Wireless communication method, terminal device, and network device

By transmitting data at the RRM measurement timing, the service interruption caused by RRM measurement is solved, the data transmission delay is reduced, and the system performance is improved.

WO2025147911A1PCT designated stage expired Publication Date: 2025-07-17GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP LTD
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Patent Information

Application Number
PCT/CN2024/071639
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-10
Publication Date
2025-07-17

AI Technical Summary

Technical Problem

Service interruptions caused by the RRM measurement process lead to large transmission delays and services that cannot meet low latency requirements, such as extended reality (XR) services.

Method used

The terminal equipment transmits data at the RRM measurement time, and by discarding or adjusting the measurement time, determines the measurement time and shares time domain resources with data transmission, reducing data transmission delay.

Benefits of technology

By transmitting data at the RRM measurement time, the data transmission delay is reduced and the system's throughput and capacity is improved.

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Abstract

Provided are a wireless communication method, a terminal device, and a network device. The wireless communication method comprises: a terminal device executing a first operation, wherein the first operation comprises one or more of the following: discarding one or more measurement occasions; determining that the one or more measurement occasions share time-domain resources with data transmissions; and performing uplink / downlink data transmission in a time period corresponding to the one or more measurement occasions, wherein the one or more measurement occasions are used for RRM measurement.
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Description

Wireless communication method, terminal device, and network device Technical Field

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

[0002] The radio resource management (RRM) measurement process can cause service interruptions, resulting in longer transmission delays for the corresponding services, making it impossible to meet the low-latency requirements of certain services, such as extended reality (XR) services.

[0003] Summary of the Invention

[0004] The present application provides a wireless communication method, a terminal device, and a network device. The following introduces various aspects of the present application.

[0005] In a first aspect, a wireless communication method is provided, including: a terminal device performs a first operation, the first operation including one or more of the following: discarding one or more measurement opportunities; determining one or more measurement opportunities to share time domain resources with data transmission; performing uplink / downlink data transmission in a time period corresponding to one or more measurement opportunities; wherein the one or more measurement opportunities are used for RRM measurement.

[0006] In a second aspect, a wireless communication method is provided, comprising: if a first condition is met, the terminal device adjusts first configuration information, where the first configuration information is used for RRM measurement.

[0007] According to a third aspect, a wireless communication method is provided, including: a network device sends target information to a terminal device, wherein the target information is one of the following: a first command, wherein the first command is used to trigger the terminal device to perform a first operation; and first configuration information is used to configure the terminal device to perform the first operation; wherein the first operation includes one or more of the following: discarding one or more measurement opportunities; determining that one or more measurement opportunities share time domain resources with data transmission; performing uplink / downlink data transmission in a time period corresponding to one or more measurement opportunities; wherein the one or more measurement opportunities are used for RRM measurement.

[0008] In a fourth aspect, a wireless communication method is provided, comprising: a network device sends second information to a terminal device, wherein the second information is used to: reconfigure first configuration information for RRM measurement; or instruct the terminal device to switch from the first configuration information to the second configuration information for RRM measurement.

[0009] In a fifth aspect, a terminal device is provided, including: an execution unit for performing a first operation, wherein the first operation includes one or more of the following: discarding one or more measurement opportunities; determining one or more measurement opportunities to share time domain resources with data transmission; performing uplink / downlink data transmission in a time period corresponding to one or more measurement opportunities; wherein the one or more measurement opportunities are used for RRM measurement.

[0010] In a sixth aspect, a terminal device is provided, comprising: an adjustment unit, configured to adjust first configuration information if a first condition is met, wherein the first configuration information is used for RRM measurement.

[0011] In the seventh aspect, a network device is provided, including: a first sending unit, used to send target information to a terminal device, the target information being one of the following: a first command, the first command being used to trigger the terminal device to perform a first operation; first configuration information, used to configure the terminal device to perform the first operation; wherein, the first operation includes one or more of the following: discarding one or more measurement opportunities; determining that one or more measurement opportunities share time domain resources with data transmission; performing uplink / downlink data transmission in a time period corresponding to one or more measurement opportunities; wherein, the one or more measurement opportunities are used for RRM measurement.

[0012] In the eighth aspect, a network device is provided, including: a sending unit, used to send second information to a terminal device, wherein the second information is used to: reconfigure the first configuration information used for RRM measurement; or instruct the terminal device to switch from the first configuration information to the second configuration information used for RRM measurement.

[0013] In the ninth aspect, a terminal device is provided, comprising a transceiver, a memory and a processor, wherein the memory is used to store programs, and the processor is used to call the programs in the memory and control the transceiver to receive or send signals so that the terminal device executes the method described in the first aspect or the second aspect.

[0014] In the tenth aspect, a network device is provided, comprising a transceiver, a memory and a processor, wherein the memory is used to store programs, and the processor is used to call the programs in the memory and control the transceiver to receive or send signals so that the network device executes the methods described in aspects 3 to 4.

[0015] In an eleventh aspect, a device is provided, comprising a processor for calling a program from a memory so that the device executes a method as described in any one of the first to fourth aspects.

[0016] In a twelfth aspect, a chip is provided, comprising a processor for calling a program from a memory so that a device equipped with the chip executes a method as described in any one of the first to fourth aspects.

[0017] In a thirteenth aspect, a computer-readable storage medium is provided, on which a program is stored, wherein the program enables a computer to execute the method as described in any one of the first to fourth aspects.

[0018] In the fourteenth aspect, a computer program product is provided, characterized in that it includes a program, and the program enables a computer to execute the method as described in any one of the first to fourth aspects.

[0019] In a fifteenth aspect, a computer program is provided, which enables a computer to execute the method as described in any one of the first to fourth aspects.

[0020] The embodiment of the present application supports data transmission during RRM measurement timing, thereby reducing data transmission delay. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] FIG1 is a diagram illustrating an example of a system architecture of a wireless communication system to which an embodiment of the present application may be applied.

[0022] FIG2 is a flow chart of a wireless communication method provided in one embodiment of the present application.

[0023] FIG3 is a schematic flow chart of a wireless communication method provided in another embodiment of the present application.

[0024] FIG4 is a flow chart of a wireless communication method provided in yet another embodiment of the present application.

[0025] FIG5 is a flowchart of a wireless communication method provided in another embodiment of the present application.

[0026] FIG6 is a flowchart of a wireless communication method provided in yet another embodiment of the present application.

[0027] FIG7 is a flowchart of a wireless communication method provided in another embodiment of the present application.

[0028] FIG8 is a schematic diagram of the structure of a terminal device provided in one embodiment of the present application.

[0029] FIG9 is a schematic structural diagram of a terminal device provided in another embodiment of the present application.

[0030] FIG10 is a schematic diagram of the structure of a network device provided in one embodiment of the present application.

[0031] FIG11 is a schematic diagram of the structure of a network device provided in another embodiment of the present application.

[0032] FIG12 is a schematic diagram of a device to which an embodiment of the present application can be applied. DETAILED DESCRIPTION

[0033] The technical solution in this application will be described below with reference to the accompanying drawings.

[0034] Wireless communication systems

[0035] Figure 1 is a diagram illustrating an example of the system architecture of a wireless communication system 100 to which an embodiment of the present application may be applied. The wireless communication system 100 may include a network device 110 and a terminal device 120. The network device 110 may be a device that communicates with the terminal device 120. The network device 110 may provide network coverage for a specific geographical area and may communicate with the terminal device 120 located within the coverage area. The terminal device 120 may access a network (e.g., a wireless network) through the network device 110. Optionally, 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 the embodiments of the present application.

[0036] It should be understood that the technical solutions of the embodiments of the present application can be applied to various communication systems, such as: 5G system or new radio (NR), long term evolution (LTE) system, LTE frequency division duplex (FDD) system, LTE time division duplex (TDD), etc. The technical solutions provided in this application can also be applied to future communication systems, such as the sixth generation mobile communication system, satellite communication system, etc.

[0037] The terminal device in the embodiments of the present application may also be referred to as user equipment (UE), access terminal, user unit, user station, mobile station, mobile station (MS), mobile terminal (MT), remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent, or user device. The terminal device in the embodiments of the present application may refer to a device that provides voice and / or data connectivity to a user and can be used to connect people, objects, and machines, such as a handheld device with wireless connection function, a vehicle-mounted device, etc. The terminal device in the embodiments of the present application can be a mobile phone, a tablet computer, a laptop computer, a PDA, a mobile internet device (MID), a wearable device, a virtual reality (VR) device, an augmented reality (AR) device, a wireless terminal in industrial control, a wireless terminal in self-driving, a wireless terminal in remote medical surgery, a wireless terminal in a smart grid, a wireless terminal in transportation safety, a wireless terminal in a smart city, a wireless terminal in a smart home, etc. Optionally, the terminal device can be used to act as a base station. For example, the terminal device can act as a scheduling entity that provides sidelink signals between terminal devices in vehicle to everything (V2X) or device to device (D2D). For example, a cellular phone and a car communicate with each other using sidelink signals. The cellular phone and smart home devices communicate without relaying the communication signal through a base station.

[0038] The network device in the embodiment of the present application may be a device for communicating with a terminal device. The network device may be, for example, an access network device or a wireless access network device. For example, the network device may be a base station. The base station may broadly cover the following various names, or be replaced with the following names: NodeB, evolved NodeB (eNB), next generation NodeB (gNB), relay station, access point, transmission point (TRP), transmitting point (TP), home base station, network controller, access node, wireless node, access point (AP), transmission node, transceiver node, base band unit (BBU), remote radio unit (RRU), active antenna unit (AAU), remote radio head (RRH), central unit (CU), distributed unit (DU), positioning node, etc. The base station may be a macro base station, a micro base station, a relay node, a donor node or the like, or a combination thereof.

[0039] Terminal devices can communicate with each other via sidelinks. Sidelink communication can also be called proximity services (ProSe) communication, unilateral communication, sidelink communication, or D2D communication.

[0040] Measurement gap (MG)

[0041] In order to achieve heterogeneous or co-frequency measurements, the concept of measurement gap is introduced. In NR, the gap can include the measurement gap configuration of each terminal device, or the measurement gap configuration of each frequency range (FR). Regardless of the granularity of the configuration, it is necessary to include the measurement gap length (MGL), measurement gap repetition period (MGRP), gap offset (GO), etc. Among them, MGL represents the length of the measurement gap. Assuming that the length of MGL is 6ms, it means that the terminal device needs to perform co-frequency or heterogeneous frequency measurements within these 6ms, and cannot perform data transmission on the currently serving cell corresponding to the frequency point related to the measurement gap configuration. MGRP represents the repetition period of the measurement gap. For example, if the MGRP value is 40ms, it means that a measurement gap occurs every 40ms. GO identifies the offset position of the repetition period of the measurement gap.

[0042] During the measurement gap, the terminal device shall stop normal uplink and downlink data transmission on the serving cell of the corresponding frequency domain until the measurement gap ends. The specific regulations are as follows:

[0043] During the measurement gap, the media access control (MAC) entity shall perform the following:

[0044] 1>Do not perform the transmission of hybrid automatic repeat request acknowledgement (HARQ), channel-state information (CSI), and scheduling request (SR);

[0045] 2> Not reporting the sounding reference signal (SRS);

[0046] 3> Except for message 3 (msg3), it is not transmitted on the uplink shared channel (UL-SCH);

[0047] 4> If the ra-ResponseWindow or ra-ContentionResolution timer is running, monitor the physical downlink control channel (PDCCH) as specified in subclauses 5.1.4 and 5.1.5; otherwise, do not monitor the PDCCH and do not receive on the downlink shared channel (DL-SCH).

[0048] Do not configure measurement gap

[0049] Unlike LTE, NR measurements are divided into two types: configured measurement interval and unconfigured measurement interval. When the neighboring cell synchronization signal block (SSB) that meets the requirements of the same-frequency measurement is completely contained in the bandwidth part (BWP) activated by the terminal device, or the activated downlink BWP is the initial BWP, the same-frequency measurement does not need to be configured with a measurement interval. Otherwise, the same-frequency measurement needs to be configured with a measurement interval.

[0050] In the R16 RRM enhancement project, an important topic is the enhancement of inter-frequency measurements that do not require measurement gaps. If the needforgap information of the current inter-frequency point reported by the terminal device or configured by the network is that a gap is required ("gap"), and the terminal device supports the capability of inter-frequency measurement that does not require a gap, then once the target SSB falls within the activated BWP of the terminal device, the terminal device is still allowed to perform measurements that do not require a gap outside the gap. If the needforgap information of the current inter-frequency point reported by the terminal device or configured by the network is that a gap is not required ("no-gap"), it is directly determined that the terminal device does not need a gap in the measurement of the corresponding frequency point, and there is no need to determine whether the terminal device supports the capability of inter-frequency measurement that does not require a gap.

[0051] In measurement scenarios where gaps are not required, the following restrictions are placed on the transmit and receive behavior of terminal devices. The following uses SSB-based, gap-free, co-frequency measurements as an example to illustrate the scheduling restriction requirements. In Release 15, simultaneous reception of data with different subcarrier spacings (SCS) and SSB is defined as an optional capability for terminal devices. From a terminal device implementation perspective, a terminal device with this capability can perform two sets of fast Fourier transform (FFT) operations simultaneously to process information with different subcarrier spacings. If the terminal device does not support this capability, then because it cannot process the two types of SCS signals at the same time, the terminal device does not expect to send physical uplink control channel (PUCCH) / physical uplink shared channel (PUSCH) / sounding reference signal (SRS) on all symbols of the currently measured SSB or receive physical downlink control channel (PDCCH) / physical downlink shared channel (PDSCH) / tracking reference signal (TRS) for channel quality indicator (CQI) feedback, such as channel state information-reference signal (CSI-RS); in addition, due to synchronization and other operations, the symbol immediately before and after these consecutive SSB symbols is not allowed to be transmitted as above.

[0052] Measurement gap enhancement

[0053] 1) Single MG (per-MG): Pre-configured MG supports network-controlled or terminal-based MG activation or deactivation based on certain conditions, such as during BWP handover.

[0054] 2) Multiple MGs (concurrent MGs): Multiple MGs (with different patterns) are configured for different reference signals (RSs), including per-FR / per-UE, and priorities of different MGs are configured.

[0055] 3) Network controlled small gap (NCSG)

[0056] The purpose of the NCSG scheme is to reduce transmission interruptions caused by RRM measurements. The NCSG pattern is defined by defining the visible interruption length (VIL) and measurement length (ML). During the VIL period, the terminal device will not perform uplink and downlink transmissions. During the ML period, the terminal device does not expect to send PUCCH / PUSCH / SRS or receive PDCCH / PDSCH / TRS / CSI-RS for CQI feedback on all symbols of the currently measured SSB. In addition, due to synchronization and other operations, the symbols immediately before and after these consecutive SSB symbols are not allowed to perform the above transmissions.

[0057] As described above, the RRM measurement process may cause service interruption, resulting in a large transmission delay for the corresponding service, which cannot meet the low-latency requirements of certain services (such as XR services).

[0058] In response to the above problems, the embodiments of the present application are described in detail below.

[0059] Example 1

[0060] Figure 2 is a flow chart of a wireless communication method provided in Embodiment 1 of the present application. The method in Figure 2 may be executed by a terminal device, which may be, for example, the terminal device 120 mentioned above.

[0061] Referring to Figure 2, in step S210, the terminal device performs a first operation. The first operation includes one or more of the following: discarding one or more measurement opportunities (dropping a measurement opportunity may also be referred to as ignoring a measurement opportunity or deactivating a measurement opportunity); determining that one or more measurement opportunities share time domain resources with data transmission; performing uplink / downlink data transmission in the time period corresponding to one or more measurement opportunities. The one or more measurement opportunities mentioned above are measurement opportunities for RRM measurement. The embodiment of the present application supports data transmission during RRM measurement opportunities, thereby reducing data transmission delay and improving system throughput and capacity.

[0062] For RRM measurements based on measurement intervals, the time period corresponding to the measurement opportunity mentioned in the embodiments of the present application may refer to the measurement interval. For RRM measurements that do not configure a measurement interval, the time period corresponding to the measurement opportunity mentioned in the embodiments of the present application may refer to a time slot or symbol that will cause a data transmission interruption during the RRM measurement. For example, for NCSG, the time period corresponding to the measurement opportunity may be considered as the VIL that causes a data transmission interruption. For SSB-based measurement timing configuration (SMTC), the time period corresponding to the measurement opportunity may refer to the SSB time slot that causes a data interruption.

[0063] Furthermore, in some implementations, the time period corresponding to the measurement opportunity may also include a third time period before the measurement opportunity and / or a fourth time period after the measurement opportunity. Taking SMTC as an example, the time period corresponding to the measurement opportunity may include the SSB time slot where the data interruption occurs and 1ms / Tms before and after the SSB time slot.

[0064] Before executing step S210, the terminal device and the network device may exchange information / signaling to prepare for the execution of the first operation.

[0065] In some implementations, before step S210, the terminal device may receive first capability information sent by the network device. The first capability information is used to indicate whether the network device supports the terminal device to perform the first operation. For example, the method of scheduling uplink / downlink data at the measurement time proposed in the embodiment of the present application can be called an enhanced scheduling mechanism, and accordingly, the first capability information can be used to indicate whether the network device supports the enhanced scheduling mechanism. Furthermore, in some implementations, the first capability information can be associated with one or more of the following: frequency band, frequency band combination, carrier, BWP, intra-frequency, and inter-frequency.

[0066] In some implementations, before step S210, the terminal device may send second capability information to the network device. The second capability information is used to indicate whether the terminal device is capable of performing the first operation. For example, the method of scheduling uplink / downlink data at the measurement timing proposed in the embodiment of the present application can be referred to as an enhanced scheduling mechanism. Accordingly, the second capability information can be used to indicate whether the terminal device supports the enhanced scheduling mechanism. Furthermore, in some implementations, the second capability information can be associated with one or more of the following: frequency band, frequency band combination, carrier, BWP, same-frequency band, and different-frequency band.

[0067] In some implementations, before step S210, the terminal device and the network device may exchange service information. For example, the terminal device may report uplink service-related information to the network device, including service type (such as XR-related services), quality of service (QoS) requirements (latency requirements, etc.), data cycle, data arrival time, and arrival time jitter.

[0068] In some implementations, before step S210, referring to step S310 of FIG. 3 , the terminal device may first receive target information from the network device. The target information includes configuration information. The configuration information may include one or more of the following: first configuration information for configuring the terminal device to perform the first operation; second configuration information related to RRM measurement; third configuration information related to scheduling of the network device; fourth configuration information for configuring a time domain resource sharing method for one or more measurement opportunities and data transmission; fifth configuration information related to data status reporting by the terminal device; and sixth configuration information for configuring a maximum number or maximum ratio of discardable measurement opportunities / measurement slots.

[0069] The first configuration information may be referred to as configuration information related to the enhanced scheduling mechanism. The first configuration information may include configuration on how to determine whether and which measurement opportunity to discard.

[0070] In some implementations, the first configuration information is used to configure the first time period. The first time period can be understood as the time period in which the enhanced scheduling mechanism takes effect. The first time period is used for the terminal device to perform the first operation. For example, the first configuration information can configure one or more of the following: the start time of the first time period, the time length of the first time period. The first configuration information can configure the start time of the first time period. Alternatively, the start time of the first time period can also be determined during the actual interaction process. The first configuration information can directly indicate the time length of the first time period, or it can determine the time length of the first time period by configuring the first timer. For example, the timing duration of the first timer can be determined as the time length of the first time period. As an example, the first configuration information configures the start time + time length of the first time period. As another example, the first configuration information configures the first timer, and uses the running time of the first timer as the above-mentioned first time period.

[0071] As mentioned above, the first time period is used by the terminal device to perform the first operation. For example, the terminal device may discard all measurement opportunities within the first time period. Alternatively, if the measurement object associated with the measurement opportunity supports enhanced scheduling operations, the terminal device may discard such measurement opportunities. If part of a measurement opportunity is included in the first time period, the measurement opportunity may or may not be discarded.

[0072] In some implementations, the first configuration information may configure a second time period. The second time period is used by the terminal device to determine whether to perform the first operation. Therefore, the second time period may also be referred to as the terminal device's judgment time. For example, the second time period may include the first X time units of each measurement opportunity. The time unit mentioned here may be a time slot, millisecond (ms), or symbol, where X is a positive integer greater than or equal to 1.

[0073] The length of the second time period may be fixed or associated with one or more of the following: a measurement object (or measurement target); a frequency range; or a measurement type, where the measurement type includes intra-frequency measurement and / or inter-frequency measurement.

[0074] For example, for measurement object 1, the length of the second time period is value 1; for measurement object 2, the length of the second time period is value 2.

[0075] For another example, for FR1, the length of the second time period is value 1; for measurement object 2, the length of the second time period is value 2.

[0076] For another example, for same-frequency measurement, the length of the second time period is 1; for different-frequency measurement, the length of the second time period is 2.

[0077] In some implementations, the second configuration information mentioned above (configuration information related to RRM measurement) is used to configure one or more of the following: whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation (that is, whether it supports the enhanced scheduling mechanism proposed in this application, that is, not performing RRM measurement during the RRM measurement period, but performing uplink and downlink transmission); the priority of the measurement object corresponding to the RRM measurement; and the measurement threshold corresponding to the RRM measurement.

[0078] In some implementations, the measurement threshold corresponding to the RRM measurement is associated with one or more of the following (or, the measurement threshold corresponding to the RRM measurement is used to evaluate one or more of the following): the signal quality of the serving cell (such as the current cell); the signal quality of the neighboring cell; the difference in signal quality between the serving cell and the neighboring cell; the change in the signal quality of the serving cell; and the change in the signal quality of the neighboring cell.

[0079] In some implementations, after configuring the above-mentioned measurement threshold, the terminal device may send the measurement result to the network device according to the measurement threshold corresponding to the RRM measurement.

[0080] In some implementations, the third configuration information mentioned above (configuration information related to the scheduling of the network device, or scheduling configuration) can be used to configure one or more of the following: whether to allow scheduling of the network device within one or more measurement opportunities; the priority of scheduling of the network device.

[0081] In some implementations, the fourth configuration information mentioned above is used to configure a time domain resource sharing method for one or more measurement opportunities and data transmission. Taking the measurement opportunity as a measurement interval as an example, the fourth configuration information can be called measurement interval sharing information (Gap sharing). Furthermore, in some implementations, the fourth configuration information can be used to configure the sharing ratio of the measurement opportunity and data transmission. For example, the fourth configuration information can indicate that the entire measurement opportunity is used for data transmission. For another example, the fourth configuration information can indicate the proportion (such as a percentage) of the measurement opportunity used for data transmission. In addition to being configured by a network device, the time domain resource sharing method for the measurement opportunity and data transmission can also be a default method predefined by the protocol. Alternatively, a default ratio, such as 50 percent, can be used between the measurement opportunity and the time domain resources for data transmission.

[0082] In some implementations, the fifth configuration information (related to data status reporting of the terminal device) mentioned above can configure thresholds related to data status reporting. The thresholds can include one or more of the following: a data volume threshold; a data priority threshold; or a data remaining delay threshold.

[0083] Correspondingly, the terminal device can report the data status to the network device according to the threshold configured by the fifth configuration information.

[0084] The configuration information of the network device mentioned above may be public configuration information, or may be associated with one of the following: frequency range (FR1 or FR2); measurement type, which includes same-frequency measurement and / or different-frequency measurement; measurement object; data priority (or data transmission priority); remaining delay of data; data volume; cell information; BWP.

[0085] 2 again, the first operation mentioned in step S210 can be controlled (or triggered) by the network device, or can be triggered autonomously by the terminal device according to certain conditions. The following describes these two possible triggering methods in conjunction with two embodiments.

[0086] Example 1.1: Network device triggers first operation

[0087] In some implementations, referring again to step S310 of FIG. 3 , the first operation is triggered based on a first command (or first signaling) in the target information sent by the network device. The first command may be called an ignore command, a discard command, or a deactivation command, and is used to instruct the terminal device to discard one or more measurement opportunities. The first command may be carried in radio resource control (RRC) signaling, a MAC control element (MAC CE), or downlink control information (DCI).

[0088] The first command may be a simple trigger command. Alternatively, the first command may further include some indication information. For example, the first command may include first information for determining whether a measurement opportunity needs to be or is allowed to be discarded.

[0089] Exemplarily, the first information includes one or more of the following: a measurement opportunity that needs to be or is allowed to be discarded; a priority of a measurement object that needs to be or is allowed to be discarded; and a priority of data to be transmitted.

[0090] For example, if the first information indicates the priority of the measurement object that needs to be or is allowed to be discarded, the terminal device may discard the measurement opportunities associated with the measurement objects with a lower priority than the priority.

[0091] For another example, if the first information indicates the priority of the data to be transmitted, the terminal device may discard the measurement opportunities associated with the measurement objects with a lower priority than the priority.

[0092] After receiving the first command, the terminal device may discard the measurement opportunity and / or perform uplink / downlink data transmission according to the first command. For example, the terminal device may discard one or more measurement opportunities within a first time period. The first time period may be determined based on the configuration of the network device and / or the time when the first command was received.

[0093] For example, if the start time and duration of the first time period are both based on the network device configuration, the terminal device can determine the first time period based on the start time + duration configuration. The terminal device can then discard all measurement opportunities that are allowed to be discarded within the first time period (or share the measurement opportunity with data transmission) and send and receive data according to the uplink and downlink scheduling of the network device.

[0094] For another example, the start time of the first time period is determined based on the reception time of the first command (such as being equal to the reception time of the first command), and the length of the first time period is determined based on the configuration of the network device or based on the timing duration of the first timer. In this case, the terminal device can determine the first time period based on the reception time of the first command and the configuration information of the network device (or the timing duration of the first timer). Then, the terminal device can discard all measurement opportunities that are allowed to be discarded within the first time period (or share the measurement opportunity with data transmission), and send and receive data according to the uplink and downlink scheduling of the network device.

[0095] In some implementations, the terminal device may determine whether RRM measurement is required at the measurement opportunity according to the received first command in a second time period before each measurement opportunity (such as X time slots, milliseconds, or symbols before each measurement opportunity). If RRM measurement is not required, the terminal device may perform uplink and downlink transmission at the measurement opportunity. For example, the terminal device may determine whether there is uplink and downlink scheduling in the next measurement opportunity according to the instruction of the network device. If there is uplink and downlink scheduling, the terminal device does not need to perform RRM measurement, but performs uplink and downlink transmission.

[0096] In some implementations, if the terminal device performs uplink transmission at the measurement opportunity, the terminal device may send the corresponding uplink data according to the scheduling configuration of the network device. For example, the scheduling configuration mentioned here may include one or more of the following: priority configuration of uplink transmission scheduled by the network device, logical channel configuration, data residual delay requirement configuration, etc.

[0097] In some implementations, if the terminal device performs downlink transmission at the measurement opportunity, the manner in which the terminal device monitors the downlink transmission may be determined according to network implementation.

[0098] In some implementations, before executing step S210, the terminal device may send second information to the network device. The second information is used to request the network device to perform the first operation. The second information may be triggered based on a condition. For example, the second information is triggered based on the first condition, and the first condition is associated with one or more of the following: whether the network device supports the terminal device to perform the first operation; the priority of one or more measurement opportunities; the priority of the data to be transmitted; the scheduling method of the data to be transmitted, the scheduling method includes scheduling based on configuration authorization and / or scheduling based on dynamic authorization; the scheduling priority of the network device; the remaining delay of the data to be transmitted; the coverage condition information of the terminal device; the transmission type of the data to be transmitted, the transmission type includes new transmission and / or retransmission; whether the maximum number of discardable measurement opportunities / measurement time slots (time slots for RRM measurement) is exceeded; whether the maximum proportion of discardable measurement opportunities / measurement time slots (time slots for RRM measurement) is exceeded.

[0099] Whether the network device mentioned above supports the terminal device to perform the first operation can also be understood as whether the network device supports the enhanced scheduling method proposed in the embodiment of the present application. Whether the network device supports the enhanced scheduling method can be indicated by the network device sending capability information, or it can also be determined by determining whether the network device is configured with configuration information related to the enhanced scheduling method.

[0100] The priority of the one or more measurement occasions mentioned above may be determined based on the priority (or priority configuration) of the measurement object associated with the measurement occasion, for example.

[0101] The priority of the data to be transmitted (sent / received) mentioned above may be determined based on the highest (or lowest) priority of the data in the cache, or may be determined based on the priority of the logical channel with the least (or most) remaining delay.

[0102] The aforementioned remaining delay of the data to be transmitted may be determined based on the PDB of the data to be transmitted, a delay state (DS), and a discard timer.

[0103] The priority of the data to be transmitted mentioned above may be determined based on one or more of the following: the highest priority of the data to be transmitted; and the priority of the logical channel with the least remaining delay.

[0104] The coverage condition information mentioned above can be determined based on one or more of the following: signal quality of the serving cell; signal quality of the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell; difference in signal quality between the serving cell and the neighboring cell.

[0105] Example 1.2: The terminal device autonomously triggers the first operation

[0106] In some implementations, the first operation mentioned in step S210 may be determined based on the second condition. That is, if the second condition is met, the terminal device may autonomously trigger the first operation.

[0107] In some implementations, the second condition is associated with one or more of the following: whether the network device supports the terminal device to perform the first operation; the priority of one or more measurement opportunities; the priority of the data to be transmitted; the scheduling method of the data to be transmitted, the scheduling method including scheduling based on configuration authorization and / or scheduling based on dynamic authorization; the scheduling priority of the network device; the remaining delay of the data to be transmitted; the coverage condition information of the terminal device; the transmission type of the data to be transmitted, the transmission type including new transmission and / or retransmission; whether the maximum number of discardable measurement opportunities / measurement slots (time slots for RRM measurements) is exceeded; whether the maximum proportion / number of discardable measurement opportunities / measurement slots (time slots for RRM measurements) is exceeded.

[0108] Whether the network device mentioned above supports the terminal device to perform the first operation can also be understood as whether the network device supports the enhanced scheduling method proposed in the embodiment of the present application. Whether the network device supports the enhanced scheduling method can be indicated by the network device sending capability information, or it can also be determined by determining whether the network device is configured with configuration information related to the enhanced scheduling method.

[0109] The priority of the one or more measurement occasions mentioned above may be determined based on the priority (or priority configuration) of the measurement object associated with the measurement occasion, for example.

[0110] The priority of the data to be transmitted (sent / received) mentioned above may be determined based on the highest (or lowest) priority of the data in the cache, or may be determined based on the priority of the logical channel with the least (or most) remaining delay.

[0111] The aforementioned remaining delay of the data to be transmitted may be determined based on the PDB of the data to be transmitted, a delay state (DS), and a discard timer.

[0112] The priority of the data to be transmitted mentioned above may be determined based on one or more of the following: the highest priority of the data to be transmitted; and the priority of the logical channel with the least remaining delay.

[0113] The coverage condition information mentioned above can be determined based on one or more of the following: signal quality of the serving cell; signal quality of the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell; difference in signal quality between the serving cell and the neighboring cell.

[0114] For example, the second condition includes one or more of the following: the coverage situation indicated by the coverage condition information satisfies the third condition; the priority of one or more measurement opportunities (which can be determined based on the lowest priority or the highest priority among the priorities corresponding to one or more measurement opportunities) is less than or equal to the priority of the data to be transmitted.

[0115] For another example, the second condition includes one or more of the following: the coverage condition indicated by the coverage condition information satisfies the third condition; the priority of the data to be transmitted is greater than or equal to the second priority.

[0116] In some implementations, the terminal device may determine whether RRM measurement is required at the measurement opportunity in a second time period before each measurement opportunity (e.g., X time slots, milliseconds, or symbols before each measurement opportunity). If RRM measurement is not required, the terminal device may perform uplink and downlink transmission at the measurement opportunity. For example, the terminal device may determine whether uplink and downlink scheduling occurs in the next measurement opportunity based on an instruction from the network device. If uplink and downlink scheduling occurs, the terminal device does not need to perform RRM measurement but performs uplink and downlink transmission.

[0117] In some implementations, before the terminal device performs the first operation, the terminal device may send third information to the network device. The third information is used to indicate that the first terminal device has determined, prepared, or is about to perform the first operation. The third information may be referred to as uplink indication information. The third information may be carried in an RRC, MAC CE, or PUCCH.

[0118] The third information may be sent autonomously by the terminal device or based on a request from the network device. For example, before the terminal device sends the third information to the network device, the terminal device receives fourth information sent by the network device. The fourth information is used to request the terminal device to determine whether the first operation can be performed. The fourth information may be carried in an RRC, MAC CE, or PDCCH.

[0119] If the terminal device needs to perform uplink transmission at the measurement opportunity, the terminal device may carry the third information in a MAC CE or PUCCH. The MAC CE may be a buffer status report (BSR) or a delay status report (DSR). In addition, the MAC CE or PUCCH is also used to indicate the measurement objects associated with one or more measurement opportunities.

[0120] For ease of understanding, the following uses downlink transmission and uplink transmission at the measurement timing as examples to illustrate the judgment of the second condition and the behavior of the terminal device in more detail.

[0121] For downlink transmission

[0122] Dynamic Scheduling: If the terminal device determines that data reception is possible based on the second condition mentioned above at least X milliseconds / symbols / time slots before the measurement opportunity, the terminal device sends an uplink indication to the network (via RRC / MAC CE / PUCCH). This determination and uplink indication can be based on a request from the network (RRC / MAC CE / PDCCH).

[0123] For example, the network device may indicate in the request information (corresponding to the fourth information mentioned above) the location where the downlink transmission is to be scheduled / the priority of the downlink transmission and other information. If the downlink transmission location overlaps with the measurement opportunity, the terminal device determines whether the above coverage condition information is met. If the coverage condition information is met, it is further determined whether to perform measurement or data reception based on the priority information of the data transmission and the measurement opportunity. Exemplarily, priority thresholds may be configured for the measurement opportunity and the data transmission respectively. If the RRM measurement < priority 1; and / or, the data transmission > priority 2, then the second condition may be considered to be met. Alternatively, the measurement opportunity may be directly compared with the priority of the data transmission; if the priority of the measurement opportunity < the data transmission priority, then the second condition may be considered to be met. If there are multiple measurement opportunities, the highest priority among the priorities corresponding to the multiple measurement opportunities may be taken, and compared with the data transmission priority based on the highest priority.

[0124] Non-dynamic scheduling: Similar to dynamic scheduling, the difference is that the terminal device can determine downlink transmission location and other information directly based on the semi-static transmission configuration, without relying on a request from the network device. When the second condition mentioned above is met, the terminal device can indicate to the network device that downlink scheduling is possible and can further indicate the scheduling resource location / window. After receiving the terminal device's instruction, the network device will schedule downlink transmission at the corresponding location.

[0125] For uplink transmission

[0126] Dynamic Scheduling: If, at least X milliseconds / symbols / time slots before the measurement opportunity, the terminal device determines that data can be sent based on the second condition mentioned above, and the terminal device has data stored in its buffer, the terminal device may send an uplink indication to the network (via RRC / MAC CE / PUCCH). This determination and uplink indication may be based on a request from the network (RRC / MAC CE / PDCCH).

[0127] For example, if there is data to be sent in the cache of the terminal device, but the terminal device needs to perform RRM measurement immediately, the terminal device determines whether the above coverage condition information is met. If the coverage condition information is met, it is further determined whether to perform measurement or data reception based on the priority information of data transmission and measurement timing. Exemplarily, priority thresholds can be configured for measurement timing and data transmission respectively. If RRM measurement < priority 1; and / or, data transmission > priority 2, it can be considered that the second condition is met. Alternatively, the measurement timing can be directly compared with the priority of data transmission; if the priority of the measurement timing < data transmission priority, it can be considered that the second condition is met. If there are multiple measurement opportunities, the highest priority among the priorities corresponding to the multiple measurement opportunities can be taken, and compared with the data transmission priority based on the highest priority.

[0128] If the result of the terminal device's judgment is to send data, the terminal device sends an indication message to the network (corresponding to the third information in the preceding text). The indication message can, for example, use an enhanced BSR / DSR MAC CE. Exemplarily, an indication of measurement opportunity transmission can be added to the BSR / DSR MAC CE, and the association relationship between the measurement opportunity and the measurement object can be further indicated. Alternatively, the indication message uses a new signaling indication.

[0129] Non-dynamic scheduling: Similar to dynamic scheduling, the difference is that the terminal device can determine the uplink transmission location and other information based on the semi-static transmission configuration, so that the corresponding resources can be directly used for uplink transmission when the second condition is met.

[0130] In some implementations, if the terminal device performs uplink transmission at the measurement opportunity, the terminal device may send the corresponding uplink data according to the scheduling configuration of the network device. For example, the scheduling configuration mentioned here may include one or more of the following: priority configuration of uplink transmission scheduled by the network device, logical channel configuration, data residual delay requirement configuration, etc.

[0131] In some implementations, if the terminal device performs downlink transmission at the measurement opportunity, the manner in which the terminal device monitors the downlink transmission may be determined according to network implementation.

[0132] It should be noted that the aforementioned overlap between the measurement opportunity and the network device's schedule can be complete or partial. When determining whether there is overlap, in addition to determining the time slot or symbol in which the measurement opportunity and the schedule are located, M (M is a positive integer greater than or equal to 1) time slots / symbols before and / or after the measurement opportunity may also be considered (equivalent to considering the processing time of the terminal device).

[0133] As mentioned above, whether the terminal device performs the first operation can be based on the control of the network device (hereinafter referred to as the first processing method), or the terminal device can autonomously perform the first operation (hereinafter referred to as the second processing method). These two processing methods can exist at the same time. That is to say, the communication system can support both processing methods at the same time. In actual use, which processing method to use can be flexibly selected according to actual needs. For example, which processing method to use can be determined based on the control of the network device. The network device can comprehensively decide which processing method to use based on whether the network device supports the first processing method and / or whether the terminal device supports the second processing method. For another example, the first processing method can be used for downlink transmission, and the second processing method can be used for uplink transmission. For another example, the first processing method can be used for dynamic scheduling, and the second processing method can be used for non-dynamic scheduling (scheduling based on configuration authorization). For another example, the first processing method can be used for new data transmission, and the second processing method can be used for data retransmission.

[0134] The following describes the embodiments of the present application in more detail with reference to specific examples. It should be noted that the examples of Figures 4 to 5 are merely intended to help those skilled in the art understand the embodiments of the present application, and are not intended to limit the embodiments of the present application to the specific numerical values ​​or specific scenarios illustrated. It is apparent that those skilled in the art can make various equivalent modifications or changes based on the examples of Figures 4 to 5, and such modifications or changes also fall within the scope of the embodiments of the present application.

[0135] 4 , in step S410 , the preparation phase is as follows: In the preparation phase, the terminal device and the network device may transmit one or more of capability information, service information, configuration information, measurement reporting information, data status, etc. A detailed description is provided above and will not be repeated here.

[0136] In step S420, the network device sends a drop measurement occasion command to the terminal device. The command may be RRC signaling, MAC CE or DCI.

[0137] In step S430, the terminal device discards the measurement opportunity.

[0138] In step S440, the terminal device performs uplink / downlink transmission based on the scheduling of the network device within the discarded measurement opportunity.

[0139] 5 , in step S510 , the preparation phase is as follows: In the preparation phase, the terminal device and the network device may transmit one or more of capability information, service information, configuration information, measurement reporting information, data status, etc. A detailed description is provided above and will not be repeated here.

[0140] In step S520, the terminal device determines whether a condition is satisfied. This condition corresponds to the second condition mentioned above, and a detailed description can be found above.

[0141] In step S530, if the second condition is met, the measurement opportunity is discarded.

[0142] In step S540, the terminal device reports a report of discarding the measurement opportunity to the network device.

[0143] In step S550, the terminal device performs uplink / downlink transmission based on the scheduling of the network device within the discarded measurement opportunity.

[0144] Example 2

[0145] Figure 6 is a flow chart of a wireless communication method provided in Embodiment 2 of the present application. The method in Figure 6 may be executed by a terminal device, which may be, for example, the terminal device 120 mentioned above.

[0146] Referring to Figure 6, in step S610, if the first condition is met, the terminal device adjusts the first configuration information (RRM measurement configuration). The first configuration information is used for RRM measurement. In other words, the first configuration information in the embodiment of the present application is not fixed, but can be flexibly adjusted according to conditions, thereby reducing data transmission interruptions by configuring / adjusting the RRM measurement-related configuration.

[0147] In some implementations, the first condition is associated with one or more of the following: reliability requirements of the data to be transmitted; delay requirements of the data to be transmitted; remaining delay of the data to be transmitted; mobility status of the terminal device; and location of the terminal device in the service cell.

[0148] The reliability requirements of the data to be transmitted may include, for example, whether there is a high reliability and / or low latency data requirement (such as XR data). If the data to be transmitted has a high reliability and / or low latency data requirement, a smaller measurement opportunity (or a smaller data transmission interruption duration) may be used.

[0149] The latency requirement for the data to be transmitted can, for example, measure the urgency of the data. For example, if the latency of the data to be transmitted is less than a certain threshold, the first configuration information can be adjusted. If the urgency of the data to be transmitted is higher, a smaller measurement opportunity or a longer measurement cycle (or a shorter data transmission interruption duration) can be used.

[0150] The mobility state of the terminal device can be used to determine whether the terminal device is in a low mobility state. If the terminal device is in a low mobility state, the first configuration information can be adjusted. Whether the terminal device is in a low mobility state can be determined based on whether the change in the measured signal quality of the serving cell and / or the neighboring cell is less than a certain threshold. If the terminal device is in a low mobility state, a smaller measurement opportunity (or a smaller data transmission interruption duration) can be used.

[0151] The position of the above-mentioned terminal device in the serving cell may refer to whether the terminal device is at the edge of the cell. For example, if the terminal device is at the edge of the cell, the first configuration information may be adjusted or not. Whether the terminal device is at the edge of the cell may be determined based on the signal quality of the serving cell, the signal quality of the adjacent cell and / or the signal quality difference between the serving cell and the adjacent cell. For example, if the signal quality of the serving cell is higher than a certain threshold, it indicates that the terminal device is not at the edge of the cell. For another example, if the signal quality of the adjacent cell is lower than a certain threshold, it indicates that the terminal device is not at the edge of the cell. For another example, if the signal quality of the serving cell is higher than the signal quality of the adjacent cell by a certain threshold compared to the signal quality of the adjacent cell, it indicates that the terminal device is not at the edge of the cell. If the terminal device is not at the edge of the cell, a smaller measurement opportunity (or a smaller data transmission interruption duration) may be used.

[0152] The first configuration information can be adjusted under the control of the network device or can be adjusted autonomously by the terminal device. The following describes these two implementation methods respectively.

[0153] Example 2.1: Adjusting RRM measurement configuration under network device control

[0154] In embodiment 2.1, step S610 may include: the terminal device sends first information to the network device. The first information is used to indicate that a first condition is met (or the first condition has changed). The first information may be carried in RRC, MAC CE or PUCCH.

[0155] After receiving the first information, referring to step S710 in Figure 7 , the network device may send second information to the terminal device. The second information is used to: reconfigure the first configuration information; or instruct the terminal device to switch from the first configuration information to the second configuration information.

[0156] The first configuration information and the second configuration information mentioned above are both configuration information for RRM measurement, referred to as RRM measurement configuration. For example, the network device can pre-configure multiple sets of RRM measurement configurations for the terminal device and switch to different configurations in different situations (based on the report of the terminal device).

[0157] In some implementations, the second information may be carried in RRC, MAC CE, or DCI.

[0158] Example 2.2: Terminal device autonomously adjusts RRM measurement configuration

[0159] In embodiment 2.2, step S610 may include: the terminal device adjusts the first configuration information according to the first parameter. The first parameter is determined based on the configuration information of the network device. For example, the first parameter may relax the RRM measurement configuration (i.e., the first configuration information) by a certain multiple / value, such as extending the measurement period by Y times. Or, extending the measurement period by X time slots. The X and / or Y mentioned here may be the first parameter. The first parameter may be configured by the network device. The first parameter may be a configuration parameter related to the measurement result / remaining delay. In some implementations, the first parameter is related to the measurement result. For example, if the measurement result indicates that the signal quality of the serving cell is higher than the threshold interval 1, the value of the first parameter is 1; if the measurement result indicates that the signal quality of the serving cell is higher than the interval 2, the value of the first parameter is 2. In other implementations, the first parameter is related to the remaining delay of the data to be transmitted. For example, if the remaining delay of the transmitted data belongs to interval 1, the value of the first parameter is 1; if the remaining delay of the transmitted data belongs to interval 2, the value of the first parameter is 2. Alternatively, in some implementations, the residual delay and the measurement result may be considered jointly.

[0160] Alternatively, in embodiment 2.2, step S610 may include: the terminal device autonomously switching from the first configuration information to the second configuration information. The first configuration information and the second configuration information are both configuration information for RRM measurement, referred to as RRM measurement configuration. For example, the network device may pre-configure multiple sets of RRM measurement configurations for the terminal device and switch to different configurations in different situations (based on reports from the terminal device).

[0161] In some implementations, the multiple sets of RRM measurement configurations may be associated with one or more of the following: measurement results of the RRM measurement; and a remaining delay of a data packet to be transmitted.

[0162] In some implementations, if the terminal device adjusts the first configuration information, the terminal device may send second information to the network device, where the second information is used to indicate the adjustment result of the first configuration information.

[0163] The method embodiment of the present application is described in detail above in conjunction with Figures 1 to 7 . The device embodiment of the present application is described in detail below in conjunction with Figures 8 to 11 . It should be understood that the description of the method embodiment corresponds to the description of the device embodiment. Therefore, for portions not described in detail, reference can be made to the above method embodiment.

[0164] FIG8 is a schematic diagram of the structure of a terminal device according to an embodiment of the present application. The terminal device 800 shown in FIG8 includes an execution unit 810. The execution unit 810 is configured to perform a first operation. The first operation includes one or more of the following: discarding one or more measurement opportunities; determining that one or more measurement opportunities share time domain resources with data transmission; performing uplink / downlink data transmission during a time period corresponding to one or more measurement opportunities; wherein the one or more measurement opportunities are used for RRM measurements.

[0165] In some implementations, the first operation is triggered based on a first command sent by the network device.

[0166] In some implementations, the first command includes first information, where the first information is used to determine whether measurement opportunities need to be or are allowed to be discarded.

[0167] In some implementations, the first information includes one or more of the following: a measurement opportunity that needs to be or is allowed to be discarded; a priority of a measurement object that needs to be or is allowed to be discarded; and a priority of data to be transmitted.

[0168] In some implementations, the first command is RRC signaling, MAC CE, or DCI.

[0169] In some implementations, the terminal device further includes: a first sending unit, configured to send second information to a network device before the terminal device performs the first operation, wherein the second information is used to request the network device to perform the first operation.

[0170] In some implementations, the second information is triggered based on a first condition, and the first condition is associated with one or more of the following: whether the network device supports the terminal device to perform the first operation; the priority of the one or more measurement opportunities; the priority of the data to be transmitted; the scheduling method of the data to be transmitted, the scheduling method including scheduling based on configuration authorization and / or scheduling based on dynamic authorization; the scheduling priority of the network device; the remaining delay of the data to be transmitted; the coverage condition information of the terminal device; the transmission type of the data to be transmitted, the transmission type including new transmission and / or retransmission; whether the maximum number of discardable measurement opportunities / measurement time slots is exceeded; whether the maximum proportion of discardable measurement opportunities / measurement time slots is exceeded.

[0171] In some implementations, the one or more measurement opportunities are measurement opportunities within a first time period, and the first time period is determined based on one or more of the following: configuration information of the network device; the reception time of the first command sent by the network device; wherein the first command is used to trigger the terminal device to perform the first operation.

[0172] In some implementations, the start time of the first time period is determined based on configuration information of the network device; or, the start time of the first time period is determined based on a time of receiving the first command.

[0173] In some implementations, the duration of the first period is determined based on the timing duration of a first timer; or the duration of the first period is determined based on first duration configuration information of the network device.

[0174] In some implementations, the first operation is determined based on a second condition, where the second condition is associated with one or more of the following:

[0175] Whether the network device supports the terminal device to perform the first operation; the priority of the one or more measurement opportunities; the priority of the data to be transmitted; the scheduling method of the data to be transmitted, the scheduling method including scheduling based on configuration authorization and / or scheduling based on dynamic authorization; the scheduling priority of the network device; the remaining delay of the data to be transmitted; the coverage condition information of the terminal device; the transmission type of the data to be transmitted, the transmission type including new transmission and / or retransmission; whether the maximum number of discardable measurement opportunities / measurement time slots is exceeded; whether the maximum proportion of discardable measurement opportunities / measurement time slots is exceeded.

[0176] In some implementations, the priority of the data to be transmitted is determined based on one or more of the following: the highest priority of the data to be transmitted; and the priority of the logical channel with the least remaining delay.

[0177] In some implementations, the coverage condition information is determined based on one or more of: signal quality of the serving cell; signal quality of the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell; and difference in signal quality between the serving cell and the neighboring cell.

[0178] In some implementations, the terminal device further includes: a second sending unit, configured to send third information to a network device before the terminal device performs the first operation, wherein the third information is used to instruct the first terminal device to determine to perform the first operation.

[0179] In some implementations, the terminal device further includes: a first receiving unit, configured to receive fourth information sent by the network device before the terminal device sends third information to the network device, wherein the fourth information is used to request the terminal device to determine whether the first operation can be performed.

[0180] In some implementations, if the terminal device performs uplink transmission at the one or more measurement occasions, the third information is carried in a MAC CE or a PUCCH.

[0181] In some implementations, the MAC CE or PUCCH is further used to indicate measurement objects associated with the one or more measurement occasions.

[0182] In some implementations, the MAC CE is a BSR or a DSR.

[0183] In some implementations, the second condition includes one or more of the following: the coverage situation indicated by the coverage condition information satisfies the third condition; the priority of the one or more measurement opportunities is less than or equal to the priority of the data to be transmitted; the priority of the one or more measurement opportunities is less than or equal to the first priority, and / or the priority of the data to be transmitted is greater than or equal to the second priority.

[0184] In some implementations, the priority of the one or more measurement opportunities is determined based on the highest priority among the priorities corresponding to the one or more measurement opportunities.

[0185] In some implementations, the terminal device further includes: a second receiving unit, used to receive configuration information of the network device before the terminal device performs the first operation, the configuration information including one or more of the following: first configuration information, used to configure the terminal device to perform the first operation; second configuration information, related to RRM measurement; third configuration information, related to the scheduling of the network device; fourth configuration information, used to configure the time domain resource sharing method of the one or more measurement opportunities and data transmission; fifth configuration information, related to the data status reporting of the terminal device; sixth configuration information, used to configure the maximum number or maximum proportion of discardable measurement opportunities / measurement time slots.

[0186] In some implementations, the first configuration information is used to configure one or more of the following: a first time period, the first time period is used for the terminal device to perform the first operation; and a second time period, the second time period is used for the terminal device to determine whether to perform the first operation.

[0187] In some implementations, the first configuration information is used to configure one or more of the following: a start time of the first time period; and a duration of the first time period.

[0188] In some implementations, the first configuration information is used to configure a first timer, and the length of the first time period is determined based on the timing duration of the first timer.

[0189] In some implementations, the second period includes the first X time units of each of the one or more measurement opportunities, where the time unit is a time slot, a millisecond, or a symbol, and X is a positive integer greater than or equal to 1.

[0190] In some implementations, the length of the second period is associated with one or more of the following: a measurement object; a frequency range;

[0191] The measurement type includes intra-frequency measurement and / or inter-frequency measurement.

[0192] In some implementations, the second configuration information is used to configure one or more of the following: whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation; the priority of the measurement object corresponding to the RRM measurement; and the measurement threshold corresponding to the RRM measurement.

[0193] In some implementations, the measurement threshold is associated with one or more of the following: signal quality of the serving cell; signal quality of the neighboring cell; difference in signal quality between the serving cell and the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell.

[0194] In some implementations, the terminal device further includes: a third sending unit, configured to send a measurement result to the network device according to a measurement threshold corresponding to the RRM measurement.

[0195] In some implementations, the third configuration information is used to configure one or more of the following: whether to allow scheduling of the network device within the one or more measurement opportunities; and a scheduling priority of the network device.

[0196] In some implementations, the fifth configuration information is used to configure one or more of the following: a data volume threshold; a data priority threshold; and a data remaining delay threshold.

[0197] In some implementations, the terminal device further includes: a reporting unit, configured to report the data status to the network device according to a threshold configured by the fifth configuration information.

[0198] In some implementations, the configuration information of the network device is associated with one of the following: frequency range; measurement type, the measurement type including intra-frequency measurement and / or inter-frequency measurement; measurement object; data priority; remaining delay of data; data volume; cell information; BWP.

[0199] In some implementations, the terminal device further includes: a third receiving unit, configured to receive first capability information sent by a network device before the terminal device performs a first operation, the first capability information being used to indicate whether the network device supports the terminal device in performing the first operation; and / or to send second capability information to the network device, the second capability information being used to indicate whether the terminal device can perform the first operation.

[0200] In some implementations, the one or more measurement opportunities include a first measurement opportunity, and the terminal device further includes: a determination unit for determining whether to perform the first operation before the terminal device performs the first operation within a second time period before the first measurement opportunity.

[0201] In some implementations, the second time period includes the first X time units of the first measurement opportunity, where the time unit is a time slot, a millisecond, or a symbol, and X is a positive integer greater than or equal to 1.

[0202] In some implementations, the terminal device determines whether to perform the first operation, including: if the network device performs uplink / downlink scheduling within the first measurement opportunity, then the terminal device determines to perform the first operation.

[0203] In some implementations, the time periods corresponding to the one or more measurement opportunities include one or more of the following: a measurement interval; a time slot or symbol in which data transmission interruption occurs during RRM measurement.

[0204] In some implementations, the time period corresponding to the one or more measurement opportunities further includes a third time period before the one or more measurement opportunities and / or a fourth time period after the one or more measurement opportunities.

[0205] Fig. 9 is a schematic structural diagram of a terminal device according to an embodiment of the present application, and the terminal device 900 shown in Fig. 9 includes an adjustment unit 910. The adjustment unit 910 is configured to adjust first configuration information if a first condition is met, where the first configuration information is used for RRM measurement.

[0206] In some implementations, the first condition is associated with one or more of the following: reliability requirements of the data to be transmitted; delay requirements of the data to be transmitted; remaining delay of the data to be transmitted; mobility status of the terminal device; and location of the terminal device in the serving cell.

[0207] In some implementations, the adjustment unit is configured to send first information to the network device, where the first information is configured to indicate that the first condition is met.

[0208] In some implementations, the terminal device further includes: a receiving unit for receiving second information sent by the network device, wherein the second information is used to: reconfigure the first configuration information; or instruct the terminal device to switch from the first configuration information to the second configuration information, wherein the second configuration information is used for RRM measurement.

[0209] In some implementations, the adjusting unit is configured to adjust the first configuration information according to a first parameter, where the first parameter is determined based on configuration information of the network device.

[0210] In some implementations, the value of the first parameter is associated with one or more of the following: a measurement result of the RRM measurement; and a remaining delay of a data packet to be transmitted.

[0211] In some implementations, the adjusting unit is configured to autonomously switch from the first configuration information to second configuration information, where the second configuration information is used for RRM measurement.

[0212] In some implementations, the first configuration information and / or the second configuration information is associated with one or more of the following: a measurement result of the RRM measurement; and a remaining delay of a data packet to be transmitted.

[0213] In some implementations, the terminal device further includes: a sending unit, configured to send second information to the network device, where the second information is used to indicate an adjustment result of the first configuration information.

[0214] FIG10 is a schematic structural diagram of a network device according to an embodiment of the present application. The network device 1000 shown in FIG10 includes: a first sending unit 1010 .

[0215] The first sending unit 1010 is used to send target information to the terminal device, and the target information is one of the following: a first command, which is used to trigger the terminal device to perform a first operation; first configuration information, which is used to configure the terminal device to perform the first operation; wherein, the first operation includes one or more of the following: discarding one or more measurement opportunities; determining one or more measurement opportunities to share time domain resources with data transmission; performing uplink / downlink data transmission in a time period corresponding to one or more measurement opportunities; wherein, the one or more measurement opportunities are used for RRM measurement.

[0216] In some implementations, the first command includes first information, where the first information is used to determine whether measurement opportunities need to be or are allowed to be discarded.

[0217] In some implementations, the first information includes one or more of the following: a measurement opportunity that needs to be or is allowed to be discarded; a priority of a measurement object that needs to be or is allowed to be discarded; and a priority of data to be transmitted.

[0218] In some implementations, the first command is RRC signaling, MAC CE, or DCI.

[0219] In some implementations, the network device further includes: a first receiving unit, configured to receive second information sent by the terminal device, where the second information is used to request the network device to perform the first operation.

[0220] In some implementations, the one or more measurement opportunities are measurement opportunities within a first time period, where the first time period is determined based on one or more of: configuration information of the network device; and a transmission time of the first command.

[0221] In some implementations, the start time of the first time period is determined based on configuration information of the network device; or, the start time of the first time period is determined based on a time of receiving the first command.

[0222] In some implementations, the duration of the first period is determined based on the timing duration of a first timer; or the duration of the first period is determined based on first duration configuration information of the network device.

[0223] In some implementations, the first operation is determined based on a second condition, where the second condition is associated with one or more of the following:

[0224] Whether the network device supports the terminal device to perform the first operation; the priority of the one or more measurement opportunities; the priority of the data to be transmitted; the scheduling method of the data to be transmitted, the scheduling method including scheduling based on configuration authorization and / or scheduling based on dynamic authorization; the scheduling priority of the network device; the remaining delay of the data to be transmitted; the coverage condition information of the terminal device; the transmission type of the data to be transmitted, the transmission type including new transmission and / or retransmission; whether the maximum number of discardable measurement opportunities / measurement time slots is exceeded; whether the maximum proportion of discardable measurement opportunities / measurement time slots is exceeded.

[0225] In some implementations, the priority of the data to be transmitted is determined based on one or more of the following: the highest priority of the data to be transmitted; and the priority of the logical channel with the least remaining delay.

[0226] In some implementations, the coverage condition information is determined based on one or more of: signal quality of the serving cell; signal quality of the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell; and difference in signal quality between the serving cell and the neighboring cell.

[0227] In some implementations, the network device further includes: a second receiving unit, configured to receive third information sent by the terminal device, wherein the third information is used to instruct the first terminal device to determine to perform the first operation.

[0228] In some implementations, the network device further includes: a second sending unit, configured to send fourth information to the terminal device before the network device receives third information sent by the terminal device, wherein the fourth information is used to request the terminal device to determine whether the first operation can be performed.

[0229] In some implementations, if the terminal device performs uplink transmission at the one or more measurement occasions, the third information is carried in a MAC CE or a PUCCH.

[0230] In some implementations, the MAC CE or PUCCH is further used to indicate measurement objects associated with the one or more measurement occasions.

[0231] In some implementations, the MAC CE is a BSR or a DSR.

[0232] In some implementations, the first configuration information is used to configure one or more of the following: a first time period, the first time period is used for the terminal device to perform the first operation; and a second time period, the second time period is used for the terminal device to determine whether to perform the first operation.

[0233] In some implementations, the first configuration information is used to configure one or more of the following: a start time of the first time period; and a duration of the first time period.

[0234] In some implementations, the first configuration information is used to configure a first timer, and the length of the first time period is determined based on the timing duration of the first timer.

[0235] In some implementations, the second period includes the first X time units of each of the one or more measurement opportunities, where the time unit is a time slot, a millisecond, or a symbol, and X is a positive integer greater than or equal to 1.

[0236] In some implementations, the duration of the second time period is associated with one or more of the following: a measurement object; a frequency range; a measurement type, where the measurement type includes intra-frequency measurement and / or inter-frequency measurement.

[0237] In some implementations, the network device also includes: a third sending unit, used to send one or more of the following to the terminal device: second configuration information, related to RRM measurement; third configuration information, related to the scheduling of the network device; fourth configuration information, used to configure the time domain resource sharing method of the one or more measurement opportunities and data transmission; fifth configuration information, related to the data status reporting of the terminal device; sixth configuration information, used to configure the maximum number or maximum proportion of discardable measurement opportunities / measurement time slots.

[0238] In some implementations, the second configuration information is used to configure one or more of the following: whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation; the priority of the measurement object corresponding to the RRM measurement; and the measurement threshold corresponding to the RRM measurement.

[0239] In some implementations, the measurement threshold is associated with one or more of the following: signal quality of the serving cell; signal quality of the neighboring cell; difference in signal quality between the serving cell and the neighboring cell; change in signal quality of the serving cell; change in signal quality of the neighboring cell.

[0240] In some implementations, the network device further includes: a third receiving unit, configured to receive a measurement result corresponding to the RRM measurement sent by the terminal device.

[0241] In some implementations, the third configuration information is used to configure one or more of the following: whether to allow scheduling of the network device within the one or more measurement opportunities; and a scheduling priority of the network device.

[0242] In some implementations, the fifth configuration information is used to configure one or more of the following: a data volume threshold; a data priority threshold; and a data remaining delay threshold.

[0243] In some implementations, the network device further includes: a fourth receiving unit, configured to receive the data status reported by the terminal device.

[0244] In some implementations, the configuration information of the network device is associated with one of the following: frequency range; measurement type, the measurement type including intra-frequency measurement and / or inter-frequency measurement; measurement object; data priority; remaining delay of data; data volume; cell information; BWP.

[0245] In some implementations, the network device further includes: a fourth sending unit, configured to send first capability information to the terminal device, wherein the first capability information is used to indicate whether the network device supports the terminal device to perform the first operation; and / or receive second capability information sent by the terminal device, wherein the second capability information is used to indicate whether the terminal device can perform the first operation.

[0246] In some implementations, the time periods corresponding to the one or more measurement opportunities include one or more of the following: a measurement interval; a time slot or symbol in which data transmission interruption occurs during RRM measurement.

[0247] In some implementations, the time period corresponding to the one or more measurement opportunities further includes a third time period before the one or more measurement opportunities and / or a fourth time period after the one or more measurement opportunities.

[0248] FIG11 is a schematic structural diagram of a network device according to an embodiment of the present application. The network device 1100 shown in FIG11 includes a sending unit 1110 .

[0249] The sending unit 1110 is used to send second information to the terminal device, where the second information is used to: reconfigure the first configuration information used for RRM measurement; or instruct the terminal device to switch from the first configuration information to the second configuration information used for RRM measurement.

[0250] In some implementations, the network device further includes: a receiving unit for receiving first information sent by the terminal device before the network device sends second information to the terminal device, the first information being used to indicate that a first condition is met, and the first condition is associated with one or more of the following: reliability requirements of the data to be transmitted; delay requirements of the data to be transmitted; remaining delay of the data to be transmitted; mobility status of the terminal device; and the position of the terminal device in the service cell.

[0251] Figure 12 is a schematic block diagram of a communication device to which embodiments of the present application may be applied. Dashed lines in Figure 12 indicate that the unit or module is optional. Device 1200 may be used to implement the method described in the above method embodiment. Device 1200 may be a chip, a terminal device, or a network device.

[0252] The device 1200 may include one or more processors 1210. The processor 1210 may support the device 1200 to implement the method described in the above method embodiment. The processor 1210 may be a general-purpose processor or a special-purpose processor. For example, the processor may be a central processing unit (CPU). Alternatively, the processor may be another general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, etc. The general-purpose processor may be a microprocessor or the processor may be any conventional processor, etc.

[0253] The apparatus 1200 may further include one or more memories 1220. The memories 1220 store programs that can be executed by the processor 1210, causing the processor 1210 to perform the methods described in the above method embodiments. The memories 1220 may be independent of the processor 1210 or integrated into the processor 1210.

[0254] The apparatus 1200 may further include a transceiver 1230. The processor 1210 may communicate with other devices or chips via the transceiver 1230. For example, the processor 1210 may transmit and receive data with other devices or chips via the transceiver 1230.

[0255] The present application also provides a computer-readable storage medium for storing a program. The computer-readable storage medium can be applied to the first network element, application function network element, or first communication device provided in the present application, and the program causes a computer to execute the method performed by the first network element, application function network element, or first communication device in each embodiment of the present application.

[0256] The present application also provides a computer program product. The computer program product includes a program. The computer program product can be applied to the first network element, application function network element, or first communication device provided in the embodiments of the present application, and the program causes a computer to execute the method performed by the first network element, application function network element, or first communication device in various embodiments of the present application.

[0257] The present application also provides a computer program. This computer program can be applied to the first network element, application function network element, or first communication device provided in the present application, and the computer program causes a computer to execute the method performed by the first network element, application function network element, or first communication device in each embodiment of the present application.

[0258] It should be understood that the terms "system" and "network" in this application can be used interchangeably. In addition, the terms used in this application are only used to explain the specific embodiments of this application and are not intended to limit this application. The terms "first", "second", "third", and "fourth" in the specification and claims of this application and the accompanying drawings are used to distinguish different objects rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions.

[0259] In the embodiments of this application, the term "indication" may refer to a direct indication, an indirect indication, or an indication of an association. For example, "A indicates B" may refer to a direct indication of B, e.g., B can obtain information through A; it may refer to an indirect indication of B, e.g., A indicates C, e.g., B can obtain information through C; or it may refer to an association between A and B.

[0260] In the embodiment of the present application, "B corresponding to A" means that B is associated with A and B can be determined based on A. However, it should be understood that determining B based on A does not mean determining B based solely on A, but B can also be determined based on A and / or other information.

[0261] In the embodiments of the present application, the term "corresponding" may indicate a direct or indirect correspondence between the two, or an association relationship between the two, or a relationship between indication and indication, configuration and configuration, etc.

[0262] In the embodiments of the present application, "pre-definition" or "pre-configuration" may be implemented by pre-storing corresponding codes, tables, or other methods that can be used to indicate relevant information in a device (e.g., a terminal device and a network device). The present application does not limit the specific implementation method. For example, pre-definition may refer to information defined in a protocol.

[0263] In the embodiments of the present application, the “protocol” may refer to a standard protocol in the communications field, for example, it may include an LTE protocol, an NR protocol, and related protocols used in future communication systems, and the present application does not limit this.

[0264] In the embodiments of this application, the term "and / or" is simply a description of the association relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this document generally indicates that the related objects are in an "or" relationship.

[0265] In various embodiments of the present application, the size of the serial numbers of the above-mentioned processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.

[0266] In the several embodiments provided in this application, it should be understood that the disclosed systems, devices and methods can be implemented in other ways. For example, the device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.

[0267] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0268] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.

[0269] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. The computer-readable storage medium can be any available medium that can be read by a computer or a data storage device such as a server or data center that includes one or more available media integrated therein. The available medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a digital versatile disc (DVD)), or a semiconductor medium (eg, a solid state disk (SSD)).

[0270] The above description is merely a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included in the scope of protection of this application. Therefore, the scope of protection of this application should be based on the scope of protection of the claims.

Claims

1. A wireless communication method, characterized in that, Including: The terminal device performs a first operation, and the first operation includes one or more of the following: Discarding one or more measurement opportunities; Determining that one or more measurement opportunities share time domain resources with data transmission; Performing uplink / downlink data transmission during the time period corresponding to one or more measurement opportunities; Wherein, the one or more measurement opportunities are used for radio resource management (RRM) measurement.

2. The method according to claim 1, wherein The first operation is triggered based on a first command sent by the network device.

3. The method according to claim 2, wherein The first command contains first information, and the first information is used to determine the measurement opportunities that need to be or are allowed to be discarded.

4. The method according to claim 3, wherein The first information includes one or more of the following: Measurement opportunities that need to be or are allowed to be discarded; The priority of the measurement objects that need to be or are allowed to be discarded; The priority of the data to be transmitted.

5. The method according to any one of claims 2 to 4, characterized in that, The first command is radio resource control (RRC) signaling, media access control control element (MAC CE), or downlink control information (DCI).

6. The method according to any one of claims 2 to 5, characterized in that Before the terminal device performs the first operation, the method further includes: The terminal device sends second information to the network device, and the second information is used to request the network device to perform the first operation.

7. The method according to claim 6, characterized in that The second information is triggered based on a first condition, and the first condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; The priority of the one or more measurement opportunities; The priority of the data to be transmitted; The scheduling method of the data to be transmitted, and the scheduling method includes scheduling based on configured grant and / or scheduling based on dynamic grant; The priority of the network device's scheduling; The remaining delay of the data to be transmitted; The coverage condition information of the terminal device; The transmission type of the data to be transmitted, and the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots has been exceeded; Whether the maximum proportion of discardable measurement opportunities / measurement time slots has been exceeded.

8. The method according to any one of claims 1 to 7, characterized in that, The one or more measurement opportunities are measurement opportunities within a first time period, and the first time period is determined based on one or more of the following: The configuration information of the network device; The reception time of the first command sent by the network device; Wherein, the first command is used to trigger the terminal device to perform the first operation.

9. The method according to claim 8, wherein The start time of the first time period is determined based on the configuration information of the network device; or, the start time of the first time period is determined based on the reception time of the first command.

10. The method according to claim 8 or 9, characterized in that The time length of the first time period is determined based on the timing duration of a first timer; or the time length of the first time period is determined based on the first duration configuration information of the network device.

11. The method according to claim 1, wherein The first operation is determined based on a second condition, and the second condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; The priority of the one or more measurement opportunities; The priority of the data to be transmitted; The scheduling method of the data to be transmitted, and the scheduling method includes scheduling based on configured grant and / or scheduling based on dynamic grant; The priority of the network device's scheduling; The remaining delay of the data to be transmitted; The coverage condition information of the terminal device; The transmission type of the data to be transmitted, and the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots has been exceeded; Whether the maximum ratio of discardable measurement opportunities / measurement time slots has been exceeded.

12. The method according to claim 7 or 11, characterized in that The priority of the data to be transmitted is determined based on one or more of the following: The highest priority of the data to be transmitted; The priority of the logical channel with the least remaining delay.

13. The method according to claim 7 or 11 or 12, characterized in that, The coverage condition information is determined based on one or more of the following: The signal quality of the serving cell; The signal quality of neighboring cells; The change in the signal quality of the serving cell; The change in the signal quality of neighboring cells; The signal quality difference between the serving cell and neighboring cells.

14. The method according to any one of claims 11 to 13, characterized in that, Before the terminal device performs the first operation, the method further includes: The terminal device sends third information to the network device, and the third information is used to instruct the first terminal device to determine to perform the first operation.

15. The method according to claim 14, characterized in that, Before the terminal device sends the third information to the network device, the method further includes: The terminal device receives fourth information sent by the network device, and the fourth information is used to request the terminal device to determine whether the first operation can be performed.

16. The method according to claim 14 or 15, characterized in that, If the terminal device performs uplink transmission during the one or more measurement opportunities, the third information is carried in a MAC CE or a physical uplink control channel PUCCH.

17. The method according to claim 16, characterized in that, The MAC CE or PUCCH is also used to indicate the measurement objects associated with the one or more measurement opportunities.

18. The method according to claim 16 or 17, characterized in that The MAC CE is a buffer status report BSR or a delay status report DSR.

19. The method according to any one of claims 11 to 18, characterized in that The second condition includes one or more of the following: The coverage situation indicated by the coverage condition information satisfies the third condition; The priority of the one or more measurement opportunities is less than or equal to the priority of the data to be transmitted; The priority of the one or more measurement opportunities is less than or equal to the first priority, and / or, the priority of the data to be transmitted is greater than or equal to the second priority.

20. The method according to claim 19, wherein The priority of the one or more measurement opportunities is determined based on the highest priority among the priorities corresponding to the one or more measurement opportunities.

21. The method according to any one of claims 1 to 20, characterized in that, Before the terminal device performs the first operation, the method further includes: The terminal device receives configuration information from the network device, and the configuration information includes one or more of the following: First configuration information for configuring the terminal device to perform the first operation; Second configuration information related to RRM measurement; Third configuration information related to the scheduling of the network device; Fourth configuration information for configuring the time domain resource sharing manner between the one or more measurement opportunities and data transmission; Fifth configuration information related to the data status reporting of the terminal device; Sixth configuration information for configuring the maximum number or maximum ratio of discardable measurement opportunities / measurement time slots.

22. The method according to claim 21, wherein The first configuration information is used to configure one or more of the following: The first time period, and the first time period is used for the terminal device to perform the first operation; The second time period, and the second time period is used for the terminal device to determine whether to perform the first operation.

23. The method according to claim 22, wherein The first configuration information is used to configure one or more of the following: The start time of the first time period; The time length of the first time period.

24. The method according to claim 23, wherein The first configuration information is used to configure a first timer, and the time length of the first time period is determined based on the timing duration of the first timer.

25. The method according to any one of claims 22 to 24, characterized in that, The second time period includes the first X time units of each measurement opportunity among the one or more measurement opportunities, where the time unit is a time slot, millisecond, or symbol, and X is a positive integer greater than or equal to 1.

26. The method according to any one of claims 22 to 25, characterized in that, The time length of the second time period is associated with one or more of the following: Measurement object; Frequency range; Measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement.

27. The method according to any one of claims 21 to 26, characterized in that, The second configuration information is used to configure one or more of the following: Whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation; The priority of the measurement object corresponding to the RRM measurement; The measurement threshold corresponding to the RRM measurement.

28. The method according to claim 27, wherein The measurement threshold is associated with one or more of the following: The signal quality of the serving cell; The signal quality of the neighboring cell; The signal quality difference between the serving cell and the neighboring cell; The change in the signal quality of the serving cell; The change in the signal quality of the neighboring cell.

29. The method according to claim 27 or 28, wherein The method further includes: The terminal device sends a measurement result to the network device according to the measurement threshold corresponding to the RRM measurement.

30. The method according to any one of claims 21 to 29, characterized in that The third configuration information is used to configure one or more of the following: Whether to allow scheduling of the network device within the one or more measurement opportunities; The priority of the scheduling of the network device.

31. The method according to any one of claims 21 to 30, characterized in that, The fifth configuration information is used to configure one or more of the following: The threshold of the data volume; The threshold of the data priority; The threshold of the remaining data delay.

32. The method according to claim 31, wherein The method further includes: The terminal device reports the data status to the network device according to the threshold configured by the fifth configuration information.

33. The method according to any one of claims 21 to 32, characterized in that, The configuration information of the network device is associated with one of the following: Frequency range; Measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement; Measurement object; Data priority; The remaining data delay; Data volume; Cell information; Bandwidth part BWP.

34. The method according to any one of claims 1 to 33, characterized in that, Before the terminal device performs the first operation, the method further includes: The terminal device receives first capability information sent by the network device, where the first capability information is used to indicate whether the network device supports the terminal device to perform the first operation; and / or The terminal device sends second capability information to the network device, where the second capability information is used to indicate whether the terminal device is capable of performing the first operation.

35. The method according to any one of claims 1 to 34, characterized in that The one or more measurement opportunities include a first measurement opportunity. Before the terminal device performs the first operation, the method further includes: Within the second time period before the first measurement opportunity, the terminal device determines whether to perform the first operation.

36. The method according to claim 35, wherein The second time period includes the first X time units before the first measurement opportunity, where the time unit is a time slot, millisecond, or symbol, and X is a positive integer greater than or equal to 1.

37. The method according to claim 35 or 36, characterized in that, The terminal device determines whether to perform the first operation, including: If the network device performs uplink / downlink scheduling within the first measurement opportunity, the terminal device determines to perform the first operation.

38. The method according to any one of claims 1 to 37, characterized in that, The time periods corresponding to the one or more measurement opportunities include one or more of the following: Measurement interval; Slots or symbols that cause data transmission interruptions during RRM measurements.

39. The method according to claim 38, wherein The time period corresponding to the one or more measurement occasions further includes a third time period before the one or more measurement occasions and / or a fourth time period after the one or more measurement occasions.

40. A wireless communication method, characterized in that, Including: If a first condition is satisfied, the terminal device adjusts first configuration information for radio resource management (RRM) measurement.

41. The method according to claim 40, characterized in that, The first condition is associated with one or more of the following: The reliability requirement of the data to be transmitted; The latency requirement of the data to be transmitted; The remaining latency of the data to be transmitted; The mobility state of the terminal device; The location of the terminal device in the serving cell.

42. The method according to claim 40 or 41, characterized in that, The terminal device adjusts the first configuration information, including: The terminal device sends first information to the network device, and the first information is used to indicate that the first condition is satisfied.

43. The method according to claim 42, wherein The method further includes: The terminal device receives second information sent by the network device, and the second information is used for: Reconfiguring the first configuration information; or Indicating that the terminal device switches from the first configuration information to second configuration information for RRM measurement.

44. The method according to claim 40 or 41, characterized in that, The terminal device adjusts the first configuration information, including: The terminal device adjusts the first configuration information according to a first parameter, and the first parameter is determined based on the configuration information of the network device.

45. The method according to claim 44, characterized in that, The value of the first parameter is associated with one or more of the following: The measurement result of the RRM measurement; The remaining latency of the data packet to be transmitted.

46. The method according to claim 40 or 41, characterized in that, The terminal device adjusts the first configuration information, including: The terminal device autonomously switches from the first configuration information to second configuration information for RRM measurement.

47. The method according to claim 46, characterized in that, The first configuration information and / or the second configuration information is associated with one or more of the following: The measurement result of the RRM measurement; The remaining latency of the data packet to be transmitted.

48. The method according to any one of claims 44 to 47, characterized in that, The method further includes: The terminal device sends second information to the network device, and the second information is used to indicate the adjustment result of the first configuration information.

49. A wireless communication method, characterized in that, Including: The network device sends target information to the terminal device, and the target information is one of the following: A first command for triggering the terminal device to perform a first operation; First configuration information for configuring the terminal device to perform the first operation; Wherein, the first operation includes one or more of the following: Discarding one or more measurement occasions; Determining that one or more measurement occasions share time domain resources with data transmission; Performing uplink / downlink data transmission during the time period corresponding to one or more measurement occasions; Wherein, the one or more measurement occasions are used for radio resource management (RRM) measurement.

50. The method according to claim 49, characterized in that, The first command contains first information for determining the measurement occasions that need to be or are allowed to be discarded.

51. The method according to claim 50, characterized in that, The first information includes one or more of the following: The measurement occasions that need to be or are allowed to be discarded; The priority of the measurement objects that need to be or are allowed to be discarded; The priority of the data to be transmitted.

52. The method according to claim 50 or 51, characterized in that, The first command is radio resource control (RRC) signaling, media access control control element (MAC CE), or downlink control information (DCI).

53. The method according to any one of claims 50 to 52, characterized in that, The method further includes: The network device receives second information sent by the terminal device, where the second information is used to request the network device to perform the first operation.

54. The method according to any one of claims 49 to 53, characterized in that, The one or more measurement opportunities are measurement opportunities within a first time period, and the first time period is determined based on one or more of the following: Configuration information of the network device; Transmission time of the first command.

55. The method according to claim 54, wherein The start time of the first time period is determined based on the configuration information of the network device; or, the start time of the first time period is determined based on the reception time of the first command.

56. The method according to claim 54 or 55, characterized in that, The time length of the first time period is determined based on the timing duration of a first timer; or the time length of the first time period is determined based on first duration configuration information of the network device.

57. The method according to claim 49, wherein The first operation is determined based on a second condition, and the second condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; Priority of the one or more measurement opportunities; Priority of the data to be transmitted; Scheduling mode of the data to be transmitted, where the scheduling mode includes scheduling based on configured grant and / or scheduling based on dynamic grant; Priority of the scheduling of the network device; Remaining delay of the data to be transmitted; Coverage condition information of the terminal device; Transmission type of the data to be transmitted, where the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots has been exceeded; Whether the maximum ratio of discardable measurement opportunities / measurement time slots has been exceeded.

58. The method according to claim 57, wherein The priority of the data to be transmitted is determined based on one or more of the following: Highest priority of the data to be transmitted; Priority of the logical channel with the least remaining delay.

59. The method according to claim 57 or 58, characterized in that The coverage condition information is determined based on one or more of the following: Signal quality of the serving cell; Signal quality of the neighboring cell; Change in the signal quality of the serving cell; Change in the signal quality of the neighboring cell; Signal quality difference between the serving cell and the neighboring cell.

60. The method according to any one of claims 57 to 59, characterized in that, The method further includes: The network device receives third information sent by the terminal device, where the third information is used to instruct the first terminal device to determine to perform the first operation.

61. The method according to claim 60, wherein Before the network device receives the third information sent by the terminal device, the method further includes: The network device sends fourth information to the terminal device, where the fourth information is used to request the terminal device to determine whether the first operation can be performed.

62. The method according to claim 60 or 61, characterized in that, If the terminal device performs uplink transmission during the one or more measurement opportunities, the third information is carried in a MAC CE or a physical uplink control channel PUCCH.

63. The method according to claim 62, wherein The MAC CE or PUCCH is further used to indicate measurement objects associated with the one or more measurement opportunities.

64. The method according to claim 62 or 63, characterized in that, The MAC CE is a buffer status report BSR or a delay status report DSR. The method according to any one of claims 49 to 64, characterized in that The first configuration information is used to configure one or more of the following: A first time period, where the first time period is used for the terminal device to perform the first operation; A second time period, where the second time period is used for the terminal device to determine whether to perform the first operation.

66. The method according to claim 65, wherein The first configuration information is used to configure one or more of the following: The start time of the first time period; The time length of the first time period.

67. The method according to claim 66, wherein, The first configuration information is used to configure a first timer, and the time length of the first time period is determined based on the timing duration of the first timer.

68. The method according to any one of claims 65 to 67, characterized in that, The second time period includes the first X time units of each measurement occasion among the one or more measurement occasions, where the time unit is a time slot, millisecond, or symbol, and X is a positive integer greater than or equal to 1.

69. The method according to any one of claims 65 to 68, characterized in that, The time length of the second time period is associated with one or more of the following: Measurement object; Frequency range; Measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement.

70. The method according to any one of claims 49 to 69, characterized in that, The method further includes: The network device sends one or more of the following to the terminal device: Second configuration information, related to RRM measurement; Third configuration information, related to the scheduling of the network device; Fourth configuration information, used to configure the time-domain resource sharing manner between the one or more measurement occasions and data transmission; Fifth configuration information, related to the data status reporting of the terminal device; Sixth configuration information, used to configure the maximum number or maximum ratio of discardable measurement occasions / measurement time slots.

71. The method according to claim 70, characterized in that, The second configuration information is used to configure one or more of the following: Whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation; The priority of the measurement object corresponding to the RRM measurement; The measurement threshold corresponding to the RRM measurement.

72. The method according to claim 71, wherein The measurement threshold is associated with one or more of the following: The signal quality of the serving cell; The signal quality of neighboring cells; The signal quality difference between the serving cell and neighboring cells; The change in the signal quality of the serving cell; The change in the signal quality of neighboring cells.

73. The method according to any one of claims 70 to 72, characterized in that, The method further includes: The network device receives the measurement results corresponding to the RRM measurement sent by the terminal device.

74. The method according to any one of claims 70 to 73, characterized in that, The third configuration information is used to configure one or more of the following: Whether to allow the scheduling of the network device within the one or more measurement occasions; The priority of the scheduling of the network device.

75. The method according to any one of claims 70 to 74, characterized in that, The fifth configuration information is used to configure one or more of the following: The threshold of the data volume; The threshold of the data priority; The threshold of the remaining data delay.

76. The method according to any one of claims 70 to 75, characterized in that, The method further includes: The network device receives the data status reported by the terminal device.

77. The method according to any one of claims 49 to 76, characterized in that, The configuration information of the network device is associated with one of the following: Frequency range; Measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement; Measurement object; Data priority; The remaining data delay; Data volume; Cell information; Bandwidth part BWP.

78. The method according to any one of claims 49 to 77, characterized in that, The method further includes: The network device sends first capability information to the terminal device, where the first capability information is used to indicate whether the network device supports the terminal device to perform the first operation; and / or The network device receives second capability information sent by the terminal device, where the second capability information is used to indicate whether the terminal device is capable of performing the first operation.

79. The method according to any one of claims 49 to 78, characterized in that, The time period corresponding to the one or more measurement occasions includes one or more of the following: Measurement interval; Time slots or symbols that will cause data transmission interruption during RRM measurement.

80. The method according to claim 79, characterized in that, The time period corresponding to the one or more measurement opportunities further includes a third time period before the one or more measurement opportunities and / or a fourth time period after the one or more measurement opportunities.

81. A wireless communication method, characterized in that, Comprising: The network device sends second information to the terminal device, and the second information is used for: Reconfiguring the first configuration information for radio resource management (RRM) measurement; or, Instructing the terminal device to switch from the first configuration information to the second configuration information for RRM measurement.

82. The method according to claim 81, wherein Before the network device sends the second information to the terminal device, the method further includes: The network device receives first information sent by the terminal device, and the first information is used to indicate that a first condition is satisfied, and the first condition is associated with one or more of the following: The reliability requirement of the data to be transmitted; The latency requirement of the data to be transmitted; The remaining latency of the data to be transmitted; The mobility state of the terminal device; The location of the terminal device in the serving cell.

83. A terminal device, characterized in that, Comprising: An execution unit, configured to perform a first operation, and the first operation includes one or more of the following: Discarding one or more measurement opportunities; Determining that one or more measurement opportunities share time domain resources with data transmission; Performing uplink / downlink data transmission in the time period corresponding to the one or more measurement opportunities; Wherein, the one or more measurement opportunities are for radio resource management (RRM) measurement.

84. The terminal device according to claim 83, wherein The first operation is triggered based on a first command sent by the network device.

85. The terminal device according to claim 84, characterized in that, The first command contains first information, and the first information is used to determine the measurement opportunities that need to be or are allowed to be discarded.

86. The terminal device according to claim 85, wherein The first information includes one or more of the following: The measurement opportunities that need to be or are allowed to be discarded; The priority of the measurement objects that need to be or are allowed to be discarded; The priority of the data to be transmitted. The terminal device according to any one of claims 84 to 86, characterized in that The first command is radio resource control (RRC) signaling, media access control control element (MAC CE), or downlink control information (DCI).

88. The terminal device according to any one of claims 84 to 87, characterized in that, The terminal device further includes: A first sending unit, configured to send second information to the network device before the terminal device performs the first operation, and the second information is used to request the network device to perform the first operation.

89. The terminal device according to claim 88, characterized in that, The second information is triggered based on a first condition, and the first condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; The priority of the one or more measurement opportunities; The priority of the data to be transmitted; The scheduling manner of the data to be transmitted, and the scheduling manner includes scheduling based on configured grant and / or scheduling based on dynamic grant; The priority of the network device's scheduling; The remaining latency of the data to be transmitted; The coverage condition information of the terminal device; The transmission type of the data to be transmitted, and the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots is exceeded; Whether the maximum ratio of discardable measurement opportunities / measurement time slots is exceeded.

90. The terminal device according to any one of claims 83 to 89, characterized in that, The one or more measurement opportunities are measurement opportunities within a first time period, and the first time period is determined based on one or more of the following: The configuration information of the network device; The reception time of the first command sent by the network device; Wherein, the first command is used to trigger the terminal device to perform the first operation.

91. The terminal device according to claim 90, wherein The start time of the first time period is determined based on the configuration information of the network device; or, the start time of the first time period is determined based on the reception time of the first command.

92. The terminal device according to claim 90 or 91, characterized in that, The time length of the first time period is determined based on the timing duration of a first timer; or the time length of the first time period is determined based on the first duration configuration information of the network device.

93. The terminal device according to claim 83, characterized in that, The first operation is determined based on a second condition, and the second condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; The priority of the one or more measurement opportunities; The priority of the data to be transmitted; The scheduling mode of the data to be transmitted, and the scheduling mode includes scheduling based on configured grant and / or scheduling based on dynamic grant; The priority of the scheduling of the network device; The remaining latency of the data to be transmitted; The coverage condition information of the terminal device; The transmission type of the data to be transmitted, and the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots is exceeded; Whether the maximum ratio of discardable measurement opportunities / measurement time slots is exceeded.

94. The terminal device according to claim 89 or 93, characterized in that, The priority of the data to be transmitted is determined based on one or more of the following: The highest priority of the data to be transmitted; The priority of the logical channel with the least remaining latency.

95. The terminal device according to claim 89 or 93 or 94, characterized in that, The coverage condition information is determined based on one or more of the following: The signal quality of the serving cell; The signal quality of the neighboring cell; The change in the signal quality of the serving cell; The change in the signal quality of the neighboring cell; The signal quality difference between the serving cell and the neighboring cell.

96. The terminal device according to any one of claims 93 to 95, characterized in that, The terminal device further includes: A second sending unit, configured to send third information to the network device before the terminal device performs the first operation, where the third information is used to instruct the first terminal device to determine to perform the first operation.

97. The terminal device according to claim 96, wherein, The terminal device further includes: A first receiving unit, configured to receive fourth information sent by the network device before the terminal device sends the third information to the network device, where the fourth information is used to request the terminal device to determine whether it can perform the first operation.

98. The terminal device according to claim 96 or 97, characterized in that, If the terminal device performs an uplink transmission during the one or more measurement opportunities, the third information is carried in a MAC CE or a physical uplink control channel PUCCH.

99. The terminal device according to claim 98, characterized in that, The MAC CE or PUCCH is further used to indicate the measurement objects associated with the one or more measurement opportunities.

100. The terminal device according to claim 98 or 99, characterized in that, The MAC CE is a buffer status report BSR or a delay status report DSR.

101. The terminal device according to any one of claims 93 to 100, characterized in that, The second condition includes one or more of the following: The coverage situation indicated by the coverage condition information satisfies a third condition; The priority of the one or more measurement opportunities is less than or equal to the priority of the data to be transmitted; The priority of the one or more measurement opportunities is less than or equal to a first priority, and / or, the priority of the data to be transmitted is greater than or equal to a second priority.

102. The terminal device according to claim 101, wherein The priority of the one or more measurement opportunities is determined based on the highest priority among the priorities corresponding to the one or more measurement opportunities respectively.

103. The terminal device according to any one of claims 83 to 102, characterized in that, The terminal device further includes: A second receiving unit, configured to receive configuration information of a network device before the terminal device performs a first operation, where the configuration information includes one or more of the following: First configuration information, used to configure the terminal device to perform the first operation; Second configuration information, related to RRM measurement; Third configuration information, related to the scheduling of the network device; Fourth configuration information, used to configure the time-domain resource sharing manner between the one or more measurement occasions and data transmission; Fifth configuration information, related to the data status reporting of the terminal device; Sixth configuration information, used to configure the maximum number or maximum ratio of measurable occasions / measurement time slots that can be discarded.

104. The terminal device according to claim 103, characterized in that, The first configuration information is used to configure one or more of the following: A first time period, which is used for the terminal device to perform the first operation; A second time period, which is used for the terminal device to determine whether to perform the first operation.

105. The terminal device according to claim 104, wherein, The first configuration information is used to configure one or more of the following: The start time of the first time period; The time length of the first time period.

106. The terminal device according to claim 105, characterized in that, The first configuration information is used to configure a first timer, and the time length of the first time period is determined based on the timing duration of the first timer.

107. The terminal device according to any one of claims 104 to 106, characterized in that, The second time period includes the first X time units of each of the one or more measurement occasions, where the time unit is a time slot, millisecond, or symbol, and X is a positive integer greater than or equal to 1.

108. The terminal device according to any one of claims 104 to 107, characterized in that, The time length of the second time period is associated with one or more of the following: A measurement object; A frequency range; A measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement.

109. The terminal device according to any one of claims 103 to 108, characterized in that, The second configuration information is used to configure one or more of the following: Whether the measurement object corresponding to the RRM measurement supports the terminal device to perform the first operation; The priority of the measurement object corresponding to the RRM measurement; The measurement threshold corresponding to the RRM measurement. The terminal device according to claim 109, wherein, The measurement threshold is associated with one or more of the following: The signal quality of the serving cell; The signal quality of neighboring cells; The signal quality difference between the serving cell and neighboring cells; The change in the signal quality of the serving cell; The change in the signal quality of neighboring cells.

111. The terminal device according to claim 109 or 110, characterized in that, The terminal device further includes: A third sending unit, configured to send a measurement result to the network device according to the measurement threshold corresponding to the RRM measurement.

112. The terminal device according to any one of claims 103 to 111, characterized in that, The third configuration information is used to configure one or more of the following: Whether to allow the scheduling of the network device within the one or more measurement occasions; The priority of the scheduling of the network device. The terminal device according to any one of claims 103 to 112, characterized in that The fifth configuration information is used to configure one or more of the following: A threshold of data volume; A threshold of data priority; A threshold of the remaining data delay.

114. The terminal device according to claim 113, wherein, The terminal device further includes: A reporting unit, configured to report the data status to the network device according to the threshold configured by the fifth configuration information. The terminal device according to any one of claims 103 to 114, characterized in that The configuration information of the network device is associated with one of the following: A frequency range; A measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement; A measurement object; Data priority; The remaining data delay; Data volume; Cell information; Bandwidth part BWP.

116. The terminal device according to any one of claims 83 to 115, characterized in that, The terminal device further includes: A third receiving unit, configured to receive first capability information sent by a network device before the terminal device performs a first operation, where the first capability information is used to indicate whether the network device supports the terminal device to perform the first operation; and / or Send second capability information to the network device, where the second capability information is used to indicate whether the terminal device is capable of performing the first operation.

117. The terminal device according to any one of claims 83 to 116, characterized in that, The one or more measurement opportunities include a first measurement opportunity, and the terminal device further includes: A determination unit, configured to determine whether to perform the first operation during a second period before the first measurement opportunity before the terminal device performs the first operation.

118. The terminal device according to claim 117, wherein The second period includes the first X time units before the first measurement opportunity, where the time unit is a time slot, a millisecond, or a symbol, and X is a positive integer greater than or equal to 1.

119. The terminal device according to claim 117 or 118, characterized in that, The terminal device determines whether to perform the first operation, including: If the network device performs uplink / downlink scheduling during the first measurement opportunity, the terminal device determines to perform the first operation. The terminal device according to any one of claims 83 to 119, characterized in that The period corresponding to the one or more measurement opportunities includes one or more of the following: A measurement interval; A time slot or symbol during which data transmission interruption occurs during RRM measurement.

121. The terminal device according to claim 120, wherein, The period corresponding to the one or more measurement opportunities further includes a third period before the one or more measurement opportunities and / or a fourth period after the one or more measurement opportunities.

122. A terminal device, characterized in that, Including: An adjustment unit, configured to adjust first configuration information if a first condition is satisfied, where the first configuration information is used for radio resource management (RRM) measurement. The terminal device according to claim 122, characterized in that, The first condition is associated with one or more of the following: The reliability requirement of the data to be transmitted; The latency requirement of the data to be transmitted; The remaining latency of the data to be transmitted; The mobility state of the terminal device; The location of the terminal device in the serving cell.

124. The terminal device according to claim 122 or 123, characterized in that, The adjustment unit is configured to: Send first information to the network device, where the first information is used to indicate that the first condition is satisfied. The terminal device according to claim 124, characterized in that, The terminal device further includes: A receiving unit, configured to receive second information sent by the network device, where the second information is used to: Reconfigure the first configuration information; or Indicate the terminal device to switch from the first configuration information to second configuration information, where the second configuration information is used for RRM measurement. The terminal device according to claim 122 or 123, characterized in that, The adjustment unit is configured to: Adjust the first configuration information according to a first parameter, where the first parameter is determined based on the configuration information of the network device. The terminal device according to claim 126, wherein, The value of the first parameter is associated with one or more of the following: The measurement result of the RRM measurement; The remaining latency of the data packet to be transmitted. The terminal device according to claim 122 or 123, characterized in that, The adjustment unit is configured to: Autonomously switch from the first configuration information to second configuration information, where the second configuration information is used for RRM measurement.

129. The terminal device according to claim 128, characterized in that, The first configuration information and / or the second configuration information is associated with one or more of the following: The measurement result of the RRM measurement; The remaining latency of the data packet to be transmitted. The terminal device according to any one of claims 126 to 129, characterized in that The terminal device further includes: A sending unit, configured to send second information to the network device, where the second information is used to indicate the adjustment result of the first configuration information.

131. A network device, characterized in that, Including: A first sending unit, configured to send target information to a terminal device, where the target information is one of the following: A first command, where the first command is used to trigger the terminal device to perform a first operation; First configuration information, used to configure the terminal device to perform the first operation; Wherein, the first operation includes one or more of the following: Discarding one or more measurement opportunities; Determining that one or more measurement opportunities share time domain resources with data transmission; Performing uplink / downlink data transmission during a period corresponding to one or more measurement opportunities; Wherein, the one or more measurement opportunities are used for radio resource management (RRM) measurements.

132. The network device according to claim 131, characterized in that, The first command includes first information, where the first information is used to determine measurement opportunities that need to be or are allowed to be discarded. The network device according to claim 132, wherein The first information includes one or more of the following: Measurement opportunities that need to be or are allowed to be discarded; The priority of the measurement object that needs to be or is allowed to be discarded; The priority of the data to be transmitted. The network device according to claim 132 or 133, characterized in that, The first command is radio resource control (RRC) signaling, media access control control element (MAC CE), or downlink control information (DCI). The network device according to any one of claims 132 to 134, characterized in that The network device further includes: A first receiving unit, configured to receive second information sent by the terminal device, where the second information is used to request the network device to perform the first operation. The network device according to any one of claims 131 to 135, characterized in that, The one or more measurement opportunities are measurement opportunities within a first time period, and the first time period is determined based on one or more of the following: The configuration information of the network device; The transmission time of the first command. The network device according to claim 136, characterized in that, The start time of the first time period is determined based on the configuration information of the network device; or, the start time of the first time period is determined based on the reception time of the first command. The network device according to claim 136 or 137, characterized in that, The time length of the first time period is determined based on the timing duration of a first timer; or the time length of the first time period is determined based on first duration configuration information of the network device. The network device according to claim 131, characterized in that, The first operation is determined based on a second condition, and the second condition is associated with one or more of the following: Whether the network device supports the terminal device to perform the first operation; The priority of the one or more measurement opportunities; The priority of the data to be transmitted; The scheduling method of the data to be transmitted, where the scheduling method includes scheduling based on configured grant and / or scheduling based on dynamic grant; The priority of the network device's scheduling; The remaining time delay of the data to be transmitted; The coverage condition information of the terminal device; The transmission type of the data to be transmitted, where the transmission type includes new transmission and / or retransmission; Whether the maximum number of discardable measurement opportunities / measurement time slots has been exceeded; Whether the maximum proportion of discardable measurement opportunities / measurement time slots has been exceeded. The network device according to claim 139, characterized in that, The priority of the data to be transmitted is determined based on one or more of the following: The highest priority of the data to be transmitted; The priority of the logical channel with the least remaining time delay.

141. The network device according to claim 139 or 140, characterized in that, The coverage condition information is determined based on one or more of the following: The signal quality of the serving cell; The signal quality of the neighboring cell; The change in the signal quality of the serving cell; The change in the signal quality of the neighboring cell; The signal quality difference between the serving cell and the neighboring cell.

142. The network device according to any one of claims 139 to 141, characterized in that, The network device further includes: A second receiving unit, configured to receive third information sent by the terminal device, where the third information is used to instruct the first terminal device to determine to perform the first operation. The network device according to claim 142, characterized in that, The network device further includes: A second sending unit, configured to send fourth information to the terminal device before the network device receives the third information sent by the terminal device, where the fourth information is used to request the terminal device to determine whether the first operation can be performed.

144. The network device according to claim 142 or 143, characterized in that, If the terminal device performs uplink transmission during the one or more measurement occasions, the third information is carried in a MAC CE or a physical uplink control channel PUCCH. The network device according to claim 144, wherein The MAC CE or PUCCH is further used to indicate measurement objects associated with the one or more measurement occasions.

146. The network device according to claim 144 or 145, characterized in that, The MAC CE is a buffer status report BSR or a delay status report DSR.

147. The network device according to any one of claims 131 to 146, characterized in that, The first configuration information is used to configure one or more of the following: A first time period, which is used for the terminal device to perform the first operation; A second time period, which is used for the terminal device to determine whether to perform the first operation.

148. The network device according to claim 147, wherein, The first configuration information is used to configure one or more of the following: The start time of the first time period; The time length of the first time period. The network device according to claim 148, wherein The first configuration information is used to configure a first timer, and the time length of the first time period is determined based on the timing duration of the first timer. The network device according to any one of claims 147 to 149, characterized in that The second time period includes the first X time units of each of the one or more measurement occasions, where the time unit is a time slot, a millisecond, or a symbol, and X is a positive integer greater than or equal to 1.

151. The network device according to any one of claims 147 to 150, characterized in that, The time length of the second time period is associated with one or more of the following: Measurement objects; Frequency ranges; Measurement types, where the measurement types include co-frequency measurement and / or inter-frequency measurement. The network device according to any one of claims 131 to 151, characterized in that, The network device further includes: A third sending unit, configured to send one or more of the following to the terminal device: Second configuration information, related to RRM measurement; Third configuration information, related to the scheduling of the network device; Fourth configuration information, used to configure the time-domain resource sharing manner between the one or more measurement occasions and data transmission; Fifth configuration information, related to the data status reporting of the terminal device; Sixth configuration information, used to configure the maximum number or maximum proportion of discardable measurement occasions / measurement time slots. The network device according to claim 152, wherein, The second configuration information is used to configure one or more of the following: Whether the measurement objects corresponding to the RRM measurement support the terminal device to perform the first operation; The priority of the measurement objects corresponding to the RRM measurement; The measurement thresholds corresponding to the RRM measurement.

154. The network device according to claim 153, characterized in that, The measurement thresholds are associated with one or more of the following: The signal quality of the serving cell; The signal quality of neighboring cells; The signal quality difference between the serving cell and neighboring cells; The change in the signal quality of the serving cell; The change in the signal quality of neighboring cells. The network device according to any one of claims 152 to 154, characterized in that The network device further includes: A third receiving unit, configured to receive the measurement results corresponding to the RRM measurement sent by the terminal device.

156. The network device according to any one of claims 152 to 155, characterized in that, The third configuration information is used to configure one or more of the following: Whether to allow the network device to perform scheduling during the one or more measurement occasions; The priority of scheduling of the network device. The network device according to any one of claims 152 to 156, characterized in that, The fifth configuration information is used to configure one or more of the following: The threshold of data volume; The threshold of data priority; The threshold of remaining data delay. The network device according to any one of claims 152 to 157, characterized in that, The network device further includes: A fourth receiving unit, configured to receive the data status reported by the terminal device. The network device according to any one of claims 131 to 158, characterized in that The configuration information of the network device is associated with one of the following: Frequency range; Measurement type, where the measurement type includes co-frequency measurement and / or inter-frequency measurement; Measurement object; Data priority; The remaining delay of the data; Data volume; Cell information; Bandwidth part BWP. The network device according to any one of claims 131 to 159, characterized in that, The network device further includes: A fourth sending unit, configured to send first capability information to the terminal device, where the first capability information is used to indicate whether the network device supports the terminal device to perform the first operation; and / or Receive second capability information sent by the terminal device, where the second capability information is used to indicate whether the terminal device is capable of performing the first operation. The network device according to any one of claims 131 to 160, characterized in that The time period corresponding to the one or more measurement opportunities includes one or more of the following: Measurement interval; Time slots or symbols where data transmission interruption occurs during RRM measurement. The network device according to claim 161, characterized in that, The time period corresponding to the one or more measurement opportunities further includes a third time period before the one or more measurement opportunities and / or a fourth time period after the one or more measurement opportunities.

163. A network device, characterized in that, Includes: A sending unit, configured to send second information to the terminal device, where the second information is used for: Reconfiguring the first configuration information for RRM measurement; or, Instructing the terminal device to switch from the first configuration information to the second configuration information for RRM measurement.

164. The network device according to claim 163, characterized in that The network device further includes: A receiving unit, configured to receive first information sent by the terminal device before the network device sends second information to the terminal device, where the first information is used to indicate that a first condition is satisfied, and the first condition is associated with one or more of the following: The reliability requirement of the data to be transmitted; The delay requirement of the data to be transmitted; The remaining delay of the data to be transmitted; The mobility state of the terminal device; The location of the terminal device in the serving cell.

165. A terminal device, characterized in that, Includes a transceiver, a memory, and a processor, where the memory is used to store a program, and the processor is used to call the program in the memory and control the transceiver to receive or send signals, so that the terminal device executes the method according to any one of claims 1-39 or 40-48.

166. A network device, characterized in that, Includes a transceiver, a memory, and a processor, where the memory is used to store a program, and the processor is used to call the program in the memory and control the transceiver to receive or send signals, so that the network device executes the method according to any one of claims 49-80 or 81-82.

167. A device, characterized in that, Includes a processor, configured to call a program from a memory, so that the device executes the method according to any one of claims 1-39, 40-48, 49-80 or 81-82.

168. A chip, characterized in that, Includes a processor, configured to call a program from a memory, such that the device installed with the chip executes the method according to any one of claims 1-39, 40-48, 49-80 or 81-82.

169. A computer-readable storage medium, characterized in that, Stored thereon is a program that causes a computer to execute the method according to any one of claims 1-39, 40-48, 49-80 or 81-82.

170. A computer program product, characterized in that, Comprising a program that causes a computer to execute the method according to any one of claims 1-39, 40-48, 49-80 or 81-82.

171. A computer program, characterized in that, The computer program causes a computer to execute the method according to any one of claims 1-39, 40-48, 49-80 or 81-82.

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