Method and apparatus for adjusting resource measurement, terminal and readable storage medium

By performing resource measurement adjustments on the terminal using RLM, BFD, and RRM, and relaxing or enhancing measurements based on the measurement results and status of the resources, the problems of wasted terminal power consumption and reduced system performance are solved.

CN114449527BActive Publication Date: 2025-12-30VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
CN202011225117.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-11-05
Publication Date
2025-12-30
Estimated Expiration
2040-11-05

AI Technical Summary

Technical Problem

In existing technologies, RLM and BFD are executed according to the rules and requirements agreed upon in the protocol, resulting in wasted terminal power consumption and reduced system performance.

Method used

By performing Radio Link Monitoring (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM) on multiple resources, and adjusting measurements to relax, enhance, or normalize them based on the measurement results and status of multiple resources.

Benefits of technology

It enables measurement adjustments based on the measurement results and status of terminal resources, solving the problems of wasted terminal power consumption and reduced system performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a resource measurement adjustment method and device, a terminal and a readable storage medium, and belongs to the field of communication. The method comprises the following steps: performing a plurality of first operations on a plurality of resources; wherein the first operation comprises at least one of the following: radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM); and performing measurement adjustment on the measurement of the first operation when a preset condition is met; wherein the preset condition is determined according to at least one of the following: a measurement result of the plurality of resources and a state of the plurality of resources; and the measurement adjustment comprises at least one of the following: measurement relaxation, measurement enhancement, and normal measurement. Through the application, the problem that the execution of RLM, BFD and RRM in the prior art is performed according to the rules and requirements agreed in the protocol, resulting in waste of terminal power consumption and reduction of system performance is solved.
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Description

Technical Field

[0001] This application belongs to the field of communication technology, and specifically relates to a method and apparatus for adjusting resource measurement, a terminal, and a readable storage medium. Background Technology

[0002] In current mobile communication systems, when the Physical Downlink Control Channel (PDCCH) or an advance indication signal indicates that the terminal is not listening to the PDCCH, the terminal still needs to wake up from the Discontinuous Reception (DRX) sleep state to perform Radio Link Monitor (RLM) and / or Beam Failure Detection (BFD). That is, the execution of RLM and / or BFD in the existing technology is based on default rules, which makes the execution of RLM and / or BFD inflexible. Summary of the Invention

[0003] This application provides a method and apparatus for adjusting resource measurement, a terminal, and a readable storage medium, which can solve the problem that the execution of RLM, BFD, and RRM in the prior art is carried out according to the rules and requirements agreed upon in the protocol, resulting in wasted terminal power consumption and reduced system performance.

[0004] In a first aspect, a method for adjusting resource measurements is provided, executed by a terminal, comprising: performing multiple first operations on multiple resources; wherein the first operations include at least one of the following: Radio Link Monitoring (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM); and adjusting the measurements of the first operations under preset conditions; wherein the preset conditions are determined based on at least one of the following: measurement results of the multiple resources, and the status of the multiple resources; and the measurement adjustment includes at least one of the following: measurement relaxation, measurement enhancement, and normal measurement.

[0005] In a second aspect, a resource measurement adjustment device is provided, comprising: an execution module for performing a plurality of first operations on a plurality of resources; wherein the first operations include at least one of the following: Radio Link Monitoring (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM); and an adjustment module for adjusting the measurement of the first operations under preset conditions; wherein the preset conditions are determined based on at least one of the following: measurement results of the plurality of resources, and the state of the plurality of resources; and the measurement adjustment includes at least one of the following: measurement relaxation, measurement enhancement, and normal measurement.

[0006] Thirdly, a terminal is provided, the terminal including a processor, a memory, and a program or instructions stored in the memory and executable on the processor, wherein the program or instructions, when executed by the processor, implement the steps of the method described in the first aspect.

[0007] Fourthly, a readable storage medium is provided, on which a program or instructions are stored, which, when executed by a processor, implement the steps of the method described in the first aspect.

[0008] Fifthly, a chip is provided, the chip including a processor and a communication interface, the communication interface being coupled to the processor, the processor being used to run network-side device programs or instructions to implement the method as described in the first aspect.

[0009] In this embodiment, the measurement of RLM, BFD, or RRM can be adjusted from measurement relaxation to measurement enhancement or normal measurement based on the measurement results and / or the status of multiple resources. In other words, the required measurement can be determined based on the measurement results and / or the status of multiple resources. This means that the measurement can be adjusted from measurement relaxation to measurement enhancement, or from measurement enhancement to measurement relaxation, etc. This realizes measurement relaxation and enhancement based on the measurement results and status of terminal resources, thereby solving the problem in the prior art where the execution of RLM, BFD, and RRM is performed according to the rules and requirements agreed upon in the protocol, resulting in wasted terminal power consumption and reduced system performance. Attached Figure Description

[0010] Figure 1 This diagram illustrates a block diagram of a wireless communication system to which embodiments of this application may be applied;

[0011] Figure 2 This is a flowchart of the resource measurement adjustment method according to an embodiment of this application;

[0012] Figure 3 This is a schematic diagram of the structure of the resource measurement adjustment device according to an embodiment of this application;

[0013] Figure 4 This is a schematic diagram of the structure of a communication device according to an embodiment of this application;

[0014] Figure 5 This is a schematic diagram of the terminal structure according to an embodiment of this application. Detailed Implementation

[0015] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0016] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first" and "second" are generally of the same class, not limited in number; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.

[0017] It is worth noting that the technologies described in this application are not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be used in other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA), and other systems. The terms "system" and "network" in this application are often used interchangeably, and the described technologies can be used with the systems and radio technologies mentioned above, as well as with other systems and radio technologies. The following description describes New Radio (NR) systems for illustrative purposes, and the term NR is used in most of the following description; however, these technologies can also be applied to applications other than NR systems, such as 6th generation (6G) radio systems. th Generation 6G communication system.

[0018] Figure 1This diagram illustrates a block diagram of a wireless communication system applicable to embodiments of this application. The wireless communication system includes a terminal 11 and a network-side device 12. The terminal 11 can also be referred to as a terminal device or user equipment (UE). The terminal 11 can be a mobile phone, tablet computer, laptop computer, personal digital assistant (PDA), handheld computer, netbook, ultra-mobile personal computer (UMPC), mobile internet device (MID), wearable device, vehicle-mounted device (VUE), pedestrian terminal (PUE), etc. Wearable devices include wristbands, headphones, glasses, etc. It should be noted that this application does not limit the specific type of terminal 11. Network-side device 12 can be a base station or a core network. The base station can be referred to as a node B, evolved node B, access point, base transceiver station (BTS), radio base station, radio transceiver, basic service set (BSS), extended service set (ESS), B node, evolved B node (eNB), home B node, home evolved B node, WLAN access point, WiFi node, transmitting and receiving point (TRP), or any other suitable term in the field, as long as the same technical effect is achieved. The base station is not limited to specific technical terms. It should be noted that in this embodiment of the application, only the base station in the NR system is used as an example, but the specific type of base station is not limited.

[0019] First, the terms used in this application will be explained accordingly;

[0020] I. About the Radio Link Monitor (RLM) and Radio Link Failure (RLF) functions;

[0021] Both RLM and RLF have RLM functionality in LTE and NR systems. In LTE's RLM function, the UE monitors the radio link by measuring the signal-to-interference-plus-noise ratio (SINR) of a portion of the Cell Reference Signal (CRS) on the PDCCH (Physical Downlink Control Channel). When the measured PDCCH CRS reference signal falls below a certain threshold, the radio link is considered "out-of-sync." The physical layer then notifies the higher layer (Radio Resource Control (RRC) layer) of an out-of-sync (OOS) indication. If the RRC layer issues N consecutive out-of-sync indications, the UE activates a Timer T1 (T310).

[0022] If the measured CRS reference signal of the PDCCH portion is higher than a certain threshold, the radio link is considered "in-sync". The physical layer then notifies the higher layer (RRC layer) of a synchronization (in-sync, IS) indication. If the RRC layer issues M consecutive in-sync indications, the UE stops the operation of Timer T1.

[0023] If timer T1 times out, the UE will determine RLF.

[0024] The number of "out-of-sync" and "in-sync" counts is configured by the network, i.e., N or M. Furthermore, the duration the Timer runs after reaching the specified count is also configurable on the network side.

[0025] Regarding BFD

[0026] In future 5G (5th Generation) mobile communication systems, to achieve downlink transmission rates of 20Gbps and uplink transmission rates of 10Gbps, high-frequency communication and massive MIMO (Massively Interactive) antenna technology will be introduced. High-frequency communication can provide wider system bandwidth, and antenna size can be smaller, making it more conducive to the deployment of massive MIMO in base stations and UEs. High-frequency communication suffers from drawbacks such as higher path loss, susceptibility to interference, and link fragility, while massive MIMO technology can provide higher antenna gain. Therefore, the combination of high-frequency communication and massive MIMO is an inevitable trend in future 5G mobile communication systems. However, using massive MIMO technology cannot solve all the problems of high-frequency communication, such as link fragility. When high-frequency communication encounters obstruction, beam failure recovery mechanisms can quickly switch beams, switching the communication link from a poor beam to a better beam, avoiding wireless link failure, and effectively improving link robustness.

[0027] The UE beam failure recovery mechanism includes the following aspects:

[0028] 1) Beam failure detection;

[0029] 2) New candidate beam identification;

[0030] 3) Beam failure recovery request sent;

[0031] 4) UE monitoring beam failure recovery request gNB response.

[0032] Among these, the identification of new candidate beams may occur before or after beam failure detection.

[0033] The current beam failure detection process is as follows: The physical layer, after determining that certain conditions (such as all beam received signals being below a certain threshold) are met, indicates a beam failure instance (BFI) to the media access control (MAC) layer. The MAC layer determines whether a beam failure has occurred by counting the number of BFIs periodically indicated by the physical layer (PHY). The counting method can be one of the following two approaches:

[0034] Method 1) After connecting or connecting N instances (either consecutively or discontinuously), the beam is considered to have failed.

[0035] Method 2) If an instance is received within a timer, the counter is incremented by 1. Once an instance is received, the timer starts or restarts. If no instance is received before a timer expires, the counter is reset. When the counter reaches a preset number of times, the beam is considered to have failed.

[0036] The method for adjusting resource measurement provided in this application will be described in detail below with reference to the accompanying drawings, through specific embodiments and application scenarios.

[0037] This application provides a method for adjusting resource measurement, which is executed by a terminal. Figure 2 This is a flowchart of the resource measurement adjustment method according to an embodiment of this application, as follows: Figure 2 As shown, the steps of this method include:

[0038] Step S202: Perform multiple first operations on multiple resources; wherein the first operations include at least one of the following: Radio Link Detection (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM).

[0039] Step S204: Under the condition that the preset conditions are met, the measurement of the first operation is adjusted.

[0040] The preset conditions are determined based on at least one of the following: measurement results of multiple resources, and the status of multiple resources;

[0041] Measurement adjustments include at least one of the following: measurement relaxation, measurement enhancement, or normal measurement.

[0042] Through steps S202 and S204 of the embodiments of this application, the measurement of RLM, BFD, or RRM can be adjusted from measurement relaxation to measurement enhancement to normal measurement based on the measurement results and / or the status of multiple resources. In other words, the required measurement can be determined based on the measurement results and / or the status of multiple resources. This means that the measurement can be adjusted from measurement relaxation to measurement enhancement, or from measurement enhancement to measurement relaxation, etc. This realizes measurement relaxation and enhancement based on the measurement results and status of terminal resources, thereby solving the problem that the execution of RLM, BFD, and RRM in the prior art is performed according to the rules and requirements agreed upon in the protocol, which leads to the waste of terminal power consumption and the reduction of system performance.

[0043] It should be noted that the resources in the embodiments of this application may include at least one of the following: beam, band width part (BWP), component carrier (CC), carrier carrier, cell, cell group (CG), reference signal (RS), and transmit receive point (TRP).

[0044] In this context, "multiple cells" refers to carrier aggregation (CA) scenarios, specifically on a primary cell (Pcell) and a secondary cell (Scell), or in a DC with CA scenario, on a primary secondary cell (Pscell) and an Scell. "Multiple cell groups" refers to DC or DC with CA scenarios, specifically on a master cell group (MCG) and a secondary cell group (SCG); or on some or all cells of an MCG and some or all cells of an SCG, for example, on a Pcell and a Pscell, or on a Pcell / Scell ​​and a Pscell / Scell.

[0045] In optional embodiments of this application, the measurement results of the resource include at least one of the following: the measured performance value of the resource, the change in the measured performance of the resource, and the change in the measured performance of the resource.

[0046] The change in resource measurement performance is one of the following: the difference between the current resource measurement performance value and the previous measurement performance value, or the change in resource measurement performance within a first preset time period; wherein the previous measurement performance value can be one or more previous values.

[0047] The change in resource measurement performance is one of the following: the difference between the current resource measurement performance value and the first reference measurement performance value, or the difference between the beam measurement performance and the second reference measurement performance value within the second preset time period;

[0048] The first or second reference measurement performance value can be one of the following: a value configured by the network side, a value agreed upon by the protocol, a previously used reference measurement performance value, a previous measurement performance value, a weighted average of the previously used reference measurement performance value and the previous measurement performance value, or a weighted average of the previously used reference measurement performance value and the current measurement performance value. Specifically, the reference value can be one of the following: the previous reference value, or the measurement performance value used in the previous comparison, the previous measurement performance value, a weighted average of the previous reference value and the current measurement performance value, or a weighted average of the previous reference value and the previous measurement performance value.

[0049] It should be noted that the measurement performance in the embodiments of this application includes measuring the reference signal corresponding to the first operation to obtain at least one of the following: Reference Signal Receiving Power (RSRP), Reference Signal Receiving Quality (RSRQ), Received Signal Strength Indication (RSSI), and Signal to Interference plus Noise Ratio (SINR).

[0050] The reference signal includes at least one of the following: Synchronization Signal and PBCH block (SSB), Channel State Information Reference Signal (CSI-RS), Demodulation Reference Signal (DMRS), Cell Reference Signals (CRS), Sounding Reference Signal (SRS), and Position Reference Signal (PRS).

[0051] In an optional embodiment of this application, the method of adjusting the measurement of the first operation under the condition of satisfying preset conditions involved in step S204 may further include:

[0052] Step S204-11: If the measurement results of multiple resources meet the first preset condition, switch to the measurement relaxation of the first operation; or, if the measurement results of multiple resources meet the second preset condition, switch to the normal measurement of the first operation.

[0053] or,

[0054] Step S204-12: If the measurement results of multiple resources meet the second preset condition, switch to measurement enhancement of the first operation; or, if the measurement results of multiple resources meet the first preset condition, switch to normal measurement of the first operation.

[0055] or,

[0056] Step S204-13: If the measurement results of multiple resources meet the first preset condition, switch to measurement relaxation of the first operation; or, if the measurement results of multiple resources meet the second preset condition, switch to measurement enhancement of the first operation.

[0057] The first preset condition is different from the second preset condition, and the first preset condition and / or the second preset condition are determined based on the results of measurements of multiple resources.

[0058] As can be seen, through steps S204-11 to S204-13, the measurement of the first operation can be adjusted accordingly based on the results of measurements from multiple resources, when different preset conditions are met. Furthermore, the measurement adjustments corresponding to the same preset condition may differ in different application scenarios. For example, when the first preset condition is met, the adjustment may switch to measurement relaxation or measurement enhancement of the first operation. Switching to measurement relaxation can achieve power saving; the specific switching result can be set according to the actual situation.

[0059] Optionally, the first preset condition in the embodiments of this application includes at least one of the following:

[0060] 1) Among the measurement results of multiple resources, the number of the first resource is not less than the first threshold, wherein the measurement result of the first resource is not less than the first threshold;

[0061] 2) Among the measurement results of multiple resources, the number of the second resource is not higher than the second threshold, wherein the measurement result of the second resource is not higher than the second threshold;

[0062] 3) The highest measured value among multiple resources is not lower than the third threshold;

[0063] 4) The lowest measured value among multiple resources is not lower than the fourth threshold;

[0064] 5) Among the measurement results of multiple resources, the number of third resources is not less than the third threshold, and the change or alteration of the measurement results of the third resources is not higher than the fifth threshold.

[0065] 6) Among the measurement results of multiple resources, the number of fourth resources is not higher than the fourth threshold, and the change or alteration of the measurement result of the fourth resource is not lower than the sixth threshold.

[0066] 7) The highest measured change or alteration among the measurements of multiple resources does not exceed the seventh threshold;

[0067] 8) Among the measurement results of multiple resources, the change or alteration of the measurement of the preset quantity of resources shall not exceed the eighth threshold.

[0068] Optionally, the second preset condition in the embodiments of this application includes at least one of the following:

[0069] 1) Among the measurement results of multiple resources, the number of the fifth resource is not higher than the fifth threshold, and the measurement result of the fifth resource is not lower than the ninth threshold;

[0070] 2) Among the measurement results of multiple resources, the number of the sixth resource is not less than the sixth threshold, and the measurement result of the second resource is not higher than the tenth threshold;

[0071] 3) The highest measured value among multiple resources does not exceed the eleventh threshold;

[0072] 4) The lowest measured value among multiple resources is not higher than the twelfth threshold;

[0073] 5) Among the measurement results of multiple resources, the number of the seventh resource is not less than the seventh threshold, and the change or alteration of the measurement result of the seventh resource is not less than the thirteenth threshold.

[0074] 6) Among the measurement results of multiple resources, the number of eighth resources is not higher than the eighth threshold, and the change or alteration of the measurement result of the eighth resource is not higher than the fourteenth threshold.

[0075] 7) The highest measured change or alteration among the measurement results of multiple resources is not lower than the fifteenth threshold;

[0076] 8) Among the measurement results of multiple resources, the change or alteration of the measurement of the preset quantity of resources shall not be lower than the sixteenth threshold.

[0077] Optionally, the thresholds (e.g., the first threshold to the eighth threshold) in the embodiments of this application can be determined in the following ways: network-side device configuration, protocol agreement. For example, the first threshold may be the number corresponding to all resources configured by the network-side device, or the number corresponding to some resources among all resources; the first threshold may also be the number corresponding to all resources according to the protocol agreement, or the number corresponding to some resources among all resources; other thresholds are determined in a similar way.

[0078] It should be noted that the measurement results, changes in the measurement results, and changes in the measurement results in the first and second preset conditions mentioned above are compared with the corresponding thresholds within a preset time period or a preset number of cycles.

[0079] In another optional embodiment of this application, the method of measuring and adjusting the first operation under the condition of satisfying preset conditions involved in step S204 of this application embodiment may further include:

[0080] Step S204-21: If the measurement result of the first resource among multiple resources meets the third preset condition, then switch to the measurement relaxation of the first operation of the first resource; or, if the measurement of the first resource among multiple resources meets the fourth preset condition, then switch to the normal measurement of the first operation of the first resource.

[0081] or,

[0082] Step S204-21: If the measurement result of the first resource among multiple resources meets the fourth preset condition, then switch to measurement enhancement of the first operation of the first resource; or, if the measurement of the first resource among multiple resources meets the third preset condition, then switch to normal measurement of the first operation of the first resource.

[0083] or,

[0084] Step S204-21: If the measurement result of the first resource among the multiple resources meets the third preset condition, then switch to measurement relaxation of the first operation of the first resource; or, if the measurement of the first resource among the multiple resources meets the fourth preset condition, then switch to measurement enhancement of the first operation of the first resource.

[0085] The third preset condition is different from the fourth preset condition, and the third preset condition and / or the fourth preset condition are determined based on the result of measuring the first resource among multiple resources.

[0086] As can be seen, through steps S204-21 to S204-23, the measurement of the first operation of the first resource can be adjusted accordingly based on the measurement results of the first resource among multiple resources, when different preset conditions are met. Furthermore, in different application scenarios, the measurement adjustments corresponding to the same preset condition may differ. For example, when the first preset condition is met, the adjustment may switch to measurement relaxation of the first operation of the first resource, or it may switch to measurement enhancement of the first operation of the first resource. The specific switching result can be set according to the actual situation. The first resource can be any one of the multiple resources, such as one of multiple beams, multiple bandwidth portions, one of BWPs, etc., and is not limited in this application. That is, each resource can determine whether to adjust the current measurement based on its own measurement results.

[0087] Optionally, the third preset condition in the embodiments of this application includes at least one of the following:

[0088] 1) The measurement result of the first resource is not lower than the seventeenth threshold;

[0089] 2) The measurement results of the first resource or the measurement sampling of the first resource within the first preset time period or within a preset number of cycles are not less than the eighteenth threshold.

[0090] 3) Within the first preset time period or within a preset number of cycles, the preset number of measurement samples of the first resource shall not be less than the nineteenth threshold.

[0091] Optionally, the fourth preset condition in the embodiments of this application includes at least one of the following:

[0092] 1) The measurement result of the first resource is not higher than the twentieth threshold;

[0093] 2) The measurement results of the first resource or the measurement sampling of the first resource within the first preset time period or within the preset number of cycles do not exceed the twenty-first threshold.

[0094] 3) Within the first preset time period or within a preset number of cycles, the preset number of measurement samples of the first resource does not exceed the twenty-second threshold.

[0095] It should be noted that the measurement results or sampled quantities of the first resource within the preset number of periods in the third and fourth preset conditions mentioned above refer to the measurement results or sampled quantities of the first resource within the preset number of consecutive periods not being lower than or higher than the eighteenth or twenty-first threshold; or, the measurement results or sampled quantities of the first resource within the first preset time period refer to the measurement results or sampled quantities of the first resource within the first preset time period not being lower than or higher than the nineteenth or twenty-second threshold.

[0096] In another optional embodiment of this application, the method of measuring and adjusting the first operation under the condition of satisfying preset conditions involved in step S204 may further include:

[0097] Step S204-31: If the state of the first resource among the multiple resources meets the fifth preset condition, then switch to the measurement relaxation of the first operation of the first resource; or, if the state of the first resource among the multiple resources meets the sixth preset condition, then switch to the normal measurement of the first operation of the first resource.

[0098] or,

[0099] Step S204-32: If the state of the first resource among the multiple resources meets the sixth preset condition, then switch to measurement enhancement of the first operation of the first resource; or, if the state of the first resource among the multiple resources meets the fifth preset condition, then switch to normal measurement of the first operation of the first resource.

[0100] or,

[0101] Step S204-33: If the state of the first resource among the multiple resources meets the fifth preset condition, then switch to the measurement relaxation of the first operation of the first resource; or, if the state of the first resource among the multiple resources meets the sixth preset condition, then switch to the normal enhancement of the first operation of the first resource.

[0102] As can be seen, through steps S204-31 to S204-33, the measurement of the first operation of the first resource can be adjusted accordingly based on the state of the first resource among multiple resources, when different preset conditions are met. Furthermore, in different application scenarios, the measurement adjustment corresponding to the same preset condition may differ. For example, when the first preset condition is met, it may switch to relaxing the measurement of the first operation of the first resource, or it may switch to enhancing the measurement of the first operation of the first resource. The specific switching result can be set according to the actual situation.

[0103] Optionally, the fifth preset condition in the embodiments of this application includes at least one of the following:

[0104] 1) The first resource is subjected to the second operation;

[0105] 2) The first resource falls back from carrier aggregation state to single-cell state;

[0106] 3) The first resource falls back from dual-connectivity state to single-cell group state;

[0107] 4) The secondary cell corresponding to the first resource is subjected to the second operation;

[0108] 5) The secondary cell group corresponding to the first resource is subjected to the second operation;

[0109] The second operation performed includes at least one of the following: being released, being deactivated, being suspended, or being dormancy.

[0110] Specifically, the fifth precondition mentioned above can be at least one of the following in a specific application scenario:

[0111] 1) Related resources (such as Scell, SCG, SpCell, RS, BWP, beam, carrier, or TRP, etc.) are released, deactivated, suspended, or put into hibernation.

[0112] 2) The Pcell in carrier aggregation CA is performing the first operation (RLM, BFD, or RRM) and falling back to single cell state, i.e., the Scell ​​is released, suspended, deactivated, or dormant.

[0113] 3) When a Pcell or Pscell in a dual-connection DC is performing the first operation (RLM, BFD, or RRM), it falls back to the single cell group state, i.e., the SCG or PScell ​​is suspended, released, or deactivated; or the Scell ​​of the SCG is released, suspended, deactivated, or dormant.

[0114] Optionally, the sixth preset condition in the embodiments of this application includes at least one of the following:

[0115] 1) The first resource is subjected to the third operation;

[0116] 2) The first resource switches from single-cell state to carrier aggregation state;

[0117] 3) The first resource switches from single-cell group state to dual-connectivity state;

[0118] 4) The secondary cell corresponding to the first resource is subjected to the third operation;

[0119] 5) The secondary cell group corresponding to the first resource is subjected to the third operation;

[0120] The third operation performed includes at least one of the following: being configured, being activated, being resumed, being woken up, or being configured as non-dormancy.

[0121] Specifically, the sixth presupposition condition mentioned above includes at least one of the following:

[0122] 1) Related resources (such as Scell, SCG, SpCell, RS, BWP, beam, carrier, or TRP, etc.) are configured, activated, resumed, woke up, or configured as non-dormancy.

[0123] 2) The Scell ​​is configured from single-cell state to carrier aggregation (CA) state, i.e., the Scell ​​is configured to configure, activated, resumed, woke up, or configured as non-dormancy.

[0124] 3) In the case where a single cell group state is configured as a dual connection DC or a DC with CA state, that is, the SCG or the PScell is configured, activated, resumed, woken up, or configured as non-dormancy; or the Scell of the SCG is configured, activated, resumed, woken up, or configured as non-dormancy;

[0125] In an embodiment of the present application, the measurement adjustment of the first operation on the first resource includes at least one of the following:

[0126] 1) When the number of the first resources is 1, switch to the measurement relaxation of the first operation on the first resource; for example, the measurement relaxation of RLM / BFD / RRM on the corresponding resource, such as the measurement relaxation of RLM / BDF / RRM on the corresponding beam, BWP, CC, Carrier, CG, RS, or TRP.

[0127] 2) When the number of the first resources is multiple, switch to the measurement relaxation of the first operation on some of the multiple first resources; for example, the measurement relaxation of RLM / BDF / RRM on some beams, some BWPs, some CCs (such as Pcell or Scell), some Carriers, the PScell or Pcell or Scell within the CG, some RSs, or some TRPs.

[0128] 3) When the number of the first resources is multiple, switch to the measurement relaxation of the first operation on all of the multiple first resources.

[0129] Among them, the measurement relaxation of RLM, BFD, and RRM includes at least one of the following:

[0130] 1) The measurement relaxation of the first operation in the time domain;

[0131] Among them, the measurement relaxation of the first operation in the time domain in a specific application scenario can be: the extension of the measurement period of RLM / BFD measurement in L1 (layer 1) or the reduction of the number of measurement samples, or, the normal measurement uses the measurement period P1, the measurement relaxation uses the measurement period P2, and the measurement enhancement uses the measurement period P3, where P3 < P2 < P1; or, the extension of the L2 / L3 indication interval of RLM / BFD measurement.

[0132] 2) Within the first specified time, do not perform the measurement of the first operation or reduce the measurement of the first operation.

[0133] 3) Within the second specified time period, do not perform the upper-level instruction for the first operation, or reduce the upper-level instruction for the first operation.

[0134] 4) Do not perform the first operation measurement on resources that meet the corresponding conditions for measurement relaxation. For example, do not perform RLM / BFD measurement for a period of time or a preset number of cycles, or resume measurement only when the measurement is restored to normal or enhanced.

[0135] 5) Measure fewer resources;

[0136] 6) Spatial relaxation of the first operation measurement, i.e., reducing the beam of the first operation measurement, or relaxing the corresponding time-domain / frequency-domain measurement on the beam;

[0137] 7) Reduce the number of reference signals for RLM / BFD measurements.

[0138] When the measurement adjustment in the embodiments of this application is for measurement enhancement, it includes at least one of the following:

[0139] 1) Measurement enhancement of the first operation in the time domain;

[0140] 2) Within the first specified time period, add measurements to perform the first operation;

[0141] 3) Within the second specified time period, add a higher-level instruction for the first operation;

[0142] 4) Add the first operation measurement to the resources that meet the corresponding conditions for measurement enhancement;

[0143] 5) Increase measurement resources;

[0144] 6) Measurement enhancement of the first operation in the spatial domain, i.e., increasing the beam of the first operation measurement, or enhancing the corresponding time-domain / frequency-domain measurement on the beam;

[0145] 7) Increase the number of reference signals for the first operation measurement.

[0146] It should be noted that the reduction in measurement relaxation or the increase in measurement enhancement mentioned above are relative to normal measurement, which refers to the measurement performed according to measurement requirements as specified in the existing agreement.

[0147] In optional embodiments of this application, the method in this application may further include:

[0148] In step S208, the terminal sends a request message to the network-side device. The request message includes at least one of the following: measurement adjustment options for the first operation that the terminal expects (or requests, or prefers), and measurement adjustment related parameters for the first operation that the terminal expects. The measurement adjustment options include at least one of the following: measurement relaxation, measurement enhancement, and normal measurement.

[0149] or,

[0150] In step S210, the terminal receives indication information from the network-side device, wherein the indication message is used to indicate at least one of the following: whether the cell supports measurement adjustment for the first operation, the adjustment-related parameters of the measurement adjustment, the type of the cell, and whether the cell allows the terminal to perform measurement adjustment.

[0151] In optional embodiments of this application, the indication message may be included in the SIB message or in the advance indication message. The advance indication message may be at least one of the following: wake-up signaling (WUS), go-to-sleep (GTS), or downlink control information (DCI); wherein the DCI includes scheduling DCI or other newly designed DCI.

[0152] The adjustment parameters for measurement adjustment include at least one of the following: the value of the relevant timer and / or the maximum value of the counter after adjustment, the threshold of the counter for entering measurement adjustment, the threshold of the counter for exiting measurement adjustment, the timer or preset time threshold for entering measurement adjustment, the counter or preset time threshold for exiting measurement adjustment, and the measurement configuration after measurement adjustment.

[0153] Furthermore, the configuration related to the above-mentioned measurement adjustment judgment can be:

[0154] 1) Per-UE configuration, which means that the network-side equipment configures separate measurement, adjustment and judgment parameters for each terminal;

[0155] 2) Per-cell configuration: This means that the measurement, adjustment, and judgment parameters configured by the network-side equipment within a cell are consistent. The terminal applies these parameters within the cell.

[0156] 3) Per-frequency / carrier / band / BWP configuration, that is, the measurement, adjustment and judgment parameters configured by the network-side device within a frequency / carrier / band / BWP range are consistent;

[0157] 4) Per-UE per-frequency / carrier / band / BWP configuration, that is, the measurement adjustment judgment parameters configured by the network-side equipment for each terminal within a frequency / carrier / band / BWP range are consistent;

[0158] 5) Per-Beam configuration, which is the measurement application corresponding to the beam.

[0159] It should be noted that the resource measurement adjustment method provided in this application embodiment can be executed by a resource measurement adjustment device, or by a control module within that resource measurement adjustment device for executing the resource measurement adjustment method. This application embodiment uses the example of a resource measurement adjustment device executing the resource measurement adjustment method to illustrate the resource measurement adjustment device provided in this application embodiment.

[0160] This application also provides an adjustment device for resource measurement. Figure 3 This is a schematic diagram of the structure of the resource measurement adjustment device according to an embodiment of this application, as shown below. Figure 3 As shown, the device includes:

[0161] The execution module 32 is configured to perform a plurality of first operations on a plurality of resources; wherein the first operations include at least one of the following: radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM);

[0162] The adjustment module 34 is used to adjust the measurement of the first operation under preset conditions.

[0163] The preset conditions are determined based on at least one of the following: measurement results of multiple resources, and the status of multiple resources;

[0164] Measurement adjustments include at least one of the following: measurement relaxation, measurement enhancement, or normal measurement.

[0165] The apparatus of this application embodiment can adjust the measurement of RLM, BFD, or RRM according to the measurement results and / or the status of multiple resources, including measurement relaxation, measurement enhancement, and normal measurement. In other words, the required measurement can be determined based on the measurement results and / or the status of multiple resources. This means that the measurement can be adjusted from measurement relaxation to measurement enhancement, or from measurement enhancement to measurement relaxation, etc. This realizes measurement relaxation and enhancement based on the measurement results and status of terminal resources, thereby solving the problem in the prior art where the execution of RLM, BFD, and RRM is performed according to the rules and requirements agreed upon in the protocol, resulting in wasted terminal power consumption and reduced system performance.

[0166] In an optional embodiment of this application, the adjustment module 34 may further include:

[0167] The first switching unit is used to switch to the measurement relaxation of the first operation if the measurement results of multiple resources meet the first preset condition; or to switch to the normal measurement of the first operation if the measurement results of multiple resources meet the second preset condition.

[0168] or,

[0169] The second switching unit is used to switch to the measurement enhancement of the first operation if the measurement results of multiple resources meet the second preset condition; or to switch to the normal measurement of the first operation if the measurement results of multiple resources meet the first preset condition.

[0170] or,

[0171] The third switching unit is used to switch to measurement relaxation of the first operation if the measurement results of multiple resources meet the first preset condition; or to switch to measurement enhancement of the first operation if the measurement results of multiple resources meet the second preset condition.

[0172] The first preset condition is different from the second preset condition, and the first preset condition and / or the second preset condition are determined based on the results of measurements of multiple resources.

[0173] Optionally, the first preset condition includes at least one of the following:

[0174] 1) Among the measurement results of multiple resources, the number of the first resource is not less than the first threshold, wherein the measurement result of the first resource is not less than the first threshold;

[0175] 2) Among the measurement results of multiple resources, the number of the second resource is not higher than the second threshold, wherein the measurement result of the second resource is not higher than the second threshold;

[0176] 3) The highest measured value among multiple resources is not lower than the third threshold;

[0177] 4) The lowest measured value among multiple resources is not lower than the fourth threshold;

[0178] 5) Among the measurement results of multiple resources, the number of third resources is not less than the third threshold, and the change or alteration of the measurement results of the third resources is not higher than the fifth threshold.

[0179] 6) Among the measurement results of multiple resources, the number of fourth resources is not higher than the fourth threshold, and the change or alteration of the measurement result of the fourth resource is not lower than the sixth threshold.

[0180] 7) The highest measured change or alteration among the measurements of multiple resources does not exceed the seventh threshold;

[0181] 8) Among the measurement results of multiple resources, the change or alteration of the measurement of the preset quantity of resources shall not exceed the eighth threshold.

[0182] Optionally, the second preset condition includes at least one of the following:

[0183] 1) Among the measurement results of multiple resources, the number of the fifth resource is not higher than the fifth threshold, and the measurement result of the fifth resource is not lower than the ninth threshold;

[0184] 2) Among the measurement results of multiple resources, the number of the sixth resource is not less than the sixth threshold, and the measurement result of the sixth resource is not higher than the tenth threshold;

[0185] 3) The highest measured value among multiple resources does not exceed the eleventh threshold;

[0186] 4) The lowest measured value among multiple resources is not higher than the twelfth threshold;

[0187] 5) Among the measurement results of multiple resources, the number of the seventh resource is not less than the seventh threshold, and the change or alteration of the measurement result of the seventh resource is not less than the thirteenth threshold.

[0188] 6) Among the measurement results of multiple resources, the number of eighth resources is not higher than the eighth threshold, and the change or alteration of the measurement result of the eighth resource is not higher than the fourteenth threshold.

[0189] 7) The highest measured change or alteration among the measurement results of multiple resources is not lower than the fifteenth threshold;

[0190] 8) Among the measurement results of multiple resources, the change or alteration of the measurement of the preset quantity of resources shall not be lower than the sixteenth threshold.

[0191] Optionally, the threshold in this application embodiment is determined by at least one of the following: network-side device configuration, protocol agreement.

[0192] Optionally, in the embodiments of this application, the measurement results, the amount of change in the measurement results, and the amount of change in the measurement results within a preset time period or a preset number of periods are compared with the corresponding thresholds.

[0193] In an optional embodiment of this application, the adjustment module 34 may further include: a fourth switching unit, configured to switch to measurement relaxation of the first operation of the first resource if the measurement result of the first resource among the plurality of resources meets a third preset condition; or, switch to normal measurement of the first operation of the first resource if the measurement of the first resource among the plurality of resources meets a fourth preset condition.

[0194] or,

[0195] The fifth switching unit is used to switch to measurement enhancement of the first operation of the first resource if the measurement result of the first resource among the multiple resources meets the fourth preset condition; or to switch to normal measurement of the first operation of the first resource if the measurement of the first resource among the multiple resources meets the third preset condition.

[0196] or,

[0197] The sixth switching unit is used to switch to measurement relaxation of the first operation of the first resource if the measurement result of the first resource among the multiple resources meets the third preset condition; or to switch to measurement enhancement of the first operation of the first resource if the measurement of the first resource among the multiple resources meets the fourth preset condition.

[0198] The third preset condition is different from the fourth preset condition, and the third preset condition and / or the fourth preset condition are determined based on the result of measuring the first resource among multiple resources.

[0199] Optionally, the third preset condition in the embodiments of this application includes at least one of the following:

[0200] 1) The measurement result of the first resource is not lower than the seventeenth threshold;

[0201] 2) The measurement results of the first resource or the measurement sampling of the first resource within the first preset time period or within a preset number of cycles are not less than the eighteenth threshold.

[0202] 3) Within the first preset time period or within a preset number of cycles, the preset number of measurement samples of the first resource are not less than the nineteenth threshold.

[0203] Optionally, the fourth preset condition in the embodiments of this application includes at least one of the following:

[0204] 1) The measurement result of the first resource is not higher than the twentieth threshold;

[0205] 2) The measurement results of the first resource or the measurement sampling of the first resource within the first preset time period or within the preset number of cycles do not exceed the twenty-first threshold.

[0206] 3) Within the first preset time period or within a preset number of cycles, the preset number of measurement samples of the first resource do not exceed the twenty-second threshold.

[0207] Optionally, the measurement results of the first resource within a preset number of periods or the preset number of measurement samples refer to the measurement results of the first resource within a consecutive preset number of periods or the preset number of measurement samples not being lower than or higher than the eighteenth threshold or the twenty-first threshold; or, the measurement results of the first resource within a first preset time period or the preset number of measurement samples refer to the continuous measurement results or the preset number of measurement samples within the first preset time period not being lower than the nineteenth threshold or the twenty-second threshold.

[0208] In an optional embodiment of this application, the adjustment module 34 may further include:

[0209] The seventh switching unit is used to switch to the measurement relaxation of the first operation of the first resource if the state of the first resource among the multiple resources meets the fifth preset condition; or to switch to the normal measurement of the first operation of the first resource if the state of the first resource among the multiple resources meets the sixth preset condition.

[0210] or,

[0211] The eighth switching unit is used to switch to the measurement enhancement of the first operation of the first resource if the state of the first resource among the multiple resources meets the sixth preset condition; or to switch to the normal measurement of the first operation of the first resource if the state of the first resource among the multiple resources meets the fifth preset condition.

[0212] or,

[0213] The ninth switching unit is used to switch to the measurement relaxation of the first operation of the first resource if the state of the first resource among the multiple resources meets the fifth preset condition; or to switch to the normal enhancement of the first operation of the first resource if the state of the first resource among the multiple resources meets the sixth preset condition.

[0214] Optionally, the fifth preset condition in the embodiments of this application includes at least one of the following:

[0215] 1) The first resource falls back from carrier aggregation state to single-cell state;

[0216] 2) The first resource falls back from dual-connectivity state to single-cell group state;

[0217] 3) The secondary cell corresponding to the first resource is subjected to the second operation;

[0218] 4) The secondary cell group corresponding to the first resource is subjected to the second operation;

[0219] 5) The first resource is used to perform the second operation;

[0220] The second operation performed includes at least one of the following: being released, being deactivated, being suspended, or being put into hibernation.

[0221] Optionally, the sixth preset condition in the embodiments of this application includes at least one of the following:

[0222] 1) The first resource is subjected to the third operation;

[0223] 2) The first resource switches from single-cell state to carrier aggregation state;

[0224] 3) The first resource switches from single-cell group state to dual-connectivity state;

[0225] 4) The secondary cell corresponding to the first resource is subjected to the third operation;

[0226] 5) The secondary cell group corresponding to the first resource is subjected to the third operation;

[0227] The third operation performed includes at least one of the following: being configured, being activated, being restored, or being woken up.

[0228] Optionally, the measurement adjustment for the first operation of switching to the first resource in this embodiment includes at least one of the following:

[0229] When the quantity of the first resource is 1, switch to the measurement and adjustment of the first operation on the first resource;

[0230] When there are multiple first resources, switch to measurement and adjustment of the first operation for a portion of the multiple first resources;

[0231] When there are multiple first resources, switch to measurement and adjustment of the first operation for all first resources among the multiple first resources.

[0232] Optionally, when the measurement is adjusted to measurement relaxation, at least one of the following is included:

[0233] 1) Measurement relaxation of the first operation in the time domain;

[0234] 2) Within the first specified time period, do not perform the measurement of the first operation, or reduce the measurement of the first operation;

[0235] 3) Within the second specified time period, do not execute the upper-level instruction for the first operation, or reduce the upper-level instruction for the first operation;

[0236] 4) Measurements are not performed on resources that meet the corresponding conditions for measurement relaxation;

[0237] 5) Reduce measurement resources;

[0238] 6) Spatial relaxation of the first operation measurement, i.e., reducing the beam of the first operation measurement, or relaxing the corresponding time / frequency domain measurement on the beam;

[0239] 7) Reduce the number of reference signals for the first operation measurement;

[0240] When adjusting the measurement to measurement enhancement, at least one of the following should be included:

[0241] 1) Measurement enhancement of the first operation in the time domain;

[0242] 2) Within the first specified time period, add measurements to perform the first operation;

[0243] 3) Within the second specified time period, add a higher-level instruction for the first operation;

[0244] 4) Add the first operation measurement to the resources that meet the corresponding conditions for measurement enhancement;

[0245] 5) Increase measurement resources;

[0246] 6) Measurement enhancement of the first operation in the spatial domain, i.e., increasing the beam of the first operation measurement, or enhancing the corresponding time-domain / frequency-domain measurement on the beam;

[0247] 7) Increase the number of reference signals for the first operation measurement.

[0248] Optionally, the measurement results of the resources in the embodiments of this application include at least one of the following: the measurement performance value of the resource, the change in the measurement performance of the resource, and the change in the measurement performance of the resource.

[0249] The change in resource measurement performance is one of the following: the difference between the current resource measurement performance value and the previous measurement performance value, or the change in resource measurement performance within the first preset time period;

[0250] The change in resource measurement performance is one of the following: the difference between the current resource measurement performance value and the first reference measurement performance value, or the difference between the beam measurement performance and the second reference measurement performance value within the second preset time period;

[0251] The first reference measurement performance value or the second reference measurement performance value is one of the following: a value configured by the network side, a value agreed upon by the protocol, a reference measurement performance value that has been used, the previous measurement performance value, or a weighted average of the reference measurement performance value that has been used and the previous measurement performance value.

[0252] The measurement performance includes measuring the reference signal corresponding to the first operation to obtain at least one of the following: reference signal received power RSRP, reference signal received quality RSRQ, received signal strength indication RSSI, and signal-to-interference-plus-noise ratio SINR.

[0253] The reference signal includes at least one of the following: Synchronization Signal Block (SSB), Channel State Information Reference Signal (CSI-RS), Demodulation Reference Signal (DMRS), Cell Reference Signal (CRS), and Uplink Probe Reference Signal (SRS).

[0254] Optionally, the apparatus in the embodiments of this application may further include:

[0255] The sending module is used to send request information to the network-side device. The request information includes at least one of the following: measurement adjustment options for the first operation desired by the terminal, and measurement adjustment-related parameters for the first operation desired by the terminal; wherein the measurement adjustment options include at least one of the following: measurement relaxation, measurement enhancement, and normal measurement; or,

[0256] The receiving module is used to receive indication information from the network-side device, wherein the indication message is used to indicate at least one of the following: whether the cell supports measurement adjustment for the first operation, the adjustment-related parameters of the measurement adjustment, the type of the cell, and whether the cell allows the terminal to perform measurement adjustment.

[0257] The adjustment parameters for measurement adjustment include at least one of the following: the value of the relevant timer and / or the maximum value of the counter after adjustment, the threshold of the counter for entering measurement adjustment, the threshold of the counter for exiting measurement adjustment, the timer or preset time threshold for entering measurement adjustment, the counter or preset time threshold for exiting measurement adjustment, and the measurement configuration after measurement adjustment.

[0258] Optionally, the resources in this application implementation include at least one of the following: beam, bandwidth portion (BWP), member carrier (CC), carrier (Carrier), cell, cell group (CG), reference signal (RS), and transceiver point (TRP).

[0259] The resource measurement adjustment device in this application embodiment can be a device, or it can be a component, integrated circuit, or chip in a terminal. The device can be a mobile terminal or a non-mobile terminal. For example, a mobile terminal can include, but is not limited to, the types of terminal 11 listed above, and a non-mobile terminal can be a server, network attached storage (NAS), personal computer (PC), television (TV), ATM, or self-service machine, etc. This application embodiment does not make specific limitations.

[0260] The resource measurement adjustment device in this application embodiment can be a device with an operating system. This operating system can be Android, iOS, or other possible operating systems; this application embodiment does not specifically limit it.

[0261] The resource measurement adjustment device provided in this application embodiment can achieve Figure 2 The various processes implemented in the method embodiments achieve the same technical effect, and will not be described again here to avoid repetition.

[0262] Optional, such as Figure 4 As shown, this application embodiment also provides a communication device 400, including a processor 401, a memory 402, and a program or instructions stored in the memory 402 and executable on the processor 401. For example, when the communication device 400 is a terminal, the program or instructions executed by the processor 401 implement the various processes of the resource measurement adjustment method embodiment described above, and achieve the same technical effect. When the communication device 400 is a network-side device, the program or instructions executed by the processor 401 implement the various processes of the resource measurement adjustment method embodiment described above, and achieve the same technical effect. To avoid repetition, further details are omitted here.

[0263] Figure 5 A schematic diagram of the hardware structure of a terminal to implement an embodiment of this application.

[0264] The terminal 500 includes, but is not limited to, components such as: radio frequency unit 501, network module 502, audio output unit 503, input unit 504, sensor 505, display unit 506, user input unit 507, interface unit 508, memory 509, and processor 510.

[0265] Those skilled in the art will understand that the terminal 500 may also include a power supply (such as a battery) for supplying power to various components. The power supply may be logically connected to the processor 510 through a power management system, thereby enabling functions such as managing charging, discharging, and power consumption through the power management system. Figure 5 The terminal structure shown does not constitute a limitation on the terminal; the terminal may include more than [other components]. Figure 5 The number of components, the combination of certain components, or the different arrangements of components are not discussed further here.

[0266] It should be understood that, in this embodiment, the input unit 504 may include a graphics processing unit (GPU) 5041 and a microphone 5042. The GPU 5041 processes image data of still images or videos obtained by an image capture device (such as a camera) in video capture mode or image capture mode. The display unit 506 may include a display panel 5061, which may be configured in the form of a liquid crystal display, an organic light-emitting diode, or the like. The user input unit 507 includes a touch panel 5071 and other input devices 5072. The touch panel 5071 is also called a touch screen. The touch panel 5071 may include a touch detection device and a touch controller. Other input devices 5072 may include, but are not limited to, a physical keyboard, function keys (such as volume control buttons, power buttons, etc.), a trackball, a mouse, and a joystick, which will not be described in detail here.

[0267] In this embodiment, the radio frequency unit 501 receives downlink data from the network-side device and processes it for the processor 510; additionally, it sends uplink data to the network-side device. Typically, the radio frequency unit 501 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, etc.

[0268] The memory 509 can be used to store software programs or instructions and various data. The memory 509 may primarily include a program or instruction storage area and a data storage area. The program or instruction storage area may store the operating system, application programs or instructions required for at least one function (such as sound playback, image playback, etc.). Furthermore, the memory 509 may include high-speed random access memory and non-volatile memory, which may be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. For example, at least one disk storage device, flash memory device, or other non-volatile solid-state storage device.

[0269] Processor 510 may include one or more processing units; optionally, processor 110 may integrate an application processor and a modem processor, wherein the application processor mainly handles the operating system, user interface, and applications or instructions, and the modem processor mainly handles wireless communication, such as a baseband processor. It is understood that the aforementioned modem processor may also not be integrated into processor 510.

[0270] The processor 510 is configured to perform a plurality of first operations on a plurality of resources; wherein the first operations include at least one of the following: Radio Link Detection (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM).

[0271] The processor 510 is also used to adjust the measurement of the first operation when preset conditions are met.

[0272] The preset conditions are determined based on at least one of the following: measurement results of multiple resources, status of multiple resources; measurement adjustments include at least one of the following: measurement relaxation, measurement enhancement, normal measurement.

[0273] The terminal in this application embodiment can adjust the measurement of RLM, BFD, or RRM according to the measurement results and / or the status of multiple resources, including measurement relaxation, measurement enhancement, and normal measurement. In other words, the required measurement can be determined based on the measurement results and / or the status of multiple resources. This means that the measurement can be adjusted from measurement relaxation to measurement enhancement, or from measurement enhancement to measurement relaxation, etc. This realizes measurement relaxation and enhancement based on the measurement results and status of terminal resources, thereby solving the problem in the prior art where the execution of RLM, BFD, and RRM is performed according to the rules and requirements agreed upon in the protocol, resulting in wasted terminal power consumption and reduced system performance.

[0274] This application also provides a readable storage medium storing a program or instructions. When the program or instructions are executed by a processor, they implement the various processes of the above-described resource measurement adjustment method embodiment and achieve the same technical effect. To avoid repetition, they will not be described again here.

[0275] The processor mentioned above is the processor in the terminal described in the above embodiments. The readable storage medium includes computer-readable storage media, such as computer read-only memory (ROM), random access memory (RAM), magnetic disk, or optical disk.

[0276] This application embodiment also provides a chip, which includes a processor and a communication interface. The communication interface and the processor are coupled. The processor is used to run network-side device programs or instructions to implement the various processes of the above-described resource measurement adjustment method embodiment, and can achieve the same technical effect. To avoid repetition, it will not be described again here.

[0277] It should be understood that the chip mentioned in the embodiments of this application may also be referred to as a system-on-a-chip, system chip, chip system, or system-on-a-chip, etc.

[0278] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0279] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) and includes several instructions to cause a terminal (which may be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in the various embodiments of this application.

[0280] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A method for adjusting resource measurement, executed by a terminal, characterized in that, Comprising: performing a plurality of first operations on a plurality of resources; wherein the first operation comprises at least one of: radio link monitoring (RLM), beam failure detection (BFD); performing measurement adjustment on the measurement of the first operation if a preset condition is met; wherein the preset condition is determined according to measurement results of the plurality of resources; performing measurement adjustment on the measurement of the first operation if a preset condition is met, comprising: if the measurement results of the plurality of resources meet a first preset condition, switching to relaxed measurement of the first operation; the first preset condition comprises that the highest measurement value in the measurement results of the plurality of resources is not lower than a third threshold.

2. The method of claim 1, wherein, performing measurement adjustment on the measurement of the first operation if a preset condition is met, further comprising: if the measurement results of the plurality of resources meet a second preset condition, switching to normal measurement of the first operation; or, if the measurement results of the plurality of resources meet the second preset condition, switching to measurement enhancement of the first operation; wherein the first preset condition is different from the second preset condition, and the second preset condition is determined according to the measurement results of the plurality of resources.

3. The method of claim 1, wherein, The first preset condition further comprises at least one of: a number of first resources in the measurement results of the plurality of resources is not lower than a first threshold, wherein the measurement result of the first resource is not lower than a first threshold; a number of second resources in the measurement results of the plurality of resources is not higher than a second threshold, wherein the measurement result of the second resource is not higher than a second threshold; a lowest measurement value in the measurement results of the plurality of resources is not lower than a fourth threshold; a number of third resources in the measurement results of the plurality of resources is not lower than a third threshold, wherein a change amount or a change value of the measurement result of the third resource is not higher than a fifth threshold; a number of fourth resources in the measurement results of the plurality of resources is not higher than a fourth threshold, wherein a change amount or a change value of the measurement result of the fourth resource is not lower than a sixth threshold; a change amount or a change value of the highest measurement in the measurement results of the plurality of resources is not higher than a seventh threshold; a change amount or a change value of the measurement of a preset number of resources in the measurement results of the plurality of resources is not higher than an eighth threshold.

4. The method of claim 2, wherein, The second preset condition comprises at least one of: a number of fifth resources in the measurement results of the plurality of resources is not higher than a fifth threshold, wherein the measurement result of the fifth resource is not lower than a ninth threshold; a number of sixth resources in the measurement results of the plurality of resources is not lower than a sixth threshold, wherein the measurement result of the sixth resource is not higher than a tenth threshold; a highest measurement value in the measurement results of the plurality of resources is not higher than an eleventh threshold; a lowest measurement value in the measurement results of the plurality of resources is not higher than a twelfth threshold; a number of seventh resources in the measurement results of the plurality of resources is not lower than a seventh threshold, wherein a change amount or a change value of the measurement result of the seventh resource is not lower than a thirteenth threshold; a number of eighth resources in the measurement results of the plurality of resources is not higher than an eighth threshold, wherein a change amount or a change value of the measurement result of the eighth resource is not higher than a fourteenth threshold; The change or variation of the highest measurement result of the multiple resource measurement results is not less than a fifteenth threshold; The change or variation of the measurement of the preset number of resources of the multiple resource measurement results is not less than a sixteenth threshold.

5. The method according to claim 3 or 4, characterized in that, The threshold is determined by at least one of the following: network side device configuration, protocol agreement.

6. The method according to claim 3 or 4, characterized in that, The measurement result, the change of the measurement result, and the variation of the measurement result in a preset time period or a preset number of periods are compared with corresponding thresholds.

7. The method of claim 1, wherein, In the case of meeting the preset condition, the measurement adjustment of the first operation is performed, and the method further includes: If the measurement result of a first resource of the multiple resources meets a third preset condition, the measurement relaxation of the first operation of the first resource is switched to; or if the measurement of the first resource of the multiple resources meets a fourth preset condition, the normal measurement of the first operation of the first resource is switched to; Or, If the measurement result of a first resource of the multiple resources meets the fourth preset condition, the measurement enhancement of the first operation of the first resource is switched to; or if the measurement of the first resource of the multiple resources meets the third preset condition, the normal measurement of the first operation of the first resource is switched to; Or, If the measurement result of a first resource of the multiple resources meets the third preset condition, the measurement relaxation of the first operation of the first resource is switched to; or if the measurement of the first resource of the multiple resources meets the fourth preset condition, the measurement enhancement of the first operation of the first resource is switched to; The third preset condition is different from the fourth preset condition, and the third preset condition and / or the fourth preset condition is determined according to the measurement result of the first resource of the multiple resources.

8. The method of claim 7, wherein, The third preset condition includes at least one of the following: The measurement result of the first resource is not less than a seventeenth threshold; The measurement result of the first resource or a preset number of measurement samples of the first resource in a first preset time period or a preset number of periods is not less than an eighteenth threshold; The preset number of measurement samples of the first resource in a first preset time period or a preset number of periods is not less than a nineteenth threshold.

9. The method of claim 7, wherein, The fourth preset condition includes at least one of the following: The measurement result of the first resource is not higher than a twentieth threshold; The measurement result of the first resource or a preset number of measurement samples in a first preset time period or a preset number of periods is not higher than a twenty-first threshold; The preset number of measurement samples of the first resource in a first preset time period or a preset number of periods is not higher than a twenty-second threshold.

10. The method of claim 8, wherein The measurement result of the first resource or a preset number of measurement samples in the preset number of periods is not less than the eighteenth threshold means that the measurement result of the first resource or a preset number of measurement samples in a continuous preset number of periods is not less than the eighteenth threshold; or The preset number of measurement samples of the first resource in the first preset time period being not less than the nineteenth threshold means that the preset number of measurement samples in the first preset time period are all not less than the nineteenth threshold.

11. The method of claim 9, wherein, the measurement result of the first resource or the preset number of measurement samples in the preset number of periods being not higher than a twenty-first threshold means that the measurement result of the first resource or the preset number of measurement samples in the preset number of periods are all not higher than the twenty-first threshold; or, the preset number of measurement samples of the first resource in the first preset time period being not higher than a twenty-second threshold means that the preset number of measurement samples in the first preset time period are all not higher than the twenty-second threshold.

12. The method of claim 1, wherein, The preset condition is further determined according to the states of the plurality of resources, and in the case where the preset condition is met, the measurement adjustment of the first operation is performed, and the method further comprises: if the state of a first resource in the plurality of resources meets a fifth preset condition, switching to measurement relaxation of the first operation of the first resource; or if the state of the first resource in the plurality of resources meets a sixth preset condition, switching to normal measurement of the first operation of the first resource; or, if the state of a first resource in the plurality of resources meets the sixth preset condition, switching to measurement enhancement of the first operation of the first resource; or if the state of the first resource in the plurality of resources meets the fifth preset condition, switching to normal measurement of the first operation of the first resource; or, if the state of a first resource in the plurality of resources meets the fifth preset condition, switching to measurement relaxation of the first operation of the first resource; or if the state of the first resource in the plurality of resources meets the sixth preset condition, switching to normal enhancement of the first operation of the first resource.

13. The method of claim 12, wherein, The fifth preset condition comprises at least one of: the first resource is backed off from a carrier aggregation state to a single cell state; the first resource is backed off from a dual connectivity state to a single cell group state; a secondary cell corresponding to the first resource is performed with a second operation; a secondary cell group corresponding to the first resource is performed with a second operation; the first resource is performed with a second operation; wherein the performed second operation comprises at least one of being released, deactivated, suspended, and hibernated.

14. The method of claim 12, wherein, The sixth preset condition comprises at least one of: the first resource is performed with a third operation; the first resource is switched from a single cell state to a carrier aggregation state; the first resource is switched from a single cell group state to a dual connectivity state; a secondary cell corresponding to the first resource is performed with a third operation; a secondary cell group corresponding to the first resource is performed with a third operation; wherein the performed third operation comprises at least one of being configured, activated, recovered, and woken up.

15. The method of claim 12, wherein, Switching to the measurement adjustment of the first operation of the first resource comprises at least one of: in the case where the number of the first resource is 1, switching to the measurement adjustment of the first operation of the first resource; in a case where the quantity of the first resources is multiple, switching to the measurement adjustment of the first operation on part of the first resources in the multiple first resources; in a case where the quantity of the first resources is multiple, switching to the measurement adjustment of the first operation on all of the first resources in the multiple first resources.

16. The method of claim 15, wherein, in a case where the measurement adjustment is measurement relaxation, the measurement relaxation comprises at least one of the following: measurement relaxation of the first operation in a time domain; not performing measurement of the first operation or reducing measurement of the first operation within a first specified time; not performing upper-layer indication of the first operation or reducing upper-layer indication of the first operation within a second specified time; not performing measurement of the first operation on a resource satisfying a corresponding condition of the measurement relaxation; reducing a resource of measurement; measurement relaxation of the first operation in a spatial domain; reducing a quantity of reference signals of measurement of the first operation; or in a case where the measurement adjustment is measurement enhancement, the measurement enhancement comprises at least one of the following: measurement enhancement of the first operation in a time domain; increasing measurement of the first operation within a first specified time; increasing upper-layer indication of the first operation within a second specified time; increasing measurement of the first operation on a resource satisfying a corresponding condition of the measurement enhancement; increasing a resource of measurement; measurement enhancement of the first operation in a spatial domain; increasing a quantity of reference signals of measurement of the first operation. The measurement result of the resource comprises at least one of a measurement performance value of the resource, a change value of a measurement performance of the resource, and a change amount of the measurement performance of the resource.

18. The method of claim 17, wherein, 17. The method of claim 1, wherein, the change value of the measurement performance of the resource is one of a difference between a current measurement performance value of the resource and a previous measurement performance value, and a change value of the measurement performance of the resource within a first preset time period; the change amount of the measurement performance of the resource is one of a difference between the current measurement performance value of the resource and a first reference measurement performance value, and a difference between a beam measurement performance within a second preset time period and a second reference measurement performance value; wherein the first reference measurement performance value or the second reference measurement performance value is one of a value configured by a network side, a value agreed by a protocol, a used reference measurement performance value, a previous measurement performance value, and a weighted average result of the used reference measurement performance value and the previous measurement performance value.

19. The method of claim 17, wherein, the measurement performance comprises measurement of a reference signal corresponding to the first operation to obtain at least one of a reference signal received power (RSRP), a reference signal received quality (RSRQ), a received signal strength indication (RSSI), and a signal to interference plus noise ratio (SINR); the reference signal comprises at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), a cell reference signal (CRS), and an uplink sounding reference signal (SRS). the method further comprises: ​ 20. The method of claim 1, wherein, ​ sending, to a network-side device, request information, the request information including at least one of: a measurement adjustment option of a first operation expected by the terminal, a measurement adjustment related parameter of the first operation expected by the terminal; wherein the measurement adjustment option includes at least one of: measurement relaxation, measurement enhancement, normal measurement; or, receiving, from a network-side device, indication information, wherein the indication information is used to indicate at least one of: whether the first operation is supported by the cell for measurement adjustment, an adjustment related parameter of the measurement adjustment, a type of the cell, whether the cell allows the terminal to perform measurement adjustment.

21. The method of claim 20, wherein, The adjustment parameter of the measurement adjustment includes at least one of: a value of an adjusted related timer and / or a maximum value of a counter, a counter threshold for entering measurement adjustment, a counter threshold for exiting measurement adjustment, a timer or a preset time threshold for entering measurement adjustment, a counter or a preset time threshold for exiting measurement adjustment, a measurement configuration after measurement adjustment.

22. The method of claim 1, wherein, The resource includes at least one of: a beam, a bandwidth part (BWP), a component carrier (CC), a carrier, a cell, a cell group (CG), a reference signal (RS), and a transmission and reception point (TRP).

23. An adjustment device for resource measurement, characterized in that, including: an execution module configured to perform a plurality of first operations on a plurality of resources; wherein the first operation includes at least one of: radio link monitoring (RLM), beam failure detection (BFD); an adjustment module configured to perform measurement adjustment on the measurement of the first operation if a preset condition is met; wherein the preset condition is determined according to the measurement results of the plurality of resources; The adjustment module includes: a first switching unit configured to switch to measurement relaxation of the first operation if the measurement results of the plurality of resources meet a first preset condition; the first preset condition includes that the highest measurement value in the measurement results of the plurality of resources is not lower than a third threshold.

24. The apparatus of claim 23, wherein, The adjustment module further includes: a tenth switching unit configured to switch to normal measurement of the first operation if the measurement results of the plurality of resources meet a second preset condition; or, a second switching unit configured to switch to measurement enhancement of the first operation if the measurement results of the plurality of resources meet the second preset condition; wherein the first preset condition is different from the second preset condition, and the second preset condition is determined according to the measurement results of the plurality of resources.

25. The apparatus of claim 23, wherein, The first preset condition further includes at least one of: a number of first resources in the measurement results of the plurality of resources is not lower than a first threshold, wherein the measurement result of the first resource is not lower than a first threshold; a number of second resources in the measurement results of the plurality of resources is not higher than a second threshold, wherein the measurement result of the second resource is not higher than a second threshold; a lowest measurement value in the measurement results of the plurality of resources is not lower than a fourth threshold; a number of third resources in the measurement results of the plurality of resources is not lower than a third threshold, wherein a change amount or a variation amount of the measurement result of the third resource is not higher than a fifth threshold; a quantity of fourth resources in the measurement results of the plurality of resources is not higher than a fourth threshold, wherein a variation or a change of the measurement result of the fourth resource is not lower than a sixth threshold; a variation or a change of a highest measurement in the measurement results of the plurality of resources is not higher than a seventh threshold; a variation or a change of a measurement of a preset quantity of resources in the measurement results of the plurality of resources is not higher than an eighth threshold.

26. The apparatus of claim 24, wherein, The second preset condition comprises at least one of: a quantity of fifth resources in the measurement results of the plurality of resources is not higher than a fifth threshold, wherein the measurement result of the fifth resource is not lower than a ninth threshold; a quantity of sixth resources in the measurement results of the plurality of resources is not lower than a sixth threshold, wherein the measurement result of the sixth resource is not higher than a tenth threshold; a highest measurement value in the measurement results of the plurality of resources is not higher than an eleventh threshold; a lowest measurement value in the measurement results of the plurality of resources is not higher than a twelfth threshold; a quantity of seventh resources in the measurement results of the plurality of resources is not lower than a seventh threshold, wherein a variation or a change of the measurement result of the seventh resource is not lower than a thirteenth threshold; a quantity of eighth resources in the measurement results of the plurality of resources is not higher than an eighth threshold, wherein a variation or a change of the measurement result of the eighth resource is not higher than a fourteenth threshold; a variation or a change of a highest measurement in the measurement results of the plurality of resources is not lower than a fifteenth threshold; a variation or a change of a measurement of a preset quantity of resources in the measurement results of the plurality of resources is not lower than a sixteenth threshold.

27. The apparatus of claim 25 or 26, wherein, The threshold is determined by at least one of network side device configuration and protocol agreement.

28. The apparatus of claim 25 or 26, wherein, The measurement result, the variation of the measurement result, and the change of the measurement result in a preset time period or a preset quantity of periods are compared with corresponding thresholds.

29. The apparatus of claim 23, wherein, The adjustment module further comprises: a fourth switching unit, configured to switch to measurement relaxation of the first operation of a first resource in the plurality of resources if a measurement result of the first resource satisfies a third preset condition, or switch to normal measurement of the first operation of the first resource if a measurement of the first resource satisfies a fourth preset condition; or, a fifth switching unit, configured to switch to measurement enhancement of the first operation of a first resource in the plurality of resources if a measurement result of the first resource satisfies the fourth preset condition, or switch to normal measurement of the first operation of the first resource if a measurement of the first resource satisfies the third preset condition; or, a sixth switching unit, configured to switch to measurement relaxation of the first operation of a first resource in the plurality of resources if a measurement result of the first resource satisfies the third preset condition, or switch to measurement enhancement of the first operation of the first resource if a measurement of the first resource satisfies the fourth preset condition; wherein the third preset condition is different from the fourth preset condition, and the third preset condition and / or the fourth preset condition is determined according to a result of measurement of the first resource in the plurality of resources.

30. The apparatus of claim 29, wherein, The third preset condition comprises at least one of the following: The measurement result of the first resource is not lower than a seventeenth threshold; The measurement result of the first resource or a preset number of measurement samples of the first resource in a first preset time period or a preset number of periods is not lower than an eighteenth threshold; A preset number of measurement samples of the first resource in the first preset time period or a preset number of periods is not lower than a nineteenth threshold.

31. The apparatus of claim 29, wherein, The fourth preset condition comprises at least one of the following: The measurement result of the first resource is not higher than a twentieth threshold; The measurement result of the first resource or a preset number of measurement samples in a first preset time period or a preset number of periods is not higher than a twenty-first threshold; A preset number of measurement samples of the first resource in the first preset time period or a preset number of periods is not higher than a twenty-second threshold.

32. The apparatus of claim 30, wherein: The measurement result of the first resource or a preset number of measurement samples in a preset number of periods is not lower than an eighteenth threshold means that the measurement result of the first resource or a preset number of measurement samples in each of the preset number of consecutive periods is not lower than the eighteenth threshold; or A preset number of measurement samples of the first resource in the first preset time period is not lower than a nineteenth threshold means that each of the preset number of measurement samples in the first preset time period is not lower than the nineteenth threshold.

33. The apparatus of claim 31, wherein: The measurement result of the first resource or a preset number of measurement samples in a preset number of periods is not higher than a twenty-first threshold means that the measurement result of the first resource or a preset number of measurement samples in each of the preset number of consecutive periods is not higher than the twenty-first threshold; or A preset number of measurement samples of the first resource in the first preset time period is not higher than a twenty-second threshold means that each of the preset number of measurement samples in the first preset time period is not higher than the twenty-second threshold.

34. The apparatus of claim 23, wherein, The preset condition is further determined according to the states of a plurality of the resources, and the adjusting module further comprises: A seventh switching unit configured to switch to measurement relaxation of the first operation of the first resource if a state of a first resource in the plurality of resources meets a fifth preset condition, or switch to normal measurement of the first operation of the first resource if a state of the first resource in the plurality of resources meets a sixth preset condition; Or, An eighth switching unit configured to switch to measurement enhancement of the first operation of the first resource if a state of a first resource in the plurality of resources meets the sixth preset condition, or switch to normal measurement of the first operation of the first resource if a state of the first resource in the plurality of resources meets the fifth preset condition; Or, A ninth switching unit configured to switch to measurement relaxation of the first operation of the first resource if a state of a first resource in the plurality of resources meets the fifth preset condition, or switch to normal enhancement of the first operation of the first resource if a state of the first resource in the plurality of resources meets the sixth preset condition.

35. The apparatus of claim 34, wherein, The fifth preset condition comprises at least one of the following: The first resource is backed off from a carrier aggregation state to a single cell state; The first resource is backed off from a dual connectivity state to a single cell group state; The secondary cell corresponding to the first resource is executed with a second operation; The secondary cell group corresponding to the first resource is executed with a second operation; The first resource is executed with a second operation; The executed second operation comprises at least one of the following: being released, being deactivated, being suspended, and being hibernated.

36. The apparatus of claim 34, wherein, The sixth preset condition comprises at least one of the following: The first resource is executed with a third operation; The first resource is switched from a single cell state to a carrier aggregation state; The first resource is switched from a single cell group state to a dual connectivity state; The secondary cell corresponding to the first resource is executed with a third operation; The secondary cell group corresponding to the first resource is executed with a third operation; The executed third operation comprises at least one of the following: being configured, being activated, being recovered, and being woken up.

37. The apparatus of claim 34, wherein, The measurement adjustment of the first operation switched to the first resource comprises at least one of the following: In a case where the number of the first resources is 1, the measurement adjustment of the first operation switched to the first resource; In a case where the number of the first resources is multiple, the measurement adjustment of the first operation switched to part of the first resources in the multiple first resources; In a case where the number of the first resources is multiple, the measurement adjustment of the first operation switched to all of the first resources in the multiple first resources.

38. The apparatus of claim 37, wherein, In a case where the measurement adjustment is measurement relaxation, the measurement relaxation comprises at least one of the following: Measurement relaxation of the first operation in a time domain; In a first specified time, no measurement of the first operation is performed, or the measurement of the first operation is reduced; In a second specified time, no upper-layer indication of the first operation is performed, or the upper-layer indication of the first operation is reduced; No measurement of the first operation is performed on a resource satisfying a corresponding condition of the measurement relaxation; The resource for measurement is reduced; Measurement relaxation of the first operation in a space domain, i.e., the number of beams for measurement of the first operation is reduced, or corresponding time / frequency domain measurement relaxation is performed on the beams; The number of reference signals for measurement of the first operation is increased. In a case where the measurement adjustment is measurement enhancement, the measurement enhancement comprises at least one of the following: Measurement enhancement of the first operation in a time domain; In a first specified time, the measurement of the first operation is increased; In a second specified time, the upper-layer indication of the first operation is increased; The measurement of the first operation is increased on a resource satisfying a corresponding condition of the measurement enhancement; The resource for measurement is increased; Measurement enhancement of the first operation in a space domain, i.e., the number of beams for measurement of the first operation is increased, or corresponding time / frequency domain measurement enhancement is performed on the beams; The number of reference signals for measurement of the first operation is increased.

39. The device of claim 34, wherein, The measurement result of the resource comprises at least one of the following: a measurement performance value of the resource, a change amount of the measurement performance of the resource, and a change value of the measurement performance of the resource.

40. The apparatus of claim 39, wherein, The change amount of the resource measurement performance is one of a difference between a current resource measurement performance value and a previous measurement performance value, a change value of the resource measurement performance in a first preset time period; The change amount of the resource measurement performance is one of a difference between a current resource measurement performance value and a first reference measurement performance value, a difference between a beam measurement performance in a second preset time period and a second reference measurement performance value; The first reference measurement performance value or the second reference measurement performance value is one of a value configured by a network side, a value agreed by a protocol, a used reference measurement performance value, a previous measurement performance value, or a weighted average result of the used reference measurement performance value and the previous measurement performance value.

41. The apparatus of claim 39, wherein The measurement performance comprises measurement of a reference signal corresponding to the first operation to obtain at least one of a reference signal received power (RSRP), a reference signal received quality (RSRQ), a received signal strength indication (RSSI), or a signal to interference plus noise ratio (SINR). The reference signal comprises at least one of a synchronization signal block (SSB), a channel state information reference signal (CSI-RS), a demodulation reference signal (DMRS), a cell reference signal (CRS), or an uplink sounding reference signal (SRS).

42. The device of claim 34, wherein, The apparatus further comprises: a sending module configured to send, to a network side device, request information comprising at least one of a measurement adjustment option of the first operation expected by the terminal or a measurement adjustment related parameter of the first operation expected by the terminal, wherein the measurement adjustment option comprises at least one of measurement relaxation, measurement enhancement, or normal measurement; or a receiving module configured to receive, from the network side device, indication information indicating at least one of whether the first operation is supported by the cell for measurement adjustment, an adjustment related parameter of the measurement adjustment, a type of the cell, or whether the terminal is allowed to perform measurement adjustment by the cell.

43. The device of claim 42, wherein, The adjustment parameter of the measurement adjustment comprises at least one of a value of a related timer after adjustment and / or a maximum value of a counter, a counter threshold for entering measurement adjustment, a counter threshold for exiting measurement adjustment, a timer or a preset time threshold for entering measurement adjustment, a counter or a preset time threshold for exiting measurement adjustment, or a measurement configuration after measurement adjustment. The resource comprises at least one of a beam, a bandwidth part (BWP), a component carrier (CC), a carrier, a cell, a cell group (CG), a reference signal (RS), or a transmission reception point (TRP).

44. The device of claim 23, wherein, The apparatus comprises a processor, a memory, and a program or instructions stored on the memory and executable on the processor, and the program or instructions are executed by the processor to implement the steps of the adjustment method of the resource measurement according to any one of claims 1 to 22.

45. A terminal, characterized by The program or instructions are stored on the readable storage medium and executable by the processor to implement the steps of the adjustment method of the resource measurement according to any one of claims 1 to 22.

46. A readable storage medium characterized by, ​

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