收发功能。收发器可以包括接收器和发送器,接收器可以称为接收机或接收电路等,用于实现接收功能;发送器可以称为发送机或发送电路等,用于实现发送功能。
可选的,通信装置中还可以包括一个或多个接口电路。接口电路用于接收代码指令并传输至处理器。处理器运行所述代码指令以使通信装置执行上述方法实施例中描述的方法。
通信装置为终端设备(如前述方法实施例中的终端设备):处理器用于执行图1-图4任一所示的方法。
通信装置为网络设备:收发器用于执行图5-图7任一所示的方法。
在一种实现方式中,处理器中可以包括用于实现接收和发送功能的收发器。例如该收发器可以是收发电路,或者是接口,或者是接口电路。用于实现接收和发送功能的收发电路、接口或接口电路可以是分开的,也可以集成在一起。上述收发电路、接口或接口电路可以用于代码/数据的读写,或者,上述收发电路、接口或接口电路可以用于信号的传输或传递。
在一种实现方式中,处理器可以存有计算机程序,计算机程序在处理器上运行,可使得通信装置执行上述方法实施例中描述的方法。计算机程序可能固化在处理器中,该种情况下,处理器可能由硬件实现。
在一种实现方式中,通信装置可以包括电路,所述电路可以实现前述方法实施例中发送或接收或者通信的功能。本公开中描述的处理器和收发器可实现在集成电路(integrated circuit,IC)、模拟IC、射频集成电路RFIC、混合信号IC、专用集成电路(application specific integrated circuit,ASIC)、印刷电路板(printed circuit board,PCB)、电子设备等上。该处理器和收发器也可以用各种IC工艺技术来制造,例如互补金属氧化物半导体(complementary metal oxide semiconductor,CMOS)、N型金属氧化物半导体(nMetal-oxide-semiconductor,NMOS)、P型金属氧化物半导体(positive channel metal oxide semiconductor,PMOS)、双极结型晶体管(bipolar junction transistor,BJT)、双极CMOS(BiCMOS)、 硅锗(SiGe)、砷化镓(GaAs)等。
以上实施例描述中的通信装置可以是网络设备或者终端设备(如前述方法实施例中的终端设备),但本公开中描述的通信装置的范围并不限于此,而且通信装置的结构可以不受的限制。通信装置可以是独立的设备或者可以是较大设备的一部分。例如所述通信装置可以是:
(1)独立的集成电路IC,或芯片,或,芯片系统或子系统;
(2)具有一个或多个IC的集合,可选的,该IC集合也可以包括用于存储数据,计算机程序的存储部件;
(3)ASIC,例如调制解调器(Modem);
(4)可嵌入在其他设备内的模块;
(5)接收机、终端设备、智能终端设备、蜂窝电话、无线设备、手持机、移动单元、车载设备、网络设备、云设备、人工智能设备等等;
(6)其他等等。
对于通信装置可以是芯片或芯片系统的情况,芯片包括处理器和接口。其中,处理器的数量可以是一个或多个,接口的数量可以是多个。
可选的,芯片还包括存储器,存储器用于存储必要的计算机程序和数据。
本领域技术人员还可以了解到本公开实施例列出的各种说明性逻辑块(illustrative logical block)和步骤(step)可以通过电子硬件、电脑软件,或两者的结合进行实现。这样的功能是通过硬件还是软件来实现取决于特定的应用和整个系统的设计要求。本领域技术人员可以对于每种特定的应用,可以使用各种方法实现所述的功能,但这种实现不应被理解为超出本公开实施例保护的范围。
本公开实施例还提供一种确定侧链路时长的系统,该系统包括前述实施例中作为终端设备(如前述方法实施例中的第一终端设备)的通信装置和作为网络设备的通信装置,或者,该系统包括前述实施例中作为终端设备(如前述方法实施例中的第一终端设备)的通信装置和作为网络设备的通信装置。
本公开还提供一种可读存储介质,其上存储有指令,该指令被计算机执行时实现上述任一方法实施例的功能。
本公开还提供一种计算机程序产品,该计算机程序产品被计算机执行时实现上述任一方法实施例的功能。
在上述实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。所述计算机程序产品包括一个或多个计算机程序。在计算机上加载和执行所述计算机程序时,全部或部分地产生按照本公开实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机程序可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,所述计算机程序可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(digital subscriber line,DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。所述计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。所述可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如,高密度数字视频光盘(digital video disc,DVD))、或者半导体介质(例如,固态硬盘(solid state disk,SSD))等。
本领域普通技术人员可以理解:本公开中涉及的第一、第二等各种数字编号仅为描述方便进行的区分,并不用来限制本公开实施例的范围,也表示先后顺序。
本公开中的至少一个还可以描述为一个或多个,多个可以是两个、三个、四个或者更多个,本公开不做限制。在本公开实施例中,对于一种技术特征,通过“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”等区分该种技术特征中的技术特征,该“第一”、“第二”、“第三”、“A”、“B”、“C”和“D”描述的技术特征间无先后顺序或者大小顺序。
本领域技术人员在考虑说明书及实践这里公开的发明后,将容易想到本发明的其它实施方案。本公开旨在涵盖本发明的任何变型、用途或者适应性变化,这些变型、用途或者适应性变化遵循本发明的一 般性原理并包括本公开未公开的本技术领域中的公知常识或惯用技术手段。说明书和实施例仅被视为示例性的,本公开的真正范围和精神由下面的权利要求指出。
应当理解的是,本公开并不局限于上面已经描述并在附图中示出的精确结构,并且可以在不脱离其范围进行各种修改和改变。本公开的范围仅由所附的权利要求来限制。

Claims (55)

  1. 一种信号处理方法,其特征在于,被用户设备UE执行,包括:
    获取网络设备配置的至少两个载频的载频信息,所述载频用于传输定位信号;
    获取网络设备配置的各个载频对应的定位信号资源;
    基于所述定位信号资源测量定位信号,得到定位报告;
    上报所述定位报告。
  2. 如权利要求1所述的方法,其特征在于,所述载频信息包括以下至少一项:
    载频的序号ID;
    至少两个载频对应的载频组合ID;
    载频的起始频点位置;
    载频的结束频点位置。
  3. 如权利要求1所述的方法,其特征在于,所述定位信号用于实现基于载波相位carrier Phase的定位。
  4. 如权利要求1所述的方法,其特征在于,所述获取网络设备配置的各个载频对应的定位信号资源包括:
    获取网络设备配置的所述各个载频对应的定位信号资源的参数信息,所述参数信息包括以下至少一种:
    定位信号资源ID;
    定位信号资源集合ID;
    TRP ID;
    传输周期;
    时隙偏移slot offset;
    一个周期内的重复传输次数;
    每两次重复传输之间的时间间隔;
    占用的符号数;
    静默图样muting pattern;
    梳状值comb-size;
    起始符号位置;
    子载波间隔SCS;
    准共址QCL信息;
    测量的样本sample数;
    载频带宽;
    起始物理资源块PRB位置。
  5. 如权利要求4所述的方法,其特征在于,所述获取网络设备配置的所述各个载频对应的定位信号资源的参数信息,包括:
    获取所述网络设备针对于各个载频分别独立配置的所述定位信号资源的参数信息,其中,各个载频对应的分别独立配置的所述定位信号资源的参数信息相同或不同。
  6. 如权利要求4所述的方法,其特征在于,所述获取网络设备配置的所述各个载频对应的定位信号资源的参数信息,包括:
    获取所述网络设备配置的第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同;
    获取所述网络设备针对各个载频分别独立配置的第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
  7. 如权利要求5或6所述的方法,其特征在于,所述方法还包括:
    上报能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
  8. 如权利要求1所述的方法,其特征在于,所述方法还包括:
    确定一套或多套定位信号的测量资源,所述测量资源包括测量间隔和/或定位信号处理窗口。
  9. 如权利要求8所述的方法,其特征在于,所述确定一套定位信号的测量资源,包括:
    获取网络设备配置的一套测量资源;
    将所述配置的一套测量资源确定为所述定位信号的测量资源。
  10. 如权利要求8所述的方法,其特征在于,所述确定一套定位信号的测量资源,包括:
    获取网络设备配置的多套测量资源;
    基于网络设备发送的信令激活所述多套测量资源中的一套测量资源;
    将所述激活的一套测量资源确定为所述定位信号的测量资源。
  11. 如权利要求8所述的方法,其特征在于,所述确定多套定位信号的测量资源,包括:
    获取网络设备配置的多套测量资源;
    将所述配置的多套测量资源确定为所述多套定位信号的测量资源。
  12. 如权利要求8所述的方法,其特征在于,所述确定多套定位信号的测量资源,包括:
    获取网络设备配置的M套测量资源;
    基于网络设备发送的信令激活所述M套测量资源中的N套测量资源,其中M,N均为大于1的整数,M大于N;
    将所述激活的N套测量资源确定为所述定位信号的测量资源。
  13. 如权利要求11或12所述的方法,其特征在于,针对所述至少两个载频中的第一部分载频配置的测量资源为测量间隔,第二部分载频配置的测量资源为定位信号处理窗口;或
    针对一个载频同时配置测量间隔和定位信号处理窗口。
  14. 如权利要求9或10所述的方法,其特征在于,所述基于所述定位信号资源测量各个载频上的定位信号,包括:
    在一套所述测量间隔的一个间隔持续时长内测量不同载频上的定位信号。
  15. 如权利要求9或10所述的方法,其特征在于,所述基于所述定位信号资源测量各个载频上的定位信号,包括:
    在一套所述测量间隔的不同间隔持续时长内测量不同载频上的定位信号。
  16. 如权利要求9或10所述的方法,其特征在于,所述方法还包括:
    获取网络设备配置的在所述一套定位信号处理窗口内载频上的定位信号的优先级;
    所述定位信号的优先级包括以下至少一种:
    定位信号优先级高于第一下行信号和第二下行信号;
    定位信号优先级高于第一下行信号,并低于第二下行信号;
    定位信号优先级低于第一下行信号和第二下行信号;
    其中,第二下行信号为超可靠低延迟通信URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号。
  17. 如权利要求16所述的方法,其特征在于,所述一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
  18. 如权利要求16所述的方法,其特征在于,所述基于所述定位信号资源测量定位信号,包括:
    在一套所述定位信号处理窗口的一个窗口内基于所述定位信号的优先级测量不同载频上的定位信号。
  19. 如权利要求16所述的方法,其特征在于,所述基于所述定位信号资源测量定位信号,包括:
    在一套所述定位信号处理窗口的不同窗口内基于所述定位信号的优先级测量不同载频上的定位信号。
  20. 如权利要求11或12所述的方法,其特征在于,所述方法还包括:
    获取所述网络设备指示的各个载频与各套测量间隔之间的第一对应关系。
  21. 如权利要求20所述的方法,其特征在于,所述基于所述定位信号资源测量定位信号,包括:
    基于所述第一对应关系在各套测量间隔的间隔持续时长内测量对应的载频上的定位信号。
  22. 如权利要求11或12所述的方法,其特征在于,所述方法还包括:
    获取所述网络设备指示的各个载频与各套定位信号处理窗口之间的第二对应关系。
  23. 如权利要求22所述的方法,其特征在于,所述方法还包括:
    获取网络设备配置的各套所述定位信号处理窗口内载频上的定位信号的优先级;
    所述定位信号的优先级包括以下至少一种:
    定位信号优先级高于第一下行信号和第二下行信号;
    定位信号优先级高于第一下行信号,并低于第二下行信号;
    定位信号优先级低于第一下行信号和第二下行信号;
    其中,第二下行信号为URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号;
    其中,不同套定位信号处理窗口对于定位信号的优先级相同或不同。
  24. 如权利要求23所述的方法,其特征在于,所述基于所述定位信号资源测量定位信号,包括:
    基于所述第二对应关系和各套定位信号处理窗口对应的定位信号的优先级在各套测量定位信号处理窗口的窗口内测量对应载频上的定位信号。
  25. 如权利要求1所述的方法,其特征在于,所述定位报告包括以下至少一种:
    相位整周数;
    相位不足整周的小数部分;
    所述UE接收所述定位信号时的相位误差组信息,所述相位误差组信息包括相位误差组的ID和/或相位误差组对应的误差值;
    参考信号接收功率RSRP;
    到达角AoA;
    出发角AoD;
    到达时间ToA;
    到达时间差值TDoA;
    往返时间值RTT;
    接收时间误差组RxTEG;
    发送时间误差组TxTEG;
    发送接收时间误差组TxRxTEG。
  26. 一种信号处理方法,其特征在于,被网络设备执行,包括:
    配置至少两个载频的载频信息,所述载频用于传输定位信号;
    配置各个载频对应的定位信号资源。
  27. 如权利要求26所述的方法,其特征在于,所述方法还包括:
    在定位信号资源上发送定位信号;
    接收UE发送的定位报告。
  28. 如权利要求26所述的方法,其特征在于,所述载频信息包括以下至少一项:
    载频的序号ID;
    至少两个载频对应的载频组合ID;
    载频的起始频点位置;
    载频的结束频点位置。
  29. 如权利要求26所述的方法,其特征在于,所述定位信号用于实现基于carrier Phase的定位。
  30. 如权利要求26所述的方法,其特征在于,所述配置各个载频对应的定位信号资源,包括:
    配置各个载频对应的定位信号资源的参数信息,所述参数信息包括以下至少一种:
    定位信号资源ID;
    定位信号资源集合ID;
    TRP ID;
    传输周期;
    slot offset;
    一个周期内的重复传输次数;
    每两次重复传输之间的时间间隔;
    占用的符号数;
    muting pattern;
    comb-size;
    起始符号位置;
    SCS;
    QCL信息;
    测量的sample数;
    载频带宽;
    起始PRB位置。
  31. 如权利要求30所述的方法,其特征在于,所述配置各个载频对应的定位信号资源,包括:
    针对于各个载频分别独立配置所述定位信号资源的参数信息,其中,各个载频对应的分别独立配置的所述定位信号资源的参数信息相同或不同。
  32. 如权利要求30所述的方法,其特征在于,所述配置各个载频对应的定位信号资源,包括:
    配置第一部分参数信息,所述至少两个载频对应的所述第一部分参数信息相同;
    针对于各个载频分别独立配置第二部分参数信息,其中,所述至少两个载频对应的所述第二部分参数信息相同或不同。
  33. 如权利要求27所述的方法,其特征在于,所述方法还包括:
    获取UE上报的能力信息,所述能力信息用于指示所述UE是否支持多个载频上的定位信号的同时接收。
  34. 如权利要求33所述的方法,其特征在于,所述配置各个载频对应的定位信号资源,包括:
    当所述能力信息指示所述UE支持多个载频上的定位信号的同时接收,为各个载频配置相同时域和/或不同时域的定位信号资源;
    当所述能力信息指示所述UE不支持多个载频上的定位信号的同时接收,为各个载频配置不同时域的定位信号资源。
  35. 如权利要求33所述的方法,其特征在于,所述在定位信号资源上发送定位信号,包括:
    在至少两个载频上的定位信号资源上同时发送定位信号;和/或
    在至少两个载频上的定位信号资源上不同时发送定位信号。
  36. 如权利要求26所述的方法,其特征在于,所述方法还包括:
    配置一套或多套测量资源,所述测量资源包括测量间隔和/或定位信号处理窗口。
  37. 如权利要求36所述的方法,其特征在于,所述配置一套或多套测量资源,包括:
    配置一套测量资源。
  38. 如权利要求36所述的方法,其特征在于,所述配置一套或多套测量资源,包括:
    配置M套测量资源,M为大于1的整数。
  39. 如权利要求38所述的方法,其特征在于,所述方法还包括:
    通过信令激活所述M套测量资源中的一套测量资源。
  40. 如权利要求38所述的方法,其特征在于,所述方法还包括:
    通过信令激活所述M套测量资源中的N套测量资源,N为大于1的整数,N小于M。
  41. 如权利要求38或40所述的方法,其特征在于,所述方法还包括:
    指示各个载频与各套测量间隔之间的第一对应关系。
  42. 如权利要求36-40任一所述的方法,其特征在于,所述方法还包括:
    配置在每套定位信号处理窗口内载频上的定位信号的优先级;
    所述定位信号的优先级包括以下至少一种:
    定位信号优先级高于第一下行信号和第二下行信号;
    定位信号优先级高于第一下行信号,并低于第二下行信号;
    定位信号优先级低于第一下行信号和第二下行信号;
    其中,第二下行信号为URLLC对应的下行信号,第一下行信号为非URLLC对应的下行信号。
  43. 如权利要求42所述的方法,其特征在于,一套定位信号处理窗口对应配置至少一个优先级,当所述一套定位信号处理窗口对应配置多个优先级,所述多个优先级与多个载频具有对应关系,且不同载频上的定位信号对应的优先级相同或不同。
  44. 如权利要求42所述的方法,其特征在于,不同套定位信号处理窗口对应定位信号的优先级相同或不同。
  45. 如权利要求42所述的方法,其特征在于,所述方法还包括:
    指示各个载频与各套定位信号处理窗口之间的第二对应关系。
  46. 如权利要求38或40所述的方法,其特征在于,针对所述至少两个载频中的第一部分载频配置的测量资源为测量间隔,第二部分载频配置的测量资源为定位信号处理窗口;或
    针对一个载频同时配置测量间隔和定位信号处理窗口。
  47. 如权利要求27所述的方法,其特征在于,所述定位报告包括以下至少一种:
    相位整周数;
    相位不足整周的小数部分;
    所述UE接收所述定位信号时的相位误差组信息,所述相位误差组信息包括相位误差组的ID和/或相位误差组对应的误差值;
    RSRP;
    AoA;
    AoD;
    ToA;
    TDoA;
    RTT;
    RxTEG;
    TxTEG;
    TxRxTEG。
  48. 一种信号处理装置,其特征在于,包括:
    第一获取模块,用于获取网络设备配置的至少两个载频的载频信息,所述载频用于传输定位信号;
    第二获取模块,用于获取网络设备配置的各个载频对应的定位信号资源;
    处理模块,用于基于所述定位信号资源测量定位信号,得到定位报告;
    上报模块,用于上报所述定位报告。
  49. 一种信号处理装置,其特征在于,包括:
    第一配置模块,用于配置至少两个载频的载频信息,所述载频用于传输定位信号;
    第二配置模块,用于配置各个载频对应的定位信号资源。
  50. 一种通信装置,其特征在于,所述装置包括处理器和存储器,其中,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如权利要求1至25中任一项所述的方法。
  51. 一种通信装置,其特征在于,所述装置包括处理器和存储器,其中,所述存储器中存储有计算机程序,所述处理器执行所述存储器中存储的计算机程序,以使所述装置执行如权利要求26至47中任一项所述的方法。
  52. 一种通信装置,其特征在于,包括:处理器和接口电路,其中
    所述接口电路,用于接收代码指令并传输至所述处理器;
    所述处理器,用于运行所述代码指令以执行如权利要求1至25中任一项所述的方法。
  53. 一种通信装置,其特征在于,包括:处理器和接口电路,其中
    所述接口电路,用于接收代码指令并传输至所述处理器;
    所述处理器,用于运行所述代码指令以执行如权利要求26至47中任一项所述的方法。
  54. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求1至25中任一项所述的方法被实现。
  55. 一种计算机可读存储介质,用于存储有指令,当所述指令被执行时,使如权利要求26至47中任一项所述的方法被实现。
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