WO2026007147A1 - 用于无线通信的方法、终端设备和网络设备 - Google Patents

用于无线通信的方法、终端设备和网络设备

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Publication number
WO2026007147A1
WO2026007147A1 PCT/CN2024/104097 CN2024104097W WO2026007147A1 WO 2026007147 A1 WO2026007147 A1 WO 2026007147A1 CN 2024104097 W CN2024104097 W CN 2024104097W WO 2026007147 A1 WO2026007147 A1 WO 2026007147A1
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WO
WIPO (PCT)
Prior art keywords
terminal device
threshold
equal
measurement result
cell
Prior art date
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Pending
Application number
PCT/CN2024/104097
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English (en)
French (fr)
Inventor
范江胜
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.)
Guangdong Oppo Mobile Telecommunications Corp Ltd
Original Assignee
Guangdong Oppo Mobile Telecommunications Corp Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Guangdong Oppo Mobile Telecommunications Corp Ltd filed Critical Guangdong Oppo Mobile Telecommunications Corp Ltd
Priority to PCT/CN2024/104097 priority Critical patent/WO2026007147A1/zh
Publication of WO2026007147A1 publication Critical patent/WO2026007147A1/zh
Pending legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/22Processing or transfer of terminal data, e.g. status or physical capabilities
    • H04W8/24Transfer of terminal data

Definitions

  • This application relates to the field of communication technology, and more specifically, to a method, terminal device, and network device for wireless communication.
  • the inference process of artificial intelligence (AI) functions and/or AI models can be understood as the process of obtaining model outputs based on model inputs.
  • the accuracy of the results obtained using the inference process of AI functions and/or AI models is relatively low, which may lead to a degraded performance of the communication system. Therefore, how to improve the accuracy of the results obtained using the inference process of AI functions and/or AI models is an urgent problem to be solved.
  • This application provides a method, terminal device, and network device for wireless communication.
  • the various aspects covered in this application are described below.
  • a method for wireless communication comprising: when a first condition is met, a terminal device performs reasoning for a first function; and/or, when the first condition is not met, the terminal device does not perform or stops performing reasoning for the first function; wherein the first function includes an AI function and/or an AI model, and the first condition is related to measurement results obtained by the terminal device and/or the location of the terminal device.
  • a method for wireless communication comprising: a network device sending configuration information to a terminal device, the configuration information being used to configure a configuration associated with a first condition, the first condition being used by the terminal device to determine whether to perform reasoning for a first function; wherein the first function includes an AI function and/or an AI model, and the first condition is related to measurement results obtained by the terminal device and/or the location of the terminal device.
  • a terminal device comprising: an execution module, the execution module being configured to: perform reasoning for a first function when a first condition is met; and/or, not perform or stop performing reasoning for the first function when the first condition is not met; wherein the first function includes an AI function and/or an AI model, and the first condition is related to measurement results obtained by the terminal device and/or the location of the terminal device.
  • a network device comprising: a sending module for sending configuration information to a terminal device, the configuration information being used to configure a configuration associated with a first condition, the first condition being used by the terminal device to determine whether to perform a first function; wherein the first function includes an AI function and/or an AI model, and the first condition is related to a measurement result obtained by the terminal device and/or the location of the terminal device.
  • a terminal device including a processor and a memory, the memory being used to store one or more computer programs, and the processor being used to invoke the computer programs in the memory to cause the terminal device to perform some or all of the steps in the method of the first aspect.
  • a network device including a processor, a memory, and a communication interface, wherein the memory is used to store one or more computer programs, and the processor is used to invoke the computer programs in the memory to cause the network device to perform some or all of the steps in the method of the second aspect.
  • embodiments of this application provide a communication system including the aforementioned terminal device and/or network device.
  • the system may further include other devices that interact with the terminal device or network device as described in the embodiments of this application.
  • embodiments of this application provide a computer-readable storage medium storing a computer program that causes a computer to perform some or all of the steps in the methods described above.
  • embodiments of this application provide a computer program product, wherein the computer program product includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of the methods described in the foregoing aspects.
  • the computer program product may be a software installation package.
  • embodiments of this application provide a chip including a memory and a processor, the processor being able to call and run a computer program from the memory to implement some or all of the steps described in the methods of the foregoing aspects.
  • the terminal device can determine whether to execute the inference process of the AI function and/or the AI model based on the first condition. This helps to ensure that the inference process of the AI function and/or the AI model occurs under appropriate conditions, thereby improving the accuracy of the results output by the inference of the AI function and/or the AI model, and also helps to avoid the performance degradation of the communication system caused by low-precision AI function and/or AI model inference.
  • Figure 1 is a system architecture example diagram of a wireless communication system applicable to embodiments of this application.
  • Figure 2 is an example diagram of the first position reference area provided in an embodiment of this application.
  • Figure 3 is an example diagram of the third position reference area provided in an embodiment of this application.
  • Figure 4 is a flowchart illustrating a method for wireless communication provided in an embodiment of this application.
  • Figure 5 is a schematic diagram of the structure of the terminal device provided in the embodiment of this application.
  • Figure 6 is a schematic diagram of the structure of the network device provided in an embodiment of this application.
  • Figure 7 is a schematic structural diagram of the communication device provided in an embodiment of this application.
  • FIG. 1 is a system architecture example diagram of a wireless communication system 100 to which embodiments of this application can be applied.
  • the wireless communication system 100 may include a network device 110 and a terminal device 120.
  • the network device 110 may be a device that communicates with the terminal device 120.
  • the network device 110 may provide communication coverage for a specific geographical area and may communicate with the terminal device 120 located within that coverage area.
  • Figure 1 illustrates an exemplary network device and two terminal devices.
  • the wireless communication system 100 may include multiple network devices, and each network device may include other numbers of terminal devices within its coverage area. This application embodiment does not limit this.
  • the wireless communication system 100 may also include other network entities such as a network controller and a mobility management entity, which is not limited in this embodiment.
  • 5G 5th generation
  • NR new radio
  • LTE long term evolution
  • FDD frequency division duplex
  • TDD time division duplex
  • 6th generation mobile communication systems satellite communication systems, and so on.
  • the terminal device in this application embodiment can also be referred to as user equipment (UE), access terminal, user unit, user station, mobile station, mobile station (MS), mobile terminal (MT), remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent, or user device.
  • UE user equipment
  • MS mobile station
  • MT mobile terminal
  • remote station remote terminal
  • mobile device user terminal
  • terminal wireless communication device
  • user agent user agent
  • user device can also be referred to as user equipment (UE), access terminal, user unit, user station, mobile station, mobile station (MS), mobile terminal (MT), remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent, or user device.
  • the terminal device in this application embodiment can be a device that provides voice and/or data connectivity to a user, and can be used to connect people, objects, and machines, such as a handheld device with wireless connectivity, vehicle-mounted device, etc.
  • the terminal devices in the embodiments of this application can be mobile phones, tablets, laptops, PDAs, mobile internet devices (MIDs), wearable devices, virtual reality (VR) devices, augmented reality (AR) devices, wireless terminals in industrial control, self-driving, remote medical surgery, smart grids, transportation safety, smart cities, and smart homes, etc.
  • the UE can act as a base station.
  • the UE can act as a scheduling entity, providing sidelink signals between UEs in V2X or D2D, etc.
  • cellular phones and cars communicate with each other using sidelink signals.
  • Cellular phones and smart home devices communicate without relaying communication signals through a base station.
  • the access network device in this application embodiment can be a device used to communicate with terminal devices.
  • This access network device can also be called a wireless access network device, such as a base station.
  • the access network device can refer to a radio access network (RAN) node (or device) that connects the terminal device to the wireless network.
  • RAN radio access network
  • Base stations can broadly encompass various names like those listed below, or be interchangeable with them, such as: NodeB, evolved NodeB (eNB), next-generation NodeB (gNB), relay station, transmitting and receiving point (TRP), transmitting point (TP), master station (MeNB), auxiliary station (SeNB), multi-mode radio (MSR) node, home base station, network controller, access node, wireless node, access point (AP), transmission node, transceiver node, baseband unit (BBU), remote radio unit (RRU), active antenna unit (AAU), remote radio head (RRH), centralized unit (CU), distributed unit (DU), centralized unit-control plane (CU-CP), centralized unit-user plane (CU-UP), positioning node, etc.
  • NodeB evolved NodeB (eNB), next-generation NodeB (gNB), relay station, transmitting and receiving point (TRP), transmitting point (TP), master station (MeNB), auxiliary station (SeNB), multi-mode radio (MSR) node, home
  • a base station can be a macro base station, micro base station, relay node, donor node, or a combination thereof.
  • a base station can also refer to a communication module, modem, or chip installed within the aforementioned equipment or apparatus.
  • a base station can also be a mobile switching center, equipment performing base station functions in device-to-device (D2D), vehicle-to-everything (V2X), and machine-to-machine (M2M) communications, network-side equipment in 6G networks, and equipment performing base station functions in future communication systems.
  • Base stations can support networks using the same or different access technologies. The embodiments of this application do not limit the specific technologies or equipment forms used in the access network equipment.
  • Base stations can be fixed or mobile.
  • a helicopter or drone can be configured to act as a mobile base station, and one or more cells can move depending on the location of the mobile base station.
  • a helicopter or drone can be configured as a device to communicate with another base station.
  • the access network device in this application embodiment may refer to a CU or a DU, or the access network device may include both a CU and a DU.
  • the gNB may also include an AAU.
  • Access network equipment and terminal equipment can be deployed on land, including indoors or outdoors, handheld or vehicle-mounted; they can also be deployed on water; and they can also be deployed in the air on airplanes, balloons, and satellites. This application embodiment does not limit the scenario in which the access network equipment and terminal equipment are located.
  • the serving cell of a terminal device changes as the terminal device moves; this change is called cell handover.
  • the network device can pre-configure measurement objects for the terminal device.
  • the terminal device sends the measurement results of one or more cells to the network device.
  • the network device can select one or more neighboring cells to initiate a handover request based on the measurement results reported by the terminal device and additional information obtained locally (such as the load status of neighboring cells).
  • the terminal device's current serving cell receives acceptance feedback from a neighboring cell, it forwards a handover command generated by the target cell to the terminal device. This handover command can be included in the acceptance feedback information, for example.
  • the terminal device can initiate a connection establishment process with the target cell. Successful connection establishment completes the entire air interface handover process.
  • the reasoning process of AI functions and/or AI models generally refers to the process by which AI functions and/or AI models obtain model outputs based on one or more model inputs.
  • the results obtained by using AI functions and/or AI models in the inference process are highly accurate; however, in other cases, the results obtained by using AI functions and/or AI models in the inference process are less accurate, which may lead to a degrade in the performance of the communication system.
  • the inventors discovered that the reasoning process of AI functions and/or AI models generally operates under optimal reasoning conditions (i.e., the first condition below). If the reasoning of AI functions and/or AI models is performed under these optimal conditions, the accuracy of the results obtained is generally high. If the reasoning of AI functions and/or AI models is not performed under these optimal conditions, the accuracy of the results obtained cannot be guaranteed. Based on this, the inventors propose that the execution of the reasoning process of AI functions and/or AI models can be determined based on the first condition.
  • the first condition can be used to determine (or judge) whether to perform the first function.
  • the first condition can be used by the terminal device to determine whether to perform the first function.
  • the first function may include one or more of the following: AI function, AI model.
  • the reasoning for the first function can be implemented using one or more AI models.
  • the first function can be any AI function and/or AI model.
  • the first function can be any AI function and/or AI model that the terminal device can execute.
  • the first function can be used in one or more of the following reasoning processes: reasoning process for predicting cell measurement results, reasoning process for cell handover decision, and reasoning process for data retransmission decision.
  • reasoning process for predicting cell measurement results e.g., a cell measurement results
  • reasoning process for cell handover decision e.g., a cell handover decision
  • reasoning process for data retransmission decision e.g., a data retransmission decision.
  • the embodiments of this application are not limited thereto, and the first function can be applied to the reasoning process of any AI function and/or AI model that the terminal device can execute.
  • the first function can be used for inference of cell measurement results, wherein the cell measurement results include beam-level measurement results and/or cell-level measurement results.
  • the first function can be used to infer (or predict) the measurement results of the serving cell (hereinafter referred to as the serving cell) of the terminal device and/or the measurement results of the neighboring cells (or the neighboring cells of the serving cell of the terminal device, hereinafter referred to as the neighboring cells) of the terminal device.
  • the first function for reasoning to obtain the measurement results of the serving cell and/or the measurement results of neighboring cells may include: the first function for reasoning to obtain the measurement results of the serving cell.
  • the first function for reasoning to obtain the measurement results of the serving cell and/or the measurement results of neighboring cells may include: the first function for reasoning to obtain the measurement results of the serving cell and the measurement results of neighboring cells.
  • the first condition is related to one or more of the following: the measurement result obtained by the terminal device (or, the actual measurement result obtained by the terminal device, or, the measurement result obtained by the terminal device from actually measuring the reference signal), and the position of the terminal device (or, the location of the terminal device).
  • the terminal device can determine the location based on the measurement result obtained by the terminal device and/or the final measurement result.
  • the location of the terminal device determines whether to execute the inference of the first function. For example, when the measurement result obtained by the terminal device is low and/or the terminal device is located at the cell edge, the inference of the first function is not executed/stopped, which helps to improve the accuracy of the inference result of the first function.
  • the embodiments of this application consider the measurement result obtained by the terminal device and/or the location of the terminal device when using the first function for inference, which helps to improve the accuracy of the inference result of the first model.
  • the terminal device can infer (or predict) measurement results in the time domain and/or spatial domain based on actual measurement results. Therefore, for ease of distinction, embodiments of this application utilize a first measurement result and a second measurement result to differentiate between the actual measurement results and the inferred measurement results obtained by the terminal device.
  • the first measurement result can be used to indicate the actual measurement results of the terminal device (i.e., the actual measurement results obtained by the terminal device, or the measurement results obtained by the terminal device through actual measurement of the reference signal).
  • the second measurement result can be used to indicate the inferred measurement results obtained by the terminal device (i.e., the measurement results predicted by the terminal device, or the predicted measurement results obtained by the terminal device).
  • the first measurement result of the serving cell can be used to indicate the actual measurement result of the serving cell obtained by the terminal device, that is, the measurement result of the serving cell actually measured by the terminal device.
  • the second measurement result of the serving cell can be used to indicate the measurement result of the serving cell inferred by the terminal device.
  • the first measurement result of a neighboring cell can be used to indicate the actual measurement result of the neighboring cell obtained by the terminal device, that is, the measurement result of the neighboring cell actually measured by the terminal device.
  • the second measurement result of a neighboring cell can be used to indicate the measurement result of the neighboring cell obtained by the terminal device through inference.
  • the first condition may be associated with one or more of the following: a first measurement result of the serving cell, a first measurement result of a neighboring cell, the distance between the current location of the terminal device and one or more reference locations, and whether the terminal device is within a location reference area.
  • the first condition can be related to one or more of the following: the first measurement result of the serving cell, the first measurement result of neighboring cells, the distance between the current location of the terminal device and one or more reference locations, and whether the terminal device is within a location reference area.
  • the embodiments of this application can optimize the inference behavior of the terminal device in predicting the second measurement result of the cell through AI functions using the first condition, which helps to reduce invalid measurement result inference behavior.
  • the measurement results of the serving cell and/or neighboring cells may include one or more of the following: beam-level measurement results, cell-level measurement results.
  • the first measurement result of the serving cell and/or the first measurement result of the neighboring cell may include one or more of the following: beam-level first measurement results, cell-level first measurement results.
  • the second measurement result of the serving cell and/or the second measurement result of the neighboring cell may include one or more of the following: beam-level second measurement results, cell-level second measurement results.
  • the second measurement result of the serving cell or the second measurement result of the neighboring cell obtained through the inference process may be a beam-level measurement result, or a cell-level measurement result, or both beam-level and cell-level measurement results.
  • the measurement results of the serving cell may include beam-level measurement results and/or cell-level measurement results of the serving cell.
  • the measurement results of the serving cell include beam-level measurement results; in other embodiments, the measurement results of the serving cell include cell-level measurement results; and in still other embodiments, the measurement results of the serving cell include both beam-level and cell-level measurement results.
  • the measurement results of the serving cell may refer to a first measurement result or a second measurement result of the serving cell, and this application embodiment does not limit this.
  • the measurement results of neighboring cells may include beam-level measurement results and/or cell-level measurement results of neighboring cells.
  • the measurement results of neighboring cells include beam-level measurement results of neighboring cells; in other embodiments, the measurement results of neighboring cells include cell-level measurement results of neighboring cells; in still other embodiments, the measurement results of neighboring cells include both beam-level and cell-level measurement results of neighboring cells.
  • the measurement results of neighboring cells may refer to a first measurement result or a second measurement result of neighboring cells, and this application embodiment does not limit this.
  • the first condition may be predefined by the protocol, in which case the first condition may also be referred to as a "preset condition". In some embodiments, the first condition may be configured by the network device.
  • the first condition may differ for different scenarios.
  • the following description uses the example of the first function being used to infer the second measurement result of the serving cell and/or the second measurement result of neighboring cells, and provides a more detailed explanation of the first condition in conjunction with scenarios 1 to 3.
  • the case where the first function is used for other inference processes is similar; refer to the case where the first function is used to infer the second measurement result of the serving cell and/or the second measurement result of neighboring cells.
  • the first condition when the first function is used for other inference processes will not be described in detail.
  • first condition mentioned in the following scenarios can be used alone or in combination, and this application embodiment does not limit this.
  • first condition involved in scenario 1, the first condition involved in scenario 2, and the first condition involved in scenario 3 can all be used alone.
  • the first condition involved in scenario 1 and the first condition involved in scenario 2 can be used in combination.
  • Scenario 1 The first function is used to infer and obtain the second measurement result of the serving cell.
  • the reasoning for the first function involves the serving cell.
  • the reasoning for the first function applies to the serving cell, or in other words, the first function can be applied to reasoning to obtain a second measurement result of the serving cell.
  • the first condition may include one or more of the following: the first measurement result of the serving cell is greater than or equal to a first threshold, the distance between the current location of the terminal device and the first reference location is less than or equal to a second threshold, and the current location of the terminal device belongs to (or is located in) the location range indicated by the first location reference area.
  • the first measurement result of the serving cell being greater than or equal to the first threshold may include: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold.
  • the measurement result of the serving cell being greater than or equal to a first threshold may include: the measurement results of the top K best beams among all beam measurement results of the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold.
  • This application embodiment does not limit the value of K; exemplarily, K is an integer greater than or equal to 1, and/or, the value of K is less than the number of all beams indicated by the first beam set.
  • the measurement result of the serving cell being greater than or equal to a first threshold may include: the cell-level measurement result of the serving cell being greater than or equal to the first threshold.
  • the beams indicated by the first beam set are the beams of the serving cell that the terminal device can actually measure.
  • the terminal device confirms the first beam set through dedicated signaling sent by the network device or determines the first beam set through its own implementation. That is, the network device sends a reference signal corresponding to the beams indicated by the first beam set.
  • the first beam set can also be called the set B beam set.
  • the first measurement result of the serving cell being greater than or equal to the first threshold may include one or more of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold; the beam measurement results of the top K beams with the best measurement results among all beam measurement results of the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold; and the cell-level measurement result of the serving cell is greater than or equal to the first threshold.
  • the first measurement result of the serving cell being greater than or equal to the first threshold may include one or more of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold; the beam measurement results of the top K beams with the best measurement results among the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the first threshold.
  • the measurement quantity corresponding to the first measurement result of the serving cell may include one or more of the following: reference signal receiving power (RSRP), reference signal receiving quality (RSRQ), signal to interference plus noise ratio (SINR), and received signal strength indicator (RSSI).
  • RSRP reference signal receiving power
  • RSRQ reference signal receiving quality
  • SINR signal to interference plus noise ratio
  • RSSI received signal strength indicator
  • the measurement quantity corresponding to the first measurement result of the serving cell may be RSRP, RSRQ, SINR, or RSSI.
  • the terminal device when the distance between the current location of the terminal device and the first reference location is less than or equal to the second threshold, it can be considered that the terminal device is close to the serving cell. In this case, the first measurement result of the cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the first reference location is the reference location corresponding to the serving cell, or in other words, the first reference location is determined based on the serving cell.
  • the first reference location is determined based on the center location of the serving cell.
  • the first reference location is the center location of the serving cell, such as the geographical coordinates of the center of the serving cell.
  • the embodiments of this application are not limited to this; for example, the first reference location can be any location relatively close to the center location of the serving cell.
  • the distance between the current location of the terminal device and the first reference location being less than or equal to the second threshold can also be understood or replaced as one or more of the following: the current location of the terminal device is closer to the location of the center of the serving cell, and the terminal device is not at the edge of the serving cell.
  • the terminal device when the terminal device is within the location range indicated by the first location reference area, it can be considered that the current location of the terminal device is close to the serving cell. In this case, the first measurement result of the cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the first location reference area is determined based on the coverage area of the serving cell.
  • the first location reference area includes the central coverage area of the serving cell (or, the area with good signal coverage of the serving cell), or...
  • a location reference area can be located within the signal coverage area of the serving cell.
  • An example of a first location reference area is given below with reference to Figure 2.
  • the coverage area of the serving cell is a circular area with radius R1 centered at the center location O of the serving cell.
  • the first location reference area is the shaded area shown in Figure 2, that is, a circular area with radius R2 centered at the center location O of the serving cell, where R2 is less than R1.
  • R2 can be 50% of R1, or R2 can be 70% of R1, or R2 can be 80% of R1, etc.
  • the first position reference region is represented by a central reference position and a radius parameter, that is, the first position reference region is represented by a circle with the central reference position as the center and the radius parameter as the radius.
  • the first position reference region is represented by a line connecting multiple reference positions, that is, the polygonal boundary obtained by connecting multiple reference positions one by one is the first position reference region.
  • the fact that the current location of the terminal device is within the location range indicated by the first location reference area can be understood or replaced as one or more of the following: the current location of the terminal device is closer to the location of the center of the serving cell, and the terminal device is not at the edge of the serving cell.
  • one or more of the first threshold, the second threshold, the first reference position, and the first position reference region are predefined by the protocol.
  • one or more of the first threshold, second threshold, first reference position, and first location reference area are configured by the network device to the terminal device. This application does not limit the manner in which the network device configures these parameters.
  • one or more of the first threshold, second threshold, first reference position, and first location reference area are configured by the network device to the terminal device through one or more of the following methods: system broadcast message, dedicated signaling.
  • This application embodiment does not limit the dedicated signaling used by the network device to configure the above parameters.
  • the network device can configure the above parameters through one or more of the following signaling: radio resource control (RRC) signaling, media access control control element (MAC CE) signaling, and downlink control information (DCI).
  • RRC radio resource control
  • MAC CE media access control control element
  • DCI downlink control information
  • the first threshold, the second threshold, the first reference position, and a portion of the parameters in the first position reference area are predefined by the protocol, while the first threshold, the second threshold, the first reference position, and another portion of the parameters in the first position reference area are configured by the network device to the terminal device. This application does not exclude such an implementation.
  • one or more of the first threshold, the second threshold, the first reference location, and the first location reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • configuring the above parameters according to the terminal device granularity can be understood as the above parameters being configured for the terminal device, and the above parameters corresponding to different terminal devices may be different.
  • the configured parameters can be applied to any frequency point or any cell indicated in the measurement configuration.
  • the same set of configuration parameters is used for any frequency point or any cell indicated in the measurement configuration of terminal device A.
  • configuring the above parameters according to frequency point granularity can be understood as the above parameters being associated with frequency point information, that is, a frequency point or a group of frequency points can be associated with the same set of configuration parameters.
  • configuring the above parameters at the cell level can be understood as associating the configured parameters with a cell; a cell or a group of cells can be associated with the same set of configuration parameters.
  • the configured parameters can be associated with a cell identifier, and different cell identifiers may correspond to different parameters.
  • the cell identifier may include one or more of the following: cell global identifier (CGI), physical cell identifier (PCI), frequency information, and cell index.
  • CGI cell global identifier
  • PCI physical cell identifier
  • frequency information e.g., frequency information, frequency information, and cell index.
  • the above-configured parameters can be associated with CGI.
  • the above-mentioned parameters can be configured to be associated with PCI.
  • the above-configured parameters can be associated with PCI and frequency information.
  • the above-configured parameters can be associated with a cell index.
  • the first condition may include a single condition, that is, the first condition may include one of the conditions described above.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the first threshold.
  • the first condition is that the current position of the terminal device is within the position range indicated by the first position reference area.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to a first threshold, and the terminal device's current... The distance between the previous position and the first reference position is less than or equal to the second threshold.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the first threshold, and the current position of the terminal device is within the position range indicated by the first position reference area.
  • the first condition is that the distance between the current position of the terminal device and the first reference position is less than or equal to the second threshold, and the current position of the terminal device is within the position range indicated by the first position reference area.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the first threshold, and the distance between the current location of the terminal device and the first reference location is less than or equal to the second threshold, and the current location of the terminal device is within the location range indicated by the first location reference area.
  • the terminal device if the parameter involved in the first condition appears during a configuration process, the terminal device needs to determine whether the corresponding first condition is satisfied; otherwise, if the parameter involved in the first condition does not appear during a configuration process, the terminal device does not need to determine whether the corresponding first condition is satisfied.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to a first threshold.
  • the parameter involved in the first condition is the first threshold, and the network device can configure the first threshold to the terminal device through dedicated signaling (which is carried in the first message).
  • the terminal device needs to determine whether the corresponding first condition is satisfied, and then determine whether to infer the second measurement result of the serving cell based on the first condition; if the first threshold contained in the first message sent by the network device to the terminal device does not appear, the terminal device does not need to determine whether the corresponding first condition is satisfied.
  • whether to infer the second measurement result of the serving cell can depend on other conditions (e.g., whether the reference signal configuration used for measurement inference is configured). Other implementations of the first condition are handled similarly to the above method, and will not be listed here.
  • the closer the terminal device is to the center of the serving cell the higher the first measurement result of the serving cell obtained by the terminal device.
  • the higher the measurement result obtained the more accurate the measurement result inference of the terminal device.
  • the second measurement result inference performed by the terminal device applies to the serving cell.
  • inferring the second measurement results of the serving cell is simpler from the terminal device's implementation perspective. This is because the terminal device typically performs measurements on the serving cell continuously; that is, the need for the terminal device to perform measurement result inference on the serving cell is always present.
  • whether to enable measurement inference for neighboring cells depends on whether the first measurement result of the serving cell is low enough. In other words, the need to perform second measurement result inference on neighboring cells is not always present.
  • Scenario 2 The first function is used to infer and obtain the second measurement results of neighboring cells.
  • the reasoning for the first function involves neighboring cells.
  • the reasoning for the first function applies to neighboring cells, or in other words, the first function can be used to infer the second measurement results of neighboring cells.
  • the first condition may include one or more of the following: the first measurement result of the serving cell is less than or equal to the third threshold; the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold; the first measurement result of the neighboring cell is greater than or equal to the fifth threshold; the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold; the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first measurement result of the serving cell being less than or equal to the third threshold may include: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold.
  • the first measurement result of the serving cell being less than or equal to a third threshold may include: the beam measurement results of the N worst-performing beams among all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through an actual measurement process are all less than or equal to the third threshold.
  • This application embodiment does not limit the value of N; exemplarily, N is an integer greater than or equal to 1, and/or, the value of N is less than the number of all beams indicated by the first beam set.
  • N and K can have the same value. In some embodiments, N and K can have different values.
  • the first measurement result of the serving cell being less than or equal to the third threshold may include: the cell-level measurement result of the serving cell being less than or equal to the third threshold.
  • the beam indicated by the first beam set is the beam of the serving cell that the terminal device can actually measure. That is, the network device sends a reference signal corresponding to the beam indicated by the first beam set.
  • the first beam set can also be called the set B beam set.
  • the first measurement result of the serving cell being less than or equal to the third threshold may include one or more of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold; the beam measurement results of the N worst beams among the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold; and the cell-level measurement result of the serving cell is less than or equal to the third threshold.
  • the first measurement result of the serving cell being less than or equal to a third threshold may include one or more of the following: obtained by the terminal device through an actual measurement process.
  • the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell are all less than or equal to the third threshold.
  • the beam measurement results of the N worst beams among the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold.
  • the measurement quantity corresponding to the first measurement result of the serving cell may include one or more of the following: RSRP, RSRQ, SINR, RSSI.
  • the measurement quantity corresponding to the first measurement result of the serving cell is RSRP, RSRQ, SINR, or RSSI.
  • the first measurement result of a neighboring cell being greater than or equal to a fifth threshold may include: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the fifth threshold.
  • the first measurement result of a neighboring cell being greater than or equal to a fifth threshold may include: the top M beams with the best measurement results among all beam measurement results of the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the fifth threshold.
  • M is an integer greater than or equal to 1, and/or, the value of M is less than the number of all beams indicated by the second beam set.
  • M and N can have the same value. In some embodiments, M and N can have different values.
  • the first measurement result of a neighboring cell being greater than or equal to a fifth threshold may include: the cell-level measurement result of a neighboring cell being greater than or equal to a fifth threshold.
  • the beams indicated by the second beam set are beams of neighboring cells that the terminal device can actually measure.
  • the terminal device confirms the second beam set through dedicated signaling sent by the network device or determines the second beam set through its own implementation. That is, the network device sends a reference signal corresponding to the beams indicated by the second beam set.
  • the second beam set can also be called the set B beam set.
  • the measurement quantity corresponding to the first measurement result of the neighboring cell may include one or more of the following: RSRP, RSRQ, SINR, RSSI.
  • the measurement quantity corresponding to the first measurement result of the neighboring cell may be RSRP, RSRQ, SINR, or RSSI.
  • the terminal device when the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, it can be considered that the terminal device is far from the serving cell. As a result, the first measurement result of the serving cell obtained by the terminal device through the actual measurement process will be relatively low.
  • the second reference location is the reference location corresponding to the serving cell, or in other words, the second reference location is determined based on the serving cell.
  • the second reference location is determined based on the center location of the serving cell.
  • the second reference location is the center location of the serving cell, such as the geographical coordinates of the center of the serving cell.
  • the embodiments of this application are not limited to this; for example, the second reference location can be any location relatively close to the center location of the serving cell.
  • the distance between the current location of the terminal device and the second reference location being greater than or equal to the fourth threshold can also be understood or replaced as one or more of the following: the current location of the terminal device is far from the location of the center of the serving cell, and the terminal device is at the edge of the serving cell.
  • the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, it can be considered that the terminal device is close to the neighboring cell. In this case, the first measurement result of the neighboring cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the third reference location is the reference location corresponding to a neighboring cell, or in other words, the third reference location is determined based on the neighboring cell.
  • the third reference location is determined based on the center location of the neighboring cell.
  • the third reference location is the center location of the neighboring cell, such as the geographical coordinates of the center of the neighboring cell.
  • the embodiments of this application are not limited to this; for example, the third reference location can be any location relatively close to the center location of the neighboring cell.
  • the distance between the current location of the terminal device and the third reference location being less than or equal to the sixth threshold can also be understood or replaced by one or more of the following: the current location of the terminal device is closer to the location of the center of the neighboring cell, and the terminal device is not at the edge of the neighboring cell.
  • the terminal device when the terminal device is within the location range indicated by the second location reference area, it can be considered that the terminal device is close to the neighboring cell. In this case, the first measurement result of the neighboring cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the second location reference area is determined based on the coverage of neighboring cells.
  • the second location reference area includes the central coverage area of the neighboring cell (or, the area with good signal coverage from the neighboring cell), or the second location reference area may be located within the signal coverage area of the neighboring cell.
  • the relationship between the second location reference area and the coverage of neighboring cells can be referenced to the relationship between the first location reference area and the coverage of the serving cell (i.e., see the example in Figure 2), and for simplicity, it will not be elaborated further here.
  • the fact that the current location of the terminal device is within the location range indicated by the second location reference area can be understood or replaced as one or more of the following: the current location of the terminal device is closer to the location of the neighboring cell center, and the terminal device is not at the edge of the neighboring cell.
  • one or more of the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference region are predefined by the protocol.
  • one or more of the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference area are configured by the network device to the terminal device.
  • This application embodiment does not limit the manner in which the network device configures these parameters.
  • one or more of the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference area are configured by the network device to the terminal device through one or more of the following methods: system broadcast message, dedicated signaling.
  • the network device can configure the above parameters through one or more of the following signaling: RRC signaling, MAC CE, DCI.
  • a portion of the parameters in the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference area are predefined by the protocol, while another portion of the parameters in the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference area are configured by the network device to the terminal device. This application does not exclude such an implementation.
  • one or more of the third threshold, fourth threshold, fifth threshold, sixth threshold, second reference position, third reference position, and second position reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • configuring the above parameters according to the terminal device granularity can be understood as the above parameters being configured for the terminal device, and the above parameters corresponding to different terminal devices may be different.
  • the configured parameters can be applied to any frequency point or any cell indicated in the measurement configuration.
  • the same set of configuration parameters is used for any frequency point or any cell indicated in the measurement configuration of terminal device A.
  • configuring the above parameters according to frequency point granularity can be understood as the above parameters being associated with frequency point information, that is, a frequency point or a group of frequency points can be associated with the same set of configuration parameters.
  • the cell identifier may include one or more of the following: CGI, PCI, frequency point information, and cell index.
  • the above-configured parameters can be associated with CGI.
  • the above-mentioned parameters can be configured to be associated with PCI.
  • the above-configured parameters can be associated with PCI and frequency information.
  • the above-configured parameters can be associated with a cell index.
  • the first condition may include a single condition, that is, the first condition may include one of the conditions described above.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold.
  • the first condition is that the distance between the current position of the terminal device and the second reference position is greater than or equal to the fourth threshold.
  • the first condition is that the first measurement result of the neighboring cell is greater than or equal to the fifth threshold.
  • the first condition is that the distance between the current position of the terminal device and the third reference position is less than or equal to the sixth threshold.
  • the first condition is that the current position of the terminal device is within the position range indicated by the second position reference area.
  • the first condition may include multiple conditions described above.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, and the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, and the first measurement result of the neighboring cell is greater than or equal to the fifth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, and the first measurement result of the neighboring cell is greater than or equal to the fifth threshold.
  • the first condition is that the distance between the current position of the terminal device and the second reference position is greater than or equal to the fourth threshold, and the distance between the current position of the terminal device and the third reference position is less than or equal to the sixth threshold.
  • the first condition is that the distance between the current position of the terminal device and the second reference position is greater than or equal to the fourth threshold, and the current position of the terminal device is within the position range indicated by the second position reference area.
  • the first condition is that the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the current position of the terminal device is within the position range indicated by the second position reference area.
  • the first condition is that the distance between the current position of the terminal device and the third reference position is less than or equal to the sixth threshold, and the current position of the terminal device is within the position range indicated by the second position reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, and the first measurement result of the neighboring cell is greater than or equal to the fifth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the distance between the current position of the terminal device and the second reference position is greater than or equal to the fourth threshold, the distance between the current position of the terminal device and the third reference position is less than or equal to the sixth threshold, and the current position of the terminal device is within the position range indicated by the second position reference area.
  • the first condition is that the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, and the current terminal device.
  • the distance between the current location and the second reference location is greater than or equal to the fourth threshold
  • the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold
  • the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first condition is that the first measurement result of the serving cell is less than or equal to the third threshold, the distance between the current location of the terminal device and the second reference location is greater than or equal to the fourth threshold, the first measurement result of the neighboring cell is greater than or equal to the fifth threshold, the distance between the current location of the terminal device and the third reference location is less than or equal to the sixth threshold, and the current location of the terminal device is within the location range indicated by the second location reference area.
  • the terminal device if the parameter involved in the first condition appears during a configuration process, the terminal device needs to determine whether the corresponding first condition is satisfied; otherwise, if the parameter involved in the first condition does not appear during a configuration process, the terminal device does not need to determine whether the corresponding first condition is satisfied.
  • the first condition is that the first measurement result of the serving cell is less than or equal to a third threshold.
  • the parameter involved in the first condition is the third threshold, and the network device can configure the third threshold to the terminal device through dedicated signaling (which is carried in the first message).
  • the terminal device needs to determine whether the corresponding first condition is satisfied, and then determine whether to infer the second measurement result of the neighboring cell based on the first condition; if the third threshold contained in the first message sent by the network device to the terminal device does not appear, the terminal device does not need to determine whether the corresponding first condition is satisfied.
  • whether to infer the second measurement result of the neighboring cell can depend on other conditions (e.g., whether the reference signal configuration used for measurement inference is configured). Other implementations of the first condition are handled similarly to the above method, and will not be listed here.
  • the closer the terminal device is to the center of the neighboring cell or the farther away it is from the center of the serving cell the higher the measurement result of the neighboring cell obtained by the terminal device.
  • the higher measurement result is conducive to the terminal device performing more accurate neighboring cell measurement result inference.
  • the measurement result inference performed by the terminal device applies to neighboring cells.
  • Measuring neighboring cells is usually to assist network devices in implementing mobility control.
  • the accuracy of the inferred measurement results of neighboring cells can be guaranteed, which facilitates the network devices to make appropriate handover decisions.
  • Scenario 3 The first function is used to infer the second measurement results of the serving cell and the second measurement results of neighboring cells.
  • the first function can be used to infer the second measurement results of the serving cell and the second measurement results of the neighboring cells.
  • the inference of the first function involves the serving cell and the neighboring cells.
  • the serving cell and the neighboring cells can independently control their respective inference processes. That is, the inference of the second measurement results of the serving cell and the inference of the second measurement results of the neighboring cells are performed independently of each other.
  • the inference of the second measurement results of the serving cell can adopt the implementation method of scenario 1 described above
  • the inference of the second measurement results of the neighboring cells can adopt the implementation method of scenario 2 described above, which will not be elaborated further here.
  • the inference process of the second measurement result is independently controlled by the serving cell and the neighboring cell, considering the inference of the second measurement result of the serving cell and the neighboring cell at the same time is beneficial to ensuring the accuracy of the second measurement result of any cell inferred by the terminal device.
  • it can make the most of AI technology to realize the advantage of measurement inference, because the serving cell and the neighboring cell of the terminal device can save measurement overhead by using AI inference technology when the first condition is met.
  • the inference process of the serving cell and the inference process of the neighboring cells are jointly controlled, that is, the inference process of the serving cell and the inference process of the neighboring cells are performed simultaneously.
  • the same first condition is used simultaneously to determine whether to start the inference of the second measurement results of the serving cell and the inference of the second measurement results of the neighboring cells.
  • the first condition may include one or more of the following: the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold; the distance between the current location of the terminal device and the fourth reference location is less than or equal to the ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to the tenth threshold; the current location of the terminal device is within the location range indicated by the third location reference area.
  • the first measurement result of the serving cell being greater than or equal to the seventh threshold may include: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold.
  • a first measurement result of the serving cell being greater than or equal to a seventh threshold may include: the terminal device measuring the actual measurement result of the serving cell.
  • the beam measurement results of the top K beams with the best measurement results among all beams indicated by the first beam set corresponding to the serving cell obtained during the measurement process are all greater than or equal to the seventh threshold.
  • This application embodiment does not limit the value of K; for example, K is an integer greater than or equal to 1, and/or, the value of K is less than the total number of beams indicated by the first beam set.
  • the first measurement result of the serving cell being greater than or equal to the seventh threshold may include: the cell-level measurement result of the serving cell being greater than or equal to the seventh threshold.
  • the beam indicated by the first beam set is the beam of the serving cell that the terminal device can actually measure. That is, the network device sends a reference signal corresponding to the beam indicated by the first beam set.
  • the first beam set can also be called the set B beam set.
  • the first measurement result of the serving cell being greater than or equal to the seventh threshold may include one or more of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold; the beam measurement results of the top K beams with the best measurement results among all beam measurement results of the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold; and the cell-level measurement result of the serving cell is greater than or equal to the seventh threshold.
  • the first measurement result of the serving cell being greater than or equal to the seventh threshold may include one or more of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold; the beam measurement results of the top K beams with the best measurement results among the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold.
  • the measurement quantity corresponding to the first measurement result of the serving cell may include one or more of the following: RSRP, RSRQ, SINR, RSSI.
  • the measurement quantity corresponding to the first measurement result of the serving cell is RSRP, RSRQ, SINR, or RSSI.
  • the first measurement result of a neighboring cell being greater than or equal to an eighth threshold may include: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold.
  • the first measurement result of a neighboring cell being greater than or equal to an eighth threshold may include: the top M beams with the best measurement results among all beam measurement results of the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold.
  • M is an integer greater than or equal to 1
  • the value of M is less than the number of all beams indicated by the second beam set.
  • the values of M and K can be the same. In some embodiments, the values of M and K can be different.
  • the first measurement result of a neighboring cell being greater than or equal to an eighth threshold may include: the cell-level measurement result of a neighboring cell being greater than or equal to an eighth threshold.
  • the beam indicated by the second beam set is the beam of a neighboring cell that the terminal device can actually measure. That is, the network device sends a reference signal corresponding to the beam indicated by the second beam set.
  • the second beam set can also be called the set B beam set.
  • the first measurement result of the neighboring cell being greater than or equal to the eighth threshold may include one or more of the following: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold; the beam measurement results of the top M beams with the best measurement results among all beam measurement results of the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold; and the cell-level measurement result of the neighboring cell is greater than or equal to the eighth threshold.
  • the first measurement result of the neighboring cell being greater than or equal to the eighth threshold may include one or more of the following: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold; the beam measurement results of the top M beams with the best measurement results among the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold.
  • the measurement quantity corresponding to the first measurement result of the neighboring cell may include one or more of the following: RSRP, RSRQ, SINR, RSSI.
  • the measurement quantity corresponding to the first measurement result of the neighboring cell may be RSRP, RSRQ, SINR, or RSSI.
  • the distance between the current location of the terminal device and the fourth reference location is less than or equal to the ninth threshold, it can be considered that the terminal device is close to the serving cell. In this case, the first measurement result of the serving cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the fourth reference location is the reference location corresponding to the serving cell, or in other words, the fourth reference location is determined based on the serving cell.
  • the fourth reference location is determined based on the center location of the serving cell.
  • the fourth reference ...
  • the location is the center location of the serving cell, such as the geographical coordinates of the center of the serving cell.
  • the embodiments of this application are not limited to this.
  • the fourth reference location is any location that is close to the center location of the serving cell.
  • the distance between the current location of the terminal device and the fourth reference location being less than or equal to the ninth threshold can also be understood or replaced by one or more of the following: the current location of the terminal device is closer to the location of the center of the serving cell, and the terminal device is not at the edge of the serving cell.
  • the terminal device when the distance between the current location of the terminal device and the fifth reference location is less than or equal to the tenth threshold, it can be considered that the terminal device is close to the neighboring cell. In this case, the first measurement result of the neighboring cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the fifth reference location is the reference location corresponding to a neighboring cell, or in other words, the fifth reference location is determined based on the neighboring cell.
  • the fifth reference location is determined based on the center location of the neighboring cell.
  • the fifth reference location is the center location of the neighboring cell, such as the geographical coordinates of the center of the neighboring cell.
  • the embodiments of this application are not limited to this; for example, the fifth reference location can be any location relatively close to the center location of the neighboring cell.
  • the distance between the current location of the terminal device and the fifth reference location being less than or equal to the tenth threshold can also be understood or replaced as one or more of the following: the current location of the terminal device is closer to the location of the center of the neighboring cell, and the terminal device is not at the edge of the neighboring cell.
  • the terminal device when the terminal device is within the location range indicated by the third location reference area, it can be considered that the terminal device is close to the serving cell and close to the neighboring cell. In this case, the first measurement results of the serving cell and the neighboring cell obtained by the terminal device through the actual measurement process will be relatively high.
  • the third location reference area is determined based on the coverage areas of the serving cell and the neighboring cells. As one implementation, the third location reference area includes a portion of the overlapping area between the signal coverage areas of the serving cell and the neighboring cells.
  • An example of the third location reference area is given below with reference to Figure 3.
  • the signal coverage area of the serving cell is a circular area with radius R1 centered at the center location O1 of the serving cell
  • the signal coverage area of the neighboring cells is a circular area with radius R2 centered at the center location O2 of the serving cell.
  • the third location reference area is the shaded area shown in Figure 3.
  • the current location of the terminal device being within the location range indicated by the third location reference area can be understood or replaced as one or more of the following: the current location of the terminal device is close to the serving cell and also close to the neighboring cell; the terminal device is not at the edge of the serving cell and not at the edge of the neighboring cell.
  • one or more of the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference region are predefined by the protocol.
  • one or more of the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference area are configured by the network device to the terminal device.
  • This application embodiment does not limit the method by which the network device configures these parameters.
  • one or more of the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference area are configured by the network device to the terminal device through one or more of the following methods: system broadcast message, dedicated signaling.
  • the network device can configure the above parameters through one or more of the following signaling: RRC signaling, MAC CE, DCI.
  • a portion of the parameters in the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference area are predefined by the protocol, while another portion of the parameters in the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference area are configured by the network device to the terminal device. This application does not exclude such an implementation.
  • one or more of the seventh threshold, eighth threshold, ninth threshold, tenth threshold, fourth reference position, fifth reference position, and third position reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • configuring the above parameters according to the terminal device granularity can be understood as the above parameters being configured for the terminal device, and the above parameters corresponding to different terminal devices may be different.
  • the configured parameters can be applied to any frequency point or any cell indicated in the measurement configuration.
  • the same set of configuration parameters is used for any frequency point or any cell indicated in the measurement configuration of terminal device A.
  • configuring the above parameters according to frequency point granularity can be understood as the above parameters being associated with frequency point information, that is, a frequency point or a group of frequency points can be associated with the same set of configuration parameters.
  • configuring the above parameters at the cell level can be understood as associating the configured parameters with a cell; a cell or a group of cells can be associated with the same set of configuration parameters.
  • the configured parameters can be associated with a cell identifier, and different cell identifiers may correspond to different parameters.
  • the cell identifier can be used to identify the cell.
  • the cell identifier... Information can include one or more of the following: CGI, PCI, frequency point information, cell index.
  • the above-configured parameters can be associated with CGI.
  • the above-mentioned parameters can be configured to be associated with PCI.
  • the above-configured parameters can be associated with PCI and frequency information.
  • the above-configured parameters can be associated with a cell index.
  • the first condition may include a single condition, that is, the first condition may include one of the conditions described above.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold.
  • the first condition is that the distance between the current position of the terminal device and the fourth reference position is less than or equal to the ninth threshold and the distance between the current position of the terminal device and the fifth reference position is less than or equal to the tenth threshold.
  • the first condition is that the current location of the terminal device is within the location range indicated by the third location reference area.
  • the first condition may include multiple conditions described above.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold, and the distance between the current location of the terminal device and the fourth reference location is less than or equal to the ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to the tenth threshold.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold, and the current location of the terminal device is within the location range indicated by the third location reference area.
  • the first condition is that the distance between the current position of the terminal device and the fourth reference position is less than or equal to the ninth threshold and the distance between the current position of the terminal device and the fifth reference position is less than or equal to the tenth threshold, and the current position of the terminal device is within the position range indicated by the third position reference area.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold, the distance between the current location of the terminal device and the fourth reference location is less than or equal to the ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to the tenth threshold, and the current location of the terminal device is within the location range indicated by the third location reference area.
  • the terminal device if the parameter involved in the first condition appears during a configuration process, the terminal device needs to determine whether the corresponding first condition is satisfied; otherwise, if the parameter involved in the first condition does not appear during a configuration process, the terminal device does not need to determine whether the corresponding first condition is satisfied.
  • the first condition is that the first measurement result of the serving cell is greater than or equal to the seventh threshold and the first measurement result of the neighboring cell is greater than or equal to the eighth threshold.
  • the parameters involved in the first condition are the seventh threshold and the eighth threshold, and the network device can configure the seventh threshold and the eighth threshold to the terminal device through dedicated signaling (which is carried in the first message).
  • the terminal device needs to determine whether the corresponding first condition is satisfied, and then determine whether to infer the second measurement result of the serving cell and the second measurement result of the neighboring cell based on the first condition; if the seventh threshold and the eighth threshold contained in the first message sent by the network device to the terminal device do not appear, the terminal device does not need to determine whether the corresponding first condition is satisfied. If the seventh and eighth thresholds included in the first message do not appear, whether to infer the second measurement results of the serving cell and the second measurement results of the neighboring cells may depend on other conditions (e.g., whether the reference signal configuration used for measurement inference is configured). Other implementations of the first condition are handled similarly to those described above, and will not be listed here.
  • the setting of the first condition mentioned above can simultaneously take into account the accuracy requirements of the second measurement results of the serving cell obtained by inference and the accuracy requirements of the second measurement results of the neighboring cell obtained by inference.
  • the inference of the second measurement result involves both the serving cell and the neighboring cell, which helps to ensure the accuracy of the second measurement result of any cell inferred by the terminal device.
  • it can also maximize the use of AI technology to realize the advantage of measurement inference, because the serving cell and the neighboring cell of the terminal device can save measurement overhead by using AI inference technology when the first condition is met.
  • the same first condition applies to both the serving cell and the neighboring cell, which can also simplify the operation of the terminal device, that is, it is not necessary to separately determine whether the second measurement result inference is needed for the serving cell and the neighboring cell.
  • the first function can be used for reasoning about the measurement results of the cell (or, the second measurement results of the cell).
  • the reasoning about the measurement results of the cell will be described in detail below.
  • the inference of cell measurement results can be applied to spatial beam inference scenarios related to beam management functions. That is, the first function can be used to infer the measurement results of one or more serving cells, and this inference is used in the spatial domain inference process of beam measurement results related to beam management functions.
  • the terminal device infers a predicted measurement result (i.e., a second measurement result) of the beam indicated by a third beam set corresponding to the first serving cell at the first time moment based on the actual measurement result (i.e., the first measurement result) of the beam indicated by the first beam set corresponding to the first serving cell at the first time moment.
  • the beam indicated by the first beam set is the beam that the terminal device can actually measure (i.e., the beam that the network device will send).
  • the first beam set indicates the reference signal corresponding to the beam
  • the third beam set indicates the beam that the terminal device cannot actually measure (i.e., the network device will not send the reference signal corresponding to the beam indicated by the third beam set).
  • the first serving cell is any one of one or more serving cells of the terminal device.
  • the beams indicated by the first beam set include beams 1, 3, and 5, and the beams indicated by the second beam set include beams 2, 4, and 6.
  • the terminal device infers the beam measurement results of beams 2, 4, and 6 at the same time (the first time) based on the beam measurement results of beams 1, 3, and 5 at the first time.
  • the inference of cell measurement results can be applied to the temporal beam inference scenario related to beam management functions. That is, the first function can be used to infer the measurement results of one or more serving cells, and this inference is used in the temporal domain inference process of beam measurement results related to beam management functions.
  • the terminal device infers, based on the actual measurement result (i.e., the first measurement result) of the beam indicated by the fourth beam set corresponding to the first serving cell at the first time (or multiple historical time points), one or more predicted measurement results (i.e., the second measurement results) of the beam indicated by the fifth beam set corresponding to the first serving cell at the second time.
  • the beam indicated by the fourth beam set is the beam that the terminal device can actually measure (i.e., the network device will send a reference signal corresponding to the beam indicated by the fourth beam set).
  • the beam indicated by the fifth beam set can be the same as or different from the beam indicated by the fourth beam set.
  • the first serving cell is any one of the one or more serving cells of the terminal device.
  • the fourth beam set indicates beams 1, 3, and 5, and the fifth beam set indicates beams 2, 4, and 6.
  • the terminal device infers the beam measurement results of beams 2, 4, and 6 at different times (one or more second times) based on the beam measurement results of beams 1, 3, and 5 at the first time.
  • the fourth beam set indicates beams 1, 3, and 5, and the fifth beam set indicates beams 1, 3, and 5.
  • the terminal device infers the beam measurement results of beams 1, 3, and 5 at different times (one or more second times) based on the beam measurement results of beams 1, 3, and 5 at the first time.
  • the beams indicated by the fourth beam set include beams 1, 3, and 5, and the beams indicated by the fifth beam set include beams 1, 2, 3, 4, 5, and 6.
  • the terminal device infers the beam measurement results of beams 1, 2, 3, 4, 5, and 6 at different times (one or more second times) based on the beam measurement results of beams 1, 3, and 5 at the first time.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to radio resource management (RRM) or Layer 3 measurement functions.
  • RRM radio resource management
  • a first function is used to infer the measurement results of one or more serving cells, and this measurement result inference is used in the cell-level measurement result prediction process related to the Layer 3 measurement function.
  • the terminal device infers the predicted measurement result of the beam indicated by the third beam set corresponding to the first serving cell at the first time moment based on the actual measurement result (i.e., the first measurement result) of the beam indicated by the first beam set corresponding to the first serving cell at the first time moment.
  • the terminal device performs a beam selection process (i.e., selects up to N beams based on the actual measurement result of the beam indicated by the first beam set and the predicted measurement result of the beam indicated by the third beam set, where N is a positive integer and configured by the network device), and merges the beam measurement results of the selected beams to obtain the cell-level measurement result (i.e., the second measurement result) corresponding to the first serving cell at the first time moment.
  • a beam selection process i.e., selects up to N beams based on the actual measurement result of the beam indicated by the first beam set and the predicted measurement result of the beam indicated by the third beam set, where N is a positive integer and configured by the network device
  • the first beam set indicates beams that the terminal device can actually measure (i.e., the network device will send reference signals corresponding to the beams indicated by the first beam set), while the third beam set indicates beams that the terminal device cannot actually measure (i.e., the network device will not send reference signals corresponding to the beams indicated by the third beam set).
  • the first serving cell is any one of one or more serving cells of the terminal device.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to RRM or Layer 3 measurement functions.
  • a first function is used to infer the measurement results of one or more serving cells, and this inference is used in the cell-level measurement result prediction process related to the Layer 3 measurement function.
  • the terminal device infers one or more cell-level measurement results (i.e., second measurement results) corresponding to the first serving cell at a second time based on the cell-level measurement result (i.e., the first measurement result) corresponding to the first serving cell at a first time (or multiple historical time points).
  • the cell-level measurement result corresponding to the first serving cell at the first time can be a cell-level measurement result obtained from the actual measurement process (i.e., without any AI inference process involved) or a cell-level measurement result obtained from the AI inference process.
  • the first serving cell is any one of the one or more serving cells of the terminal device.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to RRM or Layer 3 measurement functions.
  • a first function is used to infer the measurement results of one or more neighboring cells, and this measurement result inference is used in the cell-level measurement result prediction process related to Layer 3 measurement functions.
  • the terminal device infers the predicted measurement result of the beam indicated by the third beam set corresponding to the first neighboring cell at the first time based on the actual measurement result (i.e., the first measurement result) of the beam indicated by the first beam set corresponding to the first neighboring cell at the first time.
  • the terminal device performs a beam selection process (i.e., selects up to N beams based on the actual measurement result of the beam indicated by the first beam set and the predicted measurement result of the beam indicated by the third beam set, where N is a positive integer and configured by the network device), and merges the beam measurement results of the selected beams to obtain the cell-level measurement result (i.e., the second measurement result) corresponding to the first neighboring cell at the first time.
  • the beam indicated by the first beam set is the terminal device's measurement result.
  • the first beam set refers to the beams that the terminal device can actually measure (i.e., the reference signal corresponding to the beam indicated by the first beam set will be sent by the network device), while the third beam set refers to the beams that the terminal device cannot actually measure (i.e., the reference signal corresponding to the beam indicated by the third beam set will not be sent by the network device).
  • the first neighboring cell is any one of one or more neighboring cells of the terminal device.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to RRM or Layer 3 measurement functions.
  • a first function is used to infer the measurement results of one or more neighboring cells, and this inference is used in the cell-level measurement result prediction process related to the Layer 3 measurement function.
  • the terminal device infers one or more cell-level measurement results (i.e., second measurement results) corresponding to the first neighboring cell at a second time based on the cell-level measurement result (i.e., the first measurement result) corresponding to the first neighboring cell at a first time (or multiple historical time points).
  • the cell-level measurement result corresponding to the first neighboring cell at the first time can be a cell-level measurement result obtained based on the actual measurement process (i.e., without any AI inference process involved) or a cell-level measurement result obtained based on the AI inference process.
  • the first neighboring cell is any one of the one or more neighboring cells of the terminal device.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to RRM or Layer 3 measurement functions.
  • a first function is used to infer the measurement results of one or more serving cells and one or more neighboring cells, and this measurement result inference is used in the cell-level measurement result prediction process related to Layer 3 measurement functions.
  • the terminal device infers the predicted measurement result of the beam indicated by the third beam set corresponding to the first cell at the first time based on the actual measurement result (i.e., the first measurement result) of the beam indicated by the first beam set corresponding to the first cell at the first time.
  • the terminal device performs a beam selection process (i.e., selects up to N beams based on the actual measurement result of the beam indicated by the first beam set and the predicted measurement result of the beam indicated by the third beam set, where N is a positive integer and configured by the network device), and merges the beam measurement results of the selected beams to obtain the cell-level measurement result (i.e., the second measurement result) corresponding to the first cell at the first time.
  • a beam selection process i.e., selects up to N beams based on the actual measurement result of the beam indicated by the first beam set and the predicted measurement result of the beam indicated by the third beam set, where N is a positive integer and configured by the network device
  • the first beam set indicates beams that the terminal device can actually measure (i.e., the network device will send reference signals corresponding to the beams indicated by the first beam set), while the third beam set indicates beams that the terminal device cannot actually measure (i.e., the network device will not send reference signals corresponding to the beams indicated by the third beam set).
  • the first cell is any one of one or more serving cells and one or more neighboring cells.
  • the inference of cell measurement results can be applied to scenarios involving cell-level measurement result inference related to RRM or Layer 3 measurement functions.
  • a first function is used to infer the measurement results of one or more serving cells and one or more neighboring cells, and this measurement result inference is used in the cell-level measurement result prediction process related to the Layer 3 measurement function.
  • the terminal device infers one or more cell-level measurement results (i.e., second measurement results) corresponding to the first cell at a second time based on the cell-level measurement result (i.e., the first measurement result) corresponding to the first cell at a first time (or multiple historical time periods).
  • the cell-level measurement result corresponding to the first cell at the first time can be a cell-level measurement result obtained based on the actual measurement process (i.e., without any AI inference process involved) or a cell-level measurement result obtained based on the AI inference process.
  • the first cell is any one of one or more serving cells and one or more neighboring cells.
  • Figure 4 is a flowchart illustrating a method for wireless communication provided in an embodiment of this application.
  • the method shown in Figure 4 can be executed by a terminal device, such as the terminal device 120 shown in Figure 1.
  • the method shown in Figure 4 can be executed by interaction between the terminal device and a network device.
  • the method shown in Figure 4 can be executed by interaction between the terminal device and the network device.
  • the terminal device needs to send first capability information to the network device, the method shown in Figure 4 can be executed by interaction between the terminal device and the network device.
  • the network device mentioned in this application is an access network device, such as the access network device 110 shown in FIG1.
  • a core network device may include one of the following: a location management function (LMF) network element, a network slice selection function (NSSF) network element, an authentication server function (AUSF) network element, a unified data management (UDM) network element, an access and mobility management function (AMF) network element, a session management function (SMF) network element, a policy control function (PCF) network element, a user plane function (UPF) network element, a sensing function (SF) network element, a network data analytics function (NWDAF) network element, and an AI function management entity.
  • LMF location management function
  • NSSF network slice selection function
  • AUSF authentication server function
  • UDM access and mobility management function
  • AMF access and mobility management function
  • SMF session management function
  • PCF policy control function
  • UPF user plane function
  • SF sensing function
  • NWDAF network data analytics function
  • the network device mentioned in this application is an operations, administration, and maintenance (OAM) device.
  • OAM operations, administration, and maintenance
  • step S410 when the first condition is met, the terminal device performs the reasoning of the first function; And/or, if the first condition is not met, the terminal device does not execute or stops executing the reasoning of the first function.
  • the terminal device may fall back to obtaining the cell measurement results (such as the cell beam-level measurement results and/or the cell-level measurement results) using the actual measurement process.
  • the terminal device when the network device is configured with a reference beam (or the beam corresponding to the reference signal), the terminal device can perform measurements using the reference beam configured by the network device.
  • the terminal device can request the network device to configure a reference beam or re-receive the reference beam configured by the network device, and perform measurements based on the reference beam configured by the network device.
  • the terminal device may report its capabilities to the network device to indicate whether it supports the ability to perform reasoning for a first function based on a first condition.
  • the method shown in FIG4 may include step S402, in which the terminal device sends first capability information to the network device.
  • the first capability information is used to indicate whether the terminal device supports reasoning for performing a first function based on a first condition. Taking the first function as an example of reasoning to obtain cell measurement results, the first capability information can be used to indicate whether the terminal device supports reasoning to obtain cell measurement results based on a first condition.
  • whether a terminal device supports reasoning to perform a first function based on a first condition can be understood as whether the terminal device can perform reasoning to perform the first function depends on whether the first condition is met. For example, when the first condition is met, the terminal device performs reasoning to perform the first function; when the first condition is not met, the terminal device does not perform or stops performing reasoning to perform the first function.
  • the first function as reasoning to obtain the measurement results of a cell
  • whether a terminal device supports reasoning to perform the first function based on a first condition can be understood as whether the terminal device can perform reasoning to obtain the measurement results of the cell depends on whether the first condition is met. For example, when the first condition is met, the terminal device performs reasoning to obtain the measurement results of the cell; when the first condition is not met, the terminal device does not perform or stops performing reasoning to obtain the measurement results of the cell.
  • the terminal device can send first capability information to the network device, where the first capability information has a first value.
  • the first capability information is used to indicate that the terminal device supports reasoning to perform the first function based on the first condition.
  • the terminal device can send first capability information to the network device, where the first capability information has a second value.
  • the first capability information is used to indicate that the terminal device does not support reasoning to perform the first function based on the first condition. For example, when the first capability information has a first value, it indicates that the terminal device supports reasoning to perform the first function based on the first condition.
  • the first capability information indicates that the terminal device supports reasoning to perform the first function based on the first condition.
  • the first capability information indicates that the terminal device does not support reasoning to perform the first function based on the first condition.
  • the first capability information indicates that the terminal device supports reasoning to perform the first function based on the first condition.
  • the second value is '1'
  • the first capability information is used to indicate that the terminal device does not support reasoning to perform the first function based on the first condition.
  • the first capability information is indicated at one or more of the following granularities: frequency range (FR), carrier (or carrier component (CC)), band, and band combination.
  • the first capability information is indicated at a certain granularity.
  • the first capability information is indicated at the FR granularity.
  • FR1, FR2-1, and FR2-2 respectively indicate whether the corresponding FR supports reasoning to perform the first function based on the first condition.
  • the first capability information is indicated at the carrier granularity.
  • the first capability information is indicated according to frequency band granularity.
  • the first capability information is indicated according to the frequency band combination granularity.
  • the first capability information is indicated at multiple granularities.
  • the first capability information is indicated according to the frequency band and the granularity of frequency band combinations.
  • the first capability information is indicated according to the carrier and frequency band granularity.
  • the first capability information is indicated at the carrier, frequency band, and frequency band combination granularity.
  • the first capability information is first distinguished according to FR granularity, and then further distinguished according to one or more of the following granularities: carrier, frequency band, and frequency band combination granularity.
  • the first capability information is indicated according to FR and carrier granularity.
  • the first capability information is indicated according to FR and frequency band granularity.
  • the first capability information is indicated according to FR and frequency band combination granularity.
  • the first capability information is indicated according to FR, frequency band, and frequency band combination granularity.
  • the first capability information is indicated according to FR, carrier, and frequency band granularity.
  • the first capability information is indicated according to FR, carrier, frequency band, and frequency band combination granularity.
  • the method shown in Figure 4 may further include step S404.
  • the network device In step S404, the network device... Send configuration information to the terminal device.
  • This configuration information can be used to configure the configuration associated with the first condition, or in other words, this configuration information is used to determine the configuration associated with the first condition.
  • the configuration information for configuring the first condition association may include: the configuration information for configuring the parameters of the first condition association.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a first threshold; the distance between the current location of the terminal device and the first reference location is less than or equal to a second threshold; the current location of the terminal device belongs to the location range indicated by a first location reference area.
  • the above configuration information can be used to configure one or more of the following: the first threshold, the second threshold, the first reference location, and the first location reference area.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is less than or equal to a third threshold; the distance between the current location of the terminal device and the second reference location is greater than or equal to a fourth threshold; the first measurement result of the neighboring cell is greater than or equal to a fifth threshold; the distance between the current location of the terminal device and the third reference location is less than or equal to a sixth threshold; the current location of the terminal device is within the location range indicated by the second location reference area.
  • the above configuration information can be used to configure one or more of the following: the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference location, the third reference location, and the second location reference area.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a first threshold; the distance between the current location of the terminal device and the first reference location is less than or equal to a second threshold; the current location of the terminal device is within the location range indicated by the first location reference area; the first measurement result of the serving cell is less than or equal to a third threshold; the distance between the current location of the terminal device and the second reference location is greater than or equal to a fourth threshold; the first measurement result of the neighboring cell is greater than or equal to a fifth threshold; the distance between the current location of the terminal device and the third reference location is less than or equal to a sixth threshold; the current location of the terminal device is within the location range indicated by the second location reference area.
  • the above configuration information can be used to configure one or more of the following: the first threshold, the second threshold, the first reference location, the first location reference area, the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference location, the third reference location, and the second location reference area.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a seventh threshold and the first measurement result of the neighboring cell is greater than or equal to an eighth threshold; the distance between the current location of the terminal device and the fourth reference location is less than or equal to a ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to a tenth threshold; the current location of the terminal device belongs to the location range indicated by the third location reference area.
  • the above configuration information is used to configure one or more of the following: the seventh threshold, the eighth threshold, the ninth threshold, the tenth threshold, the fourth reference location, the fifth reference location, and the third location reference area.
  • steps S402 and S404 are not limited in this embodiment.
  • step S402 may be executed before or after step S404.
  • Figure 5 is a schematic diagram of the structure of a terminal device provided in an embodiment of this application.
  • the terminal device 500 shown in Figure 5 may include an execution module 510.
  • the execution module 510 may be used to: perform reasoning for a first function when a first condition is met; and/or not perform or stop performing reasoning for the first function when the first condition is not met; wherein, the first function includes an AI function and/or an AI model, and the first condition is related to the measurement results obtained by the terminal device and/or the location of the terminal device.
  • the first condition is related to one or more of the following: a first measurement result of the serving cell of the terminal device; a first measurement result of the neighboring cells of the terminal device; the distance between the current location of the terminal device and one or more reference locations; and whether the terminal device is within a location reference area.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device, and the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a first threshold; the distance between the current location of the terminal device and the first reference location is less than or equal to a second threshold; the current location of the terminal device is within the location range indicated by the first location reference area.
  • the first measurement result of the serving cell being greater than or equal to the first threshold includes any one of the following: the terminal device measures the data through actual measurement.
  • the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained in the process are all greater than the first threshold; the beam measurement results of the top K beams with the best measurement results among all beam measurement results of the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than the first threshold, where K is an integer greater than or equal to 1; the cell-level measurement result of the serving cell is greater than or equal to the first threshold; wherein, the beams indicated by the first beam set are the beams of the serving cell that the terminal device can actually measure.
  • one or more of the first threshold, the second threshold, the first reference position, and the first position reference area are predefined by the protocol or configured by the network device for the terminal device.
  • the first threshold, the second threshold, the first reference location, and one or more of the first location reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the first function is used to infer a second measurement result of a neighboring cell of the terminal device, and the first condition includes one or more of the following: the first measurement result of the serving cell is less than or equal to a third threshold; the distance between the current location of the terminal device and the second reference location is greater than or equal to a fourth threshold; the first measurement result of the neighboring cell is greater than or equal to a fifth threshold; the distance between the current location of the terminal device and the third reference location is less than or equal to a sixth threshold; the current location of the terminal device is within the location range indicated by the second location reference area.
  • the first measurement result of the serving cell being less than or equal to the third threshold includes any of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold; the beam measurement results of the N worst beams among the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all less than or equal to the third threshold, where N is an integer greater than or equal to 1; the cell-level measurement result of the serving cell is less than or equal to the third threshold; wherein, the beams indicated by the first beam set are the beams of the serving cell that the terminal device can actually measure.
  • the first measurement result of the neighboring cell being greater than or equal to the fifth threshold includes any of the following: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the fifth threshold; the beam measurement results of the top M beams with the best measurement results among all beam measurement results indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the fifth threshold, where M is an integer greater than or equal to 1; the cell-level measurement result of the neighboring cell is greater than or equal to the fifth threshold; wherein, the beams indicated by the second beam set are the beams of the neighboring cells that the terminal device can actually measure.
  • one or more of the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference position, the third reference position, and the second position reference area are predefined by the protocol or configured by the network device for the terminal device.
  • one or more of the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference position, the third reference position, and the second location reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device and a second measurement result of the neighboring cell of the terminal device.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a seventh threshold and the first measurement result of the neighboring cell is greater than or equal to an eighth threshold; the distance between the current location of the terminal device and the fourth reference location is less than or equal to a ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to a tenth threshold; the current location of the terminal device is within the location range indicated by the third location reference area.
  • the first measurement result of the serving cell being greater than or equal to the seventh threshold includes any of the following: the beam measurement results of all beams indicated by the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold; the beam measurement results of the top K beams with the best measurement results among all beam measurement results of the first beam set corresponding to the serving cell obtained by the terminal device through the actual measurement process are all greater than or equal to the seventh threshold, where K is an integer greater than or equal to 1; the cell-level measurement result of the serving cell is greater than or equal to the seventh threshold; wherein, the beams indicated by the first beam set are the beams of the serving cell that the terminal device can actually measure.
  • the first measurement result of the neighboring cell being greater than or equal to the eighth threshold includes any of the following: the beam measurement results of all beams indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold; the beam measurement results of the top M beams with the best measurement results among all beam measurement results indicated by the second beam set corresponding to the neighboring cell obtained by the terminal device through the actual measurement process are all greater than or equal to the eighth threshold, where M is an integer greater than or equal to 1; the cell-level measurement result of the neighboring cell is greater than or equal to the eighth threshold; wherein, the beam indicated by the second beam set is the The terminal equipment can actually measure the beam of neighboring cells.
  • one or more of the seventh threshold, the eighth threshold, the ninth threshold, the tenth threshold, the fourth reference position, the fifth reference position, and the third position reference area are predefined by the protocol or configured by the network device for the terminal device.
  • one or more of the seventh threshold, the eighth threshold, the ninth threshold, the tenth threshold, the fourth reference position, the fifth reference position, and the third position reference region are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the measurement results of the serving cell of the terminal device and/or the measurement results of the neighboring cells of the terminal device include one or more of the following: beam-level measurement results; cell-level measurement results.
  • the terminal device further includes: a sending module 520, configured to send first capability information to a network device, the first capability information being used to indicate whether the terminal device supports reasoning for performing the first function based on the first condition.
  • a sending module 520 configured to send first capability information to a network device, the first capability information being used to indicate whether the terminal device supports reasoning for performing the first function based on the first condition.
  • the first capability information is indicated at one or more of the following granularities: frequency range, carrier, frequency band, and frequency band combination.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device and/or a second measurement result of the neighboring cells of the terminal device.
  • the execution module 510 may be a processor 710.
  • the terminal device 500 may also include a memory 720 and a transceiver 730, as shown in FIG7.
  • FIG. 6 is a schematic diagram of the structure of a network device provided in an embodiment of this application.
  • the network device 600 shown in Figure 6 may include a sending module 610.
  • the sending module 610 can be used to send configuration information to a terminal device.
  • the configuration information is used to configure a configuration associated with a first condition.
  • the first condition is used by the terminal device to determine whether to perform reasoning for a first function.
  • the first function includes an AI function and/or an AI model.
  • the first condition is related to the measurement results obtained by the terminal device and/or the location of the terminal device.
  • the first condition is related to one or more of the following: a first measurement result of the serving cell of the terminal device; a first measurement result of the neighboring cells of the terminal device; the distance between the current location of the terminal device and one or more reference locations; and whether the terminal device is within a location reference area.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device, and the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a first threshold; the distance between the current location of the terminal device and the first reference location is less than or equal to a second threshold; the current location of the terminal device is within the location range indicated by the first location reference area.
  • the configuration information is used to configure one or more of the following: the first threshold, the second threshold, the first reference position, and the first position reference region.
  • the first threshold, the second threshold, the first reference location, and one or more of the first location reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the first function is used to infer a second measurement result of a neighboring cell of the terminal device, and the first condition includes one or more of the following: the first measurement result of the serving cell is less than or equal to a third threshold; the distance between the current location of the terminal device and the second reference location is greater than or equal to a fourth threshold; the first measurement result of the neighboring cell is greater than or equal to a fifth threshold; the distance between the current location of the terminal device and the third reference location is less than or equal to a sixth threshold; the current location of the terminal device is within the location range indicated by the second location reference area.
  • the configuration information is used to configure one or more of the following: the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference position, the third reference position, and the second position reference area.
  • one or more of the third threshold, the fourth threshold, the fifth threshold, the sixth threshold, the second reference position, the third reference position, and the second location reference area are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device and a second measurement result of the neighboring cell of the terminal device.
  • the first condition includes one or more of the following: the first measurement result of the serving cell is greater than or equal to a seventh threshold and the first measurement result of the neighboring cell is greater than or equal to an eighth threshold; the distance between the current location of the terminal device and the fourth reference location is less than or equal to a ninth threshold and the distance between the current location of the terminal device and the fifth reference location is less than or equal to a tenth threshold; the current location of the terminal device is within the location range indicated by the third location reference area.
  • the configuration information is used to configure one or more of the following: the seventh threshold, the eighth threshold, the ninth threshold, the tenth threshold, the fourth reference position, the fifth reference position, and the third position reference region.
  • one or more of the seventh threshold, the eighth threshold, the ninth threshold, the tenth threshold, the fourth reference position, the fifth reference position, and the third position reference region are configured according to one or more of the following granularities: terminal device, frequency point, cell.
  • the network device further includes a receiving module 620, configured to receive first capability information sent by the terminal device, the first capability information being used to indicate whether the terminal device supports reasoning for performing the first function based on the first condition.
  • the first capability information is indicated at one or more of the following granularities: frequency range, carrier, frequency band, and frequency band combination.
  • the first function is used to infer a second measurement result of the serving cell of the terminal device and/or a second measurement result of the neighboring cells of the terminal device.
  • the transmitting module 610 may be a transceiver 730.
  • the network device 600 may also include a processor 710 and a memory 720, as shown in FIG7.
  • Figure 7 is a schematic structural diagram of a communication device according to an embodiment of this application.
  • the dashed lines in Figure 7 indicate that the unit or module is optional.
  • This device 700 can be used to implement the methods described in the above method embodiments.
  • Device 700 can be a chip, a terminal device, or a network device.
  • the apparatus 700 may include one or more processors 710.
  • the processor 710 may support the apparatus 700 in implementing the methods described in the preceding method embodiments.
  • the processor 710 may be a general-purpose processor or a special-purpose processor.
  • the processor may be a central processing unit (CPU).
  • the processor may be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • the general-purpose processor may be a microprocessor or any conventional processor.
  • the apparatus 700 may also include one or more memories 720.
  • the memories 720 store a program that can be executed by the processor 710, causing the processor 710 to perform the methods described in the preceding method embodiments.
  • the memories 720 may be independent of the processor 710 or integrated within the processor 710.
  • the device 700 may also include a transceiver 730.
  • the processor 710 can communicate with other devices or chips via the transceiver 730.
  • the processor 710 can send and receive data with other devices or chips via the transceiver 730.
  • This application also provides a computer-readable storage medium for storing a program.
  • This computer-readable storage medium can be applied to a terminal device or network device provided in this application embodiment, and the program causes a computer to execute the methods performed by the terminal device or network device in the various embodiments of this application.
  • the application also provides a computer program product.
  • the computer program product includes a program.
  • This computer program product can be applied to a terminal device or network device provided in this application embodiment, and the program causes a computer to execute the methods performed by the terminal device or network device in the various embodiments of this application.
  • This application also provides a computer program.
  • This computer program can be applied to the terminal device or network device provided in this application, and the computer program causes the computer to execute the methods performed by the terminal device or network device in various embodiments of this application.
  • the term "instruction" can be a direct instruction, an indirect instruction, or an indication of a relationship.
  • a instructing B can mean that A directly instructs B, such as B being able to obtain information through A; it can also mean that A indirectly instructs B, such as A instructing C, so B can obtain information through C; or it can mean that there is a relationship between A and B.
  • B corresponding to A means that B is associated with A, and B can be determined based on A.
  • determining B based on A does not mean that B is determined solely based on A; B can also be determined based on A and/or other information.
  • correlate can indicate a direct or indirect correspondence between two things, or an association between two things, or a relationship of instruction and being instructed, configuration and being configured, etc.
  • the term “comprising” can refer to direct inclusion or indirect inclusion.
  • “comprising” in the embodiments of this application can be replaced with “instructing” or “used to determine”.
  • "A includes B” can be replaced with "A instructs B” or "A is used to determine B”.
  • predefined or “preconfigured” can be implemented by pre-storing corresponding codes, tables, or other means that can be used to indicate relevant information in the device (e.g., including terminal devices and network devices).
  • predefined can refer to what is defined in the protocol.
  • the "protocol” may refer to a standard protocol in the field of communication, such as the LTE protocol, the NR protocol, and related protocols applied to future communication systems. This application does not limit this.
  • the term "and/or” is merely a description of the relationship between related objects, indicating that three relationships can exist.
  • a and/or B can represent: A existing alone, A and B existing simultaneously, or B existing alone.
  • the character "/" in this document generally indicates that the preceding and following related objects have an "or" relationship.
  • the disclosed systems, apparatuses, and methods can be implemented in other ways.
  • the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods.
  • multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed.
  • the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.
  • the units described as separate components may or may not be physically separate.
  • the components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
  • the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.
  • implementation can be achieved entirely or partially through software, hardware, firmware, or any combination thereof.
  • software When implemented using software, it can be implemented entirely or partially in the form of a computer program product.
  • the computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the processes or functions described in the embodiments of this application are generated.
  • the computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device.
  • the computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another.
  • the computer instructions can be transmitted from one website, computer, server, or data center to another via wired (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means.
  • the computer-readable storage medium can be any available medium that a computer can read or a data storage device such as a server or data center that integrates one or more available media.
  • the available media may be magnetic media (e.g., floppy disks, hard disks, magnetic tapes), optical media (e.g., digital video discs (DVDs)), or semiconductor media (e.g., solid-state drives (SSDs)).

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Abstract

提供了一种用于无线通信的方法、终端设备和网络设备。该用于无线通信的方法包括:第一条件满足时,终端设备执行第一功能的推理;和/或,所述第一条件不满足时,所述终端设备不执行或停止执行所述第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。

Description

用于无线通信的方法、终端设备和网络设备 技术领域
本申请涉及通信技术领域,并且更为具体地,涉及一种用于无线通信的方法、终端设备和网络设备。
背景技术
人工智能(artificial intelligence,AI)功能和/或AI模型的推理过程可以理解为是根据模型输入获得模型输出的过程。有些情况下,使用AI功能和/或AI模型的推理过程获得的结果的精度比较低,从而可能导致通信系统的性能下降。因此,如何提升使用AI功能和/或AI模型的推理过程获得的结果的精度是亟需解决的问题。
发明内容
本申请提供了一种用于无线通信的方法、终端设备和网络设备。下面对本申请涉及的各个方面进行介绍。
第一方面,提供了一种用于无线通信的方法,包括:第一条件满足时,终端设备执行第一功能的推理;和/或,所述第一条件不满足时,所述终端设备不执行或停止执行所述第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
第二方面,提供了一种用于无线通信的方法,包括:网络设备向终端设备发送配置信息,所述配置信息用于配置第一条件关联的配置,所述第一条件用于终端设备确定是否执行第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
第三方面,提供了一种终端设备,包括:执行模块,所述执行模块用于:第一条件满足时,执行第一功能的推理;和/或,所述第一条件不满足时,不执行或停止执行所述第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
第四方面,提供了一种网络设备,包括:发送模块,用于向终端设备发送配置信息,所述配置信息用于配置第一条件关联的配置,所述第一条件用于终端设备确定是否执行第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
第五方面,提供了一种终端设备,包括处理器、存储器,所述存储器用于存储一个或多个计算机程序,所述处理器用于调用所述存储器中的计算机程序使得所述终端设备执行第一方面的方法中的部分或全部步骤。
第六方面,提供了一种网络设备,包括处理器、存储器以及通信接口,所述存储器用于存储一个或多个计算机程序,所述处理器用于调用所述存储器中的计算机程序使得所述网络设备执行第二方面的方法中的部分或全部步骤。
第七方面,本申请实施例提供了一种通信系统,该系统包括上述的终端设备和/或网络设备。在另一种可能的设计中,该系统还可以包括本申请实施例提供的方案中与该终端设备或网络设备进行交互的其他设备。
第八方面,本申请实施例提供了一种计算机可读存储介质,所述计算机可读存储介质存储有计算机程序,所述计算机程序使得计算机执行上述各个方面的方法中的部分或全部步骤。
第九方面,本申请实施例提供了一种计算机程序产品,其中,所述计算机程序产品包括存储了计算机程序的非瞬时性计算机可读存储介质,所述计算机程序可操作来使计算机执行上述各个方面的方法中的部分或全部步骤。在一些实现方式中,该计算机程序产品可以为一个软件安装包。
第十方面,本申请实施例提供了一种芯片,该芯片包括存储器和处理器,处理器可以从存储器中调用并运行计算机程序,以实现上述各个方面的方法中所描述的部分或全部步骤。
本申请实施例中,终端设备能够基于第一条件确定是否执行AI功能和/或AI模型的推理过程,有利于保证AI功能和/或AI模型的推理过程发生在合适的条件下,从而有利于提高AI功能和/或AI模型推理输出的结果的精度,也有利于避免低精度的AI功能和/或AI模型推理导致通信系统的性能下降。
附图说明
图1是可应用本申请实施例的无线通信系统的系统架构示例图。
图2是本申请实施例提供的第一位置参考区域的示例图。
图3是本申请实施例提供的第三位置参考区域的示例图。
图4是本申请实施例提供的用于无线通信的方法的流程示意图。
图5是本申请实施例提供的终端设备的结构示意图。
图6是本申请实施例提供的网络设备的结构示意图。
图7是本申请实施例提供的通信装置的示意性结构图。
具体实施方式
通信系统架构
图1是可应用本申请实施例的无线通信系统100的系统架构示例图。该无线通信系统100可以包括网络设备110和终端设备120。网络设备110可以是与终端设备120通信的设备。网络设备110可以为特定的地理区域提供通信覆盖,并且可以与位于该覆盖区域内的终端设备120进行通信。
图1示例性地示出了一个网络设备和两个终端设备,可选地,该无线通信系统100可以包括多个网络设备并且每个网络设备的覆盖范围内可以包括其它数量的终端设备,本申请实施例对此不做限定。
可选地,该无线通信系统100还可以包括网络控制器、移动管理实体等其他网络实体,本申请实施例对此不作限定。
应理解,本申请实施例的技术方案可以应用于各种通信系统,例如:第五代(5th generation,5G)系统或新无线(new radio,NR)、长期演进(long term evolution,LTE)系统、LTE频分双工(frequency division duplex,FDD)系统、LTE时分双工(time division duplex,TDD)等。本申请提供的技术方案还可以应用于未来的通信系统,如第六代移动通信系统,又如卫星通信系统,等等。
本申请实施例中的终端设备也可以称为用户设备(user equipment,UE)、接入终端、用户单元、用户站、移动站、移动台(mobile station,MS)、移动终端(mobile terminal,MT)、远方站、远程终端、移动设备、用户终端、终端、无线通信设备、用户代理或用户装置。本申请实施例中的终端设备可以是指向用户提供语音和/或数据连通性的设备,可以用于连接人、物和机,例如具有无线连接功能的手持式设备、车载设备等。本申请的实施例中的终端设备可以是手机(mobile phone)、平板电脑(Pad)、笔记本电脑、掌上电脑、移动互联网设备(mobile internet device,MID)、可穿戴设备,虚拟现实(virtual reality,VR)设备、增强现实(augmented reality,AR)设备、工业控制(industrial control)中的无线终端、无人驾驶(self driving)中的无线终端、远程手术(remote medical surgery)中的无线终端、智能电网(smart grid)中的无线终端、运输安全(transportation safety)中的无线终端、智慧城市(smart city)中的无线终端、智慧家庭(smart home)中的无线终端等。可选地,UE可以用于充当基站。例如,UE可以充当调度实体,其在V2X或D2D等中的UE之间提供侧行链路信号。比如,蜂窝电话和汽车利用侧行链路信号彼此通信。蜂窝电话和智能家居设备之间通信,而无需通过基站中继通信信号。
本申请实施例中的接入网设备可以是用于与终端设备通信的设备,该接入网设备也可以称为无线接入网设备,如接入网设备可以是基站。本申请实施例中的接入网设备可以是指将终端设备接入到无线网络的无线接入网(radio access network,RAN)节点(或设备)。基站可以广义的覆盖如下中的各种名称,或与如下名称进行替换,比如:节点B(NodeB)、演进型基站(evolved NodeB,eNB)、下一代基站(next generation NodeB,gNB)、中继站、传输点(transmitting and receiving point,TRP)、发射点(transmitting point,TP)、主站MeNB、辅站SeNB、多制式无线(MSR)节点、家庭基站、网络控制器、接入节点、无线节点、接入点(access point,AP)、传输节点、收发节点、基带单元(base band unit,BBU)、射频拉远单元(Remote Radio Unit,RRU)、有源天线单元(active antenna unit,AAU)、射频头(remote radio head,RRH)、集中单元(centralized unit,CU)、分布式单元(distributed unit,DU)、集中单元-控制面(CU-control plane,CU-CP)、集中单元-用户面(CU-user plane,CU-UP)、定位节点等。基站可以是宏基站、微基站、中继节点、施主节点或类似物,或其组合。基站还可以指用于设置于前述设备或装置内的通信模块、调制解调器或芯片。基站还可以是移动交换中心以及设备到设备D2D、车辆外联(vehicle-to-everything,V2X)、机器到机器(machine-to-machine,M2M)通信中承担基站功能的设备、6G网络中的网络侧设备、未来的通信系统中承担基站功能的设备等。基站可以支持相同或不同接入技术的网络。本申请的实施例对接入网设备所采用的具体技术和具体设备形态不做限定。
基站可以是固定的,也可以是移动的。例如,直升机或无人机可以被配置成充当移动基站,一个或多个小区可以根据该移动基站的位置移动。在其他示例中,直升机或无人机可以被配置成用作与另一基站通信的设备。
在一些部署中,本申请实施例中的接入网设备可以是指CU或者DU,或者,接入网设备包括CU和DU。gNB还可以包括AAU。
接入网设备和终端设备可以部署在陆地上,包括室内或室外、手持或车载;也可以部署在水面上;还可以部署在空中的飞机、气球和卫星上。本申请实施例中对接入网设备和终端设备所处的场景不做限定。
应理解,本申请中的通信设备的全部或部分功能也可以通过在硬件上运行的软件功能来实现,或者通过平台(例如云平台)上实例化的虚拟化功能来实现。
小区切换
移动通信系统(如NR系统)中,终端设备的服务小区会伴随着终端设备的移动发生变化,服务小区变化的过程被称作小区切换。通常来讲,为了辅助网络设备及时感知终端设备的移动状态,网络设备可以提前为终端设备配置测量对象。在满足测量对象关联的测量结果上报事件时,终端设备会将一个或多个小区的测量结果发送给网络设备。如此一来,网络设备可以基于终端设备上报的测量结果以及本地获得的额外信息(比如:各个邻小区的负载状态等)选择一个或多个邻小区发起切换请求。在一些实现方式中,终端设备的当前服务小区得到某个邻小区的接纳反馈后,会向终端设备转发目标小区生成的切换命令,该切换命令例如可以包含在接纳反馈信息中。终端设备成功接收到目标小区生成的切换命令后,可以向目标小区发起连接建立过程,连接建立成功即完成整个空口切换流程。
AI功能和/或AI模型的推理过程一般指的是AI功能和/或AI模型根据一个或多个模型输入获得模型输出的过程。
有些情况下,使用AI功能和/或AI模型的推理过程获得的结果的精度较高,但是,有些情况下,使用AI功能和/或AI模型的推理过程获得的结果的精度比较低,从而可能导致通信系统的性能下降。
针对上述问题,发明人发现,AI功能和/或AI模型的推理过程一般存在较优推理条件(即下文的第一条件)。如果在较优推理条件下进行AI功能和/或AI模型的推理,推理获得的结果的精度一般较高。如果不在较优推理条件下进行AI功能和/或AI模型的推理,推理获得的结果的精度得不到保证。基于此,发明人提出,可以基于第一条件确定是否执行AI功能和/或AI模型的推理过程,有利于保证AI功能和/或AI模型的推理过程发生在合适的条件下,从而有利于提高AI功能和/或AI模型推理输出的结果的精度,也有利于避免低精度的AI功能和/或AI模型推理导致通信系统的性能下降。
下面对第一条件进行介绍。
在本申请实施例中,第一条件可以用于确定(或判断)是否执行第一功能的推理,例如,第一条件可以用于终端设备确定是否执行第一功能的推理。
在一些实施例中,第一功能可以包括以下中的一种或多种:AI功能,AI模型。
在一些实施例中,第一功能的推理可以通过一种或多种AI模型来实现。
本申请实施例对第一功能不做限定。也就是说,在本申请实施例中,第一功能可以是任意的AI功能和/或AI模型,例如,第一功能可以是终端设备能够执行的任意的AI功能和/或AI模型。
在一些实施例中,第一功能可以用于以下推理过程中的一种或多种:小区测量结果预测的推理过程,小区切换判决的推理过程,数据重传判决的推理过程。不过本申请实施例并不限定于此,第一功能可以应用于终端设备能够执行的任意的AI功能和/或AI模型的推理过程。
在一些实施例中,第一功能可以用于小区的测量结果的推理,其中,小区的测量结果包括波束级测量结果和/或小区级测量结果。例如,第一功能可以用于推理(或称,预测)获得终端设备的服务小区(下文简称为服务小区)的测量结果和/或终端设备的邻小区(或称,终端设备的服务小区的邻小区,下文简称为邻小区)的测量结果。
在一些实施例中,第一功能用于推理获得服务小区的测量结果和/或邻小区的测量结果可以包括:第一功能用于推理获得服务小区的测量结果。
在一些实施例中,第一功能用于推理获得服务小区的测量结果和/或邻小区的测量结果可以包括:第一功能用于推理获得邻小区的测量结果。
在一些实施例中,第一功能用于推理获得服务小区的测量结果和/或邻小区的测量结果可以包括:第一功能用于推理获得服务小区的测量结果和邻小区的测量结果。
在一些实施例中,第一条件与以下中的一种或多种相关:终端设备获得的测量结果(或称,终端设备获得的实际测量结果,或称,终端设备对参考信号进行实际测量获得的测量结果),终端设备的位置(或称,终端设备所处的位置)。如此一来,终端设备能够根据终端设备获得的测量结果和/或终 端设备的位置确定是否执行第一功能的推理。例如,当终端设备获得的测量结果较低和/或终端设备位于小区边缘时不执行/停止执行第一功能的推理,这样有利于提升第一功能的推理结果的精度。这是考虑到,第一功能对应的模型训练过程中,大部分训练数据都是终端设备在实际测量结果较高的情况下收集的数据,或者是终端设备距离小区中心较近时实际测量的数据;而小部分训练数据是终端设备在实际测量结果较低的情况下收集的数据,或者是终端设备位于小区边缘时实际测量的数据。如此一来,当终端设备的实际测量结果较低或者终端设备位于小区边缘时,使用这样的模型进行推理获得的结果的精度会比较低。因此,本申请实施例在使用第一功能进行推理时考虑终端设备获得的测量结果和/或终端设备的位置,有利于提升第一模型的推理结果的精度。
也就是说,在一些实施例中,终端设备可以根据实际测量结果来进行时域上和/或空域上的测量结果推理(或预测)。因此,为了便于区分,本申请实施例利用第一测量结果和第二测量结果来区分终端设备的实际测量结果和推理得到的测量结果。其中,第一测量结果可以用于指示终端设备的实际测量结果(即,终端设备获得的实际测量结果,或终端设备对参考信号进行实际测量获得的测量结果)。第二测量结果可以用于指示终端设备推理得到的测量结果(即,终端设备预测得到的测量结果,或终端设备获得的预测测量结果)。
例如,服务小区的第一测量结果可以用于指示终端设备的服务小区的实际测量结果,即终端设备实际测量得到的服务小区的测量结果。服务小区的第二测量结果可以用于指示终端设备推理得到的服务小区的测量结果。
又例如,邻小区的第一测量结果可以用于指示终端设备的邻小区的实际测量结果,即终端设备实际测量得到的邻小区的测量结果。邻小区的第二测量结果可以用于指示终端设备推理得到的邻小区的测量结果。
在一些实施例中,第一条件可以与以下中的一种或多种相关:服务小区的第一测量结果,邻小区的第一测量结果,终端设备的当前位置与一个或多个参考位置之间的距离,终端设备是否处于位置参考区域内。
作为一种实现方式,在第一功能用于推理获得服务小区的第二测量结果和/或邻小区的第二测量结果的场景下,第一条件可以与以下中的一种或多种相关:服务小区的第一测量结果,邻小区的第一测量结果,终端设备的当前位置与一个或多个参考位置之间的距离,终端设备是否处于位置参考区域内。在第一功能用于推理获得服务小区的第二测量结果和/或邻小区的第二测量结果的场景下,本申请实施例可以通过第一条件优化终端设备通过AI功能预测小区的第二测量结果的推理行为,有利于减少无效的测量结果推理行为。
在一些实施例中,服务小区的测量结果和/或邻小区的测量结果可以包括以下中的一种或多种:波束级测量结果,小区级测量结果。例如,服务小区的第一测量结果和/或邻小区的第一测量结果可以包括以下中的一种或多种:波束级的第一测量结果,小区级的第一测量结果。又例如,服务小区的第二测量结果和/或邻小区的第二测量结果可以包括以下中的一种或多种:波束级的第二测量结果,小区级的第二测量结果。换句话说,通过推理过程获得的服务小区的第二测量结果或者邻小区的第二测量结果可以是波束级测量结果,或者小区级测量结果,或者波束级测量结果以及小区级测量结果。
例如,服务小区的测量结果可以包括服务小区的波束级测量结果和/或服务小区的小区级测量结果。在一些实施例中,服务小区的测量结果包括服务小区的波束级测量结果;在另一些实施例中,服务小区的测量结果包括服务小区的小区级测量结果;在又一些实施例中,服务小区的测量结果包括服务小区的波束级测量结果以及服务小区的小区级测量结果。其中,服务小区的测量结果可以是指服务小区的第一测量结果,也可以是指服务小区的第二测量结果,本申请实施例对此并不限定。
又例如,邻小区的测量结果可以包括邻小区的波束级测量结果和/或邻小区的小区级测量结果。在一些实施例中,邻小区的测量结果包括邻小区的波束级测量结果;在另一些实施例中,邻小区的测量结果包括邻小区的小区级测量结果;在又一些实施例中,邻小区的测量结果包括邻小区的波束级测量结果以及邻小区的小区级测量结果。其中,邻小区的测量结果可以是指邻小区的第一测量结果,也可以是指邻小区的第二测量结果,本申请实施例对此并不限定。
在一些实施例中,第一条件可以是协议预定义的,这种情况下,第一条件也可以称为“预设条件”。在一些实施例中,第一条件可以是网络设备配置的。
在一些实施例中,不同的场景对应的第一条件可以不同。为了便于理解,下文以第一功能用于推理获得服务小区的第二测量结果和/或邻小区的第二测量结果为例,结合场景1至场景3对第一条件进行更为详细的介绍。第一功能用于其他推理过程的情况类似,可以参考第一功能用于推理获得服务小区的第二测量结果和/或邻小区的第二测量结果的情况,为了简洁,第一功能用于其他推理过程时的第一条件不再详述。
需要说明的是,下文的场景中涉及的第一条件可以单独使用,也可以结合使用,本申请实施例对此并不限定。例如,场景1涉及的第一条件、场景2涉及的第一条件、场景3涉及的第一条件都可以单独使用。又例如,场景1涉及的第一条件和场景2涉及的第一条件可以结合使用。
场景1:第一功能用于推理获得服务小区的第二测量结果
在场景1中,第一功能的推理涉及服务小区。例如,第一功能的推理适用于服务小区,或者说,第一功能可以适用于推理获得服务小区的第二测量结果。
在场景1中,第一条件可以包括以下中的一种或多种:服务小区的第一测量结果大于或等于第一阈值,终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值,终端设备的当前位置属于(或位于)第一位置参考区域指示的位置范围内。
在一些实施例中,服务小区的第一测量结果大于或等于第一阈值可以包括:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第一阈值。
在一些实施例中,服务小区的测量结果大于或等于第一阈值可以包括:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第一阈值。本申请实施例对K的取值不做限定,示例性地,K为大于或等于1的整数,和/或,K的取值小于第一波束集合指示的全部波束的数量。
在一些实施例中,服务小区的测量结果大于或等于第一阈值可以包括:服务小区的小区级测量结果大于或等于第一阈值。
在一些实施例中,第一波束集合指示的波束为终端设备能够实际测量的服务小区的波束,所述终端设备通过网络设备发送的专用信令确认第一波束集合或者通过终端设备实现方式确定第一波束集合。也就是说,网络设备会发送第一波束集合指示的波束对应的参考信号,这种情况下,第一波束集合也可以称为set B波束集合。
在一些实施例中,第一功能用于在时域上推理获得服务小区的第二测量结果的情况下,服务小区的第一测量结果大于或等于第一阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第一阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第一阈值,服务小区的小区级测量结果大于或等于第一阈值。
在一些实施例中,第一功能用于在空域上推理获得服务小区的第二测量结果的情况下,服务小区的第一测量结果大于或等于第一阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第一阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第一阈值。
在一些实施例中,服务小区的第一测量结果对应的测量量可以包括以下中的一种或多种:参考信号接收功率(reference signal receiving power,RSRP),参考信号接收质量(reference signal receiving quality,RSRQ),信号与干扰加噪声比(signal to interference plus noise ratio,SINR),接收信号强度指示(received signal strength indicator,RSSI)。例如:服务小区的第一测量结果对应的测量量为RSRP或RSRQ或SINR或RSSI。
在一些实施例中,终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值时,可以认为,终端设备距离服务小区较近,如此一来,终端设备通过实际测量过程获得的小区的第一测量结果会比较高。
在一些实施例中,第一参考位置是服务小区对应的参考位置,或者说,第一参考位置是根据服务小区确定的。例如,第一参考位置是根据服务小区的中心位置确定的。作为一种实现方式,第一参考位置是服务小区的中心位置,比如服务小区中心所处的地理坐标位置。不过本申请实施例并不限定于此,例如,第一参考位置是距离服务小区的中心位置较近的任意位置。
在一些实施例中,终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值也可以理解或替换为以下中的一种或多种:终端设备当前位置距离服务小区中心所处的位置较近,终端设备不在服务小区的边缘。
在一些实施例中,终端设备属于第一位置参考区域指示的位置范围内时,可以认为,终端设备当前位置距离服务小区较近,如此一来,终端设备通过实际测量过程获得的小区的第一测量结果会比较高。
在一些实施例中,第一位置参考区域是根据服务小区的覆盖范围确定的。作为一种实现方式,第一位置参考区域包括服务小区的中心覆盖范围(或者说,服务小区的信号覆盖好的区域),或者,第 一位置参考区域可以位于服务小区的信号覆盖范围内。下面结合图2给出第一位置参考区域的一个示例。在图2的示例中,服务小区的覆盖范围是以服务小区的中心位置O为圆心,半径为R1的圆形范围,第一位置参考区域是图2所示的阴影区域,即第一位置参考区域是以服务小区的中心位置O为圆心,半径为R2的圆形范围,其中R2小于R1。
本申请实施例对R2与R1之间的比例关系不做具体限定。示例性地,R2可以为R1的50%,或者R2可以为R1的70%,或者R2可以为R1的80%等。
在一些实施例中,第一位置参考区域通过一个中心参考位置和一个半径参数表示,即以该中心参考位置为圆心同时以半径参数的取值为半径表示该第一位置参考区域。
在一些实施例中,第一位置参考区域通过多个参考位置的连线表示,即将多个参考位置一一连线后获得的多边形边界就是该第一位置参考区域。
在一些实施例中,终端设备的当前位置属于第一位置参考区域指示的位置范围内可以理解或替换为以下中的一种或多种:终端设备当前位置距离服务小区中心所处的位置较近,终端设备不在服务小区的边缘。
在一些实施例中,第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的一项或多项是协议预定义的。
在一些实施例中,第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的一项或多项是网络设备配置给终端设备的。本申请实施例对网络设备配置这些参数的方式不做限定。例如,第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的一项或多项是网络设备通过以下方式中的一种或多种配置给终端设备的:系统广播消息,专用信令。
本申请实施例对网络设备配置上述参数使用的专用信令不做限定。示例性地,网络设备可以通过以下信令中的一种或多种配置上述参数:无线资源控制(radio resource control,RRC)信令,媒体接入控制控制单元(media access control control element,MAC CE),下行控制信息(downlink control information,DCI)。
在一些实施例中,第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的一部分参数是协议预定义的,而第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的另一部分参数是网络设备配置给终端设备的,本申请也不排除这种实现方式。
在一些实施例中,第一阈值、第二阈值、第一参考位置以及第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,按照终端设备粒度配置上述参数可以理解为,上述参数是针对终端设备配置的,不同终端设备对应的上述参数可以不同。
在一些实施例中,如果上述参数是按照终端设备粒度配置的,则配置的上述参数可以适用于测量配置中指示的任意频点或任意小区。例如,对于终端设备A而言,终端设备A的测量配置中指示的任意频点或任意小区都使用同一套配置参数。
在一些实施例中,按照频点粒度配置上述参数可以理解为,配置的上述参数会与频点信息关联,即一个频点或一组频点可以关联同一套配置参数。
在一些实施例中,按照小区粒度配置上述参数可以理解为,配置的上述参数会与小区关联,一个小区或一组小区可以关联同一套配置参数。例如,配置的上述参数可以与小区标识关联,不同的小区标识对应的上述参数可以不同。
本申请实施例对小区标识不做限定,只要该小区标识能够用于识别小区即可。示例性地,小区标识可以包括以下中的一种或多种:小区全球标识(cell global identifier,CGI),物理小区标识(physical cell identifier,PCI),频点信息,小区索引(cell index)。
作为一个示例,配置的上述参数可以与CGI关联。
作为另一个示例,配置的上述参数可以与PCI关联。
作为又一个示例,配置的上述参数可以与PCI和频点信息关联。
作为又一个示例,配置的上述参数可以与小区索引关联。
在一些实施例中,第一条件可以包括单一的条件,即第一条件可以包括上述条件中的一种。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第一阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值。
作为一种实现方式,第一条件为终端设备的当前位置属于第一位置参考区域指示的位置范围内。
在一些实施例中,第一条件可以包括上述条件中的多种。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第一阈值,且终端设备的当 前位置与第一参考位置之间的距离小于或等于第二阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第一阈值,且终端设备的当前位置属于第一位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值,且终端设备的当前位置属于第一位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第一阈值,且终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值,且终端设备的当前位置属于第一位置参考区域指示的位置范围内。
在一些实施例中,对于上述第一条件的任意一种实现方式,如果第一条件涉及的参数在一次配置过程中出现(present),则终端设备需要判断对应的第一条件是否满足;否则,如果第一条件涉及的参数在一次配置过程中不出现(not present),则终端设备不需要判断对应的第一条件是否满足。例如,假设第一条件为服务小区的第一测量结果大于或等于第一阈值,此时,第一条件涉及的参数为第一阈值,且网络设备可以通过专用信令(该专用信令承载于第一消息中)将第一阈值配置给终端设备。那么,在一次配置过程中,如果网络设备发送给终端设备的第一消息中包含的第一阈值出现,则终端设备需要判断对应的第一条件是否满足,然后根据第一条件确定是否推理获得服务小区的第二测量结果;如果网络设备发送给终端设备的第一消息中包含的第一阈值不出现,则终端设备不需要判断对应的第一条件是否满足。在第一消息中包含的第一阈值不出现的情况下,是否推理获得服务小区的第二测量结果可以取决于其他条件(比如,用于测量推理的参考信号配置是否配置)。第一条件的其他实现方式按照上述方式类似处理,这里不再一一举例。
在场景1中,终端设备越靠近服务小区中心,则终端设备测量得到的服务小区的第一测量结果越高,测量得到的较高的测量结果有利于终端设备执行精度更高的测量结果推理。
在场景1中,终端设备执行的第二测量结果推理适用于服务小区,相比推理邻小区的第二测量结果,推理服务小区的第二测量结果从终端设备实现角度更简单。这是因为,终端设备对服务小区的测量通常是一直进行的,也就是说,终端设备对服务小区进行测量结果推理的需求是一直存在的。但是否开启邻小区的测量推理取决于服务小区的第一测量结果是否足够低,也就是说,对邻小区进行第二测量结果推理的需求并不是一直存在。
场景2:第一功能用于推理获得邻小区的第二测量结果
在场景2中,第一功能的推理涉及邻小区。例如,第一功能的推理适用于邻小区,或者说,第一功能可以适用于推理获得邻小区的第二测量结果。
在场景2中,第一条件可以包括以下中的一种或多种:服务小区的第一测量结果小于或等于第三阈值;终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;邻小区的第一测量结果大于或等于第五阈值;终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;终端设备的当前位置属于第二位置参考区域指示的位置范围内。
在一些实施例中,服务小区的第一测量结果小于或等于第三阈值可以包括:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于第三阈值。
在一些实施例中,服务小区的第一测量结果小于或等于第三阈值可以包括:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于第三阈值。本申请实施例对N的取值不做限定,示例性地,N为大于或等于1的整数,和/或,N的取值小于第一波束集合指示的全部波束的数量。
在一些实施例中,N与K的取值可以相同。在一些实施例中,N与K的取值可以不同。
在一些实施例中,服务小区的第一测量结果小于或等于第三阈值可以包括:服务小区的小区级测量结果小于或等于第三阈值。
在一些实施例中,第一波束集合指示的波束为终端设备能够实际测量的服务小区的波束。也就是说,网络设备会发送第一波束集合指示的波束对应的参考信号,这种情况下,第一波束集合也可以称为set B波束集合。
在一些实施例中,第一功能用于在时域上推理获得邻小区的第二测量结果的情况下,服务小区的第一测量结果小于或等于第三阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于第三阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于第三阈值,服务小区的小区级测量结果小于或等于第三阈值。
在一些实施例中,第一功能用于在空域上推理获得邻小区的第二测量结果的情况下,服务小区的第一测量结果小于或等于第三阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的 服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于第三阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于第三阈值。
在一些实施例中,服务小区的第一测量结果对应的测量量可以包括以下中的一种或多种:RSRP,RSRQ,SINR,RSSI。例如:服务小区的第一测量结果对应的测量量为RSRP或RSRQ或SINR或RSSI。
在一些实施例中,邻小区的第一测量结果大于或等于第五阈值可以包括:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第五阈值。
在一些实施例中,邻小区的第一测量结果大于或等于第五阈值可以包括:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第五阈值。本申请实施例对M的取值不做限定,示例性地,M为大于或等于1的整数,和/或,M的取值小于第二波束集合指示的全部波束的数量。
在一些实施例中,M与K的取值可以相同。在一些实施例中,M与K的取值可以不同。
在一些实施例中,M与N的取值可以相同。在一些实施例中,M与N的取值可以不同。
在一些实施例中,邻小区的第一测量结果大于或等于第五阈值可以包括:邻小区的小区级测量结果大于或等于第五阈值。
在一些实施例中,第二波束集合指示的波束为终端设备能够实际测量的邻小区的波束,所述终端设备通过网络设备发送的专用信令确认第二波束集合或者通过终端设备实现方式确定第二波束集合。也就是说,网络设备会发送第二波束集合指示的波束对应的参考信号,这种情况下,第二波束集合也可以称为set B波束集合。
在一些实施例中,第一功能用于在时域上推理获得邻小区的第二测量结果的情况下,邻小区的第一测量结果大于或等于第五阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第五阈值,终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第五阈值,邻小区的小区级测量结果大于或等于第五阈值。
在一些实施例中,第一功能用于在空域上推理获得邻小区的第二测量结果的情况下,邻小区的第一测量结果大于或等于第五阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第五阈值,终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第五阈值。
在一些实施例中,邻小区的第一测量结果对应的测量量可以包括以下中的一种或多种:RSRP,RSRQ,SINR,RSSI。例如:邻小区的第一测量结果对应的测量量为RSRP或RSRQ或SINR或RSSI。
在一些实施例中,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值时,可以认为,终端设备距离服务小区较远,如此一来,终端设备通过实际测量过程获得的服务小区的第一测量结果会比较低。
在一些实施例中,第二参考位置是服务小区对应的参考位置,或者说,第二参考位置是根据服务小区确定的。例如,第二参考位置是根据服务小区的中心位置确定的。作为一种实现方式,第二参考位置是服务小区的中心位置,比如服务小区中心所处的地理坐标位置。不过本申请实施例并不限定于此,例如,第二参考位置是距离服务小区的中心位置较近的任意位置。
在一些实施例中,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值也可以理解或替换为以下中的一种或多种:终端设备当前位置距离服务小区中心所处的位置较远,终端设备在服务小区的边缘。
在一些实施例中,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值时,可以认为,终端设备距离邻小区较近,如此一来,终端设备通过实际测量过程获得的邻小区的第一测量结果会比较高。
在一些实施例中,第三参考位置是邻小区对应的参考位置,或者说,第三参考位置是根据邻小区确定的。例如,第三参考位置是根据邻小区的中心位置确定的。作为一种实现方式,第三参考位置是邻小区的中心位置,比如邻小区中心所处的地理坐标位置。不过本申请实施例并不限定于此,例如,第三参考位置是距离邻小区的中心位置较近的任意位置。
在一些实施例中,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值也可以理解或替换为以下中的一种或多种:终端设备当前位置距离邻小区中心所处的位置较近,终端设备不在邻小区的边缘。
在一些实施例中,终端设备属于第二位置参考区域指示的位置范围内时,可以认为,终端设备距离邻小区较近,如此一来,终端设备通过实际测量过程获得的邻小区的第一测量结果会比较高。
在一些实施例中,第二位置参考区域是根据邻小区的覆盖范围确定的。作为一种实现方式,第二位置参考区域包括邻小区的中心覆盖范围(或者说,邻小区的信号覆盖好的区域),或者,第二位置参考区域可以位于邻小区的信号覆盖范围内。关于第二位置参考区域与邻小区的覆盖范围的关系可以参考第一位置参考区域与服务小区的覆盖范围的关系(即,可以参见图2的示例),为了简洁,此处不再赘述。
在一些实施例中,终端设备的当前位置位于第二位置参考区域指示的位置范围内可以理解或替换为以下中的一种或多种:终端设备当前位置距离邻小区中心所处的位置较近,终端设备不在邻小区的边缘。
在一些实施例中,第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的一项或多项是协议预定义的。
在一些实施例中,第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的一项或多项是网络设备配置给终端设备的。本申请实施例对网络设备配置这些参数的方式不做限定。例如,第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的一项或多项是网络设备通过以下方式中的一种或多种配置给终端设备的:系统广播消息,专用信令。
本申请实施例对网络设备配置上述参数使用的专用信令不做限定。示例性地,网络设备可以通过以下信令中的一种或多种配置上述参数:RRC信令,MAC CE,DCI。
在一些实施例中,第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的一部分参数是协议预定义的,而第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的另一部分参数是网络设备配置给终端设备的,本申请也不排除这种实现方式。
在一些实施例中,第三阈值、第四阈值、第五阈值、第六阈值、第二参考位置、第三参考位置、第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,按照终端设备粒度配置上述参数可以理解为,上述参数是针对终端设备配置的,不同终端设备对应的上述参数可以不同。
在一些实施例中,如果上述参数是按照终端设备粒度配置的,则配置的上述参数可以适用于测量配置中指示的任意频点或任意小区。例如,对于终端设备A而言,终端设备A的测量配置中指示的任意频点或任意小区都使用同一套配置参数。
在一些实施例中,按照频点粒度配置上述参数可以理解为,配置的上述参数会与频点信息关联,即一个频点或一组频点可以关联同一套配置参数。
在一些实施例中,按照小区粒度配置上述参数可以理解为,配置的上述参数会与小区关联,一个小区或一组小区可以关联同一套配置参数。例如,配置的上述参数可以与小区标识关联,不同的小区标识对应的上述参数可以不同。
本申请实施例对小区标识不做限定,只要该小区标识能够用于识别小区即可。示例性地,小区标识可以包括以下中的一种或多种:CGI,PCI,频点信息,小区索引。
作为一个示例,配置的上述参数可以与CGI关联。
作为另一个示例,配置的上述参数可以与PCI关联。
作为又一个示例,配置的上述参数可以与PCI和频点信息关联。
作为又一个示例,配置的上述参数可以与小区索引关联。
在一些实施例中,第一条件可以包括单一的条件,即第一条件可以包括上述条件中的一种。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值。
作为一种实现方式,第一条件为邻小区的第一测量结果大于或等于第五阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为终端设备的当前位置属于第二位置参考区域指示的位置范围内。
在一些实施例中,第一条件可以包括上述条件中的多种。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,且终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,且邻小区的第一测量结果大于或等于第五阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且邻小区的第一测量结果大于或等于第五阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且邻小区的第一测量结果大于或等于第五阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为邻小区的第一测量结果大于或等于第五阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前 位置与第二参考位置之间的距离大于或等于第四阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,邻小区的第一测量结果大于或等于第五阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果小于或等于第三阈值,终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值,邻小区的第一测量结果大于或等于第五阈值,终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值,且终端设备的当前位置属于第二位置参考区域指示的位置范围内。
在一些实施例中,对于上述第一条件的任意一种实现方式,如果第一条件涉及的参数在一次配置过程中出现,则终端设备需要判断对应的第一条件是否满足;否则,如果第一条件涉及的参数在一次配置过程中不出现,则终端设备不需要判断对应的第一条件是否满足。例如,假设第一条件为服务小区的第一测量结果小于或等于第三阈值,此时,第一条件涉及的参数为第三阈值,且网络设备可以通过专用信令(该专用信令承载于第一消息中)将第三阈值配置给终端设备。那么,在一次配置过程中,如果网络设备发送给终端设备的第一消息中包含的第三阈值出现,则终端设备需要判断对应的第一条件是否满足,然后根据第一条件确定是否推理获得邻小区的第二测量结果;如果网络设备发送给终端设备的第一消息中包含的第三阈值不出现,则终端设备不需要判断对应的第一条件是否满足。在第一消息中包含的第三阈值不出现的情况下,是否推理获得邻小区的第二测量结果可以取决于其他条件(比如,用于测量推理的参考信号配置是否配置)。第一条件的其他实现方式按照上述方式类似处理,这里不再一一举例。
在场景2中,终端设备越靠近邻小区中心或者越远离服务小区中心,终端设备测量得到的邻小区的测量结果越高,测量得到的较高的测量结果有利于终端设备执行精度更高的邻小区测量结果推理。
在场景2中,终端设备执行的测量结果推理适用于邻小区,测量邻小区通常是为了辅助网络设备实现移动性控制,通过第一条件控制邻小区的测量结果推理可以保证推理得到的邻小区的测量结果的精度,便于网络设备做出合适的切换判决。
场景3:第一功能用于推理获得服务小区的第二测量结果以及邻小区的第二测量结果
在场景3中,第一功能可以用于推理获得服务小区的第二测量结果以及邻小区的第二测量结果,或者说,第一功能的推理涉及服务小区和邻小区。
作为一种实现方式,针对第一功能用于推理获得服务小区的第二测量结果以及邻小区的第二测量结果的场景,服务小区和邻小区可以独立控制其对应的推理过程。也就是说,服务小区的第二测量结果的推理与邻小区的第二测量结果的推理是相互独立进行的。其中,针对服务小区的第二测量结果的推理可以采用上述场景1的实现方式,针对邻小区的第二测量结果的推理可以采用上述场景2的实现方式,此处不再赘述。
在服务小区和邻小区独立控制第二测量结果的推理过程的情况下,同时考虑服务小区和邻小区的第二测量结果的推理有利于保证终端设备推理的任意小区的第二测量结果的精度,同时也能最大程度利用AI技术来实现测量推理的优势,因为终端设备的服务小区以及邻小区都可以在第一条件满足时借助AI推理技术节省测量开销。
作为另一种实现方式,针对第一功能用于推理获得服务小区的第二测量结果以及邻小区的第二测量结果的场景,服务小区的推理过程和邻小区的推理过程是联合控制的,即服务小区的推理过程和邻小区的推理过程是同时进行的。也就是说,同一种第一条件同时用于判断是否开启服务小区的第二测量结果的推理和邻小区的第二测量结果的推理。
在服务小区的推理过程和邻小区的推理过程联合控制的情况下,第一条件可以包括以下中的一种或多种:服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值;终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;终端设备的当前位置属于第三位置参考区域指示的位置范围内。
在一些实施例中,服务小区的第一测量结果大于或等于第七阈值可以包括:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第七阈值。
在一些实施例中,服务小区的第一测量结果大于或等于第七阈值可以包括:终端设备通过实际测 量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第七阈值。本申请实施例对K的取值不做限定,示例性地,K为大于或等于1的整数,和/或,K的取值小于第一波束集合指示的全部波束的数量。
在一些实施例中,服务小区的第一测量结果大于或等于第七阈值可以包括:服务小区的小区级测量结果大于或等于第七阈值。
在一些实施例中,第一波束集合指示的波束为终端设备能够实际测量的服务小区的波束。也就是说,网络设备会发送第一波束集合指示的波束对应的参考信号,这种情况下,第一波束集合也可以称为set B波束集合。
在一些实施例中,第一功能用于在时域上推理获得服务小区的第二测量结果和邻小区的第二测量结果的情况下,服务小区的第一测量结果大于或等于第七阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第七阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第七阈值,服务小区的小区级测量结果大于或等于第七阈值。
在一些实施例中,第一功能用于在空域上推理获得服务小区的第二测量结果和邻小区的第二测量结果的情况下,服务小区的第一测量结果大于或等于第七阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于第七阈值,终端设备通过实际测量过程获得的服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于第七阈值。
在一些实施例中,服务小区的第一测量结果对应的测量量可以包括以下中的一种或多种:RSRP,RSRQ,SINR,RSSI。例如:服务小区的第一测量结果对应的测量量为RSRP或RSRQ或SINR或RSSI。
在一些实施例中,邻小区的第一测量结果大于或等于第八阈值可以包括:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第八阈值。
在一些实施例中,邻小区的第一测量结果大于或等于第八阈值可以包括:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第八阈值。本申请实施例对M的取值不做限定,示例性地,M为大于或等于1的整数,和/或,M的取值小于第二波束集合指示的全部波束的数量。
在一些实施例中,M与K的取值可以相同。在一些实施例中,M与K的取值可以不同。
在一些实施例中,邻小区的第一测量结果大于或等于第八阈值可以包括:邻小区的小区级测量结果大于或等于第八阈值。
在一些实施例中,第二波束集合指示的波束为终端设备能够实际测量的邻小区的波束。也就是说,网络设备会发送第二波束集合指示的波束对应的参考信号,这种情况下,第二波束集合也可以称为set B波束集合。
在一些实施例中,第一功能用于在时域上推理获得服务小区的第二测量结果和邻小区的第二测量结果的情况下,邻小区的第一测量结果大于或等于第八阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第八阈值,终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第八阈值,邻小区的小区级测量结果大于或等于第八阈值。
在一些实施例中,第一功能用于在空域上推理获得服务小区的第二测量结果和邻小区的第二测量结果的情况下,邻小区的第一测量结果大于或等于第八阈值可以包括以下中的一种或多种:终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于第八阈值,终端设备通过实际测量过程获得的邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于第八阈值。
在一些实施例中,邻小区的第一测量结果对应的测量量可以包括以下中的一种或多种:RSRP,RSRQ,SINR,RSSI。例如:邻小区的第一测量结果对应的测量量为RSRP或RSRQ或SINR或RSSI。
在一些实施例中,终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值时,可以认为,终端设备距离服务小区较近,如此一来,终端设备通过实际测量过程获得的服务小区的第一测量结果会比较高。
在一些实施例中,第四参考位置是服务小区对应的参考位置,或者说,第四参考位置是根据服务小区确定的。例如,第四参考位置是根据服务小区的中心位置确定的。作为一种实现方式,第四参考 位置是服务小区的中心位置,比如,服务小区中心所处的地理坐标位置。不过本申请实施例并不限定于此,例如,第四参考位置是距离服务小区的中心位置较近的任意位置。
在一些实施例中,终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值也可以理解或替换为以下中的一种或多种:终端设备当前位置距离服务小区中心所处的位置较近,终端设备不在服务小区的边缘。
在一些实施例中,终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值时,可以认为,终端设备距离邻小区较近,如此一来,终端设备通过实际测量过程获得的邻小区的第一测量结果会比较高。
在一些实施例中,第五参考位置是邻小区对应的参考位置,或者说,第五参考位置是根据邻小区确定的。例如,第五参考位置是根据邻小区的中心位置确定的。作为一种实现方式,第五参考位置是邻小区的中心位置,比如,邻小区中心所处的地理坐标位置。不过本申请实施例并不限定于此,例如,第五参考位置是距离邻小区的中心位置较近的任意位置。
在一些实施例中,终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值也可以理解或替换为以下中的一种或多种:终端设备当前位置距离邻小区中心所处的位置较近,终端设备不在邻小区的边缘。
在一些实施例中,终端设备属于第三位置参考区域指示的位置范围内时,可以认为,终端设备距离服务小区较近且距离邻小区较近,如此一来,终端设备通过实际测量过程获得的服务小区以及邻小区的第一测量结果会比较高。
在一些实施例中,第三位置参考区域是根据服务小区的覆盖范围和邻小区的覆盖范围确定的。作为一种实现方式,第三位置参考区域包括服务小区的信号覆盖范围和邻小区的信号覆盖范围的重叠区域的一部分。下面结合图3给出第三位置参考区域的一个示例。在图3的示例中,服务小区的信号覆盖范围是以服务小区的中心位置O1为圆心,半径为R1的圆形范围,邻小区的信号覆盖范围是以服务小区的中心位置O2为圆心,半径为R2的圆形范围,第三位置参考区域是图3所示的阴影区域。
在一些实施例中,终端设备的当前位置位于第三位置参考区域指示的位置范围内可以理解或替换为以下中的一种或多种:终端设备当前位置距离服务小区较近且距离邻小区也较近,终端设备不在服务小区的边缘且不在邻小区的边缘。
在一些实施例中,第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的一项或多项是协议预定义的。
在一些实施例中,第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的一项或多项是网络设备配置给终端设备的。本申请实施例对网络设备配置这些参数的方式不做限定。例如,第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的一项或多项是网络设备通过以下方式中的一种或多种配置给终端设备的:系统广播消息,专用信令。
本申请实施例对网络设备配置上述参数使用的专用信令不做限定。示例性地,网络设备可以通过以下信令中的一种或多种配置上述参数:RRC信令,MAC CE,DCI。
在一些实施例中,第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的一部分参数是协议预定义的,而第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的另一部分参数是网络设备配置给终端设备的,本申请也不排除这种实现方式。
在一些实施例中,第七阈值、第八阈值、第九阈值、第十阈值、第四参考位置、第五参考位置、第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,按照终端设备粒度配置上述参数可以理解为,上述参数是针对终端设备配置的,不同终端设备对应的上述参数可以不同。
在一些实施例中,如果上述参数是按照终端设备粒度配置的,则配置的上述参数可以适用于测量配置中指示的任意频点或任意小区。例如,对于终端设备A而言,终端设备A的测量配置中指示的任意频点或任意小区都使用同一套配置参数。
在一些实施例中,按照频点粒度配置上述参数可以理解为,配置的上述参数会与频点信息关联,即一个频点或一组频点可以关联同一套配置参数。
在一些实施例中,按照小区粒度配置上述参数可以理解为,配置的上述参数会与小区关联,一个小区或一组小区可以关联同一套配置参数。例如,配置的上述参数可以与小区标识关联,不同的小区标识对应的上述参数可以不同。
本申请实施例对小区标识不做限定,只要该小区标识能够用于识别小区即可。示例性地,小区标 识可以包括以下中的一种或多种:CGI,PCI,频点信息,小区索引。
作为一个示例,配置的上述参数可以与CGI关联。
作为另一个示例,配置的上述参数可以与PCI关联。
作为又一个示例,配置的上述参数可以与PCI和频点信息关联。
作为又一个示例,配置的上述参数可以与小区索引关联。
在一些实施例中,第一条件可以包括单一的条件,即第一条件可以包括上述条件中的一种。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值。
作为一种实现方式,第一条件为终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值。
作为一种实现方式,第一条件为终端设备的当前位置属于第三位置参考区域指示的位置范围内。
在一些实施例中,第一条件可以包括上述条件中的多种。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值,且终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值,且终端设备的当前位置属于第三位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值,且终端设备的当前位置属于第三位置参考区域指示的位置范围内。
作为一种实现方式,第一条件为服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值,且终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值,且终端设备的当前位置属于第三位置参考区域指示的位置范围内。
在一些实施例中,对于上述第一条件的任意一种实现方式,如果第一条件涉及的参数在一次配置过程中出现,则终端设备需要判断对应的第一条件是否满足;否则,如果第一条件涉及的参数在一次配置过程中不出现,则终端设备不需要判断对应的第一条件是否满足。例如,假设第一条件为服务小区的第一测量结果大于或等于第七阈值且邻小区的第一测量结果大于或等于第八阈值,此时,第一条件涉及的参数为第七阈值和第八阈值,且网络设备可以通过专用信令(该专用信令承载于第一消息中)将第七阈值和第八阈值配置给终端设备。那么,在一次配置过程中,如果网络设备发送给终端设备的第一消息中包含的第七阈值和第八阈值出现,则终端设备需要判断对应的第一条件是否满足,然后根据第一条件确定是否推理获得服务小区的第二测量结果以及邻小区的第二测量结果;如果网络设备发送给终端设备的第一消息中包含的第七阈值和第八阈值不出现,则终端设备不需要判断对应的第一条件是否满足。在第一消息中包含的第七阈值和第八阈值不出现的情况下,是否推理获得服务小区的第二测量结果以及邻小区的第二测量结果可以取决于其他条件(比如,用于测量推理的参考信号配置是否配置)。第一条件的其他实现方式按照上述方式类似处理,这里不再一一举例。
在服务小区的推理过程和邻小区的推理过程联合控制的情况下,上述第一条件的设置能够同时兼顾推理得到的服务小区的第二测量结果的精度需求和推理得到的邻小区的第二测量结果的精度需求。
在服务小区的推理过程和邻小区的推理过程联合控制的情况下,一方面,第二测量结果的推理同时涉及服务小区以及邻小区有利于保证终端设备推理的任意小区的第二测量结果精度,同时也能最大程度利用AI技术来实现测量推理的优势,因为终端设备的服务小区以及邻小区都可以在第一条件满足时借助AI推理技术节省测量开销;另一方面,同一种第一条件同时适用于服务小区以及邻小区,也可以简化终端设备的操作,即不用针对服务小区以及邻小区单独判断是否需要进行第二测量结果的推理。
需要说明的是,上述场景1和场景2的有益效果在场景3也存在,这里不再重复。
前文提及,第一功能可以用于小区的测量结果(或,小区的第二测量结果)的推理,下面对小区的测量结果的推理进行详细介绍。
在一种实现方式中,小区的测量结果的推理可以应用于波束管理功能相关的空域波束推理的场景。也就是说,第一功能可以用于推理一个或多个服务小区的测量结果,且该测量结果的推理用于波束管理(beam management)功能相关的波束测量结果空域(spatial domain)推理过程。在第一条件满足时,终端设备根据第一时刻下第一服务小区对应的第一波束集合指示的波束的实际测量结果(即,第一测量结果)推理获得第一时刻下第一服务小区对应的第三波束集合指示的波束的预测测量结果(即,第二测量结果)。其中,第一波束集合指示的波束为终端设备能够实际测量的波束(即网络设备会发送 第一波束集合指示的波束对应的参考信号),第三波束集合指示的波束为终端设备不能实际测量的波束(即网络设备不会发送第三波束集合指示的波束对应的参考信号)。第一服务小区为终端设备的一个或多个服务小区中的任意一个小区。例如,第一波束集合指示的波束包括波束1、波束3和波束5,第二波束集合指示的波束包括波束2、波束4和波束6,在第一条件满足时,终端设备根据第一时刻下波束1、波束3和波束5的波束测量结果推理获得相同时刻下(第一时刻)波束2、波束4和波束6的波束测量结果。
在另一种实现方式中,小区的测量结果的推理可以应用于波束管理功能相关的时域波束推理的场景。也就是说,第一功能可以用于推理一个或多个服务小区的测量结果,且该测量结果的推理用于波束管理功能相关的波束测量结果时域(temporal domain)推理过程。在第一条件满足时,终端设备根据第一时刻下(或者多个历史时刻下)第一服务小区对应的第四波束集合指示的波束的实际测量结果(即,第一测量结果)推理获得一个或者多个第二时刻下第一服务小区对应的第五波束集合指示的波束的预测测量结果(即,第二测量结果)。其中,第四波束集合指示的波束为终端设备能够实际测量的波束(即网络设备会发送第四波束集合指示的波束对应的参考信号)。第五波束集合指示的波束与第四波束集合指示的波束可以相同或者不同。第一服务小区为终端设备的一个或多个服务小区中的任意一个小区。作为一个示例,第四波束集合指示的波束包括波束1、波束3和波束5,第五波束集合指示的波束包括波束2、波束4和波束6,在第一条件满足时,终端设备根据第一时刻下波束1、波束3和波束5的波束测量结果推理获得不同时刻下(一个或者多个第二时刻)波束2、波束4和波束6的波束测量结果。作为另一个示例,第四波束集合指示的波束包括波束1、波束3和波束5,第五波束集合指示的波束包括波束1、波束3和波束5,在第一条件满足时,终端设备根据第一时刻下波束1、波束3和波束5的波束测量结果推理获得不同时刻下(一个或者多个第二时刻)波束1、波束3和波束5的波束测量结果。作为又一个示例,第四波束集合指示的波束包括波束1、波束3和波束5,第五波束集合指示的波束包括波束1、波束2、波束3、波束4、波束5和波束6,在第一条件满足时,终端设备根据第一时刻下波束1、波束3和波束5的波束测量结果推理获得不同时刻下(一个或者多个第二时刻)波束1、波束2、波束3、波束4、波束5和波束6的波束测量结果。
在又一种实现方式中,小区的测量结果的推理可以应用于无线资源管理(radio resource management,RRM)或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个服务小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下第一服务小区对应的第一波束集合指示的波束的实际测量结果(即,第一测量结果)推理获得第一时刻下第一服务小区对应的第三波束集合指示的波束的预测测量结果。接着,终端设备执行波束选择过程(即根据第一波束集合指示的波束的实际测量结果以及第三波束集合指示的波束的预测测量结果选择最多N个波束,其中,N为正整数且由网络设备配置),将选择的波束的波束测量结果进行合并获得第一时刻下第一服务小区对应的小区级测量结果(即,第二测量结果)。其中,第一波束集合指示的波束为终端设备能够实际测量的波束(即网络设备会发送第一波束集合指示的波束对应的参考信号),第三波束集合指示的波束为终端设备不能实际测量的波束(即网络设备不会发送第三波束集合指示的波束对应的参考信号)。第一服务小区为终端设备的一个或多个服务小区中的任意一个小区。
在又一种实现方式中,小区的测量结果的推理可以应用于RRM或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个服务小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下(或者多个历史时刻下)第一服务小区对应的小区级测量结果(即,第一测量结果)推理获得一个或者多个第二时刻下第一服务小区对应的小区级测量结果(即,第二测量结果)。其中,第一时刻下(或者多个历史时刻下)第一服务小区对应的小区级测量结果可以是根据实际测量过程获得的小区级测量结果(即没有任何AI推理过程参与)或者是根据AI推理过程获得的小区级测量结果。第一服务小区为终端设备的一个或多个服务小区中的任意一个小区。
在又一种实现方式中,小区的测量结果的推理可以应用于RRM或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个邻小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下第一邻小区对应的第一波束集合指示的波束的实际测量结果(即,第一测量结果)推理获得第一时刻下第一邻小区对应的第三波束集合指示的波束的预测测量结果。接着,终端设备执行波束选择过程(即根据第一波束集合指示的波束的实际测量结果以及第三波束集合指示的波束的预测测量结果选择最多N个波束,其中,N为正整数且由网络设备配置),将选择的波束的波束测量结果进行合并获得第一时刻下第一邻小区对应的小区级测量结果(即,第二测量结果)。其中,第一波束集合指示的波束为终 端设备能够实际测量的波束(即网络设备会发送第一波束集合指示的波束对应的参考信号),第三波束集合指示的波束为终端设备不能实际测量的波束(即网络设备不会发送第三波束集合指示的波束对应的参考信号)。第一邻小区为终端设备的一个或多个邻小区中的任意一个小区。
在又一种实现方式中,小区的测量结果的推理可以应用于RRM或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个邻小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下(或者多个历史时刻下)第一邻小区对应的小区级测量结果(即,第一测量结果)推理获得一个或者多个第二时刻下第一邻小区对应的小区级测量结果(即,第二测量结果)。其中,第一时刻下(或者多个历史时刻下)第一邻小区对应的小区级测量结果可以是根据实际测量过程获得的小区级测量结果(即没有任何AI推理过程参与)或者是根据AI推理过程获得的小区级测量结果。第一邻小区为终端设备的一个或多个邻小区中的任意一个小区。
在又一种实现方式中,小区的测量结果的推理可以应用于RRM或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个服务小区以及一个或多个邻小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下第一小区对应的第一波束集合指示的波束的实际测量结果(即,第一测量结果)推理获得第一时刻下第一小区对应的第三波束集合指示的波束的预测测量结果。接着,终端设备执行波束选择过程(即根据第一波束集合指示的波束的实际测量结果以及第三波束集合指示的波束的预测测量结果选择最多N个波束,其中,N为正整数且由网络设备配置),将选择的波束的波束测量结果进行合并获得第一时刻下第一小区对应的小区级测量结果(即,第二测量结果)。其中,第一波束集合指示的波束为所述终端设备能够实际测量的波束(即网络设备会发送第一波束集合指示的波束对应的参考信号),第三波束集合指示的波束为终端设备不能实际测量的波束(即网络设备不会发送第三波束集合指示的波束对应的参考信号)。第一小区为一个或多个服务小区以及一个或多个邻小区中的任意一个小区。
在又一种实现方式中,小区的测量结果的推理可以应用于RRM或层3测量功能相关的小区级测量结果推理的场景。例如,第一功能用于推理一个或多个服务小区以及一个或多个邻小区的测量结果,且该测量结果的推理用于层3测量功能相关的小区级测量结果预测过程。在第一条件满足时,终端设备根据第一时刻下(或者多个历史时刻下)第一小区对应的小区级测量结果(即,第一测量结果)推理获得一个或者多个第二时刻下第一小区对应的小区级测量结果(即,第二测量结果)。其中,第一时刻下(或者多个历史时刻下)第一小区对应的小区级测量结果可以是根据实际测量过程获得的小区级测量结果(即没有任何AI推理过程参与)或者是根据AI推理过程获得的小区级测量结果。第一小区为一个或多个服务小区以及一个或多个邻小区中的任意一个小区。
上文对第一条件进行了详细介绍,下文结合图4对本申请实施例的流程进行介绍。
图4是本申请实施例提供的用于无线通信的方法的流程示意图。图4所示的方法可以由终端设备执行,该终端设备例如可以是图1所示的终端设备120。在一些实施例中,图4所示的方法可以由终端设备和网络设备交互来执行。例如,在第一条件关联的配置由网络设备配置的情况下,图4所示的方法可以由终端设备和网络设备交互来执行。或者,在终端设备需要向网络设备发送第一能力信息的情况下,图4所示的方法可以由终端设备和网络设备交互来执行。
为了便于理解,先对本申请实施例提及的网络设备进行介绍。
在一些实施例中,本申请实施例提及的网络设备为接入网设备,该接入网设备例如可以是图1所示的接入网设备110。
在一些实施例中,本申请实施例提及的网络设备为核心网设备(或称,核心网中的网元)。示例性地,核心网设备可以包括以下中的一种:位置管理功能(location management function,LMF)网元,网络切片选择功能(network slice selection function,NSSF)网元,身份验证服务器功能(authentication server function,AUSF)网元,统一数据管理(unified data management,UDM)网元,接入和移动性管理功能(access and mobility management function,AMF)网元,会话管理功能(session management function,SMF)网元,策略控制功能(policy control function,PCF)网元,用户面功能(user plane function,UPF)网元,感知控制功能(sensing function,SF)网元,网络数据分析(network data analytics function,NWDAF)网元,AI功能管理实体。
在一些实施例中,本申请实施例提及的网络设备为运营管理和维护(operations,administration,and maintenance,OAM)设备。
下面对图4所示的方法的流程进行介绍。
图4所示的方法包括步骤S410。在步骤S410,第一条件满足时,终端设备执行第一功能的推理; 和/或,第一条件不满足时,终端设备不执行或停止执行第一功能的推理。
关于第一条件和第一功能的相关介绍可以参见上文,为了简洁,此处不再赘述。
在一些实施例中,第一条件不满足时,终端设备不执行或停止执行第一功能的推理的情况下,终端设备可以回退到使用实际测量过程获得小区的测量结果(如小区的波束级测量结果和/或小区的小区级测量结果)。
作为一种实现方式,在网络设备配置有参考波束(或称,参考信号对应的波束)的情况下,终端设备可以利用网络设备配置的参考波束执行测量。
作为另一种实现方式,在网络设备没有配置参考波束的情况下,终端设备可以请求网络设备配置参考波束或重新接收网络设备配置的参考波束,并基于网络设备配置的参考波束执行测量。
在一些实施例中,终端设备可以向网络设备上报能力,以指示终端设备是否支持基于第一条件执行第一功能的推理的能力。示例性地,在一些实施例中,图4所示的方法可以包括步骤S402,在步骤S402,终端设备向网络设备发送第一能力信息。第一能力信息用于指示终端设备是否支持基于第一条件执行第一功能的推理。以第一功能用于推理获得小区的测量结果为例,第一能力信息可以用于指示终端设备是否支持基于第一条件推理获得小区的测量结果。
在一些实施例中,终端设备是否支持基于第一条件执行第一功能的推理可以理解为,终端设备是否能够执行第一功能的推理取决于第一条件是否满足。例如,在第一条件满足时,终端设备执行第一功能的推理;在第一条件不满足时,终端设备不执行或停止执行第一功能的推理。以第一功能用于推理获得小区的测量结果为例,终端设备是否支持基于第一条件执行第一功能的推理可以理解为,终端设备是否能够执行小区的测量结果的推理取决于第一条件是否满足。例如,在第一条件满足时,终端设备执行小区的测量结果的推理;在第一条件不满足时,终端设备不执行或停止执行小区的测量结果的推理。
作为一种实现方式,如果终端设备支持基于第一条件执行第一功能的推理,终端设备可以向网络设备发送第一能力信息且该第一能力信息取值为第一值,此时,第一能力信息用于指示终端设备支持基于第一条件执行第一功能的推理。如果终端设备不支持基于第一条件执行第一功能的推理,终端设备可以向网络设备发送第一能力信息且该第一能力信息取值为第二值,此时,第一能力信息用于指示终端设备不支持基于第一条件执行第一功能的推理。示例性地,当第一能力信息的取值为第一值时,第一能力信息用于指示终端设备支持基于第一条件执行第一功能的推理。作为一个示例,第一值取值为‘1’时,第一能力信息用于指示终端设备支持基于第一条件执行第一功能的推理。作为另一个示例,第二值取值为‘0’时,第一能力信息用于指示终端设备不支持基于第一条件执行第一功能的推理。作为另一个示例,第一值取值为‘0’时,第一能力信息用于指示终端设备支持基于第一条件执行第一功能的推理。作为另一个示例,第二值取值为‘1’时,第一能力信息用于指示终端设备不支持基于第一条件执行第一功能的推理。
在一些实施例中,第一能力信息是按照以下粒度中的一种或多种指示的:频率范围(frequency range,FR),载波(或称,载波成员(carrier component,CC)),频带(band),频带组合(band combination)。
在一些实施例中,第一能力信息是按照一种粒度指示的。
作为一种实现方式,第一能力信息是按照FR粒度指示的。例如,针对FR1、FR2-1、FR2-2分别指示对应FR是否支持基于第一条件执行第一功能的推理。
作为另一种实现方式,第一能力信息是按照载波粒度指示的。
作为又一种实现方式,第一能力信息是按照频带粒度指示的。
作为又一种实现方式,第一能力信息是按照频带组合粒度指示的。
在一些实施例中,第一能力信息是按照多种粒度指示的。
作为一种实现方式,第一能力信息是按照频带以及频带组合粒度指示的。
作为另一种实现方式,第一能力信息是按照载波以及频带粒度指示的。
作为又一种实现方式,第一能力信息是按照载波、频带以及频带组合粒度指示的。
作为又一种实现方式,第一能力信息首先按照FR粒度进行区分,再在每一种FR下进一步按照载波、频带、频带组合粒度中的一种或多种进行区分。例如,第一能力信息是按照FR以及载波粒度指示的。又例如,第一能力信息是按照FR以及频带粒度指示的。又例如,第一能力信息是按照FR以及频带组合粒度指示的。又例如,第一能力信息是按照FR、频带以及频带组合粒度指示的。又例如,第一能力信息是按照FR、载波以及频带粒度指示的。又例如,第一能力信息是按照FR、载波、频带以及频带组合粒度指示的。
继续参见图4,在一些实施例中,图4所示的方法还可以包括步骤S404。在步骤S404,网络设备 向终端设备发送配置信息。该配置信息可以用于配置第一条件关联的配置,或者说,该配置信息用于确定第一条件关联的配置。
在一些实施例中,该配置信息用于配置第一条件关联的配置可以包括:该配置信息用于配置第一条件关联的参数。
作为一种实现方式,如果第一功能用于推理获得服务小区的第二测量结果,第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第一阈值;所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。这种情况下,上述配置信息可以用于配置以下中的一种或多种:所述第一阈值,所述第二阈值,所述第一参考位置,所述第一位置参考区域。
作为另一种实现方式,如果第一功能用于推理获得所述邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果小于或等于第三阈值;所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;所述邻小区的第一测量结果大于或等于第五阈值;所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。这种情况下,上述配置信息可以用于配置以下中的一种或多种:所述第三阈值,所述第四阈值,所述第五阈值,所述第六阈值,所述第二参考位置,所述第三参考位置,所述第二位置参考区域。
作为又一种实现方式,如果第一功能用于推理获得服务小区的第二测量结果和邻小区的第二测量结果,且服务小区的第二测量结果和邻小区的第二测量结果是独立控制的,第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第一阈值;所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;所述终端设备的当前位置属于第一位置参考区域指示的位置范围内;所述服务小区的第一测量结果小于或等于第三阈值;所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;所述邻小区的第一测量结果大于或等于第五阈值;所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。这种情况下,上述配置信息可以用于配置以下中的一种或多种:所述第一阈值,所述第二阈值,所述第一参考位置,所述第一位置参考区域,所述第三阈值,所述第四阈值,所述第五阈值,所述第六阈值,所述第二参考位置,所述第三参考位置,所述第二位置参考区域。
作为又一种实现方式,如果第一功能用于推理获得服务小区的第二测量结果和邻小区的第二测量结果,且服务小区的第二测量结果和邻小区的第二测量结果是联合控制的,第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。这种情况下,上述配置信息用于配置以下中的一种或多种:所述第七阈值,所述第八阈值,所述第九阈值,所述第十阈值,所述第四参考位置,所述第五参考位置,所述第三位置参考区域。
需要说明的是,本申请实施例对步骤S402和步骤S404的执行顺序不做限定。例如,步骤S402可以在步骤S404之前执行,也可以在步骤S404之后执行。
上文结合图1至图4,详细描述了本申请的方法实施例,下面结合图5至图7,详细描述本申请的装置实施例。应理解,方法实施例的描述与装置实施例的描述相互对应,因此,未详细描述的部分可以参见前面方法实施例。
图5是本申请实施例提供的终端设备的结构示意图。图5所示的终端设备500可以包括执行模块510。执行模块510可以用于:第一条件满足时,执行第一功能的推理;和/或所述第一条件不满足时,不执行或停止执行所述第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
在一些实施例中,所述第一条件与以下中的一种或多种相关:所述终端设备的服务小区的第一测量结果;所述终端设备的邻小区的第一测量结果;所述终端设备的当前位置与一个或多个参考位置之间的距离;所述终端设备是否处于位置参考区域内。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第一阈值;所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
在一些实施例中,如果所述第一条件包括所述服务小区的第一测量结果大于或等于第一阈值,所述服务小区的第一测量结果大于或等于第一阈值包括以下中的任意一种:所述终端设备通过实际测量 过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于第一阈值;所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于第一阈值,K为大于或等于1的整数;所述服务小区的小区级测量结果大于或等于所述第一阈值;其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
在一些实施例中,所述第一阈值、所述第二阈值、所述第一参考位置、所述第一位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
在一些实施例中,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果小于或等于第三阈值;所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;所述邻小区的第一测量结果大于或等于第五阈值;所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
在一些实施例中,如果所述第一条件包括所述服务小区的第一测量结果小于或等于第三阈值,所述服务小区的第一测量结果小于或等于第三阈值包括以下任意一种:所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于所述第三阈值;所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于所述第三阈值,N为大于或等于1的整数;所述服务小区的小区级测量结果小于或等于所述第三阈值;其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
在一些实施例中,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第五阈值,所述邻小区的第一测量结果大于或等于第五阈值包括以下任意一种:所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第五阈值;所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第五阈值,M为大于或等于1的整数;所述邻小区的小区级测量结果大于或等于所述第五阈值;其中,所述第二波束集合指示的波束为所述终端设备能够实际测量的邻小区的波束。
在一些实施例中,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
在一些实施例中,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果以及所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
在一些实施例中,如果所述第一条件包括服务小区的第一测量结果大于或等于第七阈值,所述服务小区的第一测量结果大于或等于第七阈值包括以下任意一种:所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于所述第七阈值;所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于所述第七阈值,K为大于或等于1的整数;所述服务小区的小区级测量结果大于或等于所述第七阈值;其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
在一些实施例中,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第八阈值,所述邻小区的第一测量结果大于或等于第八阈值包括以下任意一种:所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第八阈值;所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第八阈值,M为大于或等于1的整数;所述邻小区的小区级测量结果大于或等于所述第八阈值;其中,所述第二波束集合指示的波束为所述 终端设备能够实际测量的邻小区的波束。
在一些实施例中,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
在一些实施例中,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述终端设备的服务小区的测量结果和/或所述终端设备的邻小区的测量结果包括以下中的一种或多种:波束级测量结果;小区级测量结果。
在一些实施例中,所述终端设备还包括:发送模块520,用于向网络设备发送第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
在一些实施例中,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
在一些实施例中,所述执行模块510可以为处理器710。终端设备500还可以包括存储器720和收发器730,具体如图7所示。
图6是本申请实施例提供的网络设备的结构示意图。图6所示的网络设备600可以包括发送模块610。发送模块610可以用于向终端设备发送配置信息,所述配置信息用于配置第一条件关联的配置,所述第一条件用于终端设备确定是否执行第一功能的推理;其中,所述第一功能包括AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
在一些实施例中,所述第一条件与以下中的一种或多种相关:所述终端设备的服务小区的第一测量结果;所述终端设备的邻小区的第一测量结果;所述终端设备的当前位置与一个或多个参考位置之间的距离;所述终端设备是否处于位置参考区域内。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第一阈值;所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
在一些实施例中,所述配置信息用于配置以下中的一种或多种:所述第一阈值,所述第二阈值,所述第一参考位置,所述第一位置参考区域。
在一些实施例中,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果小于或等于第三阈值;所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;所述邻小区的第一测量结果大于或等于第五阈值;所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
在一些实施例中,所述配置信息用于配置以下中的一种或多种:所述第三阈值,所述第四阈值,所述第五阈值,所述第六阈值,所述第二参考位置,所述第三参考位置,所述第二位置参考区域。
在一些实施例中,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
在一些实施例中,所述配置信息用于配置以下中的一种或多种:所述第七阈值,所述第八阈值,所述第九阈值,所述第十阈值,所述第四参考位置,所述第五参考位置,所述第三位置参考区域。
在一些实施例中,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
在一些实施例中,所述网络设备还包括:接收模块620,用于接收所述终端设备发送的第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
在一些实施例中,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
在一些实施例中,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
在一些实施例中,所述发送模块610可以为收发器730。网络设备600还可以包括处理器710和存储器720,具体如图7所示。
图7是本申请实施例的通信装置的示意性结构图。图7中的虚线表示该单元或模块为可选的。该装置700可用于实现上述方法实施例中描述的方法。装置700可以是芯片、终端设备或网络设备。
装置700可以包括一个或多个处理器710。该处理器710可支持装置700实现前文方法实施例所描述的方法。该处理器710可以是通用处理器或者专用处理器。例如,该处理器可以为中央处理单元(central processing unit,CPU)。或者,该处理器还可以是其他通用处理器、数字信号处理器(digital signal processor,DSP)、专用集成电路(application specific integrated circuit,ASIC)、现成可编程门阵列(field programmable gate array,FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。通用处理器可以是微处理器或者该处理器也可以是任何常规的处理器等。
装置700还可以包括一个或多个存储器720。存储器720上存储有程序,该程序可以被处理器710执行,使得处理器710执行前文方法实施例所描述的方法。存储器720可以独立于处理器710也可以集成在处理器710中。
装置700还可以包括收发器730。处理器710可以通过收发器730与其他设备或芯片进行通信。例如,处理器710可以通过收发器730与其他设备或芯片进行数据收发。
本申请实施例还提供一种计算机可读存储介质,用于存储程序。该计算机可读存储介质可应用于本申请实施例提供的终端设备或网络设备中,并且该程序使得计算机执行本申请各个实施例中的由终端设备或网络设备执行的方法。
本申请实施例还提供一种计算机程序产品。该计算机程序产品包括程序。该计算机程序产品可应用于本申请实施例提供的终端设备或网络设备中,并且该程序使得计算机执行本申请各个实施例中的由终端设备或网络设备执行的方法。
本申请实施例还提供一种计算机程序。该计算机程序可应用于本申请实施例提供的终端设备或网络设备中,并且该计算机程序使得计算机执行本申请各个实施例中的由终端设备或网络设备执行的方法。
应理解,本申请中术语“系统”和“网络”可以被可互换使用。另外,本申请使用的术语仅用于对本申请的具体实施例进行解释,而非旨在限定本申请。本申请的说明书和权利要求书及所述附图中的术语“第一”、“第二”、“第三”和“第四”等是用于区别不同对象,而不是用于描述特定顺序。此外,术语“包括”和“具有”以及它们任何变形,意图在于覆盖不排他的包含。
在本申请的实施例中,提到的“指示”可以是直接指示,也可以是间接指示,还可以是表示具有关联关系。举例说明,A指示B,可以表示A直接指示B,例如B可以通过A获取;也可以表示A间接指示B,例如A指示C,B可以通过C获取;还可以表示A和B之间具有关联关系。
在本申请实施例中,“与A相应的B”表示B与A相关联,根据A可以确定B。但还应理解,根据A确定B并不意味着仅仅根据A确定B,还可以根据A和/或其它信息确定B。
在本申请实施例中,术语“对应”可表示两者之间具有直接对应或间接对应的关系,也可以表示两者之间具有关联关系,也可以是指示与被指示、配置与被配置等关系。
本申请的实施例,提到的“包括”可以指直接包括,也可以指间接包括。可选地,可以将本申请实施例中提到的“包括”替换为“指示”或“用于确定”。例如,A包括B,可以替换为A指示B,或A用于确定B。
本申请实施例中,“预定义”或“预配置”可以通过在设备(例如,包括终端设备和网络设备)中预先保存相应的代码、表格或其他可用于指示相关信息的方式来实现,本申请对于其具体的实现方式不做限定。比如预定义可以是指协议中定义的。
本申请实施例中,所述“协议”可以指通信领域的标准协议,例如可以包括LTE协议、NR协议以及应用于未来的通信系统中的相关协议,本申请对此不做限定。
本申请实施例中术语“和/或”,仅仅是一种描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。另外,本文中字符“/”,一般表示前后关联对象是一种“或”的关系。
在本申请的各种实施例中,上述各过程的序号的大小并不意味着执行顺序的先后,各过程的执行顺序应以其功能和内在逻辑确定,而不应对本申请实施例的实施过程构成任何限定。
在本申请所提供的几个实施例中,应该理解到,所揭露的系统、装置和方法,可以通过其它的方式实现。例如,以上所描述的装置实施例仅仅是示意性的,例如,所述单元的划分,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式,例如多个单元或组件可以结合或者可以集成到另一个系统,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,装置或单元的间接耦合或通信连接,可以是电性,机械或其它的形式。
所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部单元来实现本实施例方案的目的。
另外,在本申请各个实施例中的各功能单元可以集成在一个处理单元中,也可以是各个单元单独物理存在,也可以两个或两个以上单元集成在一个单元中。
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指令。在计算机上加载和执行所述计算机程序指令时,全部或部分地产生按照本申请实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机指令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,所述计算机指令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读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,数字通用光盘(digital video disc,DVD))或者半导体介质(例如,固态硬盘(solid state disk,SSD))等。
以上所述,仅为本申请的具体实施方式,但本申请的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本申请揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本申请的保护范围之内。因此,本申请的保护范围应以所述权利要求的保护范围为准。

Claims (75)

  1. 一种用于无线通信的方法,其特征在于,包括:
    第一条件满足时,终端设备执行第一功能的推理;和/或
    所述第一条件不满足时,所述终端设备不执行或停止执行所述第一功能的推理;
    其中,所述第一功能包括人工智能AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
  2. 根据权利要求1所述的方法,其特征在于,所述第一条件与以下中的一种或多种相关:
    所述终端设备的服务小区的第一测量结果;
    所述终端设备的邻小区的第一测量结果;
    所述终端设备的当前位置与一个或多个参考位置之间的距离;
    所述终端设备是否处于位置参考区域内。
  3. 根据权利要求1或2所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第一阈值;
    所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;
    所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
  4. 根据权利要求3所述的方法,其特征在于,如果所述第一条件包括所述服务小区的第一测量结果大于或等于第一阈值,所述服务小区的第一测量结果大于或等于第一阈值包括以下中的任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于所述第一阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于所述第一阈值,K为大于或等于1的整数;
    所述服务小区的小区级测量结果大于或等于所述第一阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  5. 根据权利要求3或4所述的方法,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置、所述第一位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  6. 根据权利要求3-5中任一项所述的方法,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  7. 根据权利要求1-6中任一项所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述终端设备的服务小区的第一测量结果小于或等于第三阈值;
    所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;
    所述邻小区的第一测量结果大于或等于第五阈值;
    所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;
    所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
  8. 根据权利要求7所述的方法,其特征在于,如果所述第一条件包括所述服务小区的第一测量结果小于或等于第三阈值,所述服务小区的第一测量结果小于或等于第三阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于所述第三阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于所述第三阈值,N为大于或等于1的整数;
    所述服务小区的小区级测量结果小于或等于所述第三阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  9. 根据权利要求7或8所述的方法,其特征在于,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第五阈值,所述邻小区的第一测量结果大于或等于第五阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第五阈值;
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第五阈值,M为大于或等于1的整数;
    所述邻小区的小区级测量结果大于或等于所述第五阈值;
    其中,所述第二波束集合指示的波束为所述终端设备能够实际测量的邻小区的波束。
  10. 根据权利要求7-9中任一项所述的方法,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  11. 根据权利要求7-10中任一项所述的方法,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  12. 根据权利要求1或2所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果以及所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;
    所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;
    所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
  13. 根据权利要求12所述的方法,其特征在于,如果所述第一条件包括服务小区的第一测量结果大于或等于第七阈值,所述服务小区的第一测量结果大于或等于第七阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于所述第七阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于所述第七阈值,K为大于或等于1的整数;
    所述服务小区的小区级测量结果大于或等于所述第七阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  14. 根据权利要求12或13所述的方法,其特征在于,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第八阈值,所述邻小区的第一测量结果大于或等于第八阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第八阈值;
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第八阈值,M为大于或等于1的整数;
    所述邻小区的小区级测量结果大于或等于所述第八阈值;
    其中,所述第二波束集合指示的波束为所述终端设备能够实际测量的邻小区的波束。
  15. 根据权利要求12-14中任一项所述的方法,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  16. 根据权利要求12-15中任一项所述的方法,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  17. 根据权利要求1-16中任一项所述的方法,其特征在于,所述终端设备的服务小区的测量结果和/或所述终端设备的邻小区的测量结果包括以下中的一种或多种:
    波束级测量结果;
    小区级测量结果。
  18. 根据权利要求1-17中任一项所述的方法,其特征在于,所述方法还包括:
    所述终端设备向网络设备发送第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
  19. 根据权利要求18所述的方法,其特征在于,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
  20. 根据权利要求1-19中任一项所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
  21. 一种用于无线通信的方法,其特征在于,包括:
    网络设备向终端设备发送配置信息,所述配置信息用于配置第一条件关联的配置,所述第一条件用于终端设备确定是否执行第一功能的推理;
    其中,所述第一功能包括人工智能AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
  22. 根据权利要求21所述的方法,其特征在于,所述第一条件与以下中的一种或多种相关:
    所述终端设备的服务小区的第一测量结果;
    所述终端设备的邻小区的第一测量结果;
    所述终端设备的当前位置与一个或多个参考位置之间的距离;
    所述终端设备是否处于位置参考区域内。
  23. 根据权利要求21或22所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第一阈值;
    所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;
    所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
  24. 根据权利要求23所述的方法,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第一阈值,所述第二阈值,所述第一参考位置,所述第一位置参考区域。
  25. 根据权利要求23或24所述的方法,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  26. 根据权利要求21-25中任一项所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果小于或等于第三阈值;
    所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;
    所述邻小区的第一测量结果大于或等于第五阈值;
    所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;
    所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
  27. 根据权利要求26所述的方法,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第三阈值,所述第四阈值,所述第五阈值,所述第六阈值,所述第二参考位置,所述第三参考位置,所述第二位置参考区域。
  28. 根据权利要求26或27所述的方法,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  29. 根据权利要求21或22所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;
    所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;
    所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
  30. 根据权利要求29所述的方法,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第七阈值,所述第八阈值,所述第九阈值,所述第十阈值,所述第四参考位置,所述第五参考位置,所述第三位置参考区域。
  31. 根据权利要求29或30所述的方法,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  32. 根据权利要求21-31中任一项所述的方法,其特征在于,所述方法还包括:
    所述网络设备接收所述终端设备发送的第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
  33. 根据权利要求32所述的方法,其特征在于,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
  34. 根据权利要求21-33中任一项所述的方法,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
  35. 一种终端设备,其特征在于,包括执行模块,所述执行模块用于:
    第一条件满足时,执行第一功能的推理;和/或
    所述第一条件不满足时,不执行或停止执行所述第一功能的推理;
    其中,所述第一功能包括人工智能AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
  36. 根据权利要求35所述的终端设备,其特征在于,所述第一条件与以下中的一种或多种相关:
    所述终端设备的服务小区的第一测量结果;
    所述终端设备的邻小区的第一测量结果;
    所述终端设备的当前位置与一个或多个参考位置之间的距离;
    所述终端设备是否处于位置参考区域内。
  37. 根据权利要求35或36所述的终端设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第一阈值;
    所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;
    所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
  38. 根据权利要求37所述的终端设备,其特征在于,如果所述第一条件包括所述服务小区的第一测量结果大于或等于第一阈值,所述服务小区的第一测量结果大于或等于第一阈值包括以下中的任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于第一阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于第一阈值,K为大于或等于1的整数;
    所述服务小区的小区级测量结果大于或等于所述第一阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  39. 根据权利要求37或38所述的终端设备,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置、所述第一位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  40. 根据权利要求37-39中任一项所述的终端设备,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  41. 根据权利要求35-40中任一项所述的终端设备,其特征在于,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果小于或等于第三阈值;
    所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;
    所述邻小区的第一测量结果大于或等于第五阈值;
    所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;
    所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
  42. 根据权利要求41所述的终端设备,其特征在于,如果所述第一条件包括所述服务小区的第一测量结果小于或等于第三阈值,所述服务小区的第一测量结果小于或等于第三阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均小于或等于所述第三阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最差的前N个波束的波束测量结果均小于或等于所述第三阈值,N为大于或等于1的整数;
    所述服务小区的小区级测量结果小于或等于所述第三阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  43. 根据权利要求41或42所述的终端设备,其特征在于,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第五阈值,所述邻小区的第一测量结果大于或等于第五阈值包括以下任意一 种:
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第五阈值;
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第五阈值,M为大于或等于1的整数;
    所述邻小区的小区级测量结果大于或等于所述第五阈值;
    其中,所述第二波束集合指示的波束为所述终端设备能够实际测量的邻小区的波束。
  44. 根据权利要求41-43中任一项所述的终端设备,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  45. 根据权利要求41-44中任一项所述的终端设备,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  46. 根据权利要求35或36所述的终端设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果以及所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;
    所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;
    所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
  47. 根据权利要求46所述的终端设备,其特征在于,如果所述第一条件包括服务小区的第一测量结果大于或等于第七阈值,所述服务小区的第一测量结果大于或等于第七阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果均大于或等于所述第七阈值;
    所述终端设备通过实际测量过程获得的所述服务小区对应的第一波束集合指示的全部波束的波束测量结果中测量结果最好的前K个波束的波束测量结果均大于或等于所述第七阈值,K为大于或等于1的整数;
    所述服务小区的小区级测量结果大于或等于所述第七阈值;
    其中,所述第一波束集合指示的波束为所述终端设备能够实际测量的服务小区的波束。
  48. 根据权利要求46或47所述的终端设备,其特征在于,如果所述第一条件包括所述邻小区的第一测量结果大于或等于第八阈值,所述邻小区的第一测量结果大于或等于第八阈值包括以下任意一种:
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果均大于或等于所述第八阈值;
    所述终端设备通过实际测量过程获得的所述邻小区对应的第二波束集合指示的全部波束的波束测量结果中测量结果最好的前M个波束的波束测量结果均大于或等于所述第八阈值,M为大于或等于1的整数;
    所述邻小区的小区级测量结果大于或等于所述第八阈值;
    其中,所述第二波束集合指示的波束为所述终端设备能够实际测量的邻小区的波束。
  49. 根据权利要求46-48中任一项所述的终端设备,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是协议预定义的,或者是网络设备配置给所述终端设备的。
  50. 根据权利要求46-49中任一项所述的终端设备,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  51. 根据权利要求35-50中任一项所述的终端设备,其特征在于,所述终端设备的服务小区的测量结果和/或所述终端设备的邻小区的测量结果包括以下中的一种或多种:
    波束级测量结果;
    小区级测量结果。
  52. 根据权利要求35-51中任一项所述的终端设备,其特征在于,所述终端设备还包括:
    发送模块,用于向网络设备发送第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
  53. 根据权利要求52所述的终端设备,其特征在于,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
  54. 根据权利要求35-53中任一项所述的终端设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
  55. 一种网络设备,其特征在于,包括:
    发送模块,用于向终端设备发送配置信息,所述配置信息用于配置第一条件关联的配置,所述第一条件用于终端设备确定是否执行第一功能的推理;
    其中,所述第一功能包括人工智能AI功能和/或AI模型,所述第一条件与所述终端设备获得的测量结果和/或所述终端设备的位置相关。
  56. 根据权利要求55所述的网络设备,其特征在于,所述第一条件与以下中的一种或多种相关:
    所述终端设备的服务小区的第一测量结果;
    所述终端设备的邻小区的第一测量结果;
    所述终端设备的当前位置与一个或多个参考位置之间的距离;
    所述终端设备是否处于位置参考区域内。
  57. 根据权利要求55或56所述的网络设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第一阈值;
    所述终端设备的当前位置与第一参考位置之间的距离小于或等于第二阈值;
    所述终端设备的当前位置属于第一位置参考区域指示的位置范围内。
  58. 根据权利要求57所述的网络设备,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第一阈值,所述第二阈值,所述第一参考位置,所述第一位置参考区域。
  59. 根据权利要求57或58所述的网络设备,其特征在于,所述第一阈值、所述第二阈值、所述第一参考位置以及所述第一位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  60. 根据权利要求55-59中任一项所述的网络设备,其特征在于,所述第一功能用于推理获得所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果小于或等于第三阈值;
    所述终端设备的当前位置与第二参考位置之间的距离大于或等于第四阈值;
    所述邻小区的第一测量结果大于或等于第五阈值;
    所述终端设备的当前位置与第三参考位置之间的距离小于或等于第六阈值;
    所述终端设备的当前位置属于第二位置参考区域指示的位置范围内。
  61. 根据权利要求60所述的网络设备,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第三阈值,所述第四阈值,所述第五阈值,所述第六阈值,所述第二参考位置,所述第三参考位置,所述第二位置参考区域。
  62. 根据权利要求60或61所述的网络设备,其特征在于,所述第三阈值、所述第四阈值、所述第五阈值、所述第六阈值、所述第二参考位置、所述第三参考位置、所述第二位置参考区域中的一项或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  63. 根据权利要求55或56所述的网络设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和所述终端设备的邻小区的第二测量结果,所述第一条件包括以下中的一种或多种:
    所述服务小区的第一测量结果大于或等于第七阈值且所述邻小区的第一测量结果大于或等于第八阈值;
    所述终端设备的当前位置与第四参考位置之间的距离小于或等于第九阈值且所述终端设备的当前位置与第五参考位置之间的距离小于或等于第十阈值;
    所述终端设备的当前位置属于第三位置参考区域指示的位置范围内。
  64. 根据权利要求63所述的网络设备,其特征在于,所述配置信息用于配置以下中的一种或多种:所述第七阈值,所述第八阈值,所述第九阈值,所述第十阈值,所述第四参考位置,所述第五参考位置,所述第三位置参考区域。
  65. 根据权利要求63或64所述的网络设备,其特征在于,所述第七阈值、所述第八阈值、所述第九阈值、所述第十阈值、所述第四参考位置、所述第五参考位置、所述第三位置参考区域中的一项 或多项是按照以下粒度中的一种或多种配置的:终端设备,频点,小区。
  66. 根据权利要求55-65中任一项所述的网络设备,其特征在于,所述网络设备还包括:
    接收模块,用于接收所述终端设备发送的第一能力信息,所述第一能力信息用于指示所述终端设备是否支持基于所述第一条件执行所述第一功能的推理。
  67. 根据权利要求66所述的网络设备,其特征在于,所述第一能力信息是按照以下粒度中的一种或多种指示的:频率范围,载波,频带,频带组合。
  68. 根据权利要求55-67中任一项所述的网络设备,其特征在于,所述第一功能用于推理获得所述终端设备的服务小区的第二测量结果和/或所述终端设备的邻小区的第二测量结果。
  69. 一种终端设备,其特征在于,包括存储器和处理器,所述存储器用于存储程序,所述处理器用于调用所述存储器中的程序,以使所述终端设备执行如权利要求1-20中任一项所述的方法。
  70. 一种网络设备,其特征在于,包括收发器、存储器和处理器,所述存储器用于存储程序,所述处理器用于调用所述存储器中的程序,并控制所述收发器接收或发送信号,以使所述网络设备执行如权利要求21-34中任一项所述的方法。
  71. 一种装置,其特征在于,包括处理器,用于从存储器中调用程序,以使所述装置执行如权利要求1-20或21-34中任一项所述的方法。
  72. 一种芯片,其特征在于,包括处理器,用于从存储器调用程序,使得安装有所述芯片的设备执行如权利要求1-20或21-34中任一项所述的方法。
  73. 一种计算机可读存储介质,其特征在于,其上存储有程序,所述程序使得计算机执行如权利要求1-20或21-34中任一项所述的方法。
  74. 一种计算机程序产品,其特征在于,包括程序,所述程序使得计算机执行如权利要求1-20或21-34中任一项所述的方法。
  75. 一种计算机程序,其特征在于,所述计算机程序使得计算机执行如权利要求1-20或21-34中任一项所述的方法。
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116017493A (zh) * 2021-10-21 2023-04-25 维沃移动通信有限公司 模型请求方法、模型请求处理方法及相关设备
CN117581581A (zh) * 2023-08-30 2024-02-20 北京小米移动软件有限公司 通信方法、终端、网络设备、以及通信系统
CN117835264A (zh) * 2022-09-27 2024-04-05 华为技术有限公司 通信方法及相关装置
WO2024139923A1 (zh) * 2022-12-30 2024-07-04 华为技术有限公司 信息传输方法及通信装置

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116017493A (zh) * 2021-10-21 2023-04-25 维沃移动通信有限公司 模型请求方法、模型请求处理方法及相关设备
CN117835264A (zh) * 2022-09-27 2024-04-05 华为技术有限公司 通信方法及相关装置
WO2024139923A1 (zh) * 2022-12-30 2024-07-04 华为技术有限公司 信息传输方法及通信装置
CN117581581A (zh) * 2023-08-30 2024-02-20 北京小米移动软件有限公司 通信方法、终端、网络设备、以及通信系统

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