Method, device and readable storage medium for transmitting reception indication information

CN122534656APending Publication Date: 2026-08-07BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
BEIJING XIAOMI MOBILE SOFTWARE CO LTD
Filing Date
2022-09-30
Publication Date
2026-08-07

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Abstract

The present disclosure provides a method, device and readable storage medium for transmitting and receiving indication information, the method comprising: receiving indication information transmitted by a network device, the indication information being used to indicate a priority of a sensing signal and / or a priority of a cellular signal; and when there is a conflict between time domain resources of the sensing signal and time domain resources of the cellular signal, transmitting and receiving the sensing signal or the cellular signal according to the indication information. In the present disclosure, a user equipment can learn the priority of at least one of a sensing signal and a cellular signal according to the indication information transmitted by a network device, so that when there is a time domain conflict between the two signals, the user equipment can reasonably schedule in combination with the priority.
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Description

[0001] This disclosure is a divisional application of Chinese application No. 202280003784.6, filed on September 30, 2022, entitled "Method, Apparatus and Readable Storage Medium for Sending and Receiving Instruction Information". Technical Field

[0002] This disclosure relates to the field of wireless communication technology, and in particular to a method, apparatus, and readable storage medium for transmitting and receiving instruction information. Background Technology

[0003] Wireless sensing technology, based on existing wireless networks and devices, analyzes changes in sensing signals such as wireless (Wi-Fi) signals during propagation to achieve motion detection, gesture recognition, and biometric measurement, without requiring the monitored object to wear any devices. The transmitting end can send multiple sensing signals for the receiving end to analyze and apply.

[0004] For user equipment (UE) that supports the ability to transmit and receive sensing signals, there may be conflicts with cellular signals when transmitting and receiving sensing signals, and this issue needs to be resolved. Summary of the Invention

[0005] This disclosure provides a method, apparatus, and readable storage medium for sending and receiving instruction information.

[0006] In a first aspect, this disclosure provides a method for receiving indication information, performed by a user equipment, the method comprising: Receive indication information sent by network devices, the indication information being used to indicate the priority of sensing signals and / or the priority of cellular signals; When there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal, the sensing signal or the cellular signal is transmitted and received according to the indication information.

[0007] In the method disclosed herein, the user equipment learns the priority of at least one of the sensing signal and the cellular signal based on the instruction information sent by the network device, so that when the two signals have a time-domain conflict, the user equipment can make reasonable scheduling based on the priority.

[0008] In some possible implementations, transmitting and receiving the sensing signal or the cellular signal according to the indication information includes: If the priority of the cellular signal is higher than the priority of the sensing signal, the cellular signal is transmitted and received.

[0009] In some possible implementations, transmitting and receiving the sensing signal or the cellular signal according to the indication information includes: If the priority of the sensing signal is higher than the priority of the cellular signal, the sensing signal is transmitted and received according to the configuration information, which includes the measurement gap for transmitting and receiving the sensing signal.

[0010] In some possible implementations, transmitting and receiving the sensing signal according to the configuration information includes: Based on the configuration information, the sensing signal is transmitted and received within the time domain resources corresponding to the measurement gap.

[0011] In some possible implementations, the method further includes: Receive configuration information sent by the network device.

[0012] In some possible implementations, the method further includes: Send auxiliary information to the network device, the auxiliary information including at least one parameter for measuring the gap.

[0013] In some possible implementations, the at least one parameter includes: The measurement gap can be either periodic or non-periodic. The duration of the measurement gap; The time-domain location of the measurement gap.

[0014] In some possible implementations, sending auxiliary information to the network device includes: Send Radio Resource Control (RRC) signaling to the network device, wherein the RRC signaling includes the auxiliary information.

[0015] Secondly, this disclosure provides a method for sending indication information, performed by a network device, the method comprising: Send indication information to the user equipment, the indication information being used to indicate the priority of the sensing signal and / or the priority of the cellular signal.

[0016] In the method disclosed herein, the network device indicates the priority of at least one of sensing signals and cellular signals to the user equipment by sending indication information, so that the user equipment can perform reasonable scheduling based on the priority.

[0017] In some possible implementations, the method further includes: If the priority of the sensing signal is higher than that of the cellular signal, configuration information is sent to the user equipment, the configuration information including the measurement gap for transmitting and receiving the sensing signal.

[0018] In some possible implementations, the method further includes: Based on the auxiliary information sent by the user equipment, configuration information is determined, wherein the auxiliary information includes at least one parameter for measuring the gap; The configuration information is sent to the user equipment.

[0019] In some possible implementations, the configuration information includes at least one of the following parameters for measuring the gap: The measurement gap can be either periodic or non-periodic. The duration of the measurement gap; The time-domain location of the measurement gap.

[0020] In some possible implementations, the method further includes: No downlink scheduling is performed within the time-domain resources corresponding to the measurement gap.

[0021] Thirdly, this disclosure provides a user equipment, including: a transceiver module and a processing module. Wherein, A transceiver module is used to receive indication information sent by a network device, the indication information being used to indicate the priority of sensing signals and / or the priority of cellular signals; The processing module is configured to transmit or receive the sensing signal or the cellular signal according to the indication information when there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal.

[0022] Fourthly, this disclosure provides a network device, including: a transceiver module. Wherein, The transceiver module is used to send indication information to the user equipment, the indication information being used to indicate the priority of the sensing signal and / or the priority of the cellular signal.

[0023] Fifthly, this disclosure provides a communication device, including a processor and a memory, wherein, The memory is used to store computer programs; The processor is configured to execute the computer program to implement the method as described in any of the first aspects.

[0024] Sixthly, this disclosure provides a communication device, including a processor and a memory, wherein, The memory is used to store computer programs; The processor is configured to execute the computer program to implement the method as described in any of the second aspects.

[0025] In a seventh aspect, this disclosure provides a computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform the method as described in any of the first aspects.

[0026] Eighthly, this disclosure provides a computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform the method as described in any of the second aspects.

[0027] Ninthly, this disclosure provides a communication system including a user equipment for performing any method of the first aspect and a network device for performing any method of the second aspect.

[0028] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description

[0029] The accompanying drawings, which are included to provide a further understanding of the embodiments of this disclosure and form part of this application, illustrate exemplary embodiments of this disclosure and, together with their descriptions, serve to explain the embodiments of this disclosure and do not constitute an improper limitation of the embodiments of this disclosure. In the drawings: The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the embodiments of the present disclosure.

[0030] Figure 1 This is a schematic diagram of a wireless communication system architecture provided in an embodiment of this disclosure; Figure 2 This is a flowchart of a method for sending and receiving instruction information provided in an embodiment of this disclosure; Figure 3 This is a flowchart of a method for sending and receiving configuration information provided in an embodiment of this disclosure; Figure 4 This is a flowchart of a method for sending and receiving auxiliary information provided in an embodiment of this disclosure; Figure 5 This is a schematic diagram of a device for receiving instruction information provided in an embodiment of this disclosure; Figure 6 This is a schematic diagram of a device for sending instruction information provided in an embodiment of this disclosure. Detailed Implementation

[0031] The embodiments of this disclosure will now be further described in conjunction with the accompanying drawings and specific implementation details.

[0032] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numerals in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with those of this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this disclosure as detailed in the appended claims.

[0033] The terminology used in this disclosure is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. The singular forms “a” and “the” as used in this disclosure and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any and all possible combinations of one or more of the associated listed items.

[0034] It should be understood that although the terms first, second, third, etc., may be used to describe various information in embodiments of this disclosure, such information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, first information may also be referred to as second information without departing from the scope of embodiments of this disclosure, and similarly, second information may also be referred to as first information. Depending on the context, the words “if” and “suppose” as used herein may be interpreted as “when”, “when”, or “in response to a determination”.

[0035] Embodiments of this disclosure are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this disclosure, and should not be construed as limiting this disclosure.

[0036] like Figure 1 As shown in the embodiments of this disclosure, a method for sending and receiving indication information can be applied to a wireless communication system 100, which may include a user equipment 101 and a network device 102. The user equipment 101 is configured to support carrier aggregation and can be connected to multiple carrier units of the network device 102, including a primary carrier unit and one or more secondary carrier units.

[0037] It should be understood that the wireless communication system 100 described above is applicable to both low-frequency and high-frequency scenarios. Application scenarios for the wireless communication system 100 include, but are not limited to, long-term evolution (LTE) systems, LTE frequency division duplex (FDD) systems, LTE time division duplex (TDD) systems, worldwide interoperability for microwave access (WiMAX) communication systems, cloud radio access network (CRAN) systems, future 5th-generation (5G) systems, new radio (NR) communication systems, or future evolved public land mobile network (PLMN) systems.

[0038] The user equipment 101 shown above can be a terminal, access terminal, terminal unit, terminal station, mobile station (MS), remote station, remote terminal, mobile terminal, wireless communication device, terminal agent, or terminal equipment, etc. This user equipment 101 may have wireless transceiver capabilities, enabling it to communicate (e.g., wirelessly) with one or more network devices in one or more communication systems, and to receive network services provided by the network devices. These network devices include, but are not limited to, the network device 102 shown in the figure.

[0039] User equipment 101 may be a cellular phone, cordless phone, session initiation protocol (SIP) phone, wireless local loop (WLL) station, personal digital assistant (PDA) device, handheld device with wireless communication capabilities, computing device or other processing device connected to a wireless modem, vehicle-mounted device, wearable device, terminal device in a future 5G network or terminal device in a future evolved PLMN network, etc.

[0040] Network device 102 can be an access network device (or access point). Access network device refers to equipment that provides network access functionality, such as a radio access network (RAN) base station. Specifically, network device 102 may include a base station (BS), or a base station and radio resource management equipment used to control the base station. Network device 102 may also include relay stations (relay equipment), access points, and base stations in future 5G networks, base stations in future evolved PLMN networks, or NR base stations. Network device 102 can be a wearable device or an in-vehicle device. Network device 102 can also be a communication chip with a communication module.

[0041] For example, network equipment 102 includes, but is not limited to: next-generation base stations (gnodeB, gNB) in 5G, evolved node B (eNB) in LTE systems, radio network controllers (RNC), node B (NB) in WCDMA systems, radio controllers and base station controllers (BSC) in CRAN systems, base transceiver stations (BTS) in GSM or CDMA systems, home base stations (e.g., home evolved nodeB, or home node B, HNB), baseband units (BBU), transmitting and receiving points (TRP), transmitting points (TP), or mobile switching centers, etc.

[0042] Wireless sensing is a radio recognition technology that can include several modes. For example, in a first sensing mode, the transmitter and receiver are located on the same radio transceiver device using a Time-of-Flight (TOF) sensor; that is, in this mode, the transmitter and receiver are on the same device. In a second sensing mode, the receiver receives the signal from another TOF-using device that is also a transmitter; that is, in this mode, the transmitter and receiver are on different devices. In a third mode, the receiver receives the signal from a transmitter using Peer-to-Peer (PAC) sensing communication, where the PAC device has both communication and ranging capabilities.

[0043] For UE101, which supports the ability to transmit and receive sensing signals, the first sensing mode is used. Therefore, it is necessary to solve the problem of conflict between transmitting and receiving sensing signals and transmitting and receiving cellular signals for this type of UE.

[0044] This disclosure provides a method for sending and receiving indication information. Figure 2 This is a flowchart illustrating a method for sending and receiving indication information according to an exemplary embodiment, such as... Figure 2 As shown, the method includes steps S201~S202, specifically: In step S201, network device 102 sends indication information to user equipment 101, the indication information being used to indicate the priority of the sensing signal and / or the priority of the cellular signal.

[0045] In some possible implementations, network device 102 sends instruction information via Radio Resource Control (RRC).

[0046] In one example, network device 102 sends an RRCReconfiguration message to user equipment, which contains indication information to indicate the priority of at least one of sensing signals and cellular signals.

[0047] In some possible implementations, network device 102 may indicate the priority of only one of sensing signals and cellular signals.

[0048] In one example, network device 102 indicates only that the priority of the sensed signal is the highest, meaning the sensed signal has a higher priority than the cellular signal. Alternatively, network device 102 indicates only that the priority of the sensed signal is the lowest, meaning the sensed signal has a lower priority than the cellular signal.

[0049] In another example, network device 102 indicates only that the cellular signal has the highest priority, meaning that the cellular signal has a higher priority than the sensed signal; and vice versa.

[0050] In some possible implementations, network device 102 indicates the priority of the sensed signal and the priority of the cellular signal, respectively.

[0051] In some possible implementations, the indication information includes bits used to indicate priority.

[0052] In one example, network device 102 is configured with one, two, or more bits to indicate the priority of at least one of sensing signals and cellular signals.

[0053] In some possible implementations, a 1-bit indication may be configured when network device 102 indicates the priority of only one signal.

[0054] In one example, when indicating only the priority of the sensing signal, a "0" bit indicates the highest priority, i.e., higher than the cellular signal; a "1" bit indicates the lowest priority, i.e., lower than the cellular signal. In other examples where only the priority of the cellular signal is indicated by a single bit, refer to the description in this example.

[0055] In some possible implementations, a two-bit indication may be configured when the network device 102 indicates the priority of only one signal.

[0056] In one example, when only indicating the priority of the sensing signal, a "00" in these two bits indicates the highest priority, i.e., higher than the cellular signal; a "11" in these two bits indicates the lowest priority, i.e., lower than the cellular signal. In other examples where only the priority of the cellular signal is indicated using two bits, refer to the description in this example.

[0057] In some possible implementations, two bits may be configured to indicate the priorities of sensing signals and cellular signals, respectively, when network device 102 indicates them.

[0058] In one example, when these two bits are "00", it indicates that the priority of the sensing signal is higher than that of the cellular signal. When these two bits are "11", it indicates that the priority of the sensing signal is lower than that of the cellular signal.

[0059] In some possible implementations, when the network device 102 indicates the priority of the sensing signal and the cellular signal respectively, two bits can be configured for each of the sensing signal and the cellular signal, that is, two bits are used to indicate the priority of the sensing signal and another two bits are used to indicate the priority of the cellular signal.

[0060] In one example, when the two bits corresponding to the sensing signal are "00" and the two bits corresponding to the cellular signal are "11", it indicates that the sensing signal has a higher priority than the cellular signal.

[0061] In step S202, when there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal, the user equipment 101 transmits and receives the sensing signal or the cellular signal according to the instruction information.

[0062] In some possible implementations, network device 102 may configure time-domain resources for user equipment 101 to transmit and receive cellular signals. For user equipment 101 in this embodiment that supports the ability to transmit and receive sensing signals, network device 102 may also configure time-domain resources for sensing signals to enable user equipment 101 to sense the surrounding environment.

[0063] In some possible implementations, cellular signals include, but are not limited to, uplink and downlink signals based on cellular networks.

[0064] In some possible implementations, when the time domain location of the UE transmitting or receiving sensing signals overlaps with the time domain location of the UE transmitting or receiving cellular signals, there is a time domain resource conflict between the two types of signals.

[0065] In one example, the time-domain resources for the UE to transmit or receive sensing signals conflict with the time-domain resources for the UE to transmit uplink signals.

[0066] In one example, the time-domain resources for the UE to transmit or receive sensed signals conflict with the time-domain resources for the UE to receive downlink signals from the serving cell.

[0067] In one example, the time-domain resources for the UE to transmit or receive sensing signals conflict with the time-domain resources for the UE to receive downlink signals from neighboring cells.

[0068] In some possible implementations, the user equipment 101 may know the priority of the sensing signal and the cellular signal, or the signal with higher priority among the two signals, based on the instruction information.

[0069] In some possible implementations, the step S202, which involves transmitting and receiving sensing signals or cellular signals according to the instruction information, may include the following steps S202-10, specifically: In step S202-10, if the priority of the cellular signal is higher than that of the sensing signal, the user equipment 101 transmits and receives cellular signals.

[0070] In some possible implementations, user equipment 101 transmits and receives cellular signals without receiving or transmitting the sensing signals, depending on the indication information provided, if the priority of the cellular signal is the highest, or the priority of the sensing signal is the lowest, or the priority of the cellular signal is higher than that of the sensing signal.

[0071] In one example, when the time domain resources for the UE to transmit or receive sensing signals conflict with the time domain resources for the UE to transmit uplink signals, if the cellular signal has a higher priority, the UE will transmit the uplink signal in the conflicting time domain resources instead of transmitting or receiving sensing signals.

[0072] In one example, when the time domain resources for the UE to transmit or receive sensing signals conflict with the time domain resources for the UE to receive downlink signals from the serving cell, if the cellular signal has a higher priority, the UE will receive the downlink signals from the serving cell in the conflicting time domain resources instead of transmitting or receiving sensing signals.

[0073] In one example, when the time-domain resources for the UE to transmit or receive sensing signals conflict with the time-domain resources for the UE to receive downlink signals from neighboring cells, if the cellular signal has higher priority, the UE will receive the downlink signal from the neighboring cell in the conflicting time-domain resources instead of transmitting or receiving the sensing signal. This example could be a mobility measurement scenario.

[0074] In some possible implementations, the step S202, which involves transmitting and receiving sensing signals or cellular signals according to the instruction information, may include the following steps S202-20, specifically: In step S202-20, if the priority of the sensing signal is higher than that of the cellular signal, the user equipment 101 transmits and receives the sensing signal according to the configuration information, which includes the measurement gap for transmitting and receiving the sensing signal.

[0075] In some possible implementations, when the sensing signal has a high priority, the user equipment 101 needs to stop transmitting and receiving cellular signals and transmit and receive sensing signals within conflicting time domain resources.

[0076] In some possible implementations, during this step, according to the measurement gap (MG) configured in the configuration information, the user equipment 101 receives or transmits sensing signals within the time domain resources corresponding to the measurement gap, thereby interrupting the transmission and reception of cellular signals.

[0077] In one example, when the time domain resources for the UE to send or receive sensing signals conflict with the time domain resources for the UE to send uplink signals, if the sensing signals have higher priority, the UE will send or receive sensing signals in the time domain resources corresponding to the measurement gap, without scheduling uplink signals.

[0078] In one example, when the time-domain resources for the UE to transmit or receive sensing signals conflict with the time-domain resources for the UE to receive downlink signals from the serving cell, if the sensing signals have a higher priority, the UE will transmit or receive the sensing signals in the time-domain resources corresponding to the measurement gap, without receiving downlink signals from the serving cell. In this example, network device 102 does not perform downlink scheduling during the measurement gap.

[0079] In one example, when the time domain resources for the UE to send or receive sensing signals conflict with the time domain resources for the UE to receive downlink signals from neighboring cells, if the sensing signals have higher priority, the UE will send or receive sensing signals in the time domain resources corresponding to the measurement gap, instead of receiving downlink signals from neighboring cells.

[0080] In this embodiment of the disclosure, the user equipment 101 learns the priority of at least one of the sensing signal and the cellular signal according to the instruction information sent by the network device 102, so that when the two signals have a time domain conflict, the user equipment 101 can make reasonable scheduling based on the priority.

[0081] This disclosure provides a method for sending and receiving configuration information. Figure 3 This is a flowchart illustrating a method for sending and receiving configuration information according to an exemplary embodiment, such as... Figure 3 As shown, the method includes steps S301 to S302, specifically: In step S301, network device 102 sends indication information to user equipment 101, the indication information being used to indicate the priority of sensing signals and / or the priority of cellular signals.

[0082] In step S302, network device 102 sends configuration information to user equipment 101, the configuration information including the measurement gap for transmitting and receiving the sensing signal.

[0083] In some possible implementations, network device 102 simultaneously sends indication information and configuration information. For example, the sent configuration information includes the measurement configuration for the measurement gap and the indication information. Thus, network device 102 can configure the same signaling configuration for both the measurement gap and the indication information, which is applicable to scenarios with different signal priorities and reduces signaling interaction between the UE and network device 102.

[0084] In some possible implementations, network device 102 may send instruction information and configuration information to user equipment 101 respectively.

[0085] In some possible implementations, step S302 may be performed when the sensing signal has a high priority. For example, step S302 may include the following step S302', specifically: In step S302', if the priority of the sensing signal is higher than that of the cellular signal, the network device 102 sends configuration information to the user equipment 101.

[0086] In this embodiment, when the cellular signal has a high priority in a conflict scenario, there is no need to configure a measurement gap. Therefore, the network device 102 may not send configuration information to save signaling.

[0087] In some possible implementations, the configuration information includes at least one of the following parameters for measuring the gap: The measurement gap can be either periodic or non-periodic. Measurement gap duration; The time-domain location of the measurement gap.

[0088] In some possible implementations, when the measurement gap is a periodic measurement gap, the time-domain location of the measurement gap includes: the measurement gap offset and the measurement gap period.

[0089] In some possible implementations, when the measurement gap is a non-periodic measurement gap, the time-domain location of the measurement gap includes: the starting position of the measurement gap, such as the system frame number (SFN) and subframe number in which the measurement gap is located.

[0090] In step S303, when there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal, the user equipment 101 transmits and receives the sensing signal or the cellular signal according to the instruction information and configuration information.

[0091] In some possible implementations, when the sensing signal has a high priority, the user equipment 101 transmits and receives the sensing signal during the measurement interval.

[0092] In some possible implementations, when the sensing signal has a high priority, the network device 102 does not perform downlink scheduling within the time domain resources corresponding to the measurement gap.

[0093] This embodiment of the disclosure is applicable to scenarios where sensing signals have a higher priority than cellular signals. Network device 102 configures a measurement gap for user equipment 101 to transmit and receive sensing signals. User equipment 101 determines the temporal location of the measurement gap based on the configuration information and transmits and receives sensing signals during the measurement gap. During this measurement gap, user equipment 101 and network device 102 do not perform cellular signal scheduling.

[0094] This disclosure provides a method for sending and receiving auxiliary configuration information. Figure 4 This is a flowchart illustrating a method for sending and receiving auxiliary configuration information according to an exemplary embodiment, such as... Figure 4 As shown, the method includes steps S401 to S402, specifically: In step S401, user equipment 101 sends auxiliary information to network device 102, the auxiliary information including at least one parameter of the measurement gap.

[0095] In step S402, network device 102 determines configuration information based on the received auxiliary information.

[0096] In some possible implementations, the auxiliary information includes at least one parameter of the measurement gap: The measurement gap can be either periodic or non-periodic. The duration of the measurement gap; The time-domain location of the measurement gap.

[0097] In some possible implementations, when the measurement gap is a periodic measurement gap, the time-domain location of the measurement gap includes: the offset value of the measurement gap and the period of the measurement gap.

[0098] In some possible implementations, when the measurement gap is a non-periodic measurement gap, the time-domain location of the measurement gap includes: the starting position of the measurement gap, such as the SFN and subframe number where the measurement gap is located.

[0099] In some possible implementations, step S401 may include the following step S401', specifically: In step S401', user equipment 101 sends Radio Resource Control (RRC) signaling to network device 102, and the RRC signaling includes auxiliary information.

[0100] In some possible implementations, step S401 in the method may be performed before the user equipment 101 receives the instruction information, or after the instruction information is received.

[0101] In one example, after receiving the indication information in step S201 or step S301, if the indication information indicates that the sensing signal has a high priority, then the user equipment 101 executes step S401.

[0102] In another example, user equipment 101 reports to network device 102 in advance so that network device 102 can pre-determine configuration information. This pre-determined configuration information can be sent to user equipment 101 when needed.

[0103] In step S403, network device 102 sends configuration information to user equipment 101.

[0104] In some possible implementations, network device 102 may send an RRC message, which includes configuration information.

[0105] In this embodiment of the present disclosure, user equipment 101 may report auxiliary information to network device 102, and network device 102 may configure the measurement gap according to the auxiliary information in order to provide reasonable time domain resources for the transmission and reception of sensing signals.

[0106] Based on the same concept as the above method embodiments, this disclosure also provides a user equipment 101 for performing the steps performed by the user equipment 101 provided in the above embodiments.

[0107] In one possible implementation, such as Figure 5 The device 500 shown can serve as the user equipment 101 involved in the above method embodiment and perform the steps executed by the user equipment 101 in the above method embodiment.

[0108] The device 500 includes a transceiver module 501 and a processing module 502.

[0109] The transceiver module 501 is configured to receive indication information sent by the network device 102, the indication information being used to indicate the priority of the sensed signal and / or the priority of the cellular signal.

[0110] The processing module 502 is configured to transmit or receive sensing signals or cellular signals according to the instruction information when there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal.

[0111] This disclosure also provides a communication device, including a processor and a memory, wherein... Memory is used to store computer programs; The processor is used to execute the computer program to implement the method performed by the user equipment 101.

[0112] This disclosure also provides a computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform a method executed by a user device.

[0113] Based on the same concept as the above method embodiments, this disclosure also provides a network device 102 for performing the steps performed by the network device 102 provided in the above embodiments.

[0114] In one possible implementation, such as Figure 6 The device 600 shown can serve as the user equipment 101 involved in the above method embodiment and perform the steps executed by the user equipment 101 in the above method embodiment.

[0115] The device 600 includes a transceiver module 601.

[0116] The transceiver module 601 is configured to send indication information to the user equipment, the indication information being used to indicate the priority of the sensed signal and / or the priority of the cellular signal.

[0117] This disclosure also provides a communication device, including a processor and a memory, wherein... The memory is used to store computer programs; The processor is used to execute the computer program to implement the method performed by the network device 102.

[0118] This disclosure also provides a computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform the method executed by the network device 102.

[0119] Other embodiments of the present disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of the embodiments of the present disclosure that follow the general principles of the embodiments of the present disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and embodiments are to be considered exemplary only, and the true scope and spirit of the embodiments of the present disclosure are indicated by the following claims.

[0120] It should be understood that the embodiments disclosed herein are not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from their scope. The scope of the embodiments disclosed herein is limited only by the appended claims.

[0121] Industrial applicability In this embodiment of the disclosure, the user equipment learns the priority of at least one of the sensing signal and the cellular signal according to the instruction information sent by the network device, so that when the two signals have a time domain conflict, the user equipment can make reasonable scheduling based on the priority.

Claims

1. A method for receiving indication information, performed by a user equipment, the method comprising: Receive indication information sent by network devices, the indication information being used to indicate the priority of sensing signals and / or the priority of cellular signals; When there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal, the sensing signal or the cellular signal is transmitted and received according to the indication information.

2. The method as described in claim 1, wherein, The step of transmitting and receiving the sensing signal or the cellular signal according to the indication information includes: If the priority of the cellular signal is higher than the priority of the sensing signal, the cellular signal is transmitted and received.

3. The method as described in claim 1, wherein, The step of transmitting and receiving the sensing signal or the cellular signal according to the indication information includes: If the priority of the sensing signal is higher than the priority of the cellular signal, the sensing signal is transmitted and received according to the configuration information, which includes the measurement gap for transmitting and receiving the sensing signal.

4. The method of claim 3, wherein, The step of transmitting and receiving the sensing signals according to the configuration information includes: Based on the configuration information, the sensing signal is transmitted and received within the time domain resources corresponding to the measurement gap.

5. The method as described in claim 1 or 3, wherein, The method further includes: Receive configuration information sent by the network device.

6. The method of claim 5, wherein, The method further includes: Send auxiliary information to the network device, the auxiliary information including at least one parameter for measuring the gap.

7. The method of claim 6, wherein, The at least one parameter includes: The measurement gap can be either periodic or non-periodic. The duration of the measurement gap; The time-domain location of the measurement gap.

8. The method of claim 6, wherein, Sending auxiliary information to the network device includes: Send Radio Resource Control (RRC) signaling to the network device, wherein the RRC signaling includes the auxiliary information.

9. A method for sending indication information, performed by a network device, the method comprising: Send indication information to the user equipment, the indication information being used to indicate the priority of the sensing signal and / or the priority of the cellular signal.

10. The method of claim 9, wherein, The method further includes: If the priority of the sensing signal is higher than that of the cellular signal, configuration information is sent to the user equipment, the configuration information including the measurement gap for transmitting and receiving the sensing signal.

11. The method of claim 9 or 10, wherein, The method further includes: Based on the auxiliary information sent by the user equipment, configuration information is determined, wherein the auxiliary information includes at least one parameter for measuring the gap; The configuration information is sent to the user equipment.

12. The method of claim 11, wherein, The configuration information includes at least one of the following parameters for measuring the gap: The measurement gap can be either periodic or non-periodic. The duration of the measurement gap; The time-domain location of the measurement gap.

13. The method of claim 10, wherein, The method further includes: No downlink scheduling is performed within the time-domain resources corresponding to the measurement gap.

14. A user equipment, comprising: A transceiver module is used to receive indication information sent by a network device, the indication information being used to indicate the priority of sensing signals and / or the priority of cellular signals; The processing module is configured to transmit or receive the sensing signal or the cellular signal according to the indication information when there is a conflict between the time domain resources of the sensing signal and the time domain resources of the cellular signal.

15. A network device, comprising: The transceiver module is used to send indication information to the user equipment, the indication information being used to indicate the priority of the sensing signal and / or the priority of the cellular signal.

16. A communication device, comprising a processor and a memory, wherein, The memory is used to store computer programs; The processor is configured to execute the computer program to implement the method as described in any one of claims 1-8.

17. A communication device, comprising a processor and a memory, wherein, The memory is used to store computer programs; The processor is used to execute the computer program to implement the method as described in any one of claims 9-13.

18. A computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform the method as described in any one of claims 1-8.

19. A computer-readable storage medium storing instructions that, when invoked and executed on a computer, cause the computer to perform the method as described in any one of claims 9-13.

20. A communication system comprising a user equipment for performing the method of any one of claims 1-8 and a network equipment for performing the method of any one of claims 9-13.