Measurement processing method, parameter configuration method, terminal, and network device

MY214648AActive Publication Date: 2026-08-06VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
MYPI2021004561
Authority / Receiving Office
MY · MY
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-02-15
Filing Date
2020-02-14
Publication Date
2026-08-06
Estimated Expiration
2040-02-14

AI Technical Summary

Technical Problem

In the new air interface system, when the terminal measures the reference signal received power of the synchronization signal, the accuracy of the measurement results is poor because the synchronization signal block cannot be sent, and the unsent synchronization signal block cannot be detected, affecting the accuracy of the measurement results. sex.

Method used

By receiving and processing the measurement results of synchronization signal blocks that meet the quasi-co-location configuration parameters, the terminal can obtain the measurement results of neighboring cells and improve the accuracy of the measurement results. The specific method includes receiving the quasi-co-located QCL configuration parameters sent by the network device, judging based on the measurement results of the first SSB and the second SSB that they satisfy the QCL relationship, and processing them as the same measurement sample to obtain the measurement results of the adjacent cells. .

Benefits of technology

By processing based on the measurement results of the synchronization signal block that satisfies the QCL relationship, the accuracy of the measurement results is improved, the problem of inaccurate measurement results when the synchronization signal block cannot be sent is solved, and accurate signal measurement is ensured in the case of multiple beams. .

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Abstract

Embodiments of this disclosure provide a method for processing a measurement, a parameter configuration method, a terminal, and a network device. The method includes: receiving (201) a QCL configuration parameter for measuring a neighboring cell, where the neighboring cell is a cell adjacent to a serving cell of the terminal; and obtaining (202) a measurement result of the neighboring cell based on a measurement result of a first SSB and a measurement result of a second SSB, where the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter. (FIG. 2)
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Description

Measurement processing method, parameter configuration method, terminal and network device

[0001] Cross-reference to related applications

[0002] This application claims priority to Chinese Patent Application No. 201910118202.9, filed on February 15, 2019 in China, the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD

[0003] The present disclosure relates to the technical field of communication, and particularly relates to a measurement processing method, a parameter configuration method, a terminal and a network device. BACKGROUND

[0004] In a New Radio (NR) system, when a terminal performs Synchronization Signal Reference Signal Receiving Power (SS-RSRP) measurement on a synchronization signal, the terminal assumes that synchronization signal blocks (SSBs) with the same index have a quasi-co-location (QCL) relationship. Thus, when performing SS-RSRP measurement, the terminal takes the measurement values of SSBs with the same index in different periods as samples of the same measurement to perform RSRP processing (for example, power combination and averaging) to obtain a measurement result of a cell. However, in actual application, there may be a situation where an SSB cannot be transmitted, for example, SSB#1 is transmitted in a first period, but SSB#1 fails to be transmitted in a second period. Since the terminal cannot detect SSB#1, the accuracy of the measurement result is poor.

[0005] SUMMARY

[0006] Embodiments of the present disclosure provide a measurement processing method, a parameter configuration method, a terminal and a network device to solve the problem of poor accuracy of a measurement result.

[0007] In a first aspect, embodiments of the present disclosure provide a measurement processing method applied to a terminal, comprising:

[0008] receiving a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal;

[0009] obtaining a measurement result of the adjacent cell according to a measurement result of a first SSB and a measurement result of a second SSB, wherein the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter.

[0010] In a second aspect, the embodiments of the present disclosure provide a parameter configuration method, applied to a network device, comprising:

[0011] sending, to a terminal, a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0012] In a third aspect, the embodiments of the present disclosure provide a terminal, comprising:

[0013] a receiving module, configured to receive a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal;

[0014] a processing module, configured to obtain a measurement result of the adjacent cell according to a measurement result of a first SSB and a measurement result of a second SSB, wherein the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter.

[0015] In a fourth aspect, the embodiments of the present disclosure provide a network device, comprising:

[0016] a sending module, configured to send, to a terminal, a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0017] In a fifth aspect, the embodiments of the present disclosure provide a terminal, comprising a memory, a processor, and a program stored in the memory and capable of running on the processor, and when the program is executed by the processor, the steps in the measurement processing method provided by the embodiments of the present disclosure are implemented.

[0018] In a sixth aspect, the embodiments of the present disclosure provide a network device, comprising a memory, a processor, and a program stored in the memory and capable of running on the processor, and when the program is executed by the processor, the steps in the parameter configuration method provided by the embodiments of the present disclosure are implemented.

[0019] In a seventh aspect, the embodiments of the present disclosure provide a computer readable storage medium, wherein the computer readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps in the measurement processing method provided by the embodiments of the present disclosure are implemented, or when the computer program is executed by the processor, the steps in the parameter configuration method provided by the embodiments of the present disclosure are implemented.

[0020] In the embodiments of the present disclosure, a quasi co-location (QCL) configuration parameter for adjacent cell measurement is received, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal; a measurement result of the adjacent cell is obtained according to a measurement result of a first synchronization signal block (SSB) and a measurement result of a second SSB, wherein the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter. In this way, since the measurement result of the adjacent cell is obtained according to the SSBs satisfying the QCL relationship, the accuracy of the measurement result can be improved. BRIEF DESCRIPTION OF DRAWINGS

[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present disclosure, the drawings needed to be used in the description of the embodiments of the present disclosure will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and other drawings can be obtained by those skilled in the art without creative labor.

[0022] FIG. 1 is a structure diagram of a network system to which the embodiments of the present disclosure can be applied;

[0023] FIG. 2 is a flowchart of a measurement processing method provided by the embodiments of the present disclosure;

[0024] FIG. 3 is a flowchart of a parameter configuration method provided by the embodiments of the present disclosure;

[0025] FIG. 4 is a structure diagram of a terminal provided by the embodiments of the present disclosure;

[0026] FIG. 5 is a structure diagram of another terminal provided by the embodiments of the present disclosure;

[0027] FIG. 6 is a structure diagram of a network device provided by the embodiments of the present disclosure;

[0028] FIG. 7 is a structure diagram of another terminal provided by the embodiments of the present disclosure;

[0029] FIG. 8 is a structure diagram of another network device provided by the embodiments of the present disclosure. DETAILED DESCRIPTION

[0030] The technical solutions in the embodiments of the present disclosure will be described clearly and completely below with reference to the drawings in the embodiments of the present disclosure. Obviously, the described embodiments are only some embodiments of the present disclosure, not all the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present disclosure.

[0031] The term "comprise", including variations thereof, when used in the specification and in the claims of the application, shall not be construed as implying that the process, method, system or apparatus comprises only those steps or units explicitly listed or comprises all of the steps or units listed. In addition, the use of "and / or", "and / or" in the specification and in the claims of the application, means at least one of the connected objects, for example, A and / or B, means including A alone, B alone, and A and B both exist three cases.

[0032] In the embodiments of the present disclosure, the words "exemplary" or "for example" are used to mean serving as an example, instance, or illustration. Any embodiment or design scheme described as "exemplary" or "for example" in the embodiments of the present disclosure should not be construed as being more preferred or advantageous than other embodiments or design schemes. Rather, the use of "exemplary" or "for example" is intended to present concepts in a particular manner.

[0033] Embodiments of the present disclosure are described below with reference to the accompanying drawings. The measurement processing method, parameter configuration method, terminal and network device provided by the embodiments of the present disclosure can be applied to a wireless communication system. The wireless communication system can be a 5G system, or an evolved long term evolution (eLTE) system or a long term evolution (LTE) system, or a subsequent evolved communication system, etc.

[0034] Please refer to FIG. 1, which is a structural diagram of a network system to which the embodiments of the present disclosure can be applied. As shown in FIG. 1, the network system includes a terminal 11 and a network device 12. The terminal 11 can be a user equipment (UE) or other terminal-side device, such as a mobile phone, a tablet personal computer (PC), a laptop computer, a personal digital assistant (PDA), a mobile Internet device (MID), a wearable device, or a robot. It should be noted that the specific type of the terminal 11 is not limited in the embodiments of the present disclosure. The network device 12 can be a 4G base station, a 5G base station, or a base station of a later version, or a base station in other communication systems, or a node B, an evolved node B, a transmission reception point (TRP), an access point (AP), or other terms in the field, as long as the same technical effects are achieved, and the network device is not limited to a specific technical term. In addition, the network device 12 can be a master node (MN) or a secondary node (SN). It should be noted that the embodiments of the present disclosure are only exemplified by a 5G base station, but the specific type of the network device is not limited.

[0035] Please refer to FIG. 2, which is a flowchart of a measurement processing method provided by the embodiments of the present disclosure. The method is applied to a terminal. As shown in FIG. 2, the method includes the following steps:

[0036] Step 201: receiving a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0037] Step 201 can be receiving a QCL configuration parameter for adjacent cell measurement sent by a network device, for example, receiving a QCL configuration parameter for adjacent cell measurement sent by a network device of a serving cell. Of course, it is not excluded in the embodiments of the present disclosure that other network devices configure the QCL configuration parameter to the terminal, for example, a network device of an adjacent cell configures the QCL configuration parameter to the terminal. Specifically, the network device can configure the QCL configuration parameter when configuring adjacent cell measurement configuration to the terminal.

[0038] In addition, the QCL configuration parameter can be QCL-related information for indicating a QCL relationship. Through the QCL configuration parameter, the terminal can determine a plurality of SSBs satisfying the QCL relationship with each other.

[0039] obtaining the measurement result of the neighboring cell according to the measurement result of the first SSB and the measurement result of the second SSB, wherein the first SSB and the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameter.

[0040] The first SSB can refer to one or more SSBs, and the second SSB can refer to one or more SSBs, that is, the first SSB and the second SSB can represent multiple SSBs that satisfy the QCL relationship corresponding to the QCL configuration parameter. For example, two or three SSBs satisfy the QCL relationship. Further, the first SSB and the second SSB can be SSBs in the neighboring cell, and the first SSB and the second SSB can be SSBs transmitted at different time positions in the neighboring cell, further, can be SSBs transmitted by the same or different beams. And the first SSB and the second SSB can be SSBs in the same period or different periods.

[0041] In addition, the first SSB and the second SSB can be SSBs measured in a measurement window corresponding to an SSB measurement timing configuration (SMTC). Further, the network device can configure the SMTC and the QCL configuration parameter to the terminal through the same message. In this way, the terminal can measure according to the SMTC configured by the network device, perform QCL judgment on the detected SSB, and determine whether the measurement result of the neighboring cell can be obtained according to the measurement result of the first SSB and the measurement result of the second SSB, such as treating the measurement result of the first SSB and the measurement result of the second SSB as the same measurement sample to obtain the measurement result of the neighboring cell.

[0042] The obtaining of the measurement result of the neighboring cell according to the measurement result of the first SSB and the measurement result of the second SSB can be that the first SSB and the second SSB satisfying the QCL relationship are determined according to the QCL configuration parameter, and the measurement result of the first SSB and the measurement result of the second SSB are combined and averaged or replaced, etc. to obtain the measurement result of the neighboring cell. The measurement result obtained in step 202 can be referred to as an SS-RSRP measurement result of the neighboring cell.

[0043] The QCL relationship corresponding to the QCL configuration parameter can be a QCL relationship defined in advance for the QCL configuration parameter, for example, the QCL relationship is defined in advance for the QCL configuration parameter by a protocol, a network device, or the terminal.

[0044] In the embodiments of the present disclosure, the measurement result of the adjacent cell can be obtained according to the measurement result of the SSB satisfying the QCL relationship through the above steps, so as to improve the accuracy of the measurement result. In addition, the problem of measuring the signal of the adjacent cell with multiple beams (beam) SSB in the 5G unlicensed communication system can be solved, so as to ensure accurate measurement of the adjacent cell with multiple beams SSB.

[0045] As an optional implementation, the measurement result of the adjacent cell is obtained according to the measurement result of the first synchronization signal block (SSB) and the measurement result of the second SSB, and the measurement result of the adjacent cell comprises:

[0046] The measurement result of the first SSB and the measurement result of the second SSB are processed as samples of the same measurement through RSRP to obtain the measurement result of the adjacent cell.

[0047] The measurement result of the first SSB and the measurement result of the second SSB can be processed as samples of the same measurement through RSRP according to the QCL configuration parameter to determine the first SSB and the second SSB satisfying the QCL relationship, and the measurement result of the first SSB and the measurement result of the second SSB are processed as samples of the same measurement through RSRP to obtain the measurement result of the adjacent cell.

[0048] Optionally, the RSRP processing can include: merging and averaging the measurement result of the first SSB and the measurement result of the second SSB. Of course, this is not limited, for example: the RSRP processing can be a measurement result replacement, for example: the measurement result of the first SSB is replaced by the measurement result of the second SSB, or the measurement result of the second SSB is replaced by the measurement result of the first SSB.

[0049] In this embodiment, the measurement result of the first SSB and the measurement result of the second SSB are processed as samples of the same measurement through RSRP, so as to improve the accuracy of the measurement result of the adjacent cell.

[0050] As an optional implementation, the index information of the first SSB and the index information of the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameter.

[0051] The index information of the first SSB can be the index of the first SSB or part of the index information, and the index information of the second SSB can be the index of the second SSB or part of the index information.

[0052] The index information of the first SSB and the index information of the second SSB satisfying the QCL relationship corresponding to the QCL configuration parameter can be that the relationship of the index information of the first SSB with respect to the QCL configuration parameter matches the relationship of the index information of the second SSB with respect to the QCL configuration parameter.

[0053] In this embodiment, since the first SSB and the second SSB satisfying the QCL relationship can be determined through the index information of the first SSB and the index information of the second SSB, the network device does not need to indicate the SSBs satisfying the QCL relationship through signaling, thereby reducing complexity and saving transmission overhead.

[0054] Optionally, the QCL configuration parameter includes a QCL modulus, and an operation result of the index information of the first SSB with respect to the QCL modulus matches an operation result of the index information of the second SSB with respect to the QCL modulus.

[0055] The operation result of the index information of the first SSB with respect to the QCL modulus can be that the index information of the first SSB is subjected to a specific operation with respect to the QCL modulus to obtain the operation result, for example, a remainder operation or a modulo operation. The operation result of the index information of the second SSB with respect to the QCL modulus can also be that the index information of the second SSB is subjected to a specific operation with respect to the QCL modulus to obtain the operation result.

[0056] The matching of the operation results can be that the operation results are equal or similar.

[0057] In an optional manner, the operation result of k mod q matches the operation result of j mod q, or the operation result of (k×n / 2) mod q matches the operation result of (j×n / 2) mod q.

[0058] The k is the index information of the first SSB, the j is the index information of the second SSB, the q is the QCL modulus, the mod is a remainder function, and the n is the number of preset type physical downlink control channels (PDCCHs) in a unit time domain resource or the number of Discovery Reference Signal (DRS) units in a unit time domain resource.

[0059] It should be noted that, in the case that the first SSB is a plurality of SSBs, the k is the index information of any SSB of the plurality of SSBs, and in the case that the second SSB is a plurality of SSBs, the j is the index information of any SSB of the plurality of SSBs.

[0060] The unit time domain resource can be a slot, and can also be a subframe, without limitation. The preset type PDCCH can be a Type 0 PDCCH, and can also be another type of PDCCH.

[0061] Further, the operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q, for example, the operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q. The operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q. The operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q. The operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q. The operation result of (k×n / 2)mod q can be matched with the operation result of (j×n / 2)mod q.

[0062] Further, the QCL configuration parameter can further include the number of preset type PDCCHs in the unit time domain resource, or include the number of DRS units in the unit time domain resource.

[0063] In this way, all parameters for determining the QCL relationship can be configured by the QCL configuration parameter, so as to avoid configuring the number of preset type PDCCHs in the unit time domain resource or the number of DRS units in the unit time domain resource by other messages, thereby saving transmission resources.

[0064] In an optional implementation, in a case where the serving cell and the neighboring cell are time-synchronized and the terminal obtains a measurement SSB list, the index information of the first SSB and the second SSB is determined by the time synchronization.

[0065] The serving cell and the neighboring cell are time-synchronized, and the measurement SSB list can be configured to the terminal by a network device. For example, the network device can configure SMTC, the QCL configuration parameter, the time synchronization of the serving cell and the neighboring cell, and the measurement SSB list to the terminal by a same configuration message.

[0066] It should be noted that in the embodiments of the present disclosure, the time synchronization of the serving cell and the neighboring cell can be represented by the timing of the serving cell, that is, in the embodiments, the index information of the first SSB and the second SSB can be determined by the timing of the serving cell. Specifically, whether the terminal can determine the index information of the first SSB and the second SSB by the timing of the serving cell can be configured by the network device, and when the network device configures the time synchronization of the serving cell and the neighboring cell, it means that the network device can obtain the index of the SSB by the timing of the serving cell.

[0067] The above-mentioned measurement SSB list can include the index of each SSB that needs to be measured by the terminal, that is, the above-mentioned measurement SSB list can also be called a measurement SSB index list (SSB index list), in addition, due to the time synchronization of the serving cell and the neighboring cell, the time of the SSBs with the same index in the serving cell and the neighboring cell is synchronized, so that the terminal can determine the time position of each SSB in the above-mentioned SSB list by the time position of each SSB in the serving cell, that is, determine the index of the SSB at each time position in the neighboring cell. For example, if SSB index i is included in the above-mentioned measurement SSB list, the time position of SSB index i in the serving cell is position i, so that the index of the SSB at position i in the neighboring cell is i.

[0068] In addition, in the embodiments, the index of each SSB in each of the above-mentioned SSB lists can be determined before the SSB is measured, so that the SSBs satisfying the QCL relationship with each other can be determined, and specifically, the SSBs satisfying the QCL relationship with each other can be taken as one SSB set.

[0069] The embodiments will be illustrated below:

[0070] If the network device is configured to obtain the index of the SSB by the timing of the serving cell, and the network device is configured with a measurement SSB list, for each SSB index i that needs to be measured, all SSB sets I (set I contains SSB index i) having a QCL relationship with SSB index i are obtained according to the QCL configuration parameter, and any SSB index i' in the set satisfies a certain condition, for example, i'mod q=i mod q or The terminal can obtain the time position in the SSB set I according to the timing of the serving cell, detect whether the SSB is transmitted at the time position in each period, and perform measurement if it is determined that the SSB is transmitted. The measured RSRP values of the RSs having the QCL relationship can all be processed as measurement samples of the SSB index i, for example, combined and averaged.

[0071] In an optional embodiment, the serving cell and the neighboring cell are time-synchronized, and the terminal does not acquire the measurement SSB list. The index information of the first SSB and the second SSB is determined by measuring the positions of the first SSB and the second SSB.

[0072] In this embodiment, the positions of the first SSB and the second SSB can be measured without acquiring the measurement SSB list. Since the serving cell and the neighboring cell are time-synchronized, the index information of the first SSB and the second SSB can be determined.

[0073] The embodiment is exemplified by an example as follows:

[0074] If the network device configures that the index of the SSB can be obtained through the timing of the serving cell, and the network device does not configure the measurement SSB list, the terminal measures all SSBs in the periodic smtc. For any two SSBs detected by the terminal, the terminal can obtain their indexes j1 and j2 through the timing of the serving cell and the positions detected by the terminal. Whether they satisfy the QCL relationship is determined according to the configured QCL configuration parameters, that is, whether j1 mod q = j2 mod q or j1 mod q = j2 mod q + q is satisfied. If the condition is satisfied, the measured RSRP values can be processed as the same measurement sample.

[0075] In an optional embodiment, the serving cell and the neighboring cell are not time-synchronized, and the terminal acquires the measurement SSB list. The index information of the first SSB is determined through the demodulation reference signal (DMRS) of the physical broadcast channel (PBCH) of the first SSB, and the index information of the second SSB is determined through the DMRS of the PBCH of the second SSB.

[0076] In this embodiment, the DMRS has a corresponding relationship with the index information of the SSB, for example, one DMRS corresponds to the index information of one or more SSBs, and the index information of the first SSB and the second SSB can be determined through the DMRS. For example, the SSB list includes SSB index i, and the DMRS of the PBCH of the first SSB corresponds to the index information of the SSB including i, so that the index of the first SSB is determined to be i.

[0077] The embodiment is illustrated below:

[0078] If the network device configuration cannot obtain the index of the SSB through the timing of the serving cell, and the network device is configured to measure the SSB list (or referred to as the SSB index list), the UE detects the SSB in the configured periodic smtc; for the detected SSB, the SSB index or part of the SSB index is obtained through the DMRS of the PBCH. The UE determines whether the detected SSB i' has a QCL relationship with a certain SSB i in the SSB index list through the PBCH DM-RS ID and the configured QCL condition, that is, whether i' mod q = i mod q or i' mod q = i mod q + q / 2 is satisfied. If there is a QCL relationship, the measured RSRP value is used as a sample for measuring the SSB i, and all such sample values are used for subsequent processing as the same measurement, for example, the RSRP measurement value of the SSB i is obtained by averaging; if there is no QCL relationship with any one in the configured measurement SSB index list, the measurement value is discarded.

[0079] As an optional embodiment, when the serving cell and the neighboring cell are not time-synchronized, and the terminal does not obtain the measurement SSB list, the index information of the first SSB and the second SSB is determined through the DMRS of the PBCH of the first SSB, the DMRS of the PBCH of the second SSB, and the index difference value, wherein the index difference value is an index difference value determined according to the positions of the first SSB and the second SSB measured by the terminal.

[0080] The index difference value determined according to the positions of the first SSB and the second SSB measured by the terminal can be converted into a position difference value in the same period, and the index difference value of the first SSB and the second SSB is determined according to the position difference value. For example, in the case where the first SSB and the second SSB are in different periods, the time positions of the first SSB and the second SSB are modulated (or are divided) by the period T, so as to obtain the position difference value in the same period. In this way, the number of SSBs between the first SSB and the second SSB can be determined according to the position difference value of the SSBs adjacent in index (the position difference value can be pre-configured or agreed in the protocol), so as to obtain the index difference value of the first SSB and the second SSB. For example, the position difference value of the first SSB and the second SSB in the same period is E, and the position difference value of the SSBs adjacent in index is F. In the case where E is equal to F, the index difference value of the first SSB and the second SSB is 1 index, and in the case where E is equal to 2F, the index difference value of the first SSB and the second SSB is 2 indexes.

[0081] In addition, since the DMRS has a corresponding relationship with the index information of the SSB, the candidate index information of the first SSB is determined through the DMRS of the PBCH of the first SSB, and the candidate index information of the candidate second SSB is determined through the DMRS of the PBCH of the second SSB. In this way, the index information with the index difference value of the above index difference value is searched in the two candidate index information, so as to obtain the final index information of the first SSB and the second SSB.

[0082] The implementation is exemplified by an embodiment as follows:

[0083] If the network device cannot obtain the index of the SSB through the timing of the serving cell, and the network device is not configured to measure the SSB list, the terminal measures all SSBs in the smtc with a period T. For any two SSBs detected by the terminal, the terminal can obtain the difference Δi of the indexes of the two SSBs through the transmission time positions t1 and t2 of the two SSBs, and can determine the values of the indexes of the two SSBs in combination with the DMRS ID in the PBCH and the configured QCL condition, and then determine the QCL relationship (for example, the difference Δi of the indexes of the two SSBs is obtained through the transmission time positions t1 and t2 of the two SSBs, the values of the indexes of the SSBs are determined in combination with the DMRS ID, and the QCL relationship is determined through the QCL condition), that is, whether j1 mod q = j2 mod q or If the condition is met, the RSRP values measured by the two SSBs can be processed as the same measurement sample.

[0084] Optionally, in the above-mentioned various embodiments, the index information of the first SSB comprises an index of the first SSB or partial information of the index of the first SSB; and / or

[0085] the index information of the second SSB comprises an index of the second SSB or partial information of the index of the second SSB.

[0086] In this embodiment, the SSB satisfying the QCL relationship can be determined by the index or the partial information of the index, thereby improving the flexibility of measurement.

[0087] Optionally, in the case that the terminal acquires the list of measurement SSBs:

[0088] The acquiring of the measurement result of the neighboring cell according to the measurement result of the first SSB and the measurement result of the second SSB comprises:

[0089] If it is determined according to the QCL configuration parameter that there is a second SSB satisfying the QCL relationship with the first SSB in the list of measurement SSBs, the measurement result of the neighboring cell is acquired according to the measurement result of the first SSB and the measurement result of the second SSB.

[0090] After receiving the QCL configuration parameter, the method further comprises:

[0091] If it is determined according to the QCL configuration parameter that there is no second SSB satisfying the QCL relationship with the first SSB in the list of measurement SSBs, the measurement result of the first SSB is discarded.

[0092] In this embodiment, the measurement result of the first SSB can be discarded in the case that there is no second SSB satisfying the QCL relationship with the first SSB, thereby saving storage resources and avoiding incorrect measurement results.

[0093] As an optional embodiment, the above-mentioned receiving the QCL configuration parameter for neighboring cell measurement comprises:

[0094] receiving a system information block (SIB) or a radio resource control (RRC) message, wherein the SIB or the RRC message carries the QCL configuration parameter for neighboring cell measurement.

[0095] The SIB can be SIB2 or SIB4, and the QCL configuration parameter can be intra Freq Cell Reselection Info in the SIB2 or SIB4. For the RRC message, the QCL configuration parameter can be configured in MeasObject NR in the RRC message.

[0096] In this embodiment, the terminal can be configured with the QCL configuration parameter through various messages, so as to improve the flexibility of measurement.

[0097] As an optional embodiment, the QCL configuration parameter is configured per cell, or the QCL configuration parameter is configured per frequency domain resource.

[0098] The frequency domain resource can be a frequency layer, that is, the QCL configuration parameter can be configured per frequency layer. In this embodiment, the QCL configuration parameter is configured per cell or per frequency domain resource, so as to improve the accuracy of measurement.

[0099] For example, the network device adds the QCL configuration parameter, such as the QCL modulus q, the number n of Type 0 PDCCH (optional) or DRS unit in a slot (optional), when configuring measurement. These information is configured per frequency layer or per cell in intra Freq Cell Reselection Info in SIB2, inter Freq Cell Reselection Info in SIB4, or Mea Object NR in the RRC message.

[0100] The above embodiments provided in the embodiments of the present disclosure can achieve the following effects:

[0101] The network device adds the QCL configuration parameter, such as the QCL modulus q, the number n of Type 0 PDCCH or DRS unit in a slot (optional), when configuring the measurement of the neighboring cell.

[0102] The terminal can perform measurement in different smtc according to the configuration of the network device, and determine whether the detected SSB can be used as a sample for the same measurement (for example, combined average or replaced) by QCL judgment.

[0103] In the embodiment of the present disclosure, a quasi co-location (QCL) configuration parameter for adjacent cell measurement is received, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal; and a measurement result of the adjacent cell is obtained according to a measurement result of a first synchronization signal block (SSB) and a measurement result of a second SSB, wherein the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter. In this way, since the measurement result of the adjacent cell is obtained according to the SSBs satisfying the QCL relationship, the accuracy of the measurement result can be improved.

[0104] Please refer to FIG. 3, which is a flow chart of a parameter configuration method provided by an embodiment of the present disclosure. The method is applied to a network device. As shown in FIG. 3, the method comprises the following steps:

[0105] In step 301, a QCL configuration parameter for adjacent cell measurement is sent to a terminal, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0106] Optionally, the sending of the QCL configuration parameter for adjacent cell measurement to the terminal comprises:

[0107] A SIB or an RRC message is sent to the terminal, wherein the SIB or the RRC message carries the QCL configuration parameter for adjacent cell measurement.

[0108] Optionally, the QCL configuration parameter is configured in a unit of cell, or the QCL configuration parameter is configured in a unit of frequency domain resource.

[0109] It should be noted that the embodiment serves as an implementation of a network device corresponding to the embodiment shown in FIG. 2. The specific implementation can refer to the related description of the embodiment shown in FIG. 2. To avoid repeated description, the embodiment will not be described again, and the same beneficial effects can be achieved.

[0110] Please refer to FIG. 4, which is a structure diagram of a terminal provided by an embodiment of the present disclosure. As shown in FIG. 4, the terminal 400 comprises:

[0111] A receiving module 401 is configured to receive a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0112] A processing module 402 is configured to obtain a measurement result of the adjacent cell according to a measurement result of a first SSB and a measurement result of a second SSB, wherein the first SSB and the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter.

[0113] Optionally, the index information of the first SSB and the index information of the second SSB satisfy a QCL relationship corresponding to the QCL configuration parameter.

[0114] Optionally, the QCL configuration parameter comprises a QCL modulus, and an operation result of the index information of the first SSB relative to the QCL modulus matches an operation result of the index information of the second SSB relative to the QCL modulus.

[0115] Optionally, an operation result of k mod q matches an operation result of j mod q, or an operation result of (k×n / 2) mod q matches an operation result of (j×n / 2) mod q.

[0116] Optionally, the j is the index information of the second SSB, the q is the QCL modulus, the mod is a modulo function, and the n is a number of preset type physical downlink control channels (PDCCHs) in a unit time domain resource or a number of cell detection signal (DRS) units in a unit time domain resource.

[0117] Optionally, the QCL configuration parameter further comprises the number of the preset type PDCCHs in the unit time domain resource or comprises the number of the DRS units in the unit time domain resource.

[0118] Optionally, in a case where the terminal has obtained a measurement SSB list, the index information of the first SSB and the index information of the second SSB are determined through time synchronization of the serving cell and the neighboring cell; or

[0119] in a case where the terminal has not obtained a measurement SSB list, the index information of the first SSB and the index information of the second SSB are determined through positions of the first SSB and the second SSB; or

[0120] in a case where the terminal has obtained a measurement SSB list, the index information of the first SSB is determined through a demodulation reference signal (DMRS) of a physical broadcast channel (PBCH) of the first SSB, and the index information of the second SSB is determined through a DMRS of a PBCH of the second SSB; or

[0121] In a case that the serving cell and the neighboring cell are not time-synchronized and the terminal does not acquire the measurement SSB list, index information of the first SSB and the second SSB is determined by DMRS of PBCH of the first SSB, DMRS of PBCH of the second SSB and an index difference value, wherein the index difference value is an index difference value determined according to positions of the first SSB and the second SSB measured by the terminal.

[0122] Optionally, the index information of the first SSB includes an index of the first SSB or partial information of the index of the first SSB; and / or

[0123] the index information of the second SSB includes an index of the second SSB or partial information of the index of the second SSB.

[0124] Optionally, in a case that the terminal acquires the measurement SSB list:

[0125] The processing module 402 is configured to, if it is determined according to the QCL configuration parameter that there is a second SSB satisfying the QCL relationship with the first SSB in the measurement SSB list, acquire a measurement result of the neighboring cell according to a measurement result of the first SSB and a measurement result of the second SSB.

[0126] As shown in FIG. 5, the terminal 400 further includes:

[0127] The discarding module 403 is configured to, if it is determined according to the QCL configuration parameter that there is no second SSB satisfying the QCL relationship with the first SSB in the measurement SSB list, discard the measurement result of the first SSB.

[0128] Optionally, the receiving module 401 is configured to receive a system information block (SIB) or a radio resource control (RRC) message, wherein the SIB or the RRC message carries the QCL configuration parameter for neighboring cell measurement.

[0129] Optionally, the QCL configuration parameter is configured in a unit of cell, or the QCL configuration parameter is configured in a unit of frequency domain resource.

[0130] Optionally, the processing module 402 is configured to perform RSRP processing on the measurement result of the first SSB and the measurement result of the second SSB as samples of the same measurement to obtain the measurement result of the neighboring cell.

[0131] Optionally, the RSRP processing includes:

[0132] averaging the measurement result of the first SSB and the measurement result of the second SSB.

[0133] The terminal provided by the embodiments of the present disclosure can implement the processes implemented by the terminal in the method embodiments of FIG. 2, and thus the details are not repeated here, and the accuracy of the measurement result can be improved.

[0134] Referring to FIG. 6, FIG. 6 is a structural diagram of a network device provided by an embodiment of the present disclosure, as shown in FIG. 6, the network device 600 includes:

[0135] The sending module 601 is configured to send, to a terminal, a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0136] Optionally, the sending module 601 is configured to send, to the terminal, a SIB or an RRC message, wherein the SIB or the RRC message carries the QCL configuration parameter for adjacent cell measurement.

[0137] Optionally, the QCL configuration parameter is configured in a unit of cell, or the QCL configuration parameter is configured in a unit of frequency domain resource.

[0138] The network device provided by the embodiments of the present disclosure can implement the processes implemented by the network device in the method embodiments of FIG. 3, and thus the details are not repeated here, and the terminal can improve the accuracy of the measurement result.

[0139] FIG. 7 is a schematic diagram of a hardware structure of a terminal for implementing various embodiments of the present disclosure,

[0140] The terminal 700 includes, but is not limited to, a radio frequency unit 701, a network module 702, an audio output unit 703, an input unit 704, a sensor 705, a display unit 706, a user input unit 707, an interface unit 708, a memory 709, a processor 710, and a power supply 711, and the like. Those skilled in the art can understand that the terminal structure shown in FIG. 7 does not constitute a limitation on the terminal, and the terminal can include more or fewer components than the diagram, or combine certain components, or different component arrangements. In the embodiments of the present disclosure, the terminal includes, but is not limited to, a mobile phone, a tablet computer, a notebook computer, a palm computer, a vehicle-mounted terminal, a robot, a wearable device, and a pedometer, and the like.

[0141] The radio frequency unit 701 is configured to receive a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0142] The processor 710 is configured to obtain the measurement result of the neighboring cell according to the measurement result of the first SSB and the measurement result of the second SSB, wherein the first SSB and the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameter.

[0143] Optionally, the index information of the first SSB and the index information of the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameter.

[0144] Optionally, the QCL configuration parameter comprises a QCL modulus value, and an operation result of the index information of the first SSB relative to the QCL modulus value matches an operation result of the index information of the second SSB relative to the QCL modulus value.

[0145] Optionally, an operation result of k mod q matches an operation result of j mod q, or an operation result of (k×n / 2) mod q matches an operation result of (j×n / 2) mod q.

[0146] wherein the k is the index information of the first SSB, the j is the index information of the second SSB, the q is the QCL modulus value, the mod is a remainder function, and the n is the number of preset type physical downlink control channels (PDCCHs) in a unit time domain resource or the number of cell detection signal (DRS) units in a unit time domain resource.

[0147] Optionally, the QCL configuration parameter further comprises the number of the preset type PDCCHs in the unit time domain resource or the number of DRS units in the unit time domain resource.

[0148] Optionally, in a case where the terminal obtains a measurement SSB list, the index information of the first SSB and the index information of the second SSB are determined through time synchronization in a case where the serving cell and the neighboring cell are time-synchronized; or

[0149] In a case where the terminal does not obtain a measurement SSB list, the index information of the first SSB and the index information of the second SSB are determined through the positions of the first SSB and the second SSB in a case where the serving cell and the neighboring cell are time-synchronized; or

[0150] In a case where the terminal obtains a measurement SSB list, the index information of the first SSB is determined through a demodulation reference signal (DMRS) of a physical broadcast channel (PBCH) of the first SSB, and the index information of the second SSB is determined through a DMRS of a PBCH of the second SSB in a case where the serving cell and the neighboring cell are not time-synchronized; or

[0151] In a case that the serving cell and the neighboring cell are not time-synchronized and the terminal does not acquire the measurement SSB list, index information of the first SSB and the second SSB is determined by DMRS of PBCH of the first SSB, DMRS of PBCH of the second SSB and an index difference value, wherein the index difference value is an index difference value determined according to positions of the first SSB and the second SSB measured by the terminal.

[0152] Optionally, the index information of the first SSB includes an index of the first SSB or partial information of the index of the first SSB; and / or

[0153] The index information of the second SSB includes an index of the second SSB or partial information of the index of the second SSB.

[0154] Optionally, in a case that the terminal acquires the measurement SSB list:

[0155] The acquiring the measurement result of the neighboring cell according to the measurement result of the first SSB and the measurement result of the second SSB includes:

[0156] If it is determined according to the QCL configuration parameter that there is a second SSB satisfying the QCL relationship with the first SSB in the measurement SSB list, the measurement result of the neighboring cell is acquired according to the measurement result of the first SSB and the measurement result of the second SSB.

[0157] After receiving the QCL configuration parameter, the processor 710 is further configured to:

[0158] If it is determined according to the QCL configuration parameter that there is no second SSB satisfying the QCL relationship with the first SSB in the measurement SSB list, the measurement result of the first SSB is discarded.

[0159] Optionally, the receiving the QCL configuration parameter for neighboring cell measurement includes:

[0160] Receiving a system information block (SIB) or a radio resource control (RRC) message, wherein the SIB or the RRC message carries the QCL configuration parameter for neighboring cell measurement.

[0161] Optionally, the QCL configuration parameter is configured in a unit of a cell, or the QCL configuration parameter is configured in a unit of a frequency domain resource.

[0162] Optionally, the acquiring the measurement result of the neighboring cell according to the measurement result of the first synchronization signal block (SSB) and the measurement result of the second SSB includes:

[0163] The measurement result of the first SSB and the measurement result of the second SSB are subjected to a reference signal received power, RSRP, process as samples of the same measurement to obtain the measurement result of the neighboring cell.

[0164] Optionally, the RSRP process comprises:

[0165] The measurement result of the first SSB and the measurement result of the second SSB are subjected to a reference signal received power, RSRP, process as samples of the same measurement to obtain the measurement result of the neighboring cell.

[0166] The terminal can improve the accuracy of the measurement result.

[0167] It should be understood that in the embodiments of the present disclosure, the radio frequency unit 701 can be used for receiving and sending signals in the process of information transmission or conversation. Specifically, after receiving the downlink data from the base station, the radio frequency unit 701 processes the data for the processor 710. In addition, the radio frequency unit 701 sends the uplink data to the base station. Generally, the radio frequency unit 701 includes but is not limited to an antenna, at least one amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, and the like. In addition, the radio frequency unit 701 can also communicate with the network and other devices through a wireless communication system.

[0168] The terminal provides the user with wireless broadband Internet access through the network module 702, such as helping the user to send and receive emails, browse web pages, and access streaming media.

[0169] The audio output unit 703 can convert audio data received by the radio frequency unit 701 or the network module 702 or stored in the memory 709 into an audio signal and output as a sound. Moreover, the audio output unit 703 can also provide audio output related to a specific function performed by the terminal 700 (for example, a call signal receiving sound, a message receiving sound, and the like). The audio output unit 703 includes a speaker, a buzzer, a receiver, and the like.

[0170] The input unit 704 is used to receive audio or video signals. The input unit 704 can include a graphics processor (GPU) 7041 and a microphone 7042. The graphics processor 7041 processes image data of a still picture or a video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode. The processed image frame can be displayed on the display unit 706. The image frame processed by the graphics processor 7041 can be stored in the memory 709 (or other storage medium) or transmitted via the radio frequency unit 701 or the network module 702. The microphone 7042 can receive sound and can process such sound into audio data. The processed audio data can be converted into a format that can be transmitted to a mobile communication base station via the radio frequency unit 701 in the case of a telephone conversation mode.

[0171] The terminal 700 also includes at least one sensor 705, such as a light sensor, a motion sensor, and other sensors. Specifically, the light sensor includes an ambient light sensor and a proximity sensor, wherein the ambient light sensor can adjust the brightness of the display panel 7061 according to the brightness of ambient light, and the proximity sensor can turn off the display panel 7061 and / or the backlight when the terminal 700 is moved to the ear. As one of the motion sensors, the accelerometer sensor can detect the magnitude of acceleration in each direction (generally three axes), and when at rest, can detect the magnitude and direction of gravity, and can be used to identify the terminal posture (such as screen switching, related games, magnetometer posture calibration), vibration identification related functions (such as pedometer, knocking), etc. The sensor 705 can also include a fingerprint sensor, a pressure sensor, an iris sensor, a molecular sensor, a gyroscope, a barometer, a hygrometer, a thermometer, an infrared sensor, etc., which will not be described here.

[0172] The display unit 706 is used to display information input by the user or information provided to the user. The display unit 706 can include a display panel 7061, which can be configured in the form of a liquid crystal display (LCD), an organic light-emitting diode (OLED), etc.

[0173] The user input unit 707 can be used to receive input digital or character information, and to generate key signal inputs related to the user settings and function control of the terminal. Specifically, the user input unit 707 includes a touch panel 7071 and other input devices 7072. The touch panel 7071, also known as a touch screen, can collect user touch operations (such as user operations using a finger, a stylus, etc. on or near the touch panel 7071) on or near it. The touch panel 7071 can include two parts, a touch detection device and a touch controller. The touch detection device detects the user's touch position and detects the signals generated by the touch operation, and transmits the signals to the touch controller; the touch controller receives touch information from the touch detection device, and converts it into touch coordinates, and sends it to the processor 710, receives commands from the processor 710 and executes them. In addition, the touch panel 7071 can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic wave. In addition to the touch panel 7071, the user input unit 707 can also include other input devices 7072. Specifically, the other input devices 7072 can include, but are not limited to, a physical keyboard, function keys (such as volume control buttons, on-off buttons, etc.), trackballs, mice, joysticks, etc., which will not be described here.

[0174] Further, the touch panel 7071 can be overlaid on the display panel 7061, and when the touch panel 7071 detects a touch operation thereon or in the vicinity thereof, transmits the touch event to the processor 710 to determine the type of the touch event, and then the processor 710 provides corresponding visual output on the display panel 7061 according to the type of the touch event. Although in FIG. 7, the touch panel 7071 and the display panel 7061 are implemented as two independent components to realize the input and output functions of the terminal, in some embodiments, the touch panel 7071 and the display panel 7061 can be integrated to realize the input and output functions of the terminal, which is not limited here.

[0175] The interface unit 708 is an interface for connecting external devices with the terminal 700. For example, the external devices can include a wired or wireless headset port, an external power supply (or battery charger) port, a wired or wireless data port, a memory card port, a port for connecting a device having an identification module, an audio input / output (I / O) port, a video I / O port, a headphone port, and the like. The interface unit 708 can be used to receive input (e.g., data information, power, and the like) from external devices and transmit the received input to one or more elements within the terminal 700, or can be used to transmit data between the terminal 700 and external devices.

[0176] The memory 709 can be used to store software programs and various data. The memory 709 can mainly include a storage program area and a storage data area, wherein the storage program area can store operating systems, application programs (such as sound playing functions, image playing functions, and the like) required by at least one function, and the like; the storage data area can store data (such as audio data, phone books, and the like) created according to the use of the mobile phone, and the like. In addition, the memory 709 can include a high-speed random access memory, and can also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other volatile solid-state memory device.

[0177] The processor 710 is the control center of the terminal, connects all parts of the terminal through various interfaces and lines, executes various functions of the terminal and processes data by running or executing software programs and / or modules stored in the memory 709 and calling data stored in the memory 709, and thus monitors the terminal as a whole. The processor 710 can include one or more processing units; optionally, the processor 710 can integrate an application processor and a modem processor, wherein the application processor mainly processes operating systems, user interfaces, and application programs, and the modem processor mainly processes wireless communication. It can be understood that the above-mentioned modem processor can also not be integrated into the processor 710.

[0178] The terminal 700 can further include a power supply 711 (such as a battery) that supplies power to each component of the terminal 700. The power supply 711 can be logically connected to the processor 710 through a power management system, so that the power management system can manage charging, discharging, and power consumption management, etc.

[0179] In addition, the terminal 700 includes some functional modules that are not shown here and will not be described here.

[0180] Optionally, the embodiment of the present disclosure also provides a terminal, including a processor 710, a memory 709, a computer program stored in the memory 709 and executable on the processor 710, which implements each process of the above-mentioned measurement processing method embodiment when executed by the processor 710, and can achieve the same technical effects. To avoid repetition, it will not be described here.

[0181] Referring to FIG. 8, FIG. 8 is a structural diagram of another network device provided by the embodiment of the present disclosure, as shown in FIG. 8, the network device 800 includes: a processor 801, a transceiver 802, a memory 803 and a bus interface, wherein:

[0182] The transceiver 802 is configured to send, to a terminal, a QCL configuration parameter for adjacent cell measurement, wherein the adjacent cell is an adjacent cell of a serving cell of the terminal.

[0183] Optionally, the sending, to the terminal, the QCL configuration parameter for adjacent cell measurement includes:

[0184] The transceiver 802 is configured to send, to the terminal, a SIB or an RRC message, wherein the SIB or the RRC message carries the QCL configuration parameter for adjacent cell measurement.

[0185] Optionally, the QCL configuration parameter is configured in a cell unit, or the QCL configuration parameter is configured in a frequency domain resource unit.

[0186] The above network device can enable the terminal to improve the accuracy of the measurement result.

[0187] The transceiver 802 is configured to receive and send data under the control of the processor 801, and the transceiver 802 includes at least two antenna ports.

[0188] In Figure 8, the bus architecture can include any number of interconnected buses and bridges, specifically, various circuit links between the processor 801, which is representative of one or more processors, and the memory 803, which is representative of memory. The bus architecture can also link various other circuits, such as peripheral devices, voltage stabilizers, and power management circuits, which are well known in the art, and thus, are not further described herein. The bus interface provides an interface. The transceiver 802 can be a plurality of elements, i.e., including a transmitter and a receiver, which provide a unit for communicating with various other devices on a transmission medium. The user interface 804 can also be an interface capable of connecting to a required device for different user equipment, including but not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.

[0189] The processor 801 is responsible for managing the bus architecture and general processing, and the memory 803 can store data used by the processor 801 in performing operations.

[0190] Optionally, the embodiments of the present disclosure also provide a network device, including a processor 801, a memory 803, a computer program stored in the memory 803 and executable on the processor 801, which implements various processes of the above-mentioned parameter configuration method embodiments when executed by the processor 801, and can achieve the same technical effects, and thus, are not further described herein.

[0191] The embodiments of the present disclosure also provide a computer readable storage medium, which stores a computer program, which, when executed by a processor, implements various processes of the measurement processing method embodiments provided by the embodiments of the present disclosure, or which, when executed by a processor, implements various processes of the parameter configuration method embodiments provided by the embodiments of the present disclosure, and can achieve the same technical effects, and thus, are not further described herein. The computer readable storage medium, such as a Read-Only Memory (ROM), a Random Access Memory (RAM), a magnetic disk or an optical disk, and the like.

[0192] It should be noted that, in this document, the term "comprising" or "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or apparatus including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such a process, method, article or apparatus. Without more limitations, the element defined by the statement "comprising a" does not exclude the presence of additional identical elements in the process, method, article or apparatus including the element.

[0193] Those skilled in the art can clearly understand the above-mentioned embodiment method can be realized by means of software and the necessary general hardware platform, of course, it can also be realized by hardware, but in many cases, the former is a better embodiment. Based on such understanding, the technical solutions of the present disclosure essentially or say the part that contributes to the related art can be embodied in the form of a software product, which is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) and includes a plurality of instructions for causing a terminal (which can be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the method described in each embodiment of the present disclosure.

[0194] The embodiments of the present disclosure are described above in combination with the drawings, but the present disclosure is not limited to the above-mentioned specific embodiments, and the above-mentioned specific embodiments are only illustrative, not limiting, and those skilled in the art can make many forms without departing from the purpose of the present disclosure and the scope protected by the claims under the inspiration of the present disclosure, which all belong to the protection of the present disclosure.

Claims

1. A measurement processing method, applied to a terminal, comprising: Receive quasi-co-location QCL configuration parameters for neighboring cell measurements, wherein the neighboring cell is the neighboring cell of the serving cell of the terminal; Based on the measurement results of the first synchronization signal block (SSB) and the second SSB, the measurement results of the neighboring cells are obtained, wherein the first SSB and the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameters.

2. The method as described in claim 1, wherein, The index information of the first SSB and the index information of the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameters.

3. The method as described in claim 2, wherein, The QCL configuration parameters include the QCL modulus, and the result of the operation of the index information of the first SSB relative to the QCL modulus is matched with the result of the operation of the index information of the second SSB relative to the QCL modulus.

4. The method of claim 3, wherein, The result of the operation k mod q matches the result of the operation j mod q, or the result of the operation (k×n / 2) mod q matches the result of the operation (j×n / 2) mod q; Wherein, k is the index information of the first SSB, j is the index information of the second SSB, q is the modulus of the QCL, mod is the modulo function, and n is the number of preset type physical downlink control channels (PDCCHs) or the number of cell detection signal (DRS) units within a unit time domain resource.

5. The method of claim 4, wherein, The QCL configuration parameters also include the number of preset type PDCCHs within the unit time domain resource, or the number of DRS units within the unit time domain resource.

6. The method according to any one of claims 2 to 5, wherein, When the serving cell and the neighboring cell are time synchronized, and the terminal has a list of measurement SSBs, the index information of the first SSB and the second SSB is determined through the time synchronization. or When the serving cell and the neighboring cell are time synchronized and the terminal has not obtained a list of measured SSBs, the index information of the first SSB and the second SSB is determined by measuring the positions of the first SSB and the second SSB. or When the serving cell and the neighboring cells are out of time and the terminal has a list of measurement SSBs, the index information of the first SSB is determined by the demodulation reference signal (DMRS) of the physical broadcast channel (PBCH) of the first SSB, and the index information of the second SSB is determined by the DMRS of the PBCH of the second SSB. or When the serving cell and the neighboring cells are out of time and the terminal does not have a list of measured SSBs, the index information of the first SSB and the second SSB is determined by the DMRS of the PBCH of the first SSB, the DMRS of the PBCH of the second SSB, and the index difference, wherein the index difference is determined based on the index difference of the positions of the first SSB and the second SSB measured by the terminal.

7. The method of claim 6, wherein, The index information of the first SSB includes the index of the first SSB or part of the index information of the first SSB; and / or The index information of the second SSB includes the index of the second SSB or part of the index information of the second SSB.

8. The method of claim 6, wherein, If the terminal has the measured SSB list: The step of obtaining the measurement results of the neighboring cells based on the measurement results of the first SSB and the second SSB includes: If, based on the QCL configuration parameters, it is determined that there exists a second SSB in the measurement SSB list that satisfies the QCL relationship with the first SSB, then the measurement results of the neighboring cell are obtained based on the measurement results of the first SSB and the measurement results of the second SSB. After receiving the QCL configuration parameters, the method further includes: If, based on the QCL configuration parameters, it is determined that there is no second SSB in the measurement SSB list that satisfies the QCL relationship with the first SSB, then the measurement result of the first SSB is discarded.

9. The method according to any one of claims 1 to 5, wherein, The receiving of QCL configuration parameters for neighboring cell measurements includes: Receive System Information Block (SIB) or Radio Resource Control (RRC) message, wherein the SIB or the RRC message carries the QCL configuration parameters for neighboring cell measurements.

10. The method according to any one of claims 1 to 5, wherein, The QCL configuration parameters are configured on a cell-by-cell basis, or on a frequency domain resource-by-resource basis.

11. The method according to any one of claims 1 to 5, wherein, The step of obtaining the measurement results of the neighboring cells based on the measurement results of the first SSB and the second SSB includes: The measurement results of the first SSB and the second SSB are used as samples of the same measurement for Reference Signal Received Power (RSRP) processing to obtain the measurement results of the neighboring cells.

12. The method of claim 11, wherein, The RSRP processing includes: The measurement results of the first SSB and the measurement results of the second SSB are combined and averaged.

13. A parameter configuration method, applied to a network device, comprising: The terminal is sent QCL configuration parameters for neighboring cell measurement, wherein the neighboring cell is the neighboring cell of the terminal's serving cell.

14. The method of claim 13, wherein, The step of sending QCL configuration parameters for neighboring cell measurements to the terminal includes: Send an SIB or RRC message to the terminal, wherein the SIB or RRC message carries the QCL configuration parameters for neighboring cell measurement.

15. The method of claim 13 or 14, wherein, The QCL configuration parameters are configured on a cell-by-cell basis, or on a frequency domain resource-by-resource basis.

16. A terminal, comprising: The receiving module is configured to receive QCL configuration parameters for neighboring cell measurements, wherein the neighboring cell is the neighboring cell of the serving cell of the terminal; The processing module is used to obtain the measurement results of the neighboring cells based on the measurement results of the first SSB and the measurement results of the second SSB, wherein the first SSB and the second SSB satisfy the QCL relationship corresponding to the QCL configuration parameters.

17. A network device, comprising: The sending module is used to send QCL configuration parameters for neighboring cell measurement to the terminal, wherein the neighboring cell is the neighboring cell of the terminal's serving cell.

18. A terminal, comprising: A memory, a processor, and a program stored in the memory and executable on the processor, wherein the program, when executed by the processor, implements the steps of the measurement processing method as described in any one of claims 1 to 12.

19. A network device, comprising: A memory, a processor, and a program stored in the memory and executable on the processor, wherein the program, when executed by the processor, implements the steps of the parameter configuration method as claimed in any one of claims 13 to 15.

20. A computer-readable storage medium, wherein, The computer-readable storage medium stores a computer program that, when executed by a processor, implements the steps of the measurement processing method as described in any one of claims 1 to 12, or, when executed by a processor, implements the steps of the parameter configuration method as described in any one of claims 13 to 15.