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

The method and device dynamically adjust RLM, BFD, and RRM measurements based on resource conditions to optimize power usage and performance, addressing inefficiencies in existing systems.

JP7803945B2Active Publication Date: 2026-01-21VIVO MOBILE COMM CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2023526593
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-05
Filing Date
2021-11-01
Publication Date
2026-01-21
Estimated Expiration
2041-11-01

AI Technical Summary

Technical Problem

Existing mobile communication systems waste power consumption and degrade system performance due to rigid execution of Radio Link Monitor (RLM), Beam Failure Detection (BFD), and Radio Resource Management (RRM) according to default rules.

Method used

A method and device for adjusting resource measurements in terminals, allowing for measurement relaxation, enhancement, or normal operations based on the measurement results and status of multiple resources, including RLM, BFD, and RRM, to optimize power usage and performance.

Benefits of technology

This approach reduces power consumption and enhances system performance by dynamically adjusting measurements according to resource conditions, addressing the inefficiencies of prior art protocols.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007803945000001
    Figure 0007803945000001
  • Figure 0007803945000002
    Figure 0007803945000002
  • Figure 0007803945000003
    Figure 0007803945000003
Patent Text Reader

Abstract

The present application discloses a resource measurement adjustment method and device, a terminal, and a readable storage medium, which belong to the field of communications, and includes: performing a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam fault detection (BFD), and radio resource management (RRM); and performing measurement adjustment on measurements of the first operations when a predetermined condition is satisfied, the predetermined condition being determined by at least one of measurement results of the plurality of resources and states of the plurality of resources, and the measurement adjustment including at least one of measurement relaxation, measurement enhancement, and normal measurement.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority from a Chinese patent application with application number No. 202011225117.1 filed in China on November 5, 2020, the entire contents of which are incorporated herein by reference.

[0002] The present application relates to the technical field of communications, and in particular to a resource measurement adjustment method and apparatus, a terminal, and a readable storage medium. [Background technology]

[0003] Currently, in a mobile communication system, even when a Physical Downlink Control Channel (PDCCH) or a pre-indication signal instructs a terminal not to monitor the PDCCH, the terminal needs to wake up from a 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 prior art is performed according to default rules, and therefore the execution of RLM and / or BFD is not flexible. Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments of the present application provide a resource measurement adjustment method and device, a terminal, and a readable storage medium, which can solve the problem of wasting power consumption in a terminal and degrading system performance by performing at least one of RLM, BFD, and RRM in the prior art according to rules and requirements specified in a protocol. [Means for solving the problem]

[0005] In a first aspect, a method for adjusting resource measurements performed by a terminal is provided, comprising: a step of performing a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM); and a step of making measurement adjustments to measurements of the first operations when a predetermined condition is met, wherein the predetermined condition is determined by at least one of measurement results of the plurality of resources and states of the plurality of resources, and the measurement adjustments include at least one of measurement relaxation, measurement enhancement, and normal measurement.

[0006] In a second aspect, a resource measurement adjustment device is provided, comprising: an execution module used to execute a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam fault detection (BFD), and radio resource management (RRM); and an adjustment module used to make measurement adjustments to measurements of the first operations when a predetermined condition is met, the predetermined condition being determined by at least one of measurement results of the plurality of resources and states of the plurality of resources, and the measurement adjustments including at least one of measurement relaxation, measurement enhancement, and normal measurement.

[0007] In a third aspect, there is provided a terminal comprising a processor, a memory, and a program or command stored in the memory and executable by the processor, the program or command implementing the steps of the method according to the first aspect when executed by the processor.

[0008] In a fourth aspect, there is provided a readable storage medium storing a program or commands which, when executed by a processor, implements the steps of the method of the first aspect.

[0009] In a fifth aspect, there is provided a chip comprising a processor and a communication interface, wherein the communication interface and the processor are coupled together, and the processor is adapted to execute a program or command of a network side device to realize the steps of the method described in the first aspect.

[0010] In a sixth aspect, there is provided a computer program product stored on a non-transitory storage medium, the computer program product being configured to, when executed by at least one processor, implement the steps of the method of the first aspect. [Effects of the Invention]

[0011] In the embodiments of the present application, measurement relaxation, measurement augmentation, and normal measurement adjustments can be made to RLM, BFD, or RRM measurements based on the measurement results of multiple resources and / or the status of multiple resources; that is, the currently required measurement can be determined based on the measurement results of multiple resources and / or the status of multiple resources; that is, adjustments can be made from measurement relaxation to measurement augmentation, or from measurement augmentation to measurement relaxation, etc., and measurement relaxation and augmentation can be realized according to the measurement results and resource status of terminal resources. In the prior art, the execution of at least one of RLM, BFD, and RRM is performed according to the rules and requirements specified in the protocol, thereby solving the problems of wasting terminal power consumption and degrading system performance. [Brief explanation of the drawings]

[0012] [Figure 1] 1 shows a block diagram of a wireless communication system applicable to an embodiment of the present application. [Figure 2] 2 is a flowchart of a resource measurement adjustment method in an embodiment of the present application; [Figure 3] FIG. 1 is a schematic diagram of the configuration of a resource measurement adjustment device according to an embodiment of the present application; [Figure 4] 1 is a schematic diagram illustrating the configuration of a communication device according to an embodiment of the present application. [Figure 5] FIG. 1 is a schematic diagram illustrating the configuration of a terminal according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION

[0013] In order to more clearly describe the technical solutions of the embodiments of the present application, the drawings necessary for describing the embodiments of the present application are briefly described above. Of course, the drawings in the above description are only a part of the embodiments of the present application, and those skilled in the art can derive other drawings from these drawings without any creative efforts.

[0014] Hereinafter, the technical solutions in the embodiments of the present application will be clearly described with reference to the drawings in the embodiments of the present application, and it is to be understood that the described embodiments are not all embodiments but only some embodiments of the present application. All other embodiments obtained by those skilled in the art based on the embodiments of the present application fall within the scope of protection of the present application.

[0015] The terms "first," "second," etc. in the specification and claims of this application are not intended to describe a particular order or precedence order, but rather to distinguish between similar objects. It should be understood that the data used in this manner may be interchanged where appropriate so that the embodiments of this application can be practiced in an order other than that illustrated or described herein. Furthermore, the objects distinguished by "first" and "second" generally refer to one type and do not limit the number of objects; for example, the first object may be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the symbol " / " generally indicates that the related objects before and after are in an "or" relationship.

[0016] It should be noted that the techniques described in the embodiments of the present application are not limited to Long Term Evolution (LTE) or LTE-Advanced (LTE-A) systems, and may also be applied to 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), and Single-Carrier Frequency Division Multiple Access (SC-FDMA), as well as other systems. The terms "system" and "network" in the embodiments of the present application are generally interchangeable, and the techniques described may be used for the above-mentioned systems and wireless technologies, or for other systems and wireless technologies. For illustrative purposes, the following description will describe a New Radio (NR) system, and NR terminology will be used in most of the following description; however, these techniques may be applied to systems other than NR systems, such as 6th generation (6G) systems. th It can also be applied to 6G (Generation, 6G) communication systems.

[0017] FIG. 1 shows a block diagram of a wireless communication system applicable to an embodiment of the present application. The wireless communication system includes a terminal 11 and a network side device 12. Here, the terminal 11 may be referred to as a terminal device or user equipment (UE), and may be a terminal side device such as a mobile phone, a tablet personal computer, a laptop computer (also called a notebook computer), a personal digital assistant (PDA), a personal digital assistant, a netbook, an ultra-mobile personal computer (UMPC), a mobile internet device (MID), a wearable device, a vehicle-mounted equipment (VUE), a pedestrian-mounted equipment (PUE), etc., and wearable devices include a bracelet, earphones, glasses, etc. It should be noted that the specific type of the terminal 11 is not limited to the embodiment of the present application. The network side device 12 may be a base station or a core network, in which the base station may be called 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 appropriate term in the field, and as long as the same technical effect can be achieved, the base station is not limited to a specific technical term. In the embodiments of this application, only a base station in an NR system is taken as an example, but it should be noted that the specific type of base station is not limited.

[0018] First, the terms in this application will be interpreted correspondingly.

[0019] 1. Radio Link Monitor (RLM) and Radio Link Failure (RLF) functions: Both RLM and RLF are RLM functions in LTE and NR systems. In the RLM function of LTE, the UE monitors the radio link by measuring the signal-to-interference plus noise ratio (SINR) of a cell reference signal (CRS) on the physical downlink control channel (PDCCH). If the measured CRS reference signal on the PDCCH is lower than a predetermined limit, the radio link is deemed "out-of-sync." In this way, the physical layer notifies the upper layer (Radio Resource Control (RRC) layer) of an out-of-sync (OOS) indication. When the RRC layer notifies N consecutive out-of-sync indications, the UE starts a timer T1 (T310).

[0020] If the measured CRS reference signal of a part of the PDCCH is higher than a predetermined limit, the radio link is deemed to be "in-sync". Thus, the physical layer notifies the upper layer (RRC layer) of one in-sync (IS) indication, and when the RRC layer notifies M consecutive in-sync indications, the UE stops the operation of Timer T1.

[0021] If the operation of timer T1 times out, the UE determines that it is in RLF. Here, the number of counts of "out-of-sync" and "in-sync" is set by the network, i.e., N or M. In addition, the operation time of the timer after the count is reached may also be set by the network side.

[0022] About BFD Future 5th Generation (5G) mobile communication systems will employ high-frequency (RF) and large-scale antenna technologies to achieve the goal of 20 Gbps downlink and 10 Gbps uplink speeds. High-frequency communication can provide wider system bandwidth and allow for smaller antenna sizes, which is advantageous for the deployment of large-scale antennas at base stations and UEs. While RF communication suffers from the drawbacks of high path loss, susceptibility to interference, and weak links, large-scale antenna technology can provide high antenna gain. Therefore, the combination of RF communication and large-scale antennas is an inevitable development direction for future 5G mobile communication systems. However, the adoption of large-scale antenna technology does not necessarily solve all RF communication problems, such as link vulnerability. When RF communication is interrupted, a beam failure recovery mechanism can quickly switch beams and transfer the communication link from a poor beam to a suitable beam, thereby avoiding radio link failures and effectively improving link robustness.

[0023] The UE beam failure recovery mechanism is 1) Beam obstruction detection, 2) Recognition of new candidate beams; 3) Sending a beam failure recovery request, and 4) Includes monitoring of gNB responses to beam failure recovery requests by the UE. Here, the recognition of new candidate beams may be performed before or after beam obstruction detection.

[0024] The current beam failure detection procedure is as follows: After the physical layer determines that a predetermined condition (e.g., all beam received signals are lower than a certain limit) is met, it notifies the media access control (MAC) layer of one beam failure instance (BFI). The MAC layer determines whether a beam failure has occurred by counting the number of BFIs periodically notified by the physical layer (PHY). The following two counting methods may be adopted:

[0025] Method 1) After N consecutive or non-consecutive instances are indicated, it is determined that there is a beam obstruction.

[0026] Method 2) When an instance is received within a timer, the counter is incremented by 1. When an instance is received, the timer is started or restarted. If a timer has timed out but no instance is received, the counter is reset. When the counter reaches a predetermined number of times, it is determined to be a beam obstruction.

[0027] Hereinafter, the resource measurement adjustment method provided in the embodiments of the present application will be described in detail with reference to the drawings according to specific embodiments and application cases.

[0028] An embodiment of the present application provides a resource measurement adjustment method, which is executed by a terminal. FIG. 2 is a flowchart of the resource measurement adjustment method of the embodiment of the present application. As shown in FIG. 2, the method includes the following steps S202 and S204:

[0029] In step S202, a plurality of first operations are performed on a plurality of resources, and the first operations include at least one of radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM).

[0030] In step S204, if a predetermined condition is satisfied, a measurement adjustment is performed on the measurement of the first operation; wherein the predetermined condition is determined by at least one of measurement results of the plurality of resources and states of the plurality of resources; The measurement adjustment includes at least one of measurement relaxation, measurement enhancement, and normal measurement.

[0031] According to steps S202 and S204 of the embodiment of the present application, measurement relaxation, measurement augmentation, and normal measurement adjustments can be made to RLM, BFD, or RRM measurements based on the measurement results of multiple resources and / or the status of multiple resources. That is, the currently required measurement can be determined based on the measurement results of multiple resources and / or the status of multiple resources. That is, adjustments can be made from measurement relaxation to measurement augmentation, or from measurement augmentation to measurement relaxation, etc., and measurement relaxation and augmentation can be realized according to the measurement results and resource status of terminal resources. In the prior art, RLM, BFD, or RRM is performed in accordance with the rules and requirements specified in the protocol, which solves the problems of wasting terminal power consumption and degrading system performance.

[0032] As needed, the resources in the embodiments of the present application may include 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 transmit receive point (TRP).

[0033] Here, for cells, "on multiple cells" refers to the case of Carrier Aggregation (CA), i.e., on a primary cell (Pcell) and a secondary cell (Scell), or in the case of DC with CA, on a primary secondary cell (Pscell) and an Scell. For cell groups, "on multiple cell groups" refers to the case of Dual Connectivity (DC) or DC with CA, i.e., on a master cell group (MCG) and a secondary cell group (SCG), or on some or all cells of the MCG and some or all cells of the SCG, for example, on a Pcell and a Pscell, or on a Pcell / Scell ​​and a Pscell / Scell.

[0034] In an alternative embodiment of the present application, the measurement result of the resource includes at least one of a value of the measured performance of the resource, a change in the measured performance of the resource, and a change in the measured performance of the resource.

[0035] Here, the change in the measured performance of a resource is the difference between the current measured performance value of the resource and the previous measured performance value, i.e., the change in the measured performance of the resource within a first predetermined time period, where the previous measured performance value may be one or more times in the past.

[0036] The change amount of the resource measurement performance is one of the difference between the value of the current measurement performance of the resource and the value of the first reference measurement performance, and the difference between the beam measurement performance within the second predetermined time period and the value of the second reference measurement performance.

[0037] Here, the first reference measurement performance value or the second reference measurement performance value is one of a value set by the network side, a value specified by a protocol, a reference measurement performance value that has already been used, a previous measurement performance value, a weighted average result of the reference measurement performance value that has already been used and the previous measurement performance value, or a weighted average result of the reference measurement performance value that has already been used and the current measurement performance value. Specifically, the reference value may be one of a previous reference value or a measurement performance value used in a previous comparison, a immediately preceding 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.

[0038] As is clear from the description, the measurement performance in the embodiment of the present application includes measuring a reference signal corresponding to the first operation to obtain at least one of a Reference Signal Receiving Power (RSRP), a Reference Signal Receiving Quality (RSRQ), a Received Signal Strength Indication (RSSI), and a Signal to Interference plus Noise Ratio (SINR); The reference signals include 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), an uplink sounding reference signal (SRS), and a position reference signal (PRS).

[0039] In an optional embodiment of the present application, the manner of performing measurement adjustment on the measurement of the first operation when a predetermined condition is met, as described in step S204, further includes: Step S204-11: switching to relaxed measurement of the first operation when the measurement results of the plurality of resources satisfy a first predetermined condition, or switching to normal measurement of the first operation when the measurement results of the plurality of resources satisfy a second predetermined condition; Or, Step S204-12: switching to measurement enhancement of the first operation when the measurement results of the plurality of resources satisfy a second predetermined condition, or switching to normal measurement of the first operation when the measurement results of the plurality of resources satisfy a first predetermined condition; Or, The method may include a step S204-13 of switching to measurement relaxation of the first operation when measurement results of the plurality of resources satisfy a first predetermined condition, or switching to measurement enhancement of the first operation when measurement results of the plurality of resources satisfy a second predetermined condition; Here, the first predetermined condition is different from the second predetermined condition, and the first predetermined condition and / or the second predetermined condition is determined based on the results of measuring a plurality of resources.

[0040] As can be seen from the above, through the above steps S204-11 to S204-13, according to the measurement results of multiple resources, when different predetermined conditions are met, corresponding adjustments can be made to the measurement of the first operation. In addition, in different applications, the measurement adjustments corresponding to the same predetermined conditions can be different, for example, when the first predetermined condition is met, the first operation can be switched to measurement relaxation or measurement enhancement, and after switching to measurement relaxation, the purpose of power saving can be achieved, and the specific switching results can be set correspondingly according to actual situations.

[0041] Optionally, the first predetermined condition in an embodiment of the present application is: 1) the number of a first resource in the measurement results of the plurality of resources is not lower than a first threshold, and the measurement result of the first resource is not lower than a first limit; 2) the number of second resources in the measurement results of the plurality of resources is not higher than a second threshold, and the measurement results of the second resources are not higher than a second limit; 3) The highest measured value among the measurements of multiple resources is not lower than the third limit; 4) The lowest measured value among the measurements of multiple resources is not lower than the fourth limit; 5) The number of the third resource in the measurement results of the plurality of resources is not lower than the third threshold, and the change amount or the modification amount of the measurement results of the third resource is not higher than the fifth limit; 6) the number of the fourth resource in the measurement results of the plurality of resources is not higher than the fourth threshold, and the change amount or the modification amount of the measurement results of the fourth resource is not lower than the sixth limit; 7) The maximum measured change or variation in the measurement results of multiple resources is not higher than the seventh limit; 8) The amount of change or variation in the measurements of a predetermined number of resources in the measurement results of multiple resources is not higher than an eighth limit.

[0042] Optionally, the second predetermined condition in embodiments of the present application is: 1) In 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 limit; 2) In the measurement results of the plurality of resources, the number of the sixth resource is not lower than the sixth threshold, and the measurement result of the second resource is not higher than the tenth limit; 3) The highest measured value among the measurements of multiple resources is not higher than the 11th limit; 4) The lowest measured value among the measurements of multiple resources is not higher than the 12th limit; 5) In the measurement results of the plurality of resources, the number of the seventh resource is not lower than the seventh threshold, and the change amount or the variation amount of the measurement results of the seventh resource is not lower than the thirteenth limit; 6) In the measurement results of the plurality of resources, the number of the eighth resource is not higher than the eighth threshold, and the change amount or the modification amount of the measurement results of the eighth resource is not higher than the fourteenth limit; 7) The maximum measured change or variation in the measurement results of multiple resources is not lower than the 15th limit; 8) The amount of change or modification in the measurements of a predetermined number of resources in the measurement results of multiple resources is not lower than the 16th limit.

[0043] Alternatively, the thresholds (e.g., the first to eighth thresholds) in the embodiments of the present application may be determined by a method set by a network-side device or a method specified by a protocol. For example, the first threshold may be a number corresponding to all resources set by a network-side device, or a number corresponding to a portion of all resources, or a number corresponding to all resources specified by a protocol, and other thresholds may be determined by a similar method.

[0044] As is clear from the above description, the measurement results, the amount of change in the measurement results, and the amount of change in the measurement results under the first and second predetermined conditions are compared with corresponding limits within one predetermined time period or within a predetermined number of periods.

[0045] In another alternative embodiment of the embodiment of the present application, the method of performing measurement adjustment on the measurement of the first operation when a predetermined condition is met, described in step S204 of the embodiment of the present application, further includes: a step S204-21 of switching to relaxed measurement of the first operation of the first resource when the measurement result of the first resource among the plurality of resources satisfies a third predetermined condition, or switching to normal measurement of the first operation of the first resource when the measurement of the first resource among the plurality of resources satisfies a fourth predetermined condition; Or, a step S204-21 of switching to measurement enhancement of the first operation of the first resource when the measurement result of the first resource among the plurality of resources satisfies a fourth predetermined condition, or switching to normal measurement of the first operation of the first resource when the measurement of the first resource among the plurality of resources satisfies a third predetermined condition; Or, The method may include a step S204-21 of switching to measurement relaxation of the first operation of the first resource when a measurement result of a first resource among the plurality of resources satisfies a third predetermined condition, or switching to measurement enhancement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies a fourth predetermined condition; Here, the third predetermined condition is different from the fourth predetermined condition, and the third predetermined condition and / or the fourth predetermined condition is determined based on a result of measuring a first resource among the plurality of resources.

[0046] As can be seen from the above, steps S204-21 to S204-23 can be used to adjust the measurement of the first operation of the first resource according to the measurement result of the first resource among the plurality of resources when different predetermined conditions are met. Furthermore, the measurement adjustment corresponding to the same predetermined condition may be different in different applications. For example, when the first predetermined condition is met, the first operation of the first resource may be switched to measurement relaxation or measurement enhancement. The specific switching result may be set correspondingly according to actual conditions. The first resource may be any one of the plurality of resources, for example, one of multiple beams, one of multiple bandwidth portions (BWP), etc., and is not limited by this application. That is, each resource may determine whether to adjust its current measurement according to its own measurement result.

[0047] Optionally, the third predetermined condition in embodiments of the present application is: 1) The measurement result of the first resource is not lower than the 17th limit; 2) the measurement result of the first resource or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not lower than the 18th limit; 3) a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not lower than the 19th limit.

[0048] Optionally, the fourth predetermined condition in an embodiment of the present application is: 1) The measurement result of the first resource is not higher than the 20th limit; 2) the measurement result or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not higher than the 21st limit; 3) a predetermined number of measurement samples of the first resource within a first predetermined time period or within a predetermined number of periods is not higher than the 22nd limit.

[0049] As is necessary to explain, under the above third and fourth predetermined conditions, for a measurement result or a predetermined number of measurement samples of a first resource within a predetermined number of periods, none of the measurement results or a predetermined number of measurement samples of the first resource within a predetermined number of consecutive periods is lower than the 18th limit or higher than the 21st limit, or for a measurement result or a predetermined number of measurement samples of a first resource within a first predetermined time period, none of the consecutive measurement results or a predetermined number of measurement samples within the first predetermined time period is lower than the 19th limit or higher than the 22nd limit.

[0050] In another alternative embodiment of the present application, the method of adjusting the measurement of the first operation when a predetermined condition is met, as described in step S204, further comprises: a step S204-31 of switching to relaxed measurement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a fifth predetermined condition, or switching to normal measurement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a sixth predetermined condition; Or, a step S204-32 of switching to measurement enhancement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a sixth predetermined condition, or switching to normal measurement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a fifth predetermined condition; Or, The method may include step S204-33 of switching to measurement relaxation of the first operation of the first resource when the state of a first resource among the plurality of resources satisfies a fifth predetermined condition, or switching to normal enhancement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a sixth predetermined condition.

[0051] As can be seen from the above, steps S204-31 to S204-33 can be performed to adjust the measurement of the first operation of the first resource when different predetermined conditions are met according to the state of the first resource among the multiple resources. In addition, the measurement adjustment corresponding to the same predetermined condition may be different in different applications, for example, when the first predetermined condition is met, the measurement of the first operation of the first resource may be relaxed or strengthened, and the specific switching results may be set correspondingly according to the actual situation.

[0052] Optionally, the fifth predetermined condition in an embodiment of the present application is: 1) a first resource is to perform a second operation; 2) The first resource returns from the carrier aggregation state to the single cell state; 3) The first resource returns from the dual connectivity state to the single cell group state; 4) a secondary cell corresponding to the first resource performs a second operation; 5) a secondary cell group corresponding to the first resource is subjected to a second operation; Here, performing the second operation includes at least one of releasing, deactivating, suspending, and dormancy.

[0053] Specifically, the fifth predetermined condition may be at least one of the following in a specific application: 1) Associated resources (e.g., Scell, or SCG, or SpCell, or RS, or BWP, or beam, or Carrier, or TRP, etc.) are released, deactivated, suspended, or paused. 2) A Pcell in carrier aggregation CA returns to a single-cell state while performing a first operation (RLM, BFD, or RRM), that is, the Scell ​​is released, suspended, deactivated, or dormant. 3) A Pcell or Pscell in a dual connectivity DC returns to a single cell group state while performing a first operation (RLM, BFD or RRM), i.e., an SCG or Pscell is suspended, released or deactivated, or an Scell ​​in an SCG is released, suspended, deactivated or dormant.

[0054] Optionally, the sixth predetermined condition in an embodiment of the present application is: 1) a first resource performs a third operation; 2) The first resource is switched from a single cell state to a carrier aggregation state; 3) The first resource is switched from a single cell group state to a dual connectivity state; 4) a secondary cell corresponding to the first resource performs a third operation; 5) a secondary cell group corresponding to the first resource is subjected to a third operation; Here, performing the third operation includes at least one of configuring, activating, resuming, waking up, or setting to non-dormancy.

[0055] Specifically, the sixth predetermined condition is, for example, at least one of the following: 1) Related resources (e.g., Scell, or SCG, or SpCell, or RS, or BWP, or beam, or Carrier, or TRP, etc.) are configured, activated, resumed, woken up, or set to non-dormancy. 2) The single cell state is set to the carrier aggregation CA state, i.e., the Scell ​​is configured, activated, resumed, woken up, or set to non-dormancy. 3) In a single cell group state and configured to a dual connectivity DC or DC with CA state, i.e., an SCG or PScell ​​is configured, activated, resumed, woken up, or configured to (non-dormancy), or an SCG Scell ​​is configured, activated, resumed, woken up, or configured to (non-dormancy).

[0056] In an embodiment of the present application, the measurement adjustment for the first operation of the first resource includes at least one of the following 1) to 3). 1) If the number of first resources is 1, switch to measurement relaxation for the first operation of the first resource, for example, switch to measurement relaxation of RLM / BFD / RRM on the corresponding resource, for example, switch to measurement relaxation of RLM / BDF (registered trademark) / RRM on the corresponding beam, BWP, CC, Carrier, CG, RS or TRP. 2) When the number of the first resources is plural, switch to measurement relaxation for the first operation of some of the plural first resources. For example, switch to measurement relaxation for RLM / BDF (registered trademark) / RRM on a corresponding part of beams, a part of BWPs, a part of CCs (e.g., Pcell or Scell), a part of Carriers, PScells within a CG, Pcells, Scells, a part of RSs or a part of TRPs. 3) When the number of the first resources is plural, switch to measurement relaxation for the first operation of all of the plural first resources.

[0057] Here, the measurement relaxation of RLM, BFD and RRM includes at least one of the following 1) to 7). 1) Measurement relaxation of the first operation in the time domain. Here, the measurement relaxation of the first operation in the time domain may be, in specific application cases, an extension of the measurement period of the RLM / BFD measurement of L1 (layer 1) or a decrease in the number of measurement samples, or it may be such that the measurement period P1 is used for normal measurement, the measurement period P2 is used for measurement relaxation, and the measurement period P3 is used for measurement enhancement, where P3 < P1 < P2, or it may be an extension of the indication interval of the RLM / BFD measurement of L2 / L3. 2) Do not perform the measurement of the first operation within the first specified time, or reduce the measurement of the first operation. 3) Do not give the upper layer indication of the first operation within the second specified time, or reduce the upper layer indication of the first operation. 4) Do not perform the measurement of the first operation on the resources that meet the conditions corresponding to the measurement relaxation, and further, for example, do not perform the RLM / BFD measurement within one time period or within a predetermined number of periods, or do not resume the measurement until returning to normal measurement or measurement enhancement. 5) Measure fewer resources. 6) Measurement relaxation of the first operation in the spatial domain, that is, a decrease in the beams measured by the first operation, or relaxation of the corresponding time domain / frequency domain measurement in the beams. 7) Reduce the number of reference signals measured by RLM / BFD.

[0058] When the measurement adjustment in the examples of the present application is a measurement enhancement, it includes at least one of the following 1) to 7). 1) Measurement enhancement of the first operation on the time domain. 2) Increment the measurement of the first operation within the first specified time. 3) Increasing the upper layer instruction for the first operation within the second specified time. 4) Increasing the measurement of the first operation on resources that meet the conditions corresponding to the measurement increase. 5) Increase the resources being measured. 6) Measurement enhancement of the first operation on the spatial domain, i.e., increasing the number of beams measured in the first operation, or enhancing the corresponding time domain / frequency domain measurements on the beams. 7) Increase the number of reference signals measured in the first operation.

[0059] As should be clear, any decrease in measured relaxation or increase in measured enhancement is relative to a normal measurement, which is a measurement made in response to a measurement request as defined by an existing protocol.

[0060] In an optional embodiment of the embodiment of the present application, the method in the embodiment of the present application may further include the following step S208 or step S210.

[0061] In step S208, the terminal sends request information to the network side device, including a measurement adjustment option for the first operation desired (or requested, or preferred) by the terminal and at least one of a first operation measurement adjustment related parameter desired by the terminal, where the measurement adjustment option includes at least one of measurement relaxation, measurement enhancement, and normal measurement.

[0062] In step S210, the terminal receives an instruction message from the network side equipment, and the instruction message is used to indicate at least one of whether the present cell supports measurement adjustment for the first operation, adjustment-related parameters of the measurement adjustment, the type of the present cell, and whether the present cell allows measurement adjustment by the terminal.

[0063] In an alternative embodiment of the present application, the instruction message may be included in a SIB message or in a pre-instruction message, where the pre-instruction message may be at least one of a wake-up signaling (WUS), a go-to-sleep (GTS), and a downlink control information (DCI), where the DCI includes a scheduling DCI or other newly designed DCI. Here, the adjustment-related parameters of the measurement adjustment include at least one of the following: the value of the associated timer and / or the maximum value of the counter after adjustment; the counter limit for starting the measurement adjustment; the counter limit for ending the measurement adjustment; the timer or predetermined time limit for starting the measurement adjustment; the counter or predetermined time limit for ending the measurement adjustment; and the measurement setting after the measurement adjustment.

[0064] The settings related to the measurement adjustment determination may be as follows. 1) Per-UE configuration: That is, the network side device configures measurement adjustment decision-related parameters independently for each terminal. 2) Per-cell setting: That is, the measurement adjustment judgment related parameters set by the network side device within one cell range are consistent, and the terminal applies the related parameters within the cell range. 3) Per-frequency / carrier / band / BWP setting, i.e., the measurement adjustment judgment related parameters set by the network side device within one frequency / carrier / band / BWP range are consistent. 4) Per-UE per-frequency / carrier / band / BWP setting, i.e., the measurement adjustment judgment related parameters set by the network side device within one frequency / carrier / band / BWP range for each terminal are consistent. 5) Per-Beam setting, i.e., applied to the measurement corresponding to the beam.

[0065] As is necessary to explain, the resource measurement adjustment method provided in the embodiments of the present application may be executed by a resource measurement adjustment device, or may be executed by a control module for executing the resource measurement adjustment method in the resource measurement adjustment device. In the embodiments of the present application, the resource measurement adjustment device provided in the embodiments of the present application will be described by taking the resource measurement adjustment device executing the resource measurement adjustment method as an example.

[0066] The embodiment of the present application further provides a resource measurement adjustment device. FIG. 3 is a schematic diagram of the configuration of the resource measurement adjustment device of the embodiment of the present application. As shown in FIG. 3, the device includes: an execution module 32 used to execute a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM); an adjustment module 34 used to perform a measurement adjustment on the measurement of the first operation when a predetermined condition is met; the predetermined condition is determined by at least one of a measurement result of the plurality of resources and a state of the plurality of resources; The measurement adjustment includes at least one of measurement relaxation, measurement enhancement, and normal measurement.

[0067] According to the device of the embodiment of the present application, it is possible to adjust measurement relaxation, measurement augmentation and normal measurement for RLM, BFD or RRM measurements based on the measurement results of multiple resources and / or the status of multiple resources. That is, it is possible to determine the currently required measurement based on the measurement results of multiple resources and / or the status of multiple resources. That is, it is possible to adjust from measurement relaxation to measurement augmentation, or from measurement augmentation to measurement relaxation, etc., and measurement relaxation and augmentation are realized according to the measurement results and resource status of the terminal resources. In the prior art, RLM, BFD or RRM is performed in accordance with the rules and requirements specified in the protocol, which solves the problems of wasting terminal power consumption and degrading system performance.

[0068] In an alternative embodiment of the present application, the adjustment module 34 further comprises: a first switching unit used to switch to relaxed measurement of the first operation when the measurement results of the plurality of resources satisfy a first predetermined condition, or to switch to normal measurement of the first operation when the measurement results of the plurality of resources satisfy a second predetermined condition; Or, a second switching unit, used for switching to measurement enhancement in the first operation when the measurement results of the plurality of resources satisfy a second predetermined condition, or for switching to normal measurement in the first operation when the measurement results of the plurality of resources satisfy the first predetermined condition; Or, and a third switching unit, which is used to switch to measurement relaxation of the first operation when the measurement results of the plurality of resources satisfy a first predetermined condition, or to switch to measurement enhancement of the first operation when the measurement results of the plurality of resources satisfy a second predetermined condition; The first predetermined condition is different from the second predetermined condition, and the first predetermined condition and / or the second predetermined condition is determined based on the results of measuring a plurality of resources.

[0069] Optionally, the first predetermined condition is: 1) the number of a first resource in the measurement results of the plurality of resources is not lower than a first threshold, and the measurement result of the first resource is not lower than a first limit; 2) the number of second resources in the measurement results of the plurality of resources is not higher than a second threshold, and the measurement results of the second resources are not higher than a second limit; 3) The highest measured value among the measurements of multiple resources is not lower than the third limit; 4) The lowest measured value among the measurements of multiple resources is not lower than the fourth limit; 5) The number of the third resource in the measurement results of the plurality of resources is not lower than the third threshold, and the change amount or the modification amount of the measurement results of the third resource is not higher than the fifth limit; 6) the number of the fourth resource in the measurement results of the plurality of resources is not higher than the fourth threshold, and the change amount or the modification amount of the measurement results of the fourth resource is not lower than the sixth limit; 7) The maximum measured change or variation in the measurement results of multiple resources is not higher than the seventh limit; 8) The amount of change or variation in the measurements of a predetermined number of resources in the measurement results of multiple resources is not higher than an eighth limit.

[0070] Optionally, the second predetermined condition is: 1) In 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 limit; 2) In the measurement results of multiple resources, the number of the sixth resource is not lower than the sixth threshold, and the measurement results of the sixth resource are not higher than the tenth limit; 3) The highest measured value among the measurements of multiple resources is not higher than the 11th limit; 4) The lowest measured value among the measurements of multiple resources is not higher than the 12th limit; 5) In the measurement results of the plurality of resources, the number of the seventh resource is not lower than the seventh threshold, and the change amount or the variation amount of the measurement results of the seventh resource is not lower than the thirteenth limit; 6) In the measurement results of the plurality of resources, the number of the eighth resource is not higher than the eighth threshold, and the change amount or the modification amount of the measurement results of the eighth resource is not higher than the fourteenth limit; 7) The maximum measured change or variation in the measurement results of multiple resources is not lower than the 15th limit; 8) The amount of change or modification in the measurements of a predetermined number of resources in the measurement results of multiple resources is not lower than the 16th limit.

[0071] Optionally, the threshold value in the embodiment of the present application is determined by at least one of a setting by a network side device and a specification by a protocol.

[0072] Optionally, embodiments of the present application compare the measurement results, the amount of change in the measurement results, and the amount of change in the measurement results within a predetermined time period or within a predetermined number of periods with corresponding limits.

[0073] In an alternative embodiment of the present application, the adjustment module 34 further comprises: a fourth switching unit, used for switching to relaxed measurement of the first operation of the first resource when the measurement result of the first resource among the plurality of resources satisfies a third predetermined condition, or for switching to normal measurement of the first operation of the first resource when the measurement of the first resource among the plurality of resources satisfies a fourth predetermined condition; Or, a fifth switching unit, used for switching to enhanced measurement of the first operation of the first resource when the measurement result of the first resource among the plurality of resources satisfies a fourth predetermined condition, or for switching to normal measurement of the first operation of the first resource when the measurement of the first resource among the plurality of resources satisfies a third predetermined condition; Or, and a sixth switching unit, which is used to switch to measurement relaxation of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies a third predetermined condition, or to switch to measurement enhancement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies a fourth predetermined condition; The third predetermined condition is different from the fourth predetermined condition, and the third predetermined condition and / or the fourth predetermined condition is determined based on a result of measuring a first resource among the plurality of resources.

[0074] Optionally, the third predetermined condition in embodiments of the present application is: 1) The measurement result of the first resource is not lower than the 17th limit; 2) the measurement result of the first resource or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not lower than the 18th limit; 3) none of a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is lower than the 19th limit.

[0075] Optionally, the fourth predetermined condition in an embodiment of the present application is: 1) The measurement result of the first resource is not higher than the 20th limit; 2) the measurement result or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not higher than the 21st limit; 3) none of a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is higher than the 22nd limit.

[0076] Optionally, for measurement results or a predetermined number of measurement samples of a first resource within a predetermined number of periods, none of the measurement results or a predetermined number of measurement samples of the first resource within a predetermined number of consecutive periods are lower than the 18th limit or higher than the 21st limit, or for measurement results or a predetermined number of measurement samples of a first resource within a first predetermined time period, none of the consecutive measurement results or a predetermined number of measurement samples within the first predetermined time period are lower than the 19th limit or higher than the 22nd limit.

[0077] In an alternative embodiment of the present application, the adjustment module 34 further comprises: a seventh switching unit, used for switching to relaxed measurement of the first operation of the first resource when the state of a first resource among the plurality of resources satisfies a fifth predetermined condition, or for switching to normal measurement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a sixth predetermined condition; Or, an eighth switching unit, used for switching to enhanced measurement of a first operation of the first resource when the status of a first resource among the plurality of resources satisfies a sixth predetermined condition, or for switching to normal measurement of a first operation of the first resource when the status of the first resource among the plurality of resources satisfies a fifth predetermined condition; Or, The device may further include a ninth switching unit used to switch to measurement relaxation of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a fifth predetermined condition, or to switch to normal enhancement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies a sixth predetermined condition.

[0078] Optionally, the fifth predetermined condition in an embodiment of the present application is: 1) The first resource returns from the carrier aggregation state to the single cell state; 2) The first resource returns from the dual connectivity state to the single cell group state; 3) a secondary cell corresponding to the first resource performs a second operation; 4) a secondary cell group corresponding to the first resource performs a second operation; 5) the first resource is subjected to a second operation; Performing the second operation includes at least one of releasing, deactivating, suspending, and pausing.

[0079] Optionally, the sixth predetermined condition in an embodiment of the present application is: 1) a first resource performs a third operation; 2) The first resource is switched from a single cell state to a carrier aggregation state; 3) The first resource is switched from a single cell group state to a dual connectivity state; 4) a secondary cell corresponding to the first resource performs a third operation; 5) a secondary cell group corresponding to the first resource is subjected to a third operation; Performing the third operation includes at least one of configuring, activating, restoring, and waking up.

[0080] Optionally, in an embodiment of the present application, switching to the measurement adjustment of the first operation of the first resource may include: If the number of the first resources is 1, switching to measurement adjustment for the first operation of the first resource; When the number of first resources is plural, switching to measurement adjustment for the first operation of some of the first resources among the plural first resources; When the number of first resources is plural, the method includes at least one of switching to measurement adjustment for the first operation of all of the first resources among the plurality of first resources.

[0081] Optionally, when the measurement adjustment is the measurement relaxation, 1) Measurement relaxation of the first operation on the time domain; 2) Not performing the measurement of the first operation within the first specified time or reducing the measurement of the first operation; 3) not issuing an upper layer instruction for the first operation within the second specified time, or reducing the upper layer instruction for the first operation; 4) not performing measurements of the first operation on resources that satisfy the conditions corresponding to the measurement relaxation; 5) Reducing the resources being measured; 6) Measurement relaxation of the first operation on the spatial domain, i.e., reduction of the beams measured in the first operation, or relaxation of the corresponding time domain / frequency domain measurements on the beams; 7) reducing the number of reference signals measured in the first operation; When measurement adjustment is measurement enhancement, 1) Measurement enhancement of the first operation on the time domain, 2) increasing the measurement of the first operation within a first specified time; 3) increasing the upper layer indication of the first operation within a second specified time; 4) increasing the measurement of the first operation on resources that meet the conditions corresponding to the measurement increase; 5) Increasing the measured resources; 6) Measurement enhancement of the first operation on the spatial domain, i.e., increasing the number of beams measured in the first operation, or enhancing the corresponding time domain / frequency domain measurements on the beams; 7) increasing the number of reference signals measured in the first operation.

[0082] Optionally, the measurement result of the resource in the embodiment of the present application includes at least one of a value of the measured performance of the resource, a variation of the measured performance of the resource, and a change in the measured performance of the resource.

[0083] The change in the measured performance of the resource is one of the difference between the currently measured performance value of the resource and the previously measured performance value, and the change in the measured performance of the resource within the first predetermined time period; The change amount of the resource measurement performance is one of a difference between a value of the current measurement performance of the resource and a value of the first reference measurement performance, and a difference between a value of the beam measurement performance within a second predetermined time period and a value of the second reference measurement performance; The first reference measurement performance value or the second reference measurement performance value is one of a value set by the network side, a value specified by the protocol, a reference measurement performance value that has already been used, a previous measurement performance value, or a weighted average result of a reference measurement performance value that has already been used and a previous measurement performance value.

[0084] The measurement performance includes measuring 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-and-noise ratio SINR; The reference signal includes 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.

[0085] Optionally, the device in the embodiment of the present application further comprises: A sending module used to send request information to a network side device, the request information including at least one of a measurement adjustment option for a first operation desired by the terminal and a measurement adjustment related parameter for the first operation desired by the terminal, wherein the measurement adjustment option includes at least one of measurement relaxation, measurement enhancement, and normal measurement; or The present invention may further comprise a receiving module used to receive an indication message from a network side device, the indication message being used to indicate at least one of whether the present cell supports measurement adjustment for the first operation, an adjustment-related parameter of the measurement adjustment, a type of the present cell, and whether the present cell allows measurement adjustment by a terminal.

[0086] The adjustment-related parameters of the measurement adjustment include at least one of the following: the value of the associated timer and / or maximum value of the counter after the adjustment; the counter limit at which the measurement adjustment starts; the counter limit at which the measurement adjustment ends; the timer or predetermined time limit at which the measurement adjustment starts; the counter or predetermined time limit at which the measurement adjustment ends; and the measurement setting after the measurement adjustment.

[0087] Optionally, the resource in the embodiment of the present application includes at least one of a beam, a bandwidth portion BWP, a component carrier CC, a carrier, a cell, a cell group CG, a reference signal RS, and a transmission / reception point TRP. The resource measurement adjustment device in the embodiments of the present application may be a device, a component, an integrated circuit, or a chip in a terminal. The device may be a portable terminal or a non-portable terminal. For example, the portable terminal may include, but is not limited to, the types of terminals 11 listed above, and the non-portable terminal may be, for example, a server, a network attached storage (NAS), a personal computer (PC), a television (TV), an automated teller machine (ATM), a kiosk, etc., and is not specifically limited in the embodiments of the present application.

[0088] The resource measurement adjustment device in the embodiment of the present application may be a device having an operating system, which may be an Android operating system, an iOS operating system, or other possible operating systems, and is not specifically limited in the embodiment of the present application.

[0089] The resource measurement adjustment device provided in the embodiment of the present application can implement each step implemented in the method embodiment of Figure 2 and achieve similar technical effects, so detailed description will be omitted here to avoid repetition.

[0090] Optionally, as shown in Fig. 4, an embodiment of the present application further provides a communication device 400 including a processor 401, a memory 402, and a program or command stored in the memory 402 and executable by the processor 401, for example, when the communication device 400 is a terminal, the program or command is executed by the processor 401 to implement each step of the embodiment of the resource measurement adjustment method and achieve similar technical effects; when the communication device 400 is a network-side device, the program or command is executed by the processor 401 to implement each step of the embodiment of the resource measurement adjustment method and achieve similar technical effects, and detailed description thereof will be omitted here to avoid repetition.

[0091] FIG. 5 is a schematic diagram of the hardware configuration of a terminal that realizes an embodiment of the present application. The terminal 500 includes elements such as, but not limited to, a radio frequency unit 501, a network module 502, an audio output unit 503, an input unit 504, a sensor 505, a display unit 506, a user input unit 507, an interface unit 508, a memory 509 and a processor 510.

[0092] Those skilled in the art will understand that the terminal 500 may further include a power source (e.g., a battery) for powering each component, and the power source may be logically connected to the processor 510 through a power management system, thereby realizing functions such as charge / discharge management and power consumption management. The structure of the terminal shown in Figure 5 is not intended to limit the terminal, and the terminal may include more or fewer components than those shown in Figure 5, or a combination of some components, or a different component configuration, and detailed descriptions thereof will be omitted here.

[0093] It should be understood that in an embodiment of the present application, the input unit 504 may include a graphics processing unit (GPU) 5041 for processing image data of static or video images acquired by an image acquisition device (e.g., a camera) in a video acquisition mode or an image acquisition mode, and a microphone 5042. The display unit 506 may include a display panel 5061, which may be arranged 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 two parts: a touch detection device and a touch controller. The other input devices 5072 may include, but are not limited to, a physical keyboard, function buttons (e.g., volume control buttons, switch buttons, etc.), a trackball, a mouse, and a control lever, and detailed descriptions thereof will be omitted here.

[0094] In the embodiment of the present application, the high frequency unit 501 receives downlink data from the network side device, processes the data in the processor 510, and transmits uplink data to the network side device. Typically, the high frequency unit 501 includes, but is not limited to, an antenna, at least one amplifier, a receiver / transmitter, a coupler, a low-noise amplifier, a duplexer, etc.

[0095] The memory 509 can be used to store software programs or commands and various data. The memory 509 may primarily include a program or command storage area and a data storage area, which can store an operating system, an application or command required for at least one function (e.g., audio playback function, image playback function, etc.). The memory 509 may also include high-speed random access memory or nonvolatile 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, the memory 509 may include at least one magnetic disk storage device, flash memory device, or other nonvolatile solid-state storage device.

[0096] The processor 510 may include one or more processing units, and may selectively integrate an application processor that mainly processes an operating system, a user interface, and applications or commands, etc., and a modem processor that mainly processes wireless communications, such as a baseband processor, in the processor 510. It is understood that the modem processor may not be integrated into the processor 510.

[0097] Here, the processor 510 is used to perform a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM).

[0098] The processor 510 is further adapted to make a measurement adjustment to the measurement of the first operation when a predetermined condition is met; The predetermined condition is determined by at least one of a measurement result of the plurality of resources and a state of the plurality of resources, and the measurement adjustment includes at least one of a measurement relaxation, a measurement enhancement, and a normal measurement.

[0099] According to the terminal of the embodiments of the present application, it is possible to adjust the RLM, BFD or RRM measurements to measurement relaxation, measurement augmentation and normal measurement based on the measurement results of multiple resources and / or the status of multiple resources, that is, it is possible to determine the currently required measurement based on the measurement results of multiple resources and / or the status of multiple resources, that is, it is possible to adjust from measurement relaxation to measurement augmentation, or from measurement augmentation to measurement relaxation, etc., and measurement relaxation and augmentation are realized according to the measurement results and resource status of the terminal resources, and the execution of RLM, BFD or RRM in the prior art is performed in accordance with the rules and requirements specified in the protocol, thereby solving the problems of wasting terminal power consumption and degrading system performance.

[0100] The embodiments of the present application further provide a readable storage medium, which may be volatile or non-volatile, and stores a program or command, which, when executed by a processor, realizes each step of the embodiment of the resource measurement adjustment method and achieves similar technical effects. In order to avoid repetition, detailed description will be omitted here. The processor may be the processor in the terminal described in the above embodiment. The readable storage medium may include a computer readable storage medium such as a computer read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.

[0101] The embodiments of the present application further provide a chip including a processor and a communication interface, the communication interface and the processor being coupled together, and the processor executing a program or command of a network side device to realize each step of the embodiment of the resource measurement adjustment method, and achieving similar technical effects. In order to avoid repetition, detailed descriptions are omitted here.

[0102] An embodiment of the present application further provides a computer program product stored in a non-transitory storage medium, which can be executed by at least one processor to realize each step of the embodiment of the resource measurement adjustment method and achieve similar technical effects, and detailed description thereof will be omitted here to avoid repetition.

[0103] It should be understood that the chip described in the embodiments of the present application may also be referred to as a system chip, a chip system, a system on a chip, or the like.

[0104] It should be noted that, as used herein, the terms "comprise," "consist," or any other variation thereof, are intended to include a non-exclusive inclusion, whereby a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not expressly specified or elements inherent in such process, method, article, or apparatus. Unless otherwise specified, elements qualified by the phrase "comprise a" do not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element. It should also 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 include performing functions substantially simultaneously or in the reverse order, depending on such functionality. For example, the described method may be performed in a different order than described, and various steps may be added, omitted, or combined. Furthermore, features described with reference to one example may be combined in other examples.

[0105] From the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be realized in the form of a combination of software and a necessary common hardware platform, and of course, they can also be realized by hardware, but in many cases the former is a more preferred embodiment. Based on this view, the technical solutions of the present application can be substantially embodied in the form of a software product, and the computer software product is stored in a storage medium (e.g., ROM / RAM, magnetic disk, optical disk) and includes a plurality of instructions that cause a terminal (which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to execute the methods described in each embodiment of the present application.

[0106] Although the examples of the present application have been described above with reference to the drawings, the present application is not limited to the above-mentioned specific embodiments, which are merely illustrative and not limiting. Based on the suggestions of the present application, many forms that a person skilled in the art can make without departing from the spirit of the present application and the scope of protection of the claims are all within the scope of protection of the present application.

Claims

1. A method for coordinating resource measurements performed by a terminal, comprising: performing a plurality of first operations on a plurality of resources, the first operations including at least one of radio link monitoring (RLM), beam failure detection (BFD), and radio resource management (RRM); and performing a measurement adjustment on the measurement of the first operation when a predetermined condition is met; the predetermined condition is determined by at least one of measurement results of the plurality of resources and states of the plurality of resources; the measurement adjustment includes at least one of measurement relaxation, measurement enhancement, and normal measurement; A resource measurement adjustment method, wherein the resource includes at least one of a beam, a bandwidth portion (BWP), a component carrier (CC), a carrier (Carrier), a cell (cell), a cell group (CG), a reference signal (RS), and a transmission / reception point (TRP).

2. The step of performing a measurement adjustment on the measurement of the first operation when a predetermined condition is satisfied includes: switching to relaxed measurement of the first operation when measurement results of the plurality of resources satisfy a first predetermined condition, or switching to normal measurement of the first operation when measurement results of the plurality of resources satisfy a second predetermined condition; Or, switching to measurement enhancement of the first operation when measurement results of the plurality of resources satisfy the second predetermined condition, or switching to normal measurement of the first operation when measurement results of the plurality of resources satisfy the first predetermined condition; Or, a step of switching to measurement relaxation of the first operation when measurement results of the plurality of resources satisfy the first predetermined condition, or switching to measurement enhancement of the first operation when measurement results of the plurality of resources satisfy the second predetermined condition, The method of claim 1 , wherein the first predetermined condition is different from the second predetermined condition, and the first predetermined condition and / or the second predetermined condition is determined by measuring a plurality of the resources.

3. The first predetermined condition is the number of a first resource in the measurement results of the plurality of resources is not lower than a first threshold, and the measurement results of the first resource are not lower than a first limit; the number of second resources in the measurement results of the plurality of resources is not higher than a second threshold, and the measurement results of the second resources are not higher than a second limit; the highest measurement value among the measurement results of the plurality of resources is not lower than a third limit; the lowest measurement value among the measurement results of the plurality of resources is not lower than a fourth limit; the number of third resources in the measurement results of the plurality of resources is not lower than a third threshold, and the amount of change or variation in the measurement results of the third resources is not higher than a fifth limit; the number of fourth resources in the measurement results of the plurality of resources is not higher than a fourth threshold, and the amount of change or variation in the measurement results of the fourth resources is not lower than a sixth limit; the maximum measured change or variation in the measurements of the plurality of resources is not higher than a seventh limit; a change or modification amount of measurements of a predetermined number of resources in the measurement results of the plurality of resources is not higher than an eighth limit; Or, The second predetermined condition is the number of a fifth resource in the measurement results of the plurality of resources is not higher than a fifth threshold, and the measurement result of the fifth resource is not lower than a ninth limit; the number of sixth resources in the measurement results of the plurality of resources is not lower than a sixth threshold, and the measurement results of the sixth resources are not higher than a tenth limit; the highest measurement value among the measurement results of the plurality of resources is not higher than an eleventh limit; the lowest measurement value among the plurality of measurements of the resources is not higher than a twelfth limit; the number of seventh resources in the measurement results of the plurality of resources is not lower than a seventh threshold, and the amount of change or variation in the measurement results of the seventh resources is not lower than a thirteenth limit; the number of an eighth resource in the measurement results of the plurality of resources is not higher than an eighth threshold, and the amount of change or modification in the measurement results of the eighth resource is not higher than a fourteenth limit; the maximum measured change or magnitude of variation in the measurements of the plurality of resources is not less than a fifteenth limit; 3. The method of claim 2, comprising at least one of: a change or modification in measurements of a predetermined number of resources in the plurality of said resource measurements is not below a sixteenth limit.

4. The step of performing a measurement adjustment on the measurement of the first operation when a predetermined condition is satisfied includes: switching to relaxed measurement of the first operation of the first resource when a measurement result of a first resource among the plurality of resources satisfies a third predetermined condition, or switching to normal measurement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies a fourth predetermined condition; Or, switching to measurement enhancement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies the fourth predetermined condition, or switching to normal measurement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies the third predetermined condition; Or, a step of switching to measurement relaxation of the first operation of the first resource when a measurement result of a first resource among the plurality of resources satisfies the third predetermined condition, or switching to measurement enhancement of the first operation of the first resource when a measurement result of the first resource among the plurality of resources satisfies the fourth predetermined condition, 2. The method of claim 1, wherein the third predetermined condition is different from the fourth predetermined condition, and the third predetermined condition and / or the fourth predetermined condition is determined based on a result of measuring a first resource among the plurality of resources.

5. The third predetermined condition is the measurement result of the first resource is not lower than a seventeenth limit; the measurement result of the first resource or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not lower than the 18th limit; a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not below a nineteenth limit; Or, The fourth predetermined condition is the measurement result of the first resource is not higher than a twentieth limit; the measurement result or a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not higher than the 21st limit; a predetermined number of measurement samples of the first resource within a first predetermined time period or a predetermined number of periods is not higher than a 22nd limit; where: For the measurement results or the predetermined number of measurement samples of the first resource within the predetermined number of periods, none of the measurement results or the predetermined number of measurement samples of the first resource within the predetermined number of consecutive periods is lower than the 18th limit or higher than the 21st limit; or 5. The method of claim 4, wherein for a measurement result or a predetermined number of measurement samples of the first resource within the first predetermined time period, no consecutive measurement result or predetermined number of measurement samples within the first predetermined time period is lower than the 19th limit or higher than the 22nd limit.

6. The step of performing a measurement adjustment on the measurement of the first operation when a predetermined condition is satisfied includes: switching to relaxed measurement of the first operation of the first resource when a state of a first resource among the plurality of resources satisfies a fifth predetermined condition, or switching to normal measurement of the first operation of the first resource when a state of the first resource among the plurality of resources satisfies a sixth predetermined condition; Or, switching to enhanced measurement of the first operation of the first resource when the state of a first resource among the plurality of resources satisfies the sixth predetermined condition, or switching to normal measurement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies the fifth predetermined condition; Or, 2. The method of claim 1, further comprising: switching to measurement relaxation of the first operation of the first resource when the state of a first resource among the plurality of resources satisfies the fifth predetermined condition; or switching to normal enhancement of the first operation of the first resource when the state of the first resource among the plurality of resources satisfies the sixth predetermined condition.

7. The fifth predetermined condition is The first resource returns from a carrier aggregation state to a single cell state; The first resource returns from a dual connectivity state to a single cell group state; a secondary cell corresponding to the first resource performs a second operation; A secondary cell group corresponding to the first resource performs a second operation; the first resource is performing a second operation; performing a second operation includes at least one of releasing, deactivating, suspending, and pausing; Or, The sixth predetermined condition is the first resource performs 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 performs a third operation; a secondary cell group corresponding to the first resource is performed a third operation; The method of claim 6 , wherein the performing a third operation includes at least one of configuring, activating, restoring, and waking up.

8. Switching to a measurement adjustment of a first operation of the first resource includes: If the number of the first resources is 1, switching to measurement adjustment for a first operation of the first resources; When the number of the first resources is plural, switching to measurement adjustment for the first operation of some of the first resources among the plurality of first resources; When the number of the first resources is plural, switching to measurement adjustment for the first operation of all of the first resources among the plurality of first resources; When the measurement adjustment is a measurement relaxation, Measured relaxation of said first operation on the time domain; not measuring the first operation within a first specified time or reducing the measurement of the first operation; not issuing an upper layer instruction for the first operation within a second specified time period, or reducing the upper layer instruction for the first operation; not performing measurements of the first operation on resources that satisfy conditions corresponding to the measurement relaxation; Reducing the resources being measured; Measured relaxation of said first operation on the spatial domain; reducing the number of reference signals measured in the first operation; Or, When the measurement adjustment is the measurement enhancement, Measurement enhancement of said first operation on the time domain; Incrementing the measurement of the first operation within a first specified time period; Increasing the upper layer indication of the first operation within a second specified time period; increasing the measurement of the first operation on resources that meet conditions corresponding to the measurement increase; Increasing the resources being measured; Measurement enhancement of said first operation on the spatial domain; 7. The method of claim 6, further comprising at least one of: increasing the number of reference signals measured in said first operation.

9. The method of claim 1 , wherein the resource measurement results include at least one of a value of the measured performance of the resource, a variation of the measured performance of the resource, and an amount of change in the measured performance of the resource.

10. The change in the measured performance of the resource is one of: a difference between a currently measured performance value of the resource and a previously measured performance value; and a change in the measured performance of the resource within a first predetermined time period. The change amount of the resource measurement performance is one of a difference between a value of a current measurement performance of the resource and a value of a first reference measurement performance, and a difference between a beam measurement performance within a second predetermined time period and a value of a second reference measurement performance; The first reference measurement performance value or the second reference measurement performance value is one of a value set by a network side, a value specified by a protocol, a reference measurement performance value that has already been used, a previous measurement performance value, and a weighted average result of the reference measurement performance value that has already been used and the previous measurement performance value; Or, The measurement performance includes measuring 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-and-noise ratio SINR; The method of claim 9, wherein the reference signal includes 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).

11. A step of transmitting request information to a network side device, the request information including at least one of a measurement adjustment option for a first operation desired by the terminal and a measurement adjustment-related parameter for a first operation desired by the terminal, wherein the measurement adjustment option includes at least one of measurement relaxation, measurement enhancement, and normal measurement; or 2. The method of claim 1, further comprising: receiving an indication message from a network side device, the indication message being used to indicate at least one of whether a current cell supports measurement adjustment for the first operation, an adjustment-related parameter of the measurement adjustment, a type of the current cell, and whether the current cell allows measurement adjustment by the terminal.

12. The adjustment-related parameters of the measurement adjustment are:

12. The method of claim 11, comprising adjusting at least one of the associated timer value and / or counter maximum value, the counter limit for starting the measurement adjustment, the counter limit for terminating the measurement adjustment, the timer or predetermined time limit for starting the measurement adjustment, the counter or predetermined time limit for terminating the measurement adjustment, and the measurement setting after the measurement adjustment.

13. A terminal comprising a processor, a memory, and a program or command stored in the memory and executable by the processor, the program or command implementing the steps of the resource measurement adjustment method according to any one of claims 1 to 12 when executed by the processor.

14. A readable storage medium storing a program or commands, which, when executed by a processor, implements the steps of the method for adjusting resource measurements according to any one of claims 1 to 12.