A measurement and measurement configuration method, terminal, network device
By determining measurement relaxation conditions and executing RLM power-saving measurement behavior at the terminal, as well as configuring network devices for measurement, the power consumption problem caused by redundant measurement resources in wireless link monitoring and beam failure detection at the terminal is solved, achieving more efficient measurement and energy management.
Patent Information
- Application Number
- CN202111342018.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-12
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2041-11-12
AI Technical Summary
In existing technologies, when terminals perform wireless link monitoring and beam failure detection, there is a power consumption problem caused by redundant measurement resources, especially when measurement resources overlap.
The terminal determines whether the measurement relaxation conditions are met. If they are met, it performs RLM power-saving measurement behavior, including wireless link monitoring of one or more overlapping measurement resources. The network device sends the measurement configuration to the terminal so that the terminal can determine whether to perform RLM power-saving measurement.
Without compromising measurement robustness, the measurement burden and power consumption of the terminal are reduced, and the energy usage of the terminal is optimized.
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Figure CN116133026B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of wireless communication, and in particular to a measurement and measurement configuration method, a terminal, and a network device. BACKGROUND
[0002] Currently, a network configures a terminal with measurement resources for radio link monitoring (RLM) and measurement resources for beam failure detection (BFD) respectively. For a certain measurement resource, the measurement resource can be used only for RLM, or only for BFD, or can be used for both RLM and BFD. The terminal performs corresponding measurements according to the configured measurement resources. However, when measurements are performed in the current manner, there is redundant measurement power consumption of the terminal in a specific scenario. SUMMARY
[0003] To solve the above technical problems, embodiments of the present application provide a measurement and measurement configuration method, a terminal, a network device, a chip, and a computer readable storage medium.
[0004] The measurement method provided by the embodiments of the present application comprises:
[0005] The terminal determines whether a measurement relaxation condition is met; the measurement relaxation condition at least comprises that the number of RLM measurement resources is greater than 1, and there is an overlapping measurement resource therein.
[0006] If the terminal determines that the measurement relaxation condition is met, the terminal performs an RLM power saving measurement behavior; if the terminal determines that the measurement relaxation condition is not met, the terminal performs a regular measurement behavior; wherein the performing of the RLM power saving measurement behavior comprises that the terminal performs radio link monitoring on one or more of the overlapping measurement resources.
[0007] The measurement configuration method provided by the embodiments of the present application comprises:
[0008] The network device sends a measurement configuration to the terminal, and the measurement configuration is used by the terminal to determine whether to perform RLM power saving measurement.
[0009] The measurement device provided by the embodiments of the present application is applied to a terminal, and the device comprises:
[0010] A determination unit is configured to determine whether a measurement relaxation condition is met; the measurement relaxation condition at least comprises that the number of RLM measurement resources is greater than 1, and there is an overlapping measurement resource therein.
[0011] The measurement unit is configured to perform an RLM power saving measurement behavior if it is determined that the measurement relaxation condition is met, and perform a regular measurement behavior if it is determined that the measurement relaxation condition is not met, wherein the performing of the RLM power saving measurement behavior comprises performing radio link monitoring on one or more of the overlapped measurement resources by the terminal.
[0012] The measurement configuration apparatus provided by the embodiments of the present application is applied to a network device, and comprises:
[0013] The sending unit is configured to send a measurement configuration to a terminal, the measurement configuration being used by the terminal to determine whether to perform RLM power saving measurement.
[0014] The terminal provided by the embodiments of the present application comprises a processor and a memory, the memory being configured to store a computer program, and the processor being configured to call and run the computer program stored in the memory to perform any one of the measurement methods.
[0015] The network device provided by the embodiments of the present application comprises a processor and a memory, the memory being configured to store a computer program, and the processor being configured to call and run the computer program stored in the memory to perform any one of the measurement configuration methods.
[0016] The chip provided by the embodiments of the present application comprises a processor, which is configured to call and run a computer program from a memory, so that a device installed with the chip performs any one of the methods.
[0017] The chip provided by the embodiments of the present application comprises a processor, which is configured to call and run a computer program from a memory, so that a device installed with the chip performs any one of the methods.
[0018] In the technical solutions of the embodiments of the present application, a scheme of configuring a measurement configuration by a network device and a scheme of measurement by a terminal are provided, so that the network device can more effectively configure measurement resources, and the terminal can perform measurement with less measurement processing and power consumption. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 is a schematic diagram of an application scenario of the embodiments of the present application;
[0020] Figure 2 is a flowchart of the measurement method provided by the embodiments of the present application;
[0021] Figure 3 is a flowchart of the measurement configuration method provided by the embodiments of the present application;
[0022] Figure 4 is a structural composition diagram of the measurement apparatus provided by the embodiments of the present application;
[0023] Figure 5 is a structural component diagram of a measurement configuration device provided by an embodiment of the present application;
[0024] Figure 6 is a schematic structural diagram of a communication device provided by an embodiment of the present application;
[0025] Figure 7 is a schematic structural diagram of a chip according to an embodiment of the present application. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the present application will be described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the scope of protection of the present application.
[0027] Figure 1 is a schematic diagram of an application scenario of an embodiment of the present application.
[0028] As shown in Figure 1 , the communication system 100 can include a terminal 110 and a network device 120. The network device 120 can communicate with the terminal 110 through an air interface. The terminal 110 and the network device 120 support multi-service transmission.
[0029] It should be understood that the embodiments of the present application are only exemplarily described with respect to the communication system 100, but the embodiments of the present application are not limited thereto. That is, the technical solutions of the embodiments of the present application can be applied to various communication systems, such as: a Long Term Evolution (LTE) system, an LTE Time Division Duplex (TDD), a Universal Mobile Telecommunication System (UMTS), an Internet of Things (IoT) system, a Narrow Band Internet of Things (NB-IoT) system, an enhanced Machine-Type Communications (eMTC) system, a 5G communication system (also referred to as a New Radio (NR) communication system), or a future communication system, etc.
[0030] In Figure 1In the illustrated communication system 100, the network device 120 can be an access network device that communicates with the terminal 110. The access network device can provide communication coverage for a particular geographic area, and can communicate with the terminal 110 (e.g., a UE) located in the coverage area.
[0031] The network device 120 can be an evolved node B (eNB or eNodeB) in a long term evolution (LTE) system, or a next generation radio access network (NG RAN) device, or a base station (gNB) in a NR system, or a radio controller in a cloud radio access network (CRAN), or a relay station, an access point, a vehicle-mounted device, a wearable device, a hub, a switch, a bridge, a router, or a network device in a future evolved public land mobile network (PLMN) and the like.
[0032] The terminal 110 can be any terminal, including but not limited to a terminal that uses a wired or wireless connection with the network device 120 or other terminals.
[0033] For example, the terminal 110 can refer to an access terminal, a user equipment (UE), a subscriber unit, a subscriber station, a mobile station, a mobile, a remote station, a remote terminal, a mobile device, a user terminal, a terminal, a wireless communication device, a user agent, or a user device. The access terminal can be a cellular phone, a cordless phone, a session initiation protocol (SIP) phone, an IoT device, a satellite handset, a wireless local loop (WLL) station, a personal digital assistant (PDA), a handheld device with wireless communication function, a computing device, or other processing device connected to a wireless modem, a vehicle-mounted device, a wearable device, a terminal in a 5G network, or a terminal in a future evolved network, and the like.
[0034] The terminal 110 can be used for device to device (D2D) communication.
[0035] The wireless communication system 100 can further include a core network device 130 in communication with the base station, which can be a 5G core network (5GC) device, e.g., an Access and Mobility Management Function (AMF), e.g., an Authentication Server Function (AUSF), e.g., a User Plane Function (UPF), e.g., a Session Management Function (SMF). Alternatively, the core network device 130 can also be an Evolved Packet Core (EPC) device of an LTE network, e.g., a Session Management Function + Core Packet Gateway (SMF + PGW-C) device. It should be understood that the SMF + PGW-C can implement the functions of both the SMF and the PGW-C. During the evolution of the network, the above-mentioned core network device can also be called by other names, or new network entities can be formed by dividing the functions of the core network, which are not limited by the embodiments of the present application.
[0036] The various functional units in the communication system 100 can also establish connections through a next generation (NG) interface to communicate with each other.
[0037] For example, the terminal establishes an air interface connection with the access network device through the NR interface, which is used to transmit user plane data and control plane signaling; the terminal can establish a control plane signaling connection with the AMF through the NG interface 1 (N1 for short); the access network device, e.g., a next generation wireless access base station (gNB), can establish a user plane data connection with the UPF through the NG interface 3 (N3 for short); the access network device can establish a control plane signaling connection with the AMF through the NG interface 2 (N2 for short); the UPF can establish a control plane signaling connection with the SMF through the NG interface 4 (N4 for short); the UPF can interact with the data network to transmit user plane data through the NG interface 6 (N6 for short); the AMF can establish a control plane signaling connection with the SMF through the NG interface 11 (N11 for short); the SMF can establish a control plane signaling connection with the PCF through the NG interface 7 (N7 for short).
[0038] Figure 1Exemplarily, the wireless communication system 100 includes one base station, one core network device and two terminals. Optionally, the wireless communication system 100 can include a plurality of base station devices, and each base station can include other numbers of terminals within the coverage range of the base station. The embodiments of the present application do not limit this.
[0039] It should be noted that, Figure 1 The system to which the embodiments of the present application apply is only shown by way of example. Of course, the method shown by the embodiments of the present application can also be applied to other systems. In addition, the terms "system" and "network" are often used interchangeably in this paper. The term "and / or" in this paper is only used to describe the association relationship between the associated objects. It means that there can be three relationships, for example, A and / or B can represent the following three cases: A exists alone, A and B exist together, and B exists alone. In addition, the character " / " in this paper generally represents an "or" relationship between the associated objects. It should also be understood that the "indication" mentioned in the embodiments of the present application can be direct indication or indirect indication, or can represent an associated relationship. For example, A indicates B can mean that B can be obtained by A directly; or it can mean that A indirectly indicates B, for example, A indicates C, and B can be obtained by C; or it can mean that A and B have an associated relationship. It should also be understood that the "corresponding" mentioned in the embodiments of the present application can represent a direct correspondence or an indirect correspondence between the two, or can represent an associated relationship between the two, or can mean indication and being indicated, configuration and being configured, etc. It should also be understood that the "predefined" or "predefined rule" mentioned in the embodiments of the present application can be realized by pre-saving the corresponding code, table or other means that can be used to indicate related information in the device (for example, including terminals and network devices). The specific implementation manner of the present application is not limited. For example, the predefinition can mean the definition in the protocol. It should also be understood that the "protocol" in the embodiments of the present application can mean a standard protocol in the communication field, for example, it can include the LTE protocol, the NR protocol and the related protocol applied to the future communication system. The present application does not limit this.
[0040] In order to facilitate the understanding of the technical solutions of the embodiments of the present application, the related technologies of the embodiments of the present application are described as follows. The following related technologies can be combined with the technical solutions of the embodiments of the present application in any way, and all of them belong to the protection scope of the embodiments of the present application.
[0041] The base station configures measurement resources for BFD and RLM. Specifically, the base station can configure one or more reference signals (RS) through RadioLinkMonitoringConfig, and set their purpose to BF, RLF, or Both. Setting the purpose to BF indicates that the reference signal is configured as a measurement resource for BFD; setting the purpose to RLF indicates that the reference signal is configured as a measurement resource for RLM (referred to as RLM measurement resource); and setting the purpose to Both indicates that the reference signal is configured as a measurement resource for both BFD and RLM. The type of reference signal can be a synchronization signal block (SS / PBCH Block, SSB) or a Channel State Information-Reference Signal (CSI-RS). Furthermore, for each reference signal, the corresponding RLM-RS-ID is provided, such as SSB-Index or CSI-RS-Index.
[0042] RLM
[0043] For RLM, the base station configures a set of RSs for the terminal on each downlink (DL) bandwidth part (BWP) via RadioLinkMonitoringRS. For Link Recovery (LR) and RLM, the base station configures a maximum of N RSs for the terminal. LR-RLM A measurement resource, in N LR-RLM A maximum of N measurement resources can exist. RLM One measurement resource can be used for RLM, and a maximum of two measurement resources can be used for LR. The base station uses FailureDetectionResource to configure the measurement resources used for RLM.
[0044] N LR-RLM and N RLM With L max Related, among which, L max N is the maximum number of SSBs contained within a half-frame. As an example, N... LR-RLM and N RLM With L max The relationships are shown in Table 1 below.
[0045] [[ L max ]]> <![CDATA[N LR-RLM ]]> <![CDATA[N RLM ]]> 4 2 2 8 6 4 64 8 8
[0046] Table 1
[0047] The base station configures the threshold Q in RLM using rlmInSyncOutOfSyncThreshold in and threshold Q out where threshold Q in and threshold Q out is used for in-sync / out-of-sync determination. If the base station does not configure threshold Q in and threshold Q out , then threshold Q in and threshold Q out is 2% and 10% by default. In addition, threshold BLER in and threshold BLER out may also be used for in-sync / out-of-sync determination.
[0048] The terminal measures the configured RSs, and if the measurement results, Layer 1-Signal to Interference plus Noise Ratio (L1-SINR), on all RSs are less than threshold Q out , the terminal reports an out-of-sync (OOS) indication to the higher layer; if the measurement result L1-SINR on any RS is greater than threshold Q out , the terminal reports an in-sync (IS) indication to the higher layer.
[0049] BFD
[0050] For BFD, the base station can configure a set of resources q0 for BFD through FailureDetectionResource, where if the number of RS indexes in q0 exceeds two, the terminal selects two of them for BFD measurement.
[0051] Threshold Qout_LR for determining whether beam failure occurs corresponds to the 10% SINR preset value in rlmInSyncOutOfSyncThreshold.
[0052] The terminal measures the selected / configured RSs, and if the measurement results L1-SINR on all RSs are less than threshold Q out_LR , the terminal reports an OOS indication to the higher layer; if the measurement result L1-SINR on any RS is greater than threshold Q out_LR , the terminal reports an IS indication to the higher layer.
[0053] When the terminal monitors that the quality of all RSs is lower than Q out_LR , the terminal reports a beam failure indication to the higher layer.
[0054] In the above scheme, the network configures the terminal with measurement resources for RLM and measurement resources for BFD respectively. For a certain resource, the measurement resources can be used only for RLM, or only for BFD, or can be used for both RLM and BFD. The terminal performs RLM measurement and BFD measurement according to the measurement resources for RLM and the measurement resources for BFD configured by the network respectively, or, when the number of the measurement resources for BFD configured by the network is greater than 2, the terminal selects 2 resources for which BFD measurement needs to be performed by itself. However, when measurement is performed in the current manner, there is redundant power consumption of measurement of the terminal in a specific scenario, especially in the case where the measurement resources for RLM and the measurement resources for BFD configured for the terminal overlap. For example: the network configures the measurement resources for BFD as RS-1 and RS-2, and configures the measurement resources for RLM as RS-2 and RS-3; in the case of good channel quality, the measurement result L1-SINR of the reference signal is much greater than the threshold Q out out_LR At this time, the terminal needs to measure three resources and needs to calculate four measurement results; however, since the channel quality is good, the measurement results L1-SINR of RS-2 and RS-3 are both greater than the threshold Q out Since the terminal will not report an OOS indication as long as the measurement result L1-SINR of a certain RS is greater than the threshold Q out , the terminal can only measure RS-2 at this time to obtain the same reporting result, and the number of resources to be measured is reduced to two and the number of measurement results to be calculated is three, thereby saving the energy consumption of the terminal for measurement.
[0055] Therefore, the following technical scheme of the embodiments of the present application is proposed, which proposes a scheme of network configuration of measurement configuration and terminal measurement behavior, so that the network can more effectively configure measurement resources, and the terminal uses less measurement processing and power consumption for measurement. The technical scheme of the embodiments of the present application reduces the measurement burden of the terminal and reduces the power consumption overhead due to measurement without affecting the robustness of RLM / BFD measurement.
[0056] In order to facilitate understanding of the technical scheme of the embodiments of the present application, the technical scheme of the present application is described in detail below through specific embodiments. The above related technologies can be combined with the technical scheme of the embodiments of the present application as optional schemes, which all belong to the protection scope of the embodiments of the present application. The embodiments of the present application include at least part of the following contents.
[0057] Figure 2 is a flowchart of a measurement method provided by the embodiments of the present application, as shown in Figure 2 The measurement method includes the following steps:
[0058] Step 201: The terminal determines whether the measurement relaxation condition is satisfied; the measurement relaxation condition at least includes: the number of RLM measurement resources is greater than 1, and there are overlapping measurement resources.
[0059] Step 202: If the terminal determines that the measurement relaxation condition is satisfied, the terminal performs RLM power saving measurement behavior; if the terminal determines that the measurement relaxation condition is not satisfied, the terminal performs normal measurement behavior; wherein performing RLM power saving measurement behavior includes: the terminal performing radio link monitoring on one or more of the overlapping measurement resources.
[0060] In some optional embodiments, before the terminal determines whether the measurement relaxation condition is satisfied, the terminal sends an RLM power saving measurement request to the network side.
[0061] In some optional embodiments, the terminal determines whether the measurement relaxation condition is satisfied in the case that the terminal receives an RLM power saving measurement indication issued by the network.
[0062] In the embodiments of the present application, the measurement relaxation condition at least includes: the number of RLM measurement resources is greater than 1, and there are overlapping measurement resources. Wherein, the overlapping measurement resources refer to the measurement resources that are used for both RLM measurement and beam failure detection (BFD) measurement.
[0063] In some optional embodiments, the measurement relaxation condition further includes at least one of the following:
[0064] Threshold Q out_LR Greater than or equal to threshold Q out ;
[0065] Threshold BLER _out Greater than or equal to 10%;
[0066] Threshold BLER _out Greater than or equal to threshold BLER _out_LR ;
[0067] The measurement result SINR of the overlapping resources is greater than threshold Q out_LR ;
[0068] The measurement result BLER of the overlapping resources is less than threshold BLER _out ;
[0069] Wherein, the threshold Q out and the threshold BLER _out are used for the judgment of radio link synchronization / loss of synchronization, the threshold Q out_LR and the threshold BLER _out_LR are used for the judgment of radio link synchronization / loss of synchronization.
[0070] Further, optionally, the measurement relaxation condition can further comprise other conditions. The following describes them.
[0071] In some optional embodiments, if the terminal receives the RLM power saving measurement criterion and the detection window issued by the network, the measurement relaxation condition further comprises at least one of the following:
[0072] The terminal detects that there is an overlapping resource in the RLM measurement resource in the detection window;
[0073] The measurement result of the overlapping resource meets the RLM power saving measurement criterion.
[0074] In some optional embodiments, if the terminal receives the detection window issued by the network, the measurement relaxation condition further comprises at least one of the following:
[0075] The terminal detects that there is an overlapping resource in the RLM measurement resource in the detection window;
[0076] In the embodiments of the present application, if the above measurement relaxation condition is met, the terminal performs the RLM power saving measurement behavior. The following describes how the terminal performs the RLM power saving measurement behavior.
[0077] Scheme one
[0078] In some optional embodiments, when the number of overlapping resources is 1,
[0079] Option 1) When the terminal performs RLM measurement, only the overlapping resource is measured.
[0080] Scheme two
[0081] In some optional embodiments, when the number of overlapping resources is greater than 1,
[0082] Option 1) If the terminal receives the overlapping resource measurement priority and the number N of overlapping resource measurements issued by the network, when the terminal performs RLM measurement, the high-priority overlapping resource is measured based on the overlapping resource measurement priority, wherein the number of overlapping resource measurements is N, and N is a positive integer; or,
[0083] Option 2) If the terminal receives the overlapping resource measurement priority issued by the network, when the terminal performs RLM measurement, the high-priority overlapping resource is measured based on the overlapping resource measurement priority, wherein the number of overlapping resource measurements is 1; or,
[0084] Option 3) If the terminal receives the number N of overlapping resource measurement from the network, the terminal randomly selects N overlapping resources for measurement when performing RLM measurement, N is a positive integer; or,
[0085] Option 4) If the terminal does not receive the priority of overlapping resource measurement and the number of overlapping resource measurement from the network, the terminal randomly selects M overlapping resources for measurement when performing RLM measurement, M is less than the number of overlapping resources; or,
[0086] Option 5) If the terminal does not receive the priority of overlapping resource measurement and the number of overlapping resource measurement from the network, the terminal sequentially and cyclically measures the overlapping resources when performing RLM measurement.
[0087] Option 3) If the terminal receives the number N of overlapping resource measurement from the network, the terminal randomly selects N overlapping resources for measurement when performing RLM measurement, N is a positive integer; or,
[0088] In some optional embodiments, the terminal receives the RLM power saving measurement fallback criterion from the network,
[0089] Option 1) If the terminal finds that the measurement result of the overlapping resource in the BFD measurement process meets the RLM power saving measurement fallback criterion, the terminal exits the power saving measurement mode; or,
[0090] Option 2) If at least one of the following conditions is met, the terminal exits the power saving measurement mode: the terminal reports a beam failure indication (BFI) during measurement, the measurement result SINR of the overlapping resource is less than a threshold Q out_LR , and the measurement result BLER of the overlapping resource is greater than 10%.
[0091] Further, optionally, after the terminal exits the power saving measurement mode, the terminal determines whether to report an out-of-sync indication according to the threshold Q out at the next indication reporting time; or, the terminal does not report an out-of-sync indication at the next indication reporting time, and the terminal measures all RLM resources configured by the network and determines whether to report an out-of-sync indication based on the measurement result.
[0092] In some optional embodiments, before the terminal determines whether the measurement relaxation condition is met, the terminal receives a measurement configuration from the network, and the measurement configuration is used to configure at least one of the following:
[0093] RLM measurement resource;
[0094] measurement resource for BFD;
[0095] threshold Q out and / or threshold BLER _out ;
[0096] Threshold Q for serving beam synchronization / out-of-sync judgement out_LR and threshold BLER _out_LR ;
[0097] RLM power saving measurement indication, the RLM power saving measurement indication being used to instruct the terminal to perform RLM power saving measurement;
[0098] RLM power saving measurement criterion;
[0099] RLM power saving measurement backoff criterion;
[0100] Detection window;
[0101] Overlapping resource measurement priority;
[0102] Overlapping resource measurement quantity.
[0103] In some optional embodiments, the RLM power saving measurement criterion in the above scheme comprises at least one of the following: high link quality criterion, low mobility criterion; wherein,
[0104] The high link quality criterion is met if the measurement result SINR of the overlapping resource is greater than a first threshold value; or the high link quality criterion is met if the measurement result BLER of the overlapping resource is less than a second threshold value;
[0105] The low mobility criterion is met if the change of the measurement result SINR of the overlapping resource is less than a third threshold value; or the low mobility criterion is met if the change of the measurement result RSRP of the overlapping resource is less than a fourth threshold value.
[0106] In the above scheme, the first threshold value is configured by the network; or the first threshold value is determined based on a first change value and one of the following thresholds: threshold Q out , threshold Q out_LR , threshold Q in , threshold Q in_LR , wherein the first change value is configured by the network.
[0107] In the above scheme, the second threshold value is configured by the network; or the second threshold value is determined based on a third change value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the third change value is configured by the network.
[0108] In the above scheme, the third threshold value is configured by the network.
[0109] In the above scheme, the fourth threshold value is configured by the network.
[0110] As an example: the high link quality criterion includes: SINR value, Delta_SINR value, BLER value, Delta_BLER value, then:
[0111] 1) the high link quality criterion is met if the measurement result of the overlapping resource R_L1-SINR > SINR;
[0112] 2) the high link quality criterion is met if the measurement result of the overlapping resource R_L1-SINR > Delta_SINR + (Q out / Q out_LR / Q in / Q in_LR );
[0113] 3) the high link quality criterion is met if the measurement result of the overlapping resource R_BLER < BLER;
[0114] 4) the high link quality criterion is met if the measurement result of the overlapping resource R_BLER < (BLER out / BLER in ± Delta_BLER).
[0115] As an example: the low mobility criterion includes: RSRP change threshold, SINR change threshold, then:
[0116] 1) the low mobility criterion is met if the change of the measurement result of the overlapping resource L1-SINR < SINR change threshold;
[0117] 2) the low mobility criterion is met if the measurement result of the overlapping resource L1_RSRP < RSRP change threshold.
[0118] In some optional embodiments, the RLM power saving measurement fallback criterion in the above scheme includes at least one of: link quality fallback criterion, mobility fallback criterion; wherein,
[0119] the link quality fallback criterion is met if the measurement result of the overlapping resource SINR is less than a fifth threshold value; or the link quality fallback criterion is met if the measurement result of the overlapping resource BLER is greater than a sixth threshold value;
[0120] the mobility fallback criterion is met if the change of the measurement result of the overlapping resource SINR is greater than a seventh threshold value; or the mobility fallback criterion is met if the change of the measurement result of the overlapping resource RSRP is greater than an eighth threshold value.
[0121] In the above scheme, the fifth threshold value is configured by the network; or the fifth threshold value is determined based on a second change value and one of the following thresholds: threshold Q out , threshold Qout_LR , threshold Q in , threshold Q in_LR , wherein the second change value is configured by the network.
[0122] In the above solution, the sixth threshold value is configured by the network; or the sixth threshold value is determined based on the fourth change value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the fourth change value is configured by the network.
[0123] In the above solution, the seventh threshold value is configured by the network.
[0124] In the above solution, the eighth threshold value is configured by the network.
[0125] As an example: the link quality fallback criterion includes: SINR value, Delta_SINR value, BLER value, Delta_BLER value, then:
[0126] 1) If the measurement result R_L1-SINR of the overlapping resource is less than SINR, the link quality fallback criterion is met;
[0127] 2) If the measurement result R_L1-SINR of the overlapping resource is less than Delta_SINR + (Q out / Q out_LR / Q in / Q in_LR ), the link quality fallback criterion is met;
[0128] 3) If the measurement result R_BLER of the overlapping resource is greater than BLER, the link quality fallback criterion is met;
[0129] 4) If the measurement result R_BLER of the overlapping resource is greater than (BLER out / BLER in ± Delta_BLER), the link quality fallback criterion is met.
[0130] As an example: the mobility fallback criterion includes: RSRP change threshold, SINR change threshold, then:
[0131] 1) If the measurement result L1-SINR change of the overlapping resource is greater than the SINR change threshold, the mobility fallback criterion is met;
[0132] 2) If the measurement result L1_RSRP change of the overlapping resource is greater than the RSRP change threshold, the mobility fallback criterion is met.
[0133] In some optional implementations, the detection window in the above scheme can be determined by configuring a timer or a time length, for example. When the terminal meets the RLM power saving measurement criterion in the detection window, the terminal can perform RLM power saving measurement.
[0134] In some optional implementations, the overlapping resource measurement priority in the above scheme is used to indicate the resource to be measured preferentially. When there are multiple overlapping resources, the resource to be measured preferentially can be indicated by the overlapping resource measurement priority. For example, there are two overlapping resources, and the corresponding RadioLinkMonitoringRS-ID are RadioLinkMonitoringRS-ID-1 and RadioLinkMonitoringRS-ID-2. The measurement priority of RadioLinkMonitoringRS-ID-1 is higher than that of RadioLinkMonitoringRS-ID-2.
[0135] In some optional implementations, the overlapping resource measurement quantity in the above scheme is used to indicate the number of resources to be measured. When there are multiple overlapping resources, the number of resources to be measured can be indicated by the overlapping resource measurement quantity.
[0136] In the conventional RLM / BFD measurement, the terminal performs measurement according to the measurement resource configured by the base station / network. Since RLM / BFD are both measurements on the serving link / beam of the serving cell, the measurement resources often overlap / partially overlap in the resource configuration stage. In this configuration, if the channel quality is very good, the terminal will waste more than 50% of the RLM measurement power consumption, as well as the measurement result calculation power consumption and terminal CPU resources. The effect that can be achieved by the present scheme is that the terminal / network first verifies the channel quality and RLM / BFD resources to ensure that the terminal uses less power consumption to perform RLM measurement in a high robustness scenario, thereby achieving terminal energy saving and optimizing terminal performance.
[0137] Figure 3 FIG. 1 is a flowchart of a measurement configuration method provided by an embodiment of the present application. As shown in FIG. 1, the measurement configuration method comprises the following steps: Figure 3
[0138] Step 301: A network device sends a measurement configuration to a terminal, and the measurement configuration is used for the terminal to determine whether to perform RLM power saving measurement.
[0139] In some optional implementations, the network device is a base station.
[0140] In the embodiments of the present application, the network device sends a measurement configuration to the terminal, and the measurement configuration is used for the terminal to determine whether to perform RLM power saving measurement. The measurement configuration is used to configure at least one of the following:
[0141] RLM measurement resources;
[0142] measurement resources for BFD;
[0143] threshold Q for wireless link synchronization / loss of synchronization determination out and / or threshold BLER _out ;
[0144] threshold Q for service beam synchronization / loss of synchronization determination out_LR and threshold BLER _out_LR ;
[0145] RLM power saving measurement indication, which is used to instruct the terminal to perform RLM power saving measurement;
[0146] RLM power saving measurement criterion;
[0147] RLM power saving measurement fallback criterion;
[0148] detection window;
[0149] measurement priority of overlapping resources;
[0150] number of overlapping resource measurements.
[0151] In some optional embodiments, the RLM power saving measurement criterion in the above scheme includes at least one of the following: high link quality criterion, low mobility criterion; wherein,
[0152] the high link quality criterion is met if the measurement result SINR of the overlapping resources is greater than a first threshold value, or the high link quality criterion is met if the measurement result BLER of the overlapping resources is less than a second threshold value;
[0153] the low mobility criterion is met if the change of the measurement result SINR of the overlapping resources is less than a third threshold value, or the low mobility criterion is met if the change of the measurement result RSRP of the overlapping resources is less than a fourth threshold value.
[0154] In the above scheme, the first threshold value is configured by the network; or the first threshold value is determined based on a first change value and one of the following thresholds: threshold Q out , threshold Q out_LR , threshold Q in , threshold Q in_LR , wherein the first change value is configured by the network.
[0155] In the above solution, the second threshold value is configured by the network; or, the second threshold value is determined based on a third variation value and one of the following threshold values: a threshold BLER _out , a threshold BLER _in , wherein the third variation value is configured by the network.
[0156] In the above solution, the third threshold value is configured by the network.
[0157] In the above solution, the fourth threshold value is configured by the network.
[0158] As an example: the high link quality criterion includes: a SINR value, a Delta_SINR value, a BLER value, a Delta_BLER value, then:
[0159] 1) If the measurement result of the overlapping resource R_L1-SINR > SINR, the high link quality criterion is met;
[0160] 2) If the measurement result of the overlapping resource R_L1-SINR > Delta_SINR + (Q out / Q out_LR / Q in / Q in_LR ), the high link quality criterion is met;
[0161] 3) If the measurement result of the overlapping resource R_BLER < BLER, the high link quality criterion is met;
[0162] 4) If the measurement result of the overlapping resource R_BLER < (BLER out / BLER in ± Delta_BLER), the high link quality criterion is met.
[0163] As an example: the low mobility criterion includes: an RSRP variation threshold value, a SINR variation threshold value, then:
[0164] 1) If the variation of the measurement result of the overlapping resource L1-SINR < SINR variation threshold value, the low mobility criterion is met;
[0165] 2) If the measurement result of the overlapping resource L1_RSRP < RSRP variation threshold value, the low mobility criterion is met.
[0166] In some optional embodiments, the RLM power saving measurement fallback criterion in the above solution includes at least one of the following: a link quality fallback criterion, a mobility fallback criterion; wherein,
[0167] If the measurement result SINR of the overlapped resource is less than a fifth threshold value, the link quality fallback criterion is satisfied; or if the measurement result BLER of the overlapped resource is greater than a sixth threshold value, the link quality fallback criterion is satisfied.
[0168] If the change of the measurement result SINR of the overlapped resource is greater than a seventh threshold value, the mobility fallback criterion is satisfied; or if the change of the measurement result RSRP of the overlapped resource is greater than an eighth threshold value, the mobility fallback criterion is satisfied.
[0169] In the above scheme, the fifth threshold value is configured by the network; or the fifth threshold value is determined based on a second change value and one of the following thresholds: threshold Q out , threshold Q out_LR , threshold Q in , threshold Q in_LR , wherein the second change value is configured by the network.
[0170] In the above scheme, the sixth threshold value is configured by the network; or the sixth threshold value is determined based on a fourth change value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the fourth change value is configured by the network.
[0171] In the above scheme, the seventh threshold value is configured by the network.
[0172] In the above scheme, the eighth threshold value is configured by the network.
[0173] As an example: the link quality fallback criterion includes: SINR value, Delta_SINR value, BLER value, Delta_BLER value, then:
[0174] 1) If the measurement result R_L1-SINR of the overlapped resource is less than SINR, the link quality fallback criterion is satisfied;
[0175] 2) If the measurement result R_L1-SINR of the overlapped resource is less than Delta_SINR+(Q out / Q out_LR / Q in / Q in_LR ), the link quality fallback criterion is satisfied;
[0176] 3) If the measurement result R_BLER of the overlapped resource is greater than BLER, the link quality fallback criterion is satisfied;
[0177] 4) If the measurement result R_BLER of the overlapped resource is greater than (BLER out / BLER inIf the link quality backoff criterion is met, the UE performs the RLM / BFD measurement on the overlapping resources.
[0178] As an example: the mobility backoff criterion includes: RSRP change threshold, SINR change threshold, then:
[0179] 1) If the measurement result of the overlapping resources L1-SINR change > SINR change threshold, the mobility backoff criterion is met;
[0180] 2) If the measurement result of the overlapping resources L1_RSRP change > RSRP change threshold, the mobility backoff criterion is met.
[0181] In some optional embodiments, the detection window in the above scheme can be determined, for example, by configuring a timer or configuring a time length; when the terminal meets the RLM power saving measurement criterion in the detection window, the terminal can perform RLM power saving measurement.
[0182] In some optional embodiments, the overlapping resource measurement priority in the above scheme is used to indicate the resource to be measured preferentially. Here, when there are multiple overlapping resources, the resource to be measured preferentially can be indicated by the overlapping resource measurement priority. For example, there are two overlapping resources, and the corresponding RadioLinkMonitoringRS-ID is RadioLinkMonitoringRS-ID-1 and RadioLinkMonitoringRS-ID-2. The measurement priority of RadioLinkMonitoringRS-ID-1 is higher than that of RadioLinkMonitoringRS-ID-2 as indicated by the overlapping resource measurement priority.
[0183] In some optional embodiments, the overlapping resource measurement quantity in the above scheme is used to indicate the number of resources to be measured. Here, when there are multiple overlapping resources, the number of resources to be measured can be indicated by the overlapping resource measurement quantity.
[0184] The technical scheme of the embodiments of the present application proposes the special measurement behavior of the terminal when the network configures the RLM / BFD overlapping measurement resources and the corresponding network signaling, and proposes the protection mechanism for ensuring the robustness of the measurement result when the terminal performs the power saving RLM behavior, so that the terminal uses less measurement power consumption and result processing power consumption for measurement in the special scenario (good channel quality).
[0185] The technical scheme of the embodiments of the present application is exemplified below in combination with specific application examples.
[0186] Application Example One
[0187] 1) The terminal sends a RLM power saving measurement request to the network.
[0188] Optionally, the terminal can send a RLM power saving measurement request to the network according to its own power saving requirement.
[0189] 2) The network configures the terminal with at least one of the following:
[0190] Measurement resource for BFD;
[0191] RLM measurement resource;
[0192] Threshold for radio link synchronization / out-of-synchronization determination;
[0193] Threshold for serving beam synchronization / out-of-synchronization determination;
[0194] RLM power saving measurement indication, used to instruct the terminal to perform RLM power saving measurement;
[0195] RLM power saving measurement criterion;
[0196] RLM power saving measurement backoff criterion;
[0197] Detection window; the detection window can be determined by configuring a timer or configuring a time length; when the terminal meets the RLM power saving measurement criterion within the detection window, the terminal can perform RLM power saving measurement;
[0198] Overlapping resource measurement priority; when there are multiple overlapping resources, used to indicate the overlapping resource to be measured preferentially;
[0199] Overlapping resource measurement quantity; when there are multiple overlapping resources, used to indicate the quantity of overlapping resources to be measured.
[0200] In the above scheme, optionally, the RLM power saving measurement criterion includes at least one of the following: high link quality criterion, low mobility criterion; wherein,
[0201] High link quality criterion: for example, a SINR value, a Delta_SINR value, a BLER value, a Delta_BLER value, etc. Specifically, option 1) if the measurement result of the overlapping resource R_L1-SINR > SINR, the high link quality criterion is met; option 2) if the measurement result of the overlapping resource R_L1-SINR > Delta_SINR + (Q out / Q out_LR / Q in / Q in_LR ), the high link quality criterion is met; option 3) if the measurement result of the overlapping resource R_BLER < BLER, the high link quality criterion is met; option 4) if the measurement result of the overlapping resource R_BLER < (BLERout / BLER in ±Delta_BLER), the high link quality criterion is satisfied.
[0202] Low mobility criterion: e.g. a RSRP change threshold, a SINR change threshold, etc. Specifically, Option 1) if the change of the measurement result L1-SINR of the overlapping resources is smaller than the SINR change threshold, the low mobility criterion is satisfied; Option 2) if the measurement result L1_RSRP of the overlapping resources is smaller than the RSRP change threshold, the low mobility criterion is satisfied.
[0203] In the above scheme, optionally, the RLM power saving measurement fallback criterion comprises at least one of: a link quality fallback criterion, a mobility fallback criterion; wherein,
[0204] Link quality fallback criterion: e.g. a SINR value, a Delta_SINR value, a BLER value, a Delta_BLER value, etc. Specifically, Option 1) if the measurement result R_L1-SINR of the overlapping resources is smaller than the SINR, the link quality fallback criterion is satisfied; Option 2) if the measurement result R_L1-SINR of the overlapping resources is smaller than the Delta_SINR + (Q out / Q out_LR / Q in / Q in_LR ), the link quality fallback criterion is satisfied; Option 3) if the measurement result R_BLER of the overlapping resources is larger than the BLER, the link quality fallback criterion is satisfied; Option 4) if the measurement result R_BLER of the overlapping resources is larger than the BLER out / BLER in ±Delta_BLER), the link quality fallback criterion is satisfied.
[0205] Mobility fallback criterion: e.g. a RSRP change threshold, a SINR change threshold, etc. Specifically, Option 1) if the change of the measurement result L1-SINR of the overlapping resources is larger than the SINR change threshold, the mobility fallback criterion is satisfied; Option 2) if the change of the measurement result L1_RSRP of the overlapping resources is larger than the RSRP change threshold, the mobility fallback criterion is satisfied.
[0206] 3) The terminal performs RLM / BFD measurement.
[0207] 3.1, The terminal receives the RLM power saving measurement indication issued by the network side.
[0208] 3.2, The terminal verifies whether the RLM measurement resource and the measurement resource for BFD overlap, and whether the number of configured RLM measurement resources is greater than 1; and Q out_LR is greater than or equal to Q out , or BLER_out whether greater than or equal to 10%, or BLER _out whether greater than or equal to BLER _out_LR ; if there are overlapping resources, and the number of configured RLM measurement resources is greater than 1; and Q out_LR greater than or equal to Q out , or BLER _out greater than or equal to 10%, or BLER _out greater than or equal to BLER _out_LR , the terminal performs RLM power saving measurement behavior or determines whether to perform RLM power saving measurement behavior according to the RLM power saving measurement criterion and / or detection window; otherwise, the terminal performs a regular measurement behavior (i.e., normal measurement behavior).
[0209] In the above scheme, the terminal determines whether to perform RLM power saving measurement behavior according to the RLM power saving measurement criterion and / or detection window, which is achieved by the following ways:
[0210] Scheme A) if the network issues the RLM power saving measurement criterion and the detection window,
[0211] The terminal detects whether the measurement result of whether there are overlapping resources in the detection window meets the RLM power saving measurement criterion. If it meets, the terminal performs RLM power saving measurement behavior; if it does not meet, the terminal performs a regular measurement behavior (i.e., normal measurement behavior).
[0212] Scheme B) if the network issues the detection window,
[0213] If, within the detection window, the terminal obtains the measurement result L1-SINR of the overlapping resources that is higher than Q out_LR , or BLER is less than 10% / BLER _out , the terminal enters RLM power saving measurement, otherwise the terminal performs a regular measurement behavior (i.e., normal measurement behavior).
[0214] Scheme C) if the network does not issue the RLM power saving measurement criterion and the detection window,
[0215] If the terminal obtains the measurement result L1-SINR of the overlapping resources that is higher than Q out_LR , or BLER is less than 10% / BLER _out , the terminal enters RLM power saving measurement, otherwise the terminal performs a regular measurement behavior (i.e., normal measurement behavior).
[0216] 4) The terminal performs RLM power saving measurement.
[0217] Scheme I) when the number of overlapping resources is 1,
[0218] When the terminal performs RLM measurement, it only measures the overlapping resources.
[0219] Option II) When the number of overlapping resources is greater than 1,
[0220] Option 1) If the terminal receives the overlapping resource measurement priority and the number of overlapping resources N from the network, when performing RLM measurements, the terminal will prioritize measuring the higher-priority overlapping resources. The number of resources to be measured is N.
[0221] Option 2) If the terminal only receives the overlapping resource measurement priority from the network, when performing RLM measurements, the terminal will prioritize measuring the higher-priority overlapping resources. The number of resources measured is 1.
[0222] Option 3) If the terminal only receives the number N of overlapping resource measurements sent by the network, when the terminal performs RLM measurement, it randomly selects N overlapping resources for measurement.
[0223] Option 4) If the terminal does not receive the overlapping resource measurement priority and overlapping resource measurement quantity issued by the network, when the terminal performs RLM measurement, it randomly selects M overlapping resources for measurement, where M is less than or equal to the actual number of overlapping resources, or when the terminal performs RLM measurement, it sequentially measures overlapping resources.
[0224] 5) When the terminal receives the RLM power-saving measurement backoff criteria from the network side, if the terminal finds that the measurement result of the overlapping resource meets the RLM power-saving measurement backoff criteria during the BFD measurement process, for example, if the L1-SINR is lower than the threshold, then the terminal exits the power-saving measurement mode; otherwise, if the terminal does not receive the RLM power-saving measurement backoff criteria from the network, and if the terminal reports BFI during the measurement (or the L1-SINR of the overlapping resource is lower than Q), then the terminal exits the power-saving measurement mode. out_LR If the power saving measurement mode is exited (or if the BLER is greater than 10%), then the terminal exits the power saving measurement mode.
[0225] 6) After the terminal exits the power-saving measurement mode, option 1) at this time, the terminal will report the next indication based on Q. out Determine whether to report the out-of-synchronization indication; or, Option 2) the terminal does not report the out-of-synchronization indication at the next reporting indication time, the terminal measures all RLM resources configured on the network side, and then decides whether to report the out-of-synchronization indication.
[0226] Application Example 2
[0227] Network configuration:
[0228] 1. Measurement resources used for BFD: R1, R2;
[0229] 2. RLM measurement resources: R2, R3.
[0230] Terminal measurement:
[0231] 1. The terminal detects that the number of overlapping configured RLM / BFD measurement resources is 1, the number of configured RLM measurement resources is 2; and Q out_LR equals Q out ; the condition of RLM power saving measurement is met;
[0232] 2. When the L1-SINR of R2 is greater than Q out-LR , the terminal performs RLM measurement based on R2;
[0233] 3. When the L1-SINR of R2 is less than Q out-LR , the terminal exits the RLM power saving measurement mode, and the terminal reports OOS to the upper layer according to the measurement result of RLM.
[0234] Application Example Three
[0235] Network configuration:
[0236] 1. Measurement resources for BFD: R1, R2;
[0237] 2. RLM measurement resources: R2, R3;
[0238] 3. RLM power saving measurement indication;
[0239] 4. RLM power saving measurement criterion: high link quality criterion: Delta_SINR=2dB;
[0240] 5. RLM power saving measurement fallback criterion: link quality fallback criterion: Delta_SINR=1dB;
[0241] 6. Detection window: 1s.
[0242] Terminal measurement:
[0243] 1. The terminal receives the RLM power saving measurement indication issued by the network side;
[0244] 2. The terminal detects that the number of overlapping configured RLM / BFD measurement resources is 1, the number of configured RLM measurement resources is 2; and Q out_LR equals Q out ; the condition of RLM power saving measurement is met;
[0245] 3. The terminal receives the RLM power saving measurement criterion and the detection window issued by the network, and in the detection window, the measurement result of R2 meets the RLM power saving measurement criterion (R2_L1_SINR>Q out +Delta_SINR), and the terminal performs RLM power saving measurement;
[0246] 4、Terminal performs RLM power saving measurement, and the terminal receives the RLM power saving measurement fallback criteria issued by the network side, the terminal performs RLM measurement on resource R2; the terminal finds that the measurement result of the overlapping resource in the BFD measurement process meets the RLM power saving measurement fallback criteria, for example, R2_L1-SINR < Q out + Delta_SINR is lower than the threshold, the terminal exits the power saving measurement mode;
[0247] 5、After the terminal exits the power saving measurement mode, the terminal does not report OOS at the next indication moment, the terminal performs normal RLM measurement, the terminal measures all RLM resources (R2, R3) configured by the network side, according to R3_L1_SINR > R2_L1_SINR > Q out , the terminal does not report OOS.
[0248] Application Example Four
[0249] Terminal sends auxiliary information:
[0250] 1. The terminal sends an RLM power saving measurement request to the network.
[0251] Network configuration:
[0252] 1. Measurement resource for BFD: R1, R2;
[0253] 2. RLM measurement resource: R1, R2;
[0254] 3. RLM power saving measurement indication;
[0255] 4. Overlapping resource measurement priority: R1 is higher than R2.
[0256] Terminal measurement:
[0257] 1. The terminal receives the RLM power saving measurement indication issued by the network side;
[0258] 2. The terminal detects that the measurement resources of RLM / BFD have overlap, and the number of configured RLM measurement resources is greater than 1; and Q out_LR is greater than or equal to Q out ;
[0259] 3. The terminal obtains the measurement result L1-SINR of R1 and R2, which is higher than Q out_LR , the terminal enters RLM power saving measurement;
[0260] 4. The terminal performs RLM power saving measurement, and the terminal receives the overlapping resource measurement priority issued by the network, the terminal performs RLM measurement based on R1;
[0261] 5. The terminal reports BFI during the RLM power saving measurement, the terminal exits the power saving measurement mode, and at this time the terminal reports the out-of-sync indication at the next indication moment.
[0262] The technical scheme of the embodiment of the application provides a special measurement behavior of a terminal when there are overlapping measurement resources of RLM / BFD and corresponding network configuration signaling, and a protection mechanism (a link quality / mobility verification mechanism, a fallback mechanism, etc.) is designed to ensure the robustness of measurement results when the terminal performs a power saving RLM measurement behavior, so that the terminal uses less measurement power consumption and result processing power consumption to perform measurement in a scenario with good channel quality.
[0263] Figure 4 FIG. 1 is a structural composition schematic diagram of a measurement device provided by the embodiment of the application, which is applied to a terminal, as shown in the figure, the measurement device comprises: Figure 4
[0264] A determination unit 401 is configured to determine whether a measurement relaxation condition is met, wherein the measurement relaxation condition at least comprises that the number of RLM measurement resources is greater than 1 and there are overlapping measurement resources among the RLM measurement resources.
[0265] A measurement unit 402 is configured to perform an RLM power saving measurement behavior if it is determined that the measurement relaxation condition is met, and perform a regular measurement behavior if it is determined that the measurement relaxation condition is not met, wherein the performing of the RLM power saving measurement behavior comprises that the terminal performs wireless link monitoring on one or more of the overlapping measurement resources.
[0266] In some optional embodiments, the overlapping measurement resources refer to the measurement resources that are used for both RLM measurement and beam failure detection (BFD) measurement.
[0267] In some optional embodiments, the measurement relaxation condition further comprises at least one of the following:
[0268] The threshold Q out_LR is greater than or equal to the threshold Q out .
[0269] The threshold BLER _out is greater than or equal to 10%.
[0270] The threshold BLER _out is greater than or equal to the threshold BLER _out_LR .
[0271] The measurement result SINR of the overlapping resources is greater than the threshold Q out_LR .
[0272] The measurement result BLER of the overlapping resources is less than the threshold BLER _out .
[0273] wherein the threshold Q out and the threshold BLER _out for radio link synchronization / out-of-sync determination, the threshold Q out_LR and the threshold BLER _out_LR for serving beam synchronization / out-of-sync determination.
[0274] In some optional embodiments, if the terminal receives the RLM power saving measurement criterion and the detection window from the network, the measurement relaxation condition further comprises at least one of the following:
[0275] the terminal detects, in the detection window, that there are overlapping resources in the RLM measurement resources;
[0276] the measurement result of the overlapping resources meets the RLM power saving measurement criterion.
[0277] In some optional embodiments, if the terminal receives the detection window from the network, the measurement relaxation condition further comprises at least one of the following:
[0278] the terminal detects, in the detection window, that there are overlapping resources in the RLM measurement resources;
[0279] In some optional embodiments, the measurement unit 402 is configured to, when the number of overlapping resources is 1, perform measurement on only the overlapping resources when the terminal performs RLM measurement.
[0280] In some optional embodiments, the measurement unit 402 is configured to, when the number of overlapping resources is greater than 1, if the terminal receives the overlapping resource measurement priority and the number N of overlapping resource measurements from the network, perform measurement on the overlapping resources with high priority based on the overlapping resource measurement priority when the terminal performs RLM measurement, wherein the number of overlapping resource measurements is N, and N is a positive integer; or, if the terminal receives the overlapping resource measurement priority from the network, perform measurement on the overlapping resources with high priority based on the overlapping resource measurement priority when the terminal performs RLM measurement, wherein the number of overlapping resource measurements is 1; or, if the terminal receives the number N of overlapping resource measurements from the network, randomly select N overlapping resources for measurement when the terminal performs RLM measurement, N is a positive integer; or, if the terminal does not receive the overlapping resource measurement priority and the number of overlapping resource measurements from the network, randomly select M overlapping resources for measurement when the terminal performs RLM measurement, M is less than the number of overlapping resources; or, if the terminal does not receive the overlapping resource measurement priority and the number of overlapping resource measurements from the network, sequentially and circularly measure the overlapping resources when the terminal performs RLM measurement.
[0281] In some optional embodiments, the measurement unit 402 is further configured to, in a case that the terminal receives an RLM power saving measurement fallback criterion issued by the network, exit the power saving measurement mode if the terminal finds that the measurement result of the overlapping resource in the BFD measurement process meets the RLM power saving measurement fallback criterion; or, in a case that the terminal does not receive the RLM power saving measurement fallback criterion issued by the network, exit the power saving measurement mode if at least one of the following conditions is met: the terminal reports BFI during the measurement, the measurement result SINR of the overlapping resource is less than a threshold Q out_LR , and the measurement result BLER of the overlapping resource is greater than 10%.
[0282] In some optional embodiments, the measurement unit 402 is further configured to, after the terminal exits the power saving measurement mode, determine whether to report the out-of-sync indication at the next indication reporting time according to the threshold Q out , or not report the out-of-sync indication at the next indication reporting time, and measure all RLM resources configured by the network and determine whether to report the out-of-sync indication based on the measurement result.
[0283] In some optional embodiments, the apparatus further includes a sending unit 403 configured to send an RLM power saving measurement request to the network side.
[0284] In some optional embodiments, the determination unit 401 is configured to, in a case that the terminal receives an RLM power saving measurement indication issued by the network, determine whether the measurement relaxation condition is met.
[0285] In some optional embodiments, the apparatus further includes a receiving unit 404 configured to receive a measurement configuration issued by the network, the measurement configuration being used to configure at least one of the following:
[0286] an RLM measurement resource;
[0287] a measurement resource for BFD;
[0288] a threshold Q out and / or a threshold BLER _out for wireless link synchronization / out-of-sync determination;
[0289] a threshold Q out_LR and a threshold BLER _out_LR for service beam synchronization / out-of-sync determination;
[0290] an RLM power saving measurement indication, the RLM power saving measurement indication being used to instruct the terminal to perform RLM power saving measurement;
[0291] an RLM power saving measurement criterion;
[0292] RLM power saving measurement fallback criterion;
[0293] Detection window;
[0294] Overlapping resource measurement priority;
[0295] Overlapping resource measurement quantity.
[0296] In some optional embodiments, the RLM power saving measurement criterion comprises at least one of: a high link quality criterion, a low mobility criterion; wherein,
[0297] The high link quality criterion is satisfied if a measurement result SINR of the overlapping resource is greater than a first threshold value; or the high link quality criterion is satisfied if a measurement result BLER of the overlapping resource is less than a second threshold value;
[0298] The low mobility criterion is satisfied if a change of a measurement result SINR of the overlapping resource is less than a third threshold value; or the low mobility criterion is satisfied if a change of a measurement result RSRP of the overlapping resource is less than a fourth threshold value.
[0299] In some optional embodiments, the RLM power saving measurement fallback criterion comprises at least one of: a link quality fallback criterion, a mobility fallback criterion; wherein,
[0300] The link quality fallback criterion is satisfied if a measurement result SINR of the overlapping resource is less than a fifth threshold value; or the link quality fallback criterion is satisfied if a measurement result BLER of the overlapping resource is greater than a sixth threshold value;
[0301] The mobility fallback criterion is satisfied if a change of a measurement result SINR of the overlapping resource is greater than a seventh threshold value; or the mobility fallback criterion is satisfied if a change of a measurement result RSRP of the overlapping resource is greater than an eighth threshold value.
[0302] In some optional embodiments, the first threshold value is configured by a network; or the first threshold value is determined based on a first change value and one of the following thresholds: threshold Q out , threshold Q out_LR , threshold Q in , threshold Q in_LR , wherein the first change value is configured by the network.
[0303] In some optional embodiments, the second threshold value is configured by a network; or the second threshold value is determined based on a third change value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the third change value is configured by the network.
[0304] In some optional embodiments, the third threshold value and the fourth threshold value are configured by the network.
[0305] In some optional embodiments, the fifth threshold value is configured by the network, or the fifth threshold value is determined based on the second change value and one of the following threshold values: threshold value Q out , threshold value Q out_LR , threshold value Q in , threshold value Q in_LR , and threshold value Q _out , wherein the second change value is configured by the network.
[0306] In some optional embodiments, the sixth threshold value is configured by the network, or the sixth threshold value is determined based on the fourth change value and one of the following threshold values: threshold value BLER _in , threshold value BLER out , wherein the fourth change value is configured by the network.
[0307] In some optional embodiments, the seventh threshold value and the eighth threshold value are configured by the network.
[0308] Those skilled in the art should understand that, Figure 4 The implementation functions of each unit in the measurement device shown can be understood with reference to the related description of the foregoing method. Figure 4 The functions of each unit in the measurement device shown can be implemented by a program running on a processor, or by a specific logic circuit.
[0309] Figure 5 is a structural composition schematic diagram of a measurement configuration device provided by the embodiments of the present application, and is applied to a network device, such as a base station. Figure 5 As shown, the measurement configuration device comprises:
[0310] A sending unit 501 is configured to send a measurement configuration to a terminal, and the measurement configuration is used for the terminal to determine whether to perform RLM power saving measurement.
[0311] In some optional embodiments, the measurement configuration is used to configure at least one of the following:
[0312] RLM measurement resource;
[0313] measurement resource for BFD;
[0314] threshold value Q out and / or threshold value BLER _out for wireless link synchronization / step-out determination;
[0315] threshold value Q out_LR and threshold value BLER _out_LR for service beam synchronization / step-out determination;
[0316] an RLM power saving measurement indication for instructing the terminal to perform the RLM power saving measurement;
[0317] an RLM power saving measurement criterion;
[0318] an RLM power saving measurement fallback criterion;
[0319] a detection window;
[0320] an overlapping resource measurement priority;
[0321] an overlapping resource measurement quantity.
[0322] In some optional embodiments, the RLM power saving measurement criterion comprises at least one of: a high link quality criterion, a low mobility criterion; wherein,
[0323] the high link quality criterion is satisfied if a measurement result of the overlapping resource is greater than a first threshold value; or the high link quality criterion is satisfied if a measurement result of the overlapping resource is less than a second threshold value;
[0324] the low mobility criterion is satisfied if a change of a measurement result of the overlapping resource is less than a third threshold value; or the low mobility criterion is satisfied if a change of a measurement result of the overlapping resource is less than a fourth threshold value.
[0325] In some optional embodiments, the RLM power saving measurement fallback criterion comprises at least one of: a link quality fallback criterion, a mobility fallback criterion; wherein,
[0326] the link quality fallback criterion is satisfied if a measurement result of the overlapping resource is less than a fifth threshold value; or the link quality fallback criterion is satisfied if a measurement result of the overlapping resource is greater than a sixth threshold value;
[0327] the mobility fallback criterion is satisfied if a change of a measurement result of the overlapping resource is greater than a seventh threshold value; or the mobility fallback criterion is satisfied if a change of a measurement result of the overlapping resource is greater than an eighth threshold value.
[0328] In some optional embodiments, the first threshold value is configured by a network; or the first threshold value is determined based on a first change value and one of the following threshold values: a threshold value Q out , a threshold value Q out_LR , a threshold value Q in , a threshold value Q in_LR , wherein the first change value is configured by the network.
[0329] In some optional embodiments, the second threshold value is configured by the network; or the second threshold value is determined based on a third variation value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the third variation value is configured by the network.
[0330] In some optional embodiments, the third threshold value and the fourth threshold value are configured by the network.
[0331] In some optional embodiments, the fifth threshold value is configured by the network; or the fifth threshold value is determined based on a second variation value and one of the following thresholds: threshold Q out , threshold Q out_LR , threshold Q in , threshold Q in_LR , wherein the second variation value is configured by the network.
[0332] In some optional embodiments, the sixth threshold value is configured by the network; or the sixth threshold value is determined based on a fourth variation value and one of the following thresholds: threshold BLER _out , threshold BLER _in , wherein the fourth variation value is configured by the network.
[0333] In some optional embodiments, the seventh threshold value and the eighth threshold value are configured by the network.
[0334] Those skilled in the art should understand that Figure 5 The implementation functions of the units in the measurement configuration apparatus shown can be understood with reference to the related descriptions of the foregoing methods. Figure 5 The functions of the units in the measurement configuration apparatus shown can be implemented by programs running on the processor, or by specific logic circuits.
[0335] Figure 6 is a schematic structural diagram of a communication device 600 provided by an embodiment of the present application. The communication device can be a terminal or a network device, Figure 6 The communication device 600 shown includes a processor 610, which can call and run computer programs from a memory to implement the methods in the embodiments of the present application.
[0336] Optionally, as Figure 6 The communication device 600 can also include a memory 620, as shown. The processor 610 can call and run computer programs from the memory 620 to implement the methods in the embodiments of the present application.
[0337] The memory 620 can be a separate device independent of the processor 610, or it can be integrated into the processor 610.
[0338] Optionally, such as Figure 6 As shown, the communication device 600 may also include a transceiver 630, and the processor 610 may control the transceiver 630 to communicate with other devices. Specifically, it may send information or data to other devices or receive information or data sent by other devices.
[0339] The transceiver 630 may include a transmitter and a receiver. The transceiver 630 may further include antennas, and the number of antennas may be one or more.
[0340] Optionally, the communication device 600 may specifically be a network device in the embodiments of this application, and the communication device 600 may implement the corresponding processes implemented by the network device in the various methods of the embodiments of this application. For the sake of brevity, it will not be described in detail here.
[0341] Optionally, the communication device 600 may specifically be a mobile terminal / terminal in the embodiments of this application, and the communication device 600 may implement the corresponding processes implemented by the mobile terminal / terminal in the various methods of the embodiments of this application. For the sake of brevity, it will not be described in detail here.
[0342] Figure 7 This is a schematic structural diagram of the chip according to an embodiment of this application. Figure 7 The chip 700 shown includes a processor 710, which can call and run computer programs from memory to implement the methods in the embodiments of this application.
[0343] Optionally, such as Figure 7 As shown, chip 700 may further include memory 720. Processor 710 can retrieve and run computer programs from memory 720 to implement the methods described in this embodiment.
[0344] The memory 720 can be a separate device independent of the processor 710, or it can be integrated into the processor 710.
[0345] Optionally, the chip 700 may also include an input interface 730. The processor 710 can control the input interface 730 to communicate with other devices or chips; specifically, it can acquire information or data sent by other devices or chips.
[0346] Optionally, the chip 700 may also include an output interface 740. The processor 710 can control the output interface 740 to communicate with other devices or chips, specifically, to output information or data to other devices or chips.
[0347] Optionally, the chip can be applied to the network device in the embodiments of the present application, and the chip can implement the corresponding procedures implemented by the network device in the various methods of the embodiments of the present application. For brevity, details are not repeated here.
[0348] Optionally, the chip can be applied to the mobile terminal / terminal in the embodiments of the present application, and the chip can implement the corresponding procedures implemented by the mobile terminal / terminal in the various methods of the embodiments of the present application. For brevity, details are not repeated here.
[0349] It should be understood that the chip mentioned in the embodiments of the present application can also be referred to as a system-level chip, a system chip, a chip system, or a system-on-chip chip, etc.
[0350] It should be understood that the processor of the embodiments of the present application can be an integrated circuit chip with signal processing capability. In the implementation process, each step of the above method embodiments can be completed by integrated logic circuits of hardware in the processor or instructions in the form of software. The processor mentioned above can be a general-purpose processor, a digital signal processor (Digital Signal Processor, DSP), an application specific integrated circuit (Application Specific Integrated Circuit, ASIC), a ready programmable gate array (Field Programmable Gate Array, FPGA) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components. The disclosed methods, steps and logic block diagrams in the embodiments of the present application can be implemented or executed. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor. The steps of the method disclosed in conjunction with the embodiments of the present application can be directly embodied as a hardware code processor for execution, or a combination of hardware and software modules in the code processor for execution. The software module can be located in a random access memory, a flash memory, a read-only memory, a programmable read-only memory, or an electrically erasable programmable memory, a register, etc. The storage medium is mature in the art. The storage medium is located in the memory, and the processor reads the information in the memory, and combines the hardware to complete the steps of the above method.
[0351] It is to be understood that the memory in the embodiments of the present application can be a volatile memory or a nonvolatile memory, or can include both volatile and nonvolatile memory. Among them, the nonvolatile memory can be a read-only memory (Read-Only Memory, ROM), a programmable read-only memory (Programmable ROM, PROM), an erasable programmable read-only memory (Erasable PROM, EPROM), an electrically erasable programmable read-only memory (Electrically EPROM, EEPROM) or a flash memory. The volatile memory can be a random access memory (Random Access Memory, RAM) used as an external cache. By way of example, but not limitation, many forms of RAM are available, such as static random access memory (Static RAM, SRAM), dynamic random access memory (Dynamic RAM, DRAM), synchronous dynamic random access memory (Synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (Double Data Rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (Enhanced SDRAM, ESDRAM), synchronous link dynamic random access memory (Synchlink DRAM, SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DR RAM). It should be noted that the memory of the system and method described herein is intended to include, but not limited to, these and any other suitable types of memory.
[0352] It should be understood that the above-mentioned memory is exemplary but not limiting, for example, the memory in the embodiments of the present application can also be static random access memory (static RAM, SRAM), dynamic random access memory (dynamic RAM, DRAM), synchronous dynamic random access memory (synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (double data rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (enhanced SDRAM, ESDRAM), synchronous link dynamic random access memory (synch link DRAM, SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DR RAM) and the like. That is, the memory in the embodiments of the present application is intended to include, but not limited to, these and any other suitable types of memory.
[0353] The embodiment of the present application further provides a computer readable storage medium for storing the computer program.
[0354] Optionally, the computer readable storage medium can be applied to the network device in the embodiment of the present application, and the computer program makes the computer execute the corresponding process realized by the network device in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0355] Optionally, the computer readable storage medium can be applied to the mobile terminal / terminal in the embodiment of the present application, and the computer program makes the computer execute the corresponding process realized by the mobile terminal / terminal in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0356] The embodiment of the present application further provides a computer program product comprising computer program instructions.
[0357] Optionally, the computer program product can be applied to the network device in the embodiment of the present application, and the computer program instructions make the computer execute the corresponding process realized by the network device in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0358] Optionally, the computer program product can be applied to the mobile terminal / terminal in the embodiment of the present application, and the computer program instructions make the computer execute the corresponding process realized by the mobile terminal / terminal in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0359] The embodiment of the present application further provides a computer program.
[0360] Optionally, the computer program can be applied to the network device in the embodiment of the present application, and when the computer program runs on the computer, makes the computer execute the corresponding process realized by the network device in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0361] Optionally, the computer program can be applied to the mobile terminal / terminal in the embodiment of the present application, and when the computer program runs on the computer, makes the computer execute the corresponding process realized by the mobile terminal / terminal in the various methods of the embodiment of the present application. For the sake of brevity, the details are not described herein.
[0362] Those skilled in the art can realize that the units and algorithm steps of the examples described in combination with the embodiments disclosed herein can be realized in electronic hardware or in combination of computer software and electronic hardware. Whether the functions are realized in hardware or software mode depends on the specific application and design constraints of the technical solution. The skilled person can use different methods to realize the described functions for each specific application, but such implementation should not be considered beyond the scope of the present application.
[0363] Those skilled in the art can clearly understand that, for the convenience and brevity of the description, the specific working process of the system, device and unit described above can refer to the corresponding process in the foregoing method embodiments, which will not be repeated here.
[0364] In several embodiments provided in the present application, it should be understood that the disclosed system, device and method can be implemented in other ways. For example, the device embodiments described above are only schematic, for example, the division of the units is only a logical function division, and actual implementation can have another division manner, for example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the units shown or discussed can be indirect coupling or communication connection through some interface, device or unit, and can be electrical, mechanical or other forms.
[0365] The units described as separate components can or can not be physically separated, and the components shown as units can or can not be physical units, that is, they can be located in one place, or can be distributed on a plurality of network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the embodiment scheme.
[0366] In addition, each functional unit in each embodiment of the present application can be integrated in one processing unit, or each unit can exist physically, or two or more units can be integrated in one unit.
[0367] If the functions are realized in the form of software function units and sold or used as independent products, they can be stored in a computer readable storage medium. Based on this understanding, the technical solutions of the present application or the part of the present application which essentially contributes to the prior art or the part of the technical solutions can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a plurality of instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the method described in each embodiment of the present application. The foregoing storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and various program code storage media.
[0368] The above merely provides the specific implementation of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can easily think of the changes or replacements within the technical range disclosed by the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A method of measurement, characterized by, The method comprises: The terminal judges whether the measurement relaxation condition is met; the measurement relaxation condition at least comprises: the number of radio link monitoring (RLM) measurement resources is greater than 1, and there is an overlapping measurement resource; the overlapping measurement resource refers to the measurement resource used for RLM measurement and beam failure detection (BFD) measurement at the same time; If the terminal determines that the measurement relaxation condition is met, the terminal performs an RLM power saving measurement behavior; if the terminal determines that the measurement relaxation condition is not met, the terminal performs a regular measurement behavior; wherein the performing the RLM power saving measurement behavior comprises: the terminal performing radio link monitoring on one or more of the overlapping measurement resources.
2. The method of claim 1, wherein, The measurement relaxation condition further comprises at least one of the following: Threshold Q out_LR Greater than or equal to threshold Q out ; Threshold bler _out Greater than or equal to 10%; Threshold BLER _out Greater than or equal to threshold BLER _out_LR ; a measurement result of the overlapping measurement resource, SINR, is greater than a threshold, Q out_LR ; a measurement result of the overlapping measurement resource is less than a threshold BLER _out ; wherein the threshold Q out and the threshold BLER _out for wireless link synchronization / out-of-sync determination, the threshold Q out_LR and the threshold BLER _out_LR for serving beam synchronization / out-of-sync determination.
3. The method of claim 1, wherein, If the terminal receives the RLM power saving measurement criterion and the detection window issued by the network, the measurement relaxation condition further comprises at least one of the following: The terminal detects that there is an overlapping measurement resource in the RLM measurement resource in the detection window; The measurement result of the overlapping measurement resource meets the RLM power saving measurement criterion.
4. The method of claim 1, wherein, If the terminal receives the detection window issued by the network, the measurement relaxation condition further comprises at least one of the following: The terminal detects that there is an overlapping measurement resource in the RLM measurement resource in the detection window.
5. The method according to any one of claims 1 to 4, characterized in that, The terminal performs the RLM power saving measurement behavior, comprising: When the number of overlapping measurement resources is 1, 6. The method according to any one of claims 1 to 4, characterized in that, The terminal performs RLM measurement, and only measures the overlapping measurement resource. The terminal performs the RLM power saving measurement behavior, comprising: If the terminal receives the overlapping measurement resource measurement priority and the number N of overlapping measurement resources issued by the network, when the terminal performs RLM measurement, the high-priority overlapping measurement resource is measured based on the overlapping measurement resource measurement priority, wherein the number of overlapping measurement resources is N, and N is a positive integer; or If the terminal receives the overlapping measurement resource measurement priority issued by the network, when the terminal performs RLM measurement, the high-priority overlapping measurement resource is measured based on the overlapping measurement resource measurement priority, wherein the number of overlapping measurement resources is 1; or If the terminal receives the number N of overlapping measurement resources issued by the network, when the terminal performs RLM measurement, N overlapping measurement resources are randomly selected for measurement, and N is a positive integer; or If the terminal does not receive the overlapping measurement resource measurement priority and the number of overlapping measurement resources issued by the network, when the terminal performs RLM measurement, M overlapping measurement resources are randomly selected for measurement, and M is less than the number of overlapping measurement resources; or 7. The method according to any one of claims 1 to 4, characterized in that, If the terminal does not receive the overlapping measurement resource measurement priority and the number of overlapping measurement resources issued by the network, when the terminal performs RLM measurement, the overlapping measurement resources are measured in turn in a loop. The terminal performs the RLM power saving measurement behavior, comprising: In a case that the terminal receives the RLM power saving measurement fallback criterion issued by the network, if the terminal finds that the measurement result of the overlapping measurement resource meets the RLM power saving measurement fallback criterion in the BFD measurement process, the terminal exits the power saving measurement mode; or, In the case that the terminal does not receive the RLM power saving measurement fallback criterion issued by the network, if at least one of the following conditions is met, the terminal exits the power saving measurement mode: the terminal reports a beam failure indication BFI during measurement, the measurement result SINR of the overlapping measurement resource is less than a threshold Q out_LR , the measurement result BLER of the overlapping measurement resource is greater than 10%.
8. The method of claim 7, wherein, The method further comprises: The terminal reports the out-of-sync indication according to the threshold Q out determines whether to report the out-of-sync indication; or, After the terminal exits the power saving measurement mode, 9. The method according to any one of claims 1 to 4, characterized in that, The terminal does not report the out-of-sync indication at the next indication reporting moment, and the terminal measures all RLM resources configured by the network and judges whether to report the out-of-sync indication based on the measurement result. Before the terminal judges whether the measurement relaxation condition is met, the method further comprises:
10. The method according to any one of claims 1 to 4, characterized in that, The terminal sends an RLM power saving measurement request to the network side. The terminal judges whether the measurement relaxation condition is met, comprising:
11. The method according to any one of claims 1 to 4, characterized in that, In a case that the terminal receives the RLM power saving measurement indication issued by the network, the terminal judges whether the measurement relaxation condition is met. Before the terminal judges whether the measurement relaxation condition is met, the method further comprises: The terminal receives the measurement configuration issued by the network, and the measurement configuration is used to configure at least one of the following: RLM measurement resource; Threshold q for radio link synchronization / out-of-sync determination out And / or threshold bler _out ; Threshold q for serving beam synchronization / out-of-sync determination out_LR and threshold bler _out_LR ; Measurement resource for BFD; RLM power saving measurement indication, which is used to instruct the terminal to perform RLM power saving measurement; RLM power saving measurement criterion; RLM power saving measurement fallback criterion; Detection window; Overlapping measurement resource measurement priority; 12. The method of claim 7 or 11, wherein, Overlapping measurement resource measurement quantity. The RLM power saving measurement criterion comprises at least one of the following: high link quality criterion, low mobility criterion; wherein, If the measurement result SINR of the overlapping measurement resource is greater than a first threshold value, the high link quality criterion is met; or if the measurement result BLER of the overlapping measurement resource is less than a second threshold value, the high link quality criterion is met; 13. The method of claim 11, wherein, If the change of the measurement result SINR of the overlapping measurement resource is less than a third threshold value, the low mobility criterion is met; or if the change of the measurement result RSRP of the overlapping measurement resource is less than a fourth threshold value, the low mobility criterion is met. The RLM power saving measurement fallback criterion comprises at least one of the following: link quality fallback criterion, mobility fallback criterion; wherein, If the measurement result SINR of the overlapping measurement resource is less than a fifth threshold value, the link quality fallback criterion is met; or if the measurement result BLER of the overlapping measurement resource is greater than a sixth threshold value, the link quality fallback criterion is met; If the change of the measurement result SINR of the overlapping measurement resource is greater than a seventh threshold value, the mobility fallback criterion is met; or if the change of the measurement result RSRP of the overlapping measurement resource is greater than an eighth threshold value, the mobility fallback criterion is met.
14. The method of claim 12, wherein: The first threshold value is determined based on a first change value and one of the following threshold values: threshold Q out Threshold Q out_LR Threshold Q in Threshold Q in_LR The first change value is configured by the network. The first threshold value is configured by the network; or 15. The method of claim 13, wherein: The fifth threshold value is determined based on the second change value and one of the following thresholds: threshold Q out Threshold Q out_LR Threshold Q in Threshold Q in_LR The second change value is configured by the network. The fifth threshold value is configured by the network; or 16. The method of claim 12, wherein: The second threshold value is determined based on a third change value and one of the following threshold values: a threshold BLER _out , a threshold BLER _in , wherein the third change value is configured by the network. The second threshold value is configured by the network; or 17. The method of claim 13, wherein: The sixth threshold value is configured by the network; or The sixth threshold value is determined based on a fourth variation value and one of the following threshold values: a threshold BLER _out , a threshold BLER _in , wherein the fourth variation value is configured by the network.
18. The method of claim 12, wherein, The third threshold value and the fourth threshold value are configured by the network.
19. The method of claim 13, wherein, The seventh threshold value and the eighth threshold value are configured by the network.
20. A method of measuring configuration, characterized by, The method comprises: The network device sends a measurement configuration to the terminal, and the measurement configuration is used for the terminal to determine whether to perform RLM power saving measurement. The terminal determines whether to perform RLM node measurement through the following steps: The terminal determines whether the measurement relaxation condition is met, and the measurement relaxation condition at least comprises: the number of radio link monitoring (RLM) measurement resources is greater than 1, and there is an overlapping measurement resource; the overlapping measurement resource refers to the measurement resource that is used for RLM measurement and beam failure detection (BFD) measurement at the same time. If the terminal determines that the measurement relaxation condition is met, the terminal performs RLM power saving measurement behavior; if the terminal determines that the measurement relaxation condition is not met, the terminal performs normal measurement behavior; wherein performing RLM power saving measurement behavior comprises: the terminal performs radio link monitoring on one or more of the overlapping measurement resources.
21. The method of claim 20, wherein, The measurement configuration is used to configure at least one of the following: RLM measurement resource; Measurement resource for BFD; Threshold q for radio link synchronization / out-of-sync determination out And / or threshold bler _out ; Threshold q for serving beam synchronization / out-of-sync determination out_LR and threshold bler _out_LR ; RLM power saving measurement indication, used to instruct the terminal to perform RLM power saving measurement; RLM power saving measurement criterion; RLM power saving measurement backoff criterion; Detection window; Overlapping measurement resource measurement priority; Overlapping measurement resource measurement quantity.
22. The method of claim 21, wherein, The RLM power saving measurement criterion comprises at least one of the following: high link quality criterion, low mobility criterion; wherein, If the measurement result SINR of the overlapping measurement resource is greater than a first threshold value, the high link quality criterion is met; or if the measurement result BLER of the overlapping measurement resource is less than a second threshold value, the high link quality criterion is met; If the change of the measurement result SINR of the overlapping measurement resource is less than a third threshold value, the low mobility criterion is met; or if the change of the measurement result RSRP of the overlapping measurement resource is less than a fourth threshold value, the low mobility criterion is met.
23. The method of claim 21, wherein, The RLM power saving measurement backoff criterion comprises at least one of the following: link quality backoff criterion, mobility backoff criterion; wherein, If the measurement result SINR of the overlapping measurement resource is less than a fifth threshold value, the link quality backoff criterion is met; or if the measurement result BLER of the overlapping measurement resource is greater than a sixth threshold value, the link quality backoff criterion is met; If the change of the measurement result SINR of the overlapping measurement resource is greater than a seventh threshold value, the mobility backoff criterion is met; or if the change of the measurement result RSRP of the overlapping measurement resource is greater than an eighth threshold value, the mobility backoff criterion is met.
24. The method of claim 22, wherein The first threshold value is configured by the network; or The first threshold value is determined based on a first change value and one of the following threshold values: threshold Q out Threshold Q out_LR Threshold Q in Threshold Q in_LR The first change value is configured by the network.
25. The method of claim 23, wherein The fifth threshold value is configured by the network; or The fifth threshold value is determined based on the second change value and one of the following threshold values: threshold value Q out , threshold value Q out_LR , threshold value Q in , threshold value Q in_LR , wherein the second change value is configured by the network.
26. The method of claim 22, wherein The second threshold value is configured by the network; or The second threshold value is determined based on a third change value and one of the following threshold values: a threshold BLER _out , a threshold BLER _in , wherein the third change value is configured by the network.
27. The method of claim 23, wherein The sixth threshold value is configured by the network. The sixth threshold value is determined based on a fourth variation value and one of the following threshold values: a threshold BLER _out , a threshold BLER _in , wherein the fourth variation value is configured by the network.
28. The method of claim 22, wherein, The third threshold value and the fourth threshold value are configured by the network.
29. The method of claim 23, wherein, The seventh threshold value and the eighth threshold value are configured by the network.
30. A measuring device, characterized by The device applied to a terminal comprises: A determining unit is configured to determine whether a measurement relaxation condition is satisfied, wherein the measurement relaxation condition at least comprises: a quantity of RLM measurement resources is greater than 1, and there is an overlapping measurement resource; the overlapping measurement resource refers to a measurement resource used for both RLM measurement and BFD measurement. A measurement unit is configured to perform an RLM power saving measurement behavior if it is determined that the measurement relaxation condition is satisfied, and perform a normal measurement behavior if it is determined that the measurement relaxation condition is not satisfied; wherein the performing of the RLM power saving measurement behavior comprises: performing, by the terminal, radio link monitoring on one or more of the overlapping measurement resources.
31. A measurement configuration apparatus, characterized by comprising: The device applied to a network device comprises: A sending unit is configured to send, to a terminal, a measurement configuration, wherein the measurement configuration is used by the terminal to determine whether to perform RLM power saving measurement. The terminal determines whether to perform RLM power saving measurement by the following steps: The terminal determines whether a measurement relaxation condition is satisfied, wherein the measurement relaxation condition at least comprises: a quantity of RLM measurement resources is greater than 1, and there is an overlapping measurement resource; the overlapping measurement resource refers to a measurement resource used for both RLM measurement and BFD measurement. The terminal performs an RLM power saving measurement behavior if it is determined that the measurement relaxation condition is satisfied, and performs a normal measurement behavior if it is determined that the measurement relaxation condition is not satisfied; wherein the performing of the RLM power saving measurement behavior comprises: performing, by the terminal, radio link monitoring on one or more of the overlapping measurement resources.
32. A terminal, characterized by The device comprises: A processor and a memory, wherein the memory is configured to store a computer program, and the processor is configured to invoke and run the computer program stored in the memory to execute the method according to any one of claims 1 to 19.
33. A network device, comprising: The device comprises: A processor and a memory, wherein the memory is configured to store a computer program, and the processor is configured to invoke and run the computer program stored in the memory to execute the method according to any one of claims 20 to 29.
34. A chip, characterized by The device comprises: A processor is configured to invoke and run a computer program from a memory, so that a device installed with the chip executes the method according to any one of claims 1 to 19, or the method according to any one of claims 20 to 29.
35. A computer readable storage medium, characterized in that, A computer program is configured to make a computer execute the method according to any one of claims 1 to 19, or the method according to any one of claims 20 to 29.
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