RRM measurement performance test method and device, terminal, network side equipment and medium

Through the collaboration between the terminal and the network-side equipment, the initial RRM measurement is performed using the low-power receiving unit and the main receiving unit is awakened under the conditions, which solves the problem of insufficient RRM measurement efficiency and energy consumption management in the low-power mode, and achieves accurate RRM measurement and terminal energy saving.

CN120238931APending Publication Date: 2025-07-01VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
CN202311844715.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-28
Publication Date
2025-07-01

AI Technical Summary

Technical Problem

The lack of performance testing schemes for the wake-up main receiver behavior of low-power receivers in the prior art leads to insufficient RRM measurement efficiency and energy consumption management of the terminal in the low-power mode.

Method used

Through cooperation between the terminal and the network-side device, the initial RRM measurement is performed using the low-power receiving unit. When the measurement result meets the preset conditions, the main receiving unit is awakened to perform further RRM measurement and cell reselection, and the RRM measurement performance is determined using the access information.

Benefits of technology

It realizes effective performance testing of the behavior of the wake-up main receiver of the low-power receiver, improves the RRM measurement efficiency and energy consumption management of the terminal in the low-power mode, and ensures the accuracy of the measurement results and the energy-saving effect of the terminal.

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Abstract

The invention discloses an RRM measurement performance test method, an RRM measurement performance test device, a terminal, network side equipment and a computer readable storage medium, and particularly relates to the technical field of communication. The method comprises: a first receiving unit of a terminal performs first RRM measurement on a first cell in response to receiving a test signal sent by a network side device, the operating power of the first receiving unit satisfying a first preset condition; under the condition that a measurement result of the first RRM measurement meets a second preset condition, the terminal starts a second receiving unit, and performs second RRM measurement through the second receiving unit to perform cell reselection; wherein the access information of the terminal in the second cell is used for determining a test result of the RRM measurement performance of the terminal. The embodiment of the invention provides a performance test scheme for the behavior of waking up the main receiver by the low-power-consumption receiver.
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Description

Technical Field

[0001] This application belongs to the field of communication technologies, and particularly relates to a test method for the measurement performance of Radio Resource Management (RRM), a test device for the measurement performance of RRM, a terminal, a network-side device, and a computer-readable storage medium. Background Art

[0002] When a low-power receiver is deployed in a terminal, the RRM measurement of a cell can be performed by the low-power receiver. Further, the low-power receiver determines whether to wake up the main receiver of the terminal according to the measurement result. For the behavior of the low-power receiver waking up the main receiver, there is a lack of a performance test solution in the related art. Summary of the Invention

[0003] Embodiments of this application provide a test method for the measurement performance of RRM, a test device for the measurement performance of RRM, a terminal, a network-side device, and a computer-readable storage medium, and provide a performance test solution for the behavior of a low-power receiver waking up the main receiver.

[0004] In a first aspect, a test method for the measurement performance of RRM is provided, which is executed by a terminal. The method includes: a first receiving unit of the terminal responds to a test signal sent by a network-side device, and performs a first RRM measurement on a first cell, where the operating power of the first receiving unit satisfies a first preset condition; when the measurement result of the first RRM measurement satisfies a second preset condition, the terminal starts a second receiving unit, and performs a second RRM measurement through the second receiving unit to perform cell reselection; wherein, the access information of the terminal in a second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0005] In a second aspect, a test method for the measurement performance of RRM is provided, which is executed by a network-side device. The method includes: the network-side device sends a test signal to the terminal, so that a first receiving unit of the terminal responds to the received test signal and performs a first RRM measurement on a first cell, where the operating power of the first receiving unit satisfies a first preset condition; wherein, when the measurement result of the first RRM measurement satisfies a second preset condition, the terminal starts a second receiving unit, and performs a second RRM measurement through the second receiving unit to perform cell reselection; the access information of the terminal in a second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0006] In a third aspect, a test apparatus for RRM measurement performance is provided. The apparatus includes an RRM measurement module and a cell reselection module. Among them, the above-mentioned RRM measurement module is used for the first receiving unit of the terminal to perform a first RRM measurement on a first cell in response to receiving a test signal sent by a network-side device, where the operating power of the first receiving unit meets a first preset condition. The above-mentioned cell reselection module is used for, when the measurement result of the first RRM measurement meets a second preset condition, the terminal starts a second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection. Among them, the access information of the terminal in a second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0007] In a fourth aspect, a test apparatus for RRM measurement performance is provided. The apparatus includes a first sending module. Among them, the above-mentioned first sending module is used for the network-side device to send a test signal to the terminal, so that the first receiving unit of the terminal performs a first RRM measurement on a first cell in response to receiving the test signal, where the operating power of the first receiving unit meets a first preset condition. Among them, when the measurement result of the first RRM measurement meets a second preset condition, the terminal starts a second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection. The access information of the terminal in a second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0008] In a fifth aspect, a terminal is provided. The terminal includes a processor and a memory. The above-mentioned memory stores a program or instruction that can run on the above-mentioned processor. When the above-mentioned program or instruction is executed by the above-mentioned processor, the steps of the test method for RRM measurement performance provided in the first aspect are implemented.

[0009] In a sixth aspect, a terminal is provided, including a processor and a communication interface. Among them, the above-mentioned processor is used to implement the steps of the test method for RRM measurement performance provided in the first aspect when executed, and the above-mentioned communication interface is used to communicate with a network-side device.

[0010] In a seventh aspect, a network-side device is provided. The network-side device includes a processor and a memory. The above-mentioned memory stores a program or instruction that can run on the above-mentioned processor. When the above-mentioned program or instruction is executed by the above-mentioned processor, the steps of the test method for RRM measurement performance provided in the second aspect are implemented.

[0011] In an eighth aspect, a network-side device is provided, including a processor and a communication interface. Among them, the above-mentioned processor is used to implement the steps of the test method for RRM measurement performance provided in the second aspect when executed, and the above-mentioned communication interface is used to interact with a terminal device.

[0012] In a ninth aspect, a readable storage medium is provided. A program or instructions are stored on the readable storage medium. When the program or instructions are executed by a processor, the steps of the RRM measurement performance test method provided in the first aspect are implemented, or the steps of the RRM measurement performance test method provided in the second aspect are implemented.

[0013] In a tenth aspect, a wireless communication system is provided, including: a terminal and a network-side device. The terminal can be used to execute the steps of the RRM measurement performance test method provided in the first aspect, and the network-side device can be used to execute the steps of the RRM measurement performance test method provided in the second aspect.

[0014] In an eleventh aspect, a chip is provided. The chip includes a processor and a communication interface. The communication interface is coupled to the processor. The processor is used to run a program or instructions to implement the RRM measurement performance test method provided in the first aspect, or to implement the RRM measurement performance test method provided in the second aspect.

[0015] In a twelfth aspect, a computer program / program product is provided. The computer program / program product is stored in a storage medium. The program / program product is executed by at least one processor to implement the steps of the RRM measurement performance test method as described in the first aspect, or to execute the RRM measurement performance test method provided in the second aspect.

[0016] In an embodiment of the present application, a first receiving unit with a running power meeting a first preset condition is deployed in a terminal. The first receiving unit is in a startup phase to monitor test signals sent by a network-side device, and the second receiving unit is in a sleep state. When the first receiving unit monitors that the network-side device sends a test signal to the terminal, a first RRM measurement is performed on a first cell. When the measurement result of the first RRM measurement meets a second preset condition, the terminal starts the second receiving unit. And a second RRM measurement is performed through the second receiving unit for cell reselection. Further, the access information of the second cell by the terminal can be used to determine the test result of the RRM measurement performance of the terminal. For example, the successful access of the terminal to the second cell indicates that the first receiving unit successfully wakes up the second receiving unit during the RRM measurement process. It can be seen that the embodiment of the present application can provide a performance test scheme for the behavior of a low-power receiver waking up a main receiver. Description of the Drawings

[0017] Figure 1 A schematic block diagram of a wireless communication system to which the embodiment of the present application can be applied is shown.

[0018] Figure 2 A schematic structural diagram of a terminal to which the embodiment of the present application can be applied is shown.

[0019] Figure 3 It is a schematic flowchart of a test method for RRM measurement performance provided in the first embodiment of the present application.

[0020] Figure 4 It is a schematic diagram of a test signal provided in the embodiment of the present application.

[0021] Figure 5 It is a schematic flowchart of a test method for RRM measurement performance provided in the second embodiment of the present application.

[0022] Figure 6 It is a schematic flowchart of a test method for RRM measurement performance provided in the third embodiment of the present application.

[0023] Figure 7 It is a schematic flowchart of a test method for RRM measurement performance provided in the fourth embodiment of the present application.

[0024] Figure 8 It is a schematic flowchart of a test method for RRM measurement performance provided in the fifth embodiment of the present application.

[0025] Figure 9 It is a schematic flowchart of a test method for RRM measurement performance provided in the sixth embodiment of the present application.

[0026] Figure 10 It is a schematic flowchart of a test method for RRM measurement performance provided in the seventh embodiment of the present application.

[0027] Figure 11 It is a schematic flowchart of a test method for RRM measurement performance provided in the eighth embodiment of the present application.

[0028] Figure 12 It is a schematic flowchart of a test method for RRM measurement performance provided in the ninth embodiment of the present application.

[0029] Figure 13 It is a schematic flowchart of a test method for RRM measurement performance provided in the tenth embodiment of the present application.

[0030] Figure 14 It is a schematic flowchart of a test method for RRM measurement performance provided in the eleventh embodiment of the present application.

[0031] Figure 15 It is a schematic flowchart of a test method for RRM measurement performance provided in the twelfth embodiment of the present application.

[0032] Figure 16 It is a schematic diagram of information interaction of a test method for RRM measurement performance provided in the thirteenth embodiment of the present application.

[0033] Figure 17 Schematic diagram of information interaction for a test method of RRM measurement performance provided in the fourteenth embodiment of the present application.

[0034] Figure 18 Schematic diagram of information interaction for a test method of RRM measurement performance provided in the fifteenth embodiment of the present application.

[0035] Figure 19 Schematic diagram of information interaction for a test method of RRM measurement performance provided in the sixteenth embodiment of the present application.

[0036] Figure 20 Schematic diagram of information interaction for a test method of RRM measurement performance provided in the seventeenth embodiment of the present application.

[0037] Figure 21 Schematic diagram of the structure of a test device for RRM measurement performance provided in the eighteenth embodiment of the present application.

[0038] Figure 22 Schematic diagram of the structure of a test device for RRM measurement performance provided in the nineteenth embodiment of the present application.

[0039] Figure 23 Schematic diagram of the structure of a communication device provided in the twentieth embodiment of the present application.

[0040] Figure 24 Schematic diagram of the structure of a terminal provided in the twenty - first embodiment of the present application.

[0041] Figure 25 Schematic diagram of the structure of a network - side device provided in the twenty - second embodiment of the present application. Detailed implementation manners

[0042] Next, the technical solutions in the embodiments of the present application will be clearly described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art belong to the scope of protection of the present application.

[0043] The terms "first", "second", etc. in this application are used to distinguish similar objects, rather than to describe a specific order or sequence. It should be understood that such terms can be interchanged under appropriate circumstances so that the embodiments of this application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first" and "second" are generally of the same type, and do not limit the number of objects. For example, the first object can be one or multiple. In addition, "or" in this application means at least one of the connected objects. For example, "A or B" covers three scenarios, namely, Scenario 1: including A and not including B; Scenario 2: including B and not including A; Scenario 3: including both A and B. The character " / " generally indicates an "or" relationship between the associated objects before and after.

[0044] The term "indication" in this application can be either a direct indication (or an explicit indication) or an indirect indication (or an implicit indication). Among them, a direct indication can be understood as that the sender clearly informs the receiver of specific information, operations to be performed, or request results, etc. in the sent indication; an indirect indication can be understood as that the receiver determines the corresponding information based on the indication sent by the sender, or makes a judgment and determines the operations to be performed or request results, etc. according to the judgment result.

[0045] It should be noted that the positioning technology described in the embodiments of this application is not limited to the Long Term Evolution (LTE) / LTE-Advanced (LTE-A) system, and can also be used in other wireless communication systems, such as the global system of mobile communication (GSM) system, Code Division Multiple Access (CDMA), Wideband Code Division Multiple Access (WCDMA) system, General Packet Radio Service (GPRS), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA), or other systems. The terms "system" and "network" in the embodiments of this application are often used interchangeably. The described technology can be used in the above-mentioned systems and radio technologies, as well as in other systems and radio technologies. The following description describes the New Radio (NR) system for example purposes, and the NR term is used in most of the following descriptions, but these technologies can also be applied to systems other than the NR system, such as the 6th Generation (6G) communication system. th Generation, 6G) communication system.

[0046] Figure 1 A block diagram showing a wireless communication system to which the embodiments of this application can be applied. Refer to Figure 1 , the wireless communication system includes a terminal 110 and a network-side device 120.

[0047] Among them, the network-side device 120 may include an access network device or a core network device. Among them, the access network device may also be referred to as a radio access network (RAN) device, a radio access network function, or a radio access network unit. The access network device may include a base station, a wireless local area network (WLAN) access point (AP), or a wireless fidelity (WiFi) node, etc. Among them, the base station may be referred to as Node B (NB), Evolved Node B (eNB), the next generation Node B (gNB), New Radio Node B (NR Node B), access point, relay base station (RBS), serving base station (SBS), base transceiver station (BTS), radio base station, radio transceiver, basic service set (BSS), extended service set (ESS), home Node B (HNB), home evolved Node B, transmission reception point (TRP), or some other suitable term in the art. As long as the same technical effect is achieved, the base station is not limited to specific technical terms. It should be noted that in the embodiments of this application, only the base station in the NR system is taken as an example for introduction, and the specific type of the base station is not limited.

[0048] In this application, the network-side device 120 may be a test device for sending a test signal to a terminal to be tested, and then testing the RRM measurement performance of the terminal through the test signal.

[0049] The terminal 110 can be a mobile phone, a tablet personal computer, a laptop computer, a notebook computer, a personal digital assistant (PDA), a handheld computer, a netbook, an ultra-mobile personal computer (UMPC), a mobile Internet device (MID), an augmented reality (AR) device, a virtual reality (VR) device, a robot, a wearable device, a flight vehicle, a vehicle user equipment (VUE), a shipborne device, a pedestrian user equipment (PUE), a smart home (home appliances with wireless communication functions, such as refrigerators, TVs, washing machines, or furniture, etc.), a game console, a personal computer (PC), a teller machine, or a self-service machine, etc., which are terminal-side devices. Wearable devices include: smart watches, smart bracelets, smart earphones, smart glasses, smart jewelry (such as smart bracelets, smart bracelets, smart rings, smart necklaces, smart anklets, smart ankle chains, etc.), smart wristbands, smart clothing, etc. Among them, the vehicle user equipment can also be referred to as a vehicle terminal, a vehicle controller, a vehicle module, a vehicle component, a vehicle chip, or a vehicle unit, etc. It should be noted that the specific type of the terminal 110 is not limited in the embodiments of the present application.

[0050] Figure 2 FIG. shows a schematic block diagram of a terminal 110 to which the embodiments of the present application can be applied. Refer to Figure 2 , the terminal 110 includes: a first receiving unit and a second receiving unit, where the power of the first receiving unit satisfies a first preset condition. Specifically, it may refer to that the power of the first receiving unit is less than a preset value, belonging to a low-power receiving module, or it can be a nearly "zero"-power receiving unit. Specifically, this nearly "zero"-power receiving unit does not involve complex processing of signals such as signal detection (such as amplification, filtering, quantization, etc.) of a radio frequency (RF) module and baseband (MODEM) signals, and only relies on passive matching filtering and signal processing with relatively low power consumption. In some terminals, the first receiving unit and the second receiving unit are two modules within the same receiver; in some terminals, the first receiving unit and the second receiving unit are respectively a receiver, and the embodiments of the present application do not make any limitations in this regard.

[0051] Taking the example that the first receiving unit and the second receiving unit belong to two modules within the same receiver, the receiver is a low power wake up radio (LP-WUR) or an almost zero power wake up radio (AZP-WUR). As Figure 2 shown, the first receiving unit is a low power receiving module (also referred to as a low power wake up receiving module or a low power receiver in the embodiments of the present application), which is used to receive a wake up signal, such as a low power wake up signal (LP-WUS); the second receiving unit is a main communication module (also referred to as a main receiver in the embodiments of the present application), which is used for the transceiver of mobile communication data. When the terminal 110 is in an energy-saving state (standby state), the main communication module is turned off or enters a sleep state, and the low power receiving module is in an active state to monitor the above-mentioned wake up signal. When downlink data arrives at the terminal 110, the network-side device 120 will first send a wake up signal to the terminal 110. The terminal 110 in the energy-saving state monitors the wake up signal through the low power receiving module, and then triggers the main communication module to turn on or be woken up from the off state through a series of judgments. At this time, the low power receiving module enters the off state from the working state. Among them, the low power wake up receiving module can be continuously turned on, or intermittently turned on, etc., and the embodiments of the present application do not limit this. Thus, when a low power receiver is deployed in the terminal 110, the power consumption of the terminal in the standby state can be reduced.

[0052] When a low power receiver is deployed in the terminal, the low power receiver (the first receiving unit) performs RRM measurements on the serving cell. Further, the low power receiver (the first receiving unit) determines whether to wake up the main receiver (the second receiving unit) according to the RRM measurement situation. In the related art, for the behavior of the low power receiver waking up the main receiver, there is a lack of a performance test scheme for this behavior. Therefore, providing a performance test scheme for the behavior of the low power receiver waking up the main receiver is a problem that needs to be solved.

[0053] The solution provided by this application can solve the problems existing in the related art. Specifically, when the network side sends a test signal to the terminal, the low-power receiver (the first receiving unit) of the terminal performs the first RRM measurement on the first cell, so as to reduce the power consumption of the terminal. When the measurement result of the above first RRM measurement meets the second preset condition, the terminal then starts the main receiver (the second receiving unit), and performs the second RRM measurement through the second receiving unit to perform cell reselection. Further, the access information of the terminal in the second cell can be used to determine the test result of the RRM measurement performance of the terminal. For example, the successful access of the terminal to the second cell indicates that the first receiving unit successfully wakes up the second receiving unit during the RRM measurement process. It can be seen that the embodiments of this application can provide a performance test solution for the behavior of the low-power receiver waking up the main receiver.

[0054] The following will combine the accompanying drawings and elaborate in detail on the test method for RRM measurement performance provided by the embodiments of this application through some embodiments and their application scenarios.

[0055] Embodiment 1

[0056] Figure 3 It is a schematic flowchart of the test method P300 for RRM measurement performance provided by Embodiment 1 of this application. The test method P300 for RRM measurement performance is applied to the terminal. As Figure 3 shown, the test method P300 for RRM measurement performance provided in this embodiment includes the following steps.

[0057] S310. The first receiving unit of the terminal responds to the test signal received from the network side device and performs the first RRM measurement on the first cell, where the operating power of the first receiving unit meets the first preset condition.

[0058] In an exemplary embodiment, the terminal may be as Figure 2 shown, and is deployed with a first receiving unit as a low-power receiver and a second receiving unit that can be used as a main receiver. As mentioned before, the first receiving unit as a low-power receiver does not involve complex processing such as signal detection (such as amplification, filtering, quantization, etc.) of the radio frequency (RF) module and baseband (MODEM) signals, and only relies on passive matched filtering and signal processing with relatively low power consumption; the operating power of the first receiving unit is lower than the preset value and can be called a nearly "zero" receiver.

[0059] In an exemplary embodiment, the above terminal is in the Radio Resource Control (RRC) idle mode or inactivate mode. Exemplarily, the first cell may be the cell to which the terminal 110 is currently connected or where it is located. For simplicity of description, this cell may also be referred to as the home cell or current cell of the terminal 110. For example, for the terminal 110 in the RRC idle mode or inactivate mode, the home cell is the cell where the terminal 110 camps. For another example, for the terminal in the RRC connected state, the home cell is the serving cell of the terminal 110.

[0060] In an exemplary embodiment, the above network-side device may be a test device. The types of signals sent by the above network-side device for the first receiving unit to perform the first RRM measurement include at least one of the following: a low-power wake-up signal LP-WUS, and a low-power synchronization signal (LP-SS). Exemplarily, LP-WUS may be an on-off keying signal, where Figure 4 shows the time-domain pattern of the test signal LP-WUS used in the first RRM measurement. It can be understood that the type of test signal used in the process of performing the first RRM measurement is not limited to the above, and may also be other types, which are not limited in the embodiments of the present application.

[0061] Exemplarily, the above test signal (including the "first test signal" and "second test signal" in subsequent embodiments) refers to the signal used by the first receiving unit to perform the first RRM measurement. Specifically, it may be a signal with specific test parameters, or a signal with random parameters determined according to the actual scenario, which is not limited in the embodiments of the present application.

[0062] Exemplarily, the first receiving unit (low-power receiver) may determine that the above test signal is received through energy detection, sequence detection and recognition, or payload detection.

[0063] Exemplarily, when the first receiving unit (low-power receiver) receives the above test signal, the received test signal can be used for RRM performance measurement. For example, when the received test signal is LP-SS, at least one of the following measurements can be performed: Reference Signal Received Power (RSRP) measurement, Reference Signal Received Quality (RSRQ) measurement, Signal-to-Interference-plus Noise Ratio (SINR) measurement, and Receive Signal Strength Indication (RSSI) measurement.

[0064] It should be noted that during the process of the first receiving unit (low-power receiver) performing the above first RRM measurement on the first cell, the second receiving unit (main receiver) is in a shutdown state or a sleep state to maintain a relatively low power consumption level, so as to achieve power saving by receiving a wake-up signal. Thus, it is possible to avoid or reduce the radio frequency transceiver processing and baseband processing of the second receiving unit (main receiver), thereby achieving energy saving of the terminal.

[0065] S320. When the measurement result of the above first RRM measurement meets the second preset condition, the above terminal activates the second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection; wherein, the access information of the above terminal in the second cell is used to determine the test result of the RRM measurement performance of the above terminal.

[0066] In an exemplary embodiment, the above second preset condition may be that the first RRM measurement result reaches a preset threshold or a preset threshold range. Among them, when the measurement result of the above first RRM measurement meets the above second preset condition, it indicates that the current network quality is poor, and the second receiving unit (main receiver) needs to be woken up for cell reselection.

[0067] Exemplarily, the above first RRM measurement result can be represented by at least one of RSRP, RSRQ, SINR, and RSSI. Among them, each measurement result can define a corresponding threshold value. When at least one of the measurement results meets the corresponding threshold or threshold range, the terminal 110 needs to wake up the second receiving unit (main receiver) for cell reselection.

[0068] In an exemplary embodiment, the second receiving unit simultaneously performs second RRM measurements on the first cell and its neighboring cells according to a test signal (denoted as the "third test signal") sent by the network-side device. Among them, during the above-mentioned second RRM measurement process, the third test signal sent by the network-side device needs to meet the following condition: the network quality of at least one neighboring cell (intra-frequency or inter-frequency) is higher than the network signal quality of the first cell, so as to meet the test requirements of cell reselection. Exemplarily, a second cell with high network quality is determined from the at least one neighboring cell through cell reselection.

[0069] Further, the access information of the terminal 110 in the second cell is used to determine the test result of the RRM measurement performance of the terminal. Exemplarily, the above test result can be determined by the terminal 110 or by the network-side device 120 acting as a test device, thereby improving the test flexibility. The embodiments of the present application will be introduced separately in the subsequent embodiments.

[0070] In the solution provided by method P300, the first receiving unit of the terminal is in the startup phase to listen for the test signal sent by the network-side device, and the second receiving unit is in the sleep state. When the first receiving unit listens to the network-side device sending a test signal to the terminal, the first RRM measurement is performed on the first cell. When the measurement result of the above first RRM measurement meets the second preset condition, the terminal starts the second receiving unit. And the second RRM measurement is performed through the second receiving unit for cell reselection. Further, the access information of the terminal in the second cell can be used to determine the test result of the RRM measurement performance of the terminal. For example, the successful access of the terminal to the second cell indicates that the first receiving unit successfully wakes up the second receiving unit during the RRM measurement. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of a low-power receiver waking up a main receiver.

[0071] Embodiment 2

[0072] Based on Embodiment 1, Embodiment 2 of the present application provides a method for testing RRM measurement performance. The implementation methods described in Embodiment 1 can all be applied to Embodiment 2 and can achieve the same technical effects. In this embodiment, the terminal determines the test result. Figure 5 The flowchart of the method P500 for testing RRM measurement performance provided by Embodiment 2 of the present application is as Figure 5 shown. The method P500 for testing RRM measurement performance provided in this embodiment includes the following steps.

[0073] S510. The first receiving unit of the terminal responds to receiving the test signal sent by the network-side device and performs the first RRM measurement on the first cell, where the operating power of the first receiving unit meets the first preset condition.

[0074] The specific implementation of S510 is the same as that of S310, which will not be elaborated here.

[0075] S520: When the measurement result of the above first RRM measurement meets the second preset condition, the above terminal activates the second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection.

[0076] The specific implementation of S520 is the same as that of S320, which will not be elaborated here.

[0077] S530: The terminal determines the test result according to its access information in the second cell.

[0078] As described above, the above second cell is an adjacent cell of the first cell. When the first receiving unit of the terminal 110 determines that the network quality of the first cell is poor, the second receiving unit of the terminal 110 is woken up. The second RRM policy is executed through the second receiving unit, so as to receive the network of the second cell through cell reselection. Further, after the terminal 110 camps on the second cell, the test result is determined according to its access information in the second cell.

[0079] S530-1: After camping on the second cell, the terminal 110 obtains the number of accesses to the Random Access Channel (RACH) initiated by the second receiving unit within a preset duration. Among them, the RACH is an uplink transmission channel and is the first message sent from the UE to the eNB when the terminal 110 starts. In all cellular technologies (CDMA, GSM, WCDMA, LTE), there is a signal similar to the RACH as the first message sent from the UE to the eNB, and this message is applicable to the embodiments of the present application.

[0080] S530-2: Determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

[0081] Exemplarily, if the number of RACH accesses of the terminal within the above preset duration is less than the preset number, it indicates that the terminal 110 has successfully accessed the second cell. Thus, it is proved that the first receiving unit of the terminal successfully wakes up the second receiving unit after determining to perform the second RRM in the first cell. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of waking up the main receiver by a low-power receiver.

[0082] In an exemplary embodiment, after the terminal 110 determines the test result, it can also send the test result to the network-side device 120 for storage, so as to facilitate the statistical processing of the test result, etc.

[0083] Embodiment III

[0084] Based on Embodiment 1 and Embodiment 2, Embodiment 3 of the present application provides a test method for RRM measurement performance. The implementation methods described in Embodiment 1 and Embodiment 2 can both be applied to Embodiment 3 and achieve the same technical effects. Figure 6 It is a flowchart of the test method P600 for RRM measurement performance provided by Embodiment 3 of the present application. As Figure 6 shown, the test method P600 for RRM measurement performance provided in this embodiment includes the following steps.

[0085] S610. The first receiving unit of the terminal responds to receiving the first test signal sent by the network-side device and performs the first RRM measurement within the first time period.

[0086] In the embodiments of the present application, both the first time period and the second time period refer to the time for testing the RRM measurement performance of the terminal and have a time sequence relationship. Among them, the specific durations of the first time period and the second time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0087] In an exemplary embodiment, the above first test signal may be at least one of the following information:

[0088] A preset number of LP-WUS signals;

[0089] A preset number of LP-SS signals;

[0090] LP-SS signals with a fixed time window length;

[0091] LP-WUS signals with a fixed time window length.

[0092] Within the above first time period, the first receiving unit (low-power receiver) in the terminal 110 is in a working state, and the second receiving unit (main receiver) is in a sleep state. Thus, after the network-side device (test device) sends the above first test information, the first receiving unit can monitor the above first test signal and perform the above first RRM measurement according to the monitored first test signal.

[0093] S620. When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the second receiving unit responds to receiving the third test signal sent by the network-side device and performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the second time period.

[0094] Since the embodiments of the present application are used to test the wake-up ability / wake-up behavior of the second receiving unit by the terminal. Therefore, the above-mentioned first test information in the embodiments of the present application is a signal characterizing poor signal quality of the current cell, so as to ensure that the measurement result of the above-mentioned first RRM measurement meets the above-mentioned second preset condition. Further, only when the measurement result of the above-mentioned first RRM measurement is that the network quality of the current cell is poor, can the condition for starting the second receiving unit be satisfied.

[0095] Specifically, when the measurement result of the first RRM measurement is that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs a second RRM measurement on the above-mentioned first cell and the neighboring cells of the above-mentioned first cell within a second time period to achieve cell reselection.

[0096] Exemplarily, the second receiving unit simultaneously performs a second RRM measurement on the first cell and its neighboring cells according to the third test signal sent by the network-side device. Among them, during the above-mentioned second RRM measurement, the third test signal sent by the network-side device needs to meet the requirement that the network quality of at least one neighboring cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0097] In an exemplary embodiment, after the second receiving unit is awakened, the first receiving unit can be controlled to switch from the working state to the sleep state to start the energy-saving effect.

[0098] S630. After the above-mentioned second time period is completed, the above-mentioned terminal performs cell reselection according to the measurement result of the above-mentioned second RRM measurement; wherein, the access information of the above-mentioned terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal.

[0099] Exemplarily, after the second RRM measurement is completed in the above-mentioned second time period, the above-mentioned terminal performs cell reselection according to the measurement result of the above-mentioned second RRM measurement and camps on the second cell. Further, the access information of the above-mentioned terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal. Among them, the specific implementation manner for the terminal 110 to determine the measurement result of the RRM measurement is the same as that of S530 and will not be elaborated here.

[0100] During the test process provided by method P600, the first receiving unit is in the startup state and the second receiving unit is in the sleep state during the first time period. During the first time period, the first receiving unit listens for the first test information and performs the first RRM measurement on the current cell based on the first test signal. The measurement result of the first RRM measurement shows that the network quality of the first cell is poor, which ensures the condition for the terminal to wake up the second receiving unit. During the second time period, the second receiving unit simultaneously performs the second RRM measurement on the first cell and its neighboring cells. The terminal performs cell reselection according to the measurement result of the second RRM measurement. After camping on the second cell, the terminal can use its access information in the second cell to determine the test result of the RRM measurement performance of the terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of waking up the main receiver by the low-power receiver.

[0101] Embodiment 4

[0102] Based on Embodiment 1 and Embodiment 2, Embodiment 4 of the present application provides a method for testing RRM measurement performance. The implementation manners described in Embodiment 1 and Embodiment 2 can be applied to Embodiment 4 and can achieve the same technical effects. Figure 7 The flowchart of the method P700 for testing RRM measurement performance provided for Embodiment 3 of the present application is as Figure 7 shown. The method P700 for testing RRM measurement performance provided in this embodiment includes the following steps.

[0103] S710. The first receiving unit of the terminal responds to receiving the first test signal sent by the network-side device and performs the first RRM measurement during the first time period.

[0104] In the embodiments of the present application, the first time period, the second time period, and the third time period all refer to the time for testing the RRM measurement performance of the terminal and have a time sequence relationship. Among them, the specific durations of the first time period, the second time period, and the third time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0105] In an exemplary embodiment, the first test signal may be at least one of the following information:

[0106] A preset number of LP-WUS signals;

[0107] A preset number of LP-SS signals;

[0108] LP-SS signals with a fixed time window length;

[0109] LP-WUS signals with a fixed time window length.

[0110] During the first time period, the first receiving unit (low-power receiver) in the terminal 110 is in an operating state, and the second receiving unit (main receiver) is in a sleep state. Thus, after the network-side device (test device) sends the first test information, the first receiving unit can monitor the first test signal and perform the first RRM measurement based on the monitored first test signal.

[0111] S720. When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the second receiving unit responds to receiving the fourth test signal sent by the network-side device and performs the first stage of the second RRM measurement of the first cell during the second time period; and the second receiving unit responds to receiving the third test signal sent by the network-side device and performs the second stage of the second RRM measurement of the first cell and the neighboring cells of the first cell during the third time period.

[0112] Since the embodiments of the present application are used to test the wake-up ability / wake-up behavior of the second receiving unit of the terminal. Therefore, the first test information in the embodiments of the present application is a signal indicating poor signal quality of the current cell, so as to ensure that the measurement result of the first RRM measurement meets the second preset condition. Further, only when the measurement result of the first RRM measurement indicates poor network quality of the current cell can the condition for activating the second receiving unit be satisfied.

[0113] Specifically, when the measurement result of the first RRM measurement indicates poor network quality of the current cell, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the first stage of the second RRM measurement of the first cell during the second time period. Specifically, during the second time period, the test signal used by the second receiving unit for the first stage of the second RRM measurement can be referred to as the fourth test signal, where the fourth test signal needs to meet: the network signal quality of the first cell is higher than that of the neighboring cells. Through the measurement of the second receiving unit in the first stage of the second RRM measurement, the accuracy of the first RRM measurement of the first receiving unit during the first time period can be verified, so as to ensure the accuracy of the measurement result of the terminal RRM measurement. In addition, for the second receiving unit in the just-started state, by performing the first stage of the second RRM measurement, a warm-up start effect can be achieved, which is beneficial to ensuring the accuracy of the subsequent measurement of the second receiving unit.

[0114] Exemplarily, when the measurement result of the first stage of the second RRM measurement verifies that the network quality of the current cell is poor, the second receiving unit performs the second stage of the second RRM measurement of the first cell and the neighboring cells during the third time period to achieve cell reselection.

[0115] Exemplarily, the second receiving unit is in the second stage of performing second RRM measurements on the first cell and its neighboring cells according to the third test signal sent by the network-side device. Wherein, in the second stage of performing the above-mentioned second RRM measurements, the third test signal sent by the network-side device needs to meet the requirement that the network quality of at least one neighboring cell is higher than the network signal quality of the first cell, so as to meet the test requirements for cell reselection.

[0116] In an exemplary embodiment, after the second receiving unit is awakened, it can control the first receiving unit to switch from the working state to the sleep state to start the energy-saving effect.

[0117] S730. After the above-mentioned third time period is completed, the above-mentioned terminal performs cell reselection according to the measurement results of the above-mentioned second RRM measurements; wherein, the access information of the above-mentioned terminal in the second cell is used to determine the test results of the RRM measurement performance of the above-mentioned terminal.

[0118] Exemplarily, after the second stage of the second RRM measurement is completed in the above-mentioned third time period, the above-mentioned terminal performs cell reselection and camps on the second cell according to the measurement results of the second stage of the above-mentioned second RRM measurement. Further, the access information of the above-mentioned terminal in the second cell is used to determine the test results of the RRM measurement performance of the above-mentioned terminal. Among them, the specific implementation manner for the terminal 110 to determine the measurement results of the RRM measurement is the same as that of S530, and will not be elaborated here.

[0119] During the test provided by method P700, the first receiving unit is in the startup state and the second receiving unit is in the sleep state in the first time period. In the first time period, the first receiving unit listens for the first test information and performs first RRM measurements on the current cell based on the first test signal. The measurement result of the first RRM measurement is that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. In the second time period, the second receiving unit performs the first stage of the second RRM measurement on the first cell to verify the measurement result of the first receiving unit. In the third time period, the second receiving unit simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells. The terminal performs cell reselection according to the measurement results of the second stage of the second RRM measurement. And after camping on the second cell, the terminal can use its access information in the second cell to determine the test results of the RRM measurement performance of the above-mentioned terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of a low-power receiver waking up the main receiver.

[0120] Embodiment Five

[0121] Based on Embodiment 1 and Embodiment 2, Embodiment 5 of the present application provides a test method for RRM measurement performance. The implementation methods described in Embodiment 1 can all be applied to Embodiment 5 and achieve the same technical effects. Figure 8 It is a flowchart of the test method P800 for RRM measurement performance provided by Embodiment 5 of the present application. As Figure 8 shown, the test method P800 for RRM measurement performance provided in this embodiment includes the following steps.

[0122] S810. The first receiving unit of the terminal responds to receiving the first test signal sent by the network side device and performs the first stage of the above-mentioned first RRM measurement within the first time period. And, S820. The first receiving unit of the above-mentioned terminal responds to receiving the second test signal sent by the network side device and performs the second stage of the above-mentioned first RRM measurement within the second time period; wherein, at least one of the following information is different between the above-mentioned first test signal and the above-mentioned second test signal: transmit power and signal-to-noise ratio.

[0123] In the embodiments of the present application, the first time period, the second time period, and the third time period all refer to the time for testing the RRM measurement performance of the terminal, and there is a time sequence relationship. Among them, the specific durations of the first time period, the second time period, and the third time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0124] In an exemplary embodiment, the transmit powers of the above-mentioned first test signal and the above-mentioned second test signal are different, or the signal-to-noise ratios between the two test signals are different, or both the transmit power and the signal-to-noise ratio between the two test signals are different. Exemplarily, the above-mentioned first test signal and the above-mentioned second test signal can both be at least one of the following information:

[0125] A preset number of LP-WUS signals;

[0126] A preset number of LP-SS signals;

[0127] LP-SS signals with a fixed time window length;

[0128] LP-WUS signals with a fixed time window length.

[0129] During the above first time period and second time period, the first receiving unit (low-power receiver) in the terminal 110 is in an operating state, and the second receiving unit (main receiver) is in a sleep state. Thus, during the first time period, after the network-side device (test device) sends the above first test information, the first receiving unit can monitor the above first test signal and perform the first stage of the above first RRM measurement based on the monitored first test signal. During the second time period, after the network-side device (test device) sends the above second test information, the first receiving unit can monitor the above second test signal and perform the second stage of the above first RRM measurement based on the monitored second test signal.

[0130] Since the embodiment of the present application is used to test the wake-up ability / wake-up behavior of the second receiving unit of the terminal. Therefore, the above second test information in the embodiment of the present application is a signal indicating that the signal quality of the current cell is poor, so as to ensure that the test result of the second stage of the above first RRM measurement meets the above second preset condition. Further, only when the measurement result of the second stage of the above first RRM measurement is that the network quality of the current cell is poor, can the condition for starting the second receiving unit be satisfied.

[0131] Exemplarily, the first stage of the first RRM measurement in the embodiment of the present application can be used as a control for the second stage of the first RRM measurement. Therefore, the above first test information is a signal indicating that the signal quality of the current cell is strong, so as to ensure that the test result of the first stage of the above first RRM measurement does not meet the above second preset condition. Thus, the second receiving unit is not woken up during the second time period, but is woken up only when the measurement result of the second stage of the above first RRM measurement is that the network quality of the current cell is poor.

[0132] S830. When the measurement result of the first RRM measurement meets the second preset condition, the above terminal starts the second receiving unit; the second receiving unit responds to receive the third test signal sent by the above network-side device and performs the second RRM measurement of the above first cell and the neighboring cells of the above first cell during the third time period.

[0133] Specifically, when the measurement result of the second stage of the first RRM measurement is that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the second RRM measurement of the above first cell and the neighboring cells of the above first cell during the third time period to implement cell reselection.

[0134] Exemplarily, the second receiving unit simultaneously performs second RRM measurements on the first cell and its neighboring cells according to the third test signal sent by the network-side device. Among them, during the above-mentioned second RRM measurement, the third test signal sent by the network-side device needs to meet the requirement that the network quality of at least one neighboring cell is higher than the network signal quality of the first cell, so as to meet the test requirements for cell reselection.

[0135] In an exemplary embodiment, after the second receiving unit is awakened, it can control the first receiving unit to switch from the working state to the sleep state to start the energy-saving effect.

[0136] S840. After the above-mentioned third time period is completed, the above-mentioned terminal performs cell reselection according to the measurement result of the above-mentioned second RRM measurement; among them, the access information of the above-mentioned terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal.

[0137] Exemplarily, after the second RRM measurement is completed in the above-mentioned third time period, the above-mentioned terminal performs cell reselection according to the measurement result of the above-mentioned second RRM measurement and camps on the second cell. Further, the access information of the above-mentioned terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal. Among them, the specific implementation manner for the terminal 110 to determine the measurement result of the RRM measurement is the same as the specific implementation manner of S530, and will not be elaborated here.

[0138] During the test provided by method P800, the first receiving unit is in the startup state and the second receiving unit is in the sleep state in the first time period and the second time period. In the first time period, the first receiving unit listens to the first test information and performs the first stage of the first RRM measurement on the current cell based on the first test signal; in the second time period, the first receiving unit listens to the second test information and performs the second stage of the first RRM measurement on the current cell based on the second test signal. The measurement result of the second stage of the first RRM measurement is that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. In the third time period, the second receiving unit simultaneously performs second RRM measurements on the first cell and its neighboring cells. The terminal performs cell reselection according to the measurement result of the second RRM measurement. And after camping on the second cell, the access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of a low-power receiver waking up the main receiver.

[0139] Embodiment Six

[0140] Based on Embodiment One and Embodiment Two, Embodiment Six of the present application provides a method for testing RRM measurement performance. The implementation manners described in Embodiment One and Embodiment Two can be applied to Embodiment Six and can achieve the same technical effects.Figure 9 This is the flowchart of the test method P900 for the RRM measurement performance provided in the sixth embodiment of the present application. As Figure 9 shown, the test method P900 for the RRM measurement performance provided in this embodiment includes the following steps.

[0141] S910. The first receiving unit of the terminal responds to receiving the first test signal sent by the network-side device and performs the first stage of the above-mentioned first RRM measurement within the first time period; and, S920. The first receiving unit of the above-mentioned terminal responds to receiving the second test signal sent by the network-side device and performs the second stage of the above-mentioned first RRM measurement within the second time period; wherein, at least one of the following information is different between the above-mentioned first test signal and the above-mentioned second test signal: transmit power and signal-to-noise ratio.

[0142] In the embodiments of the present application, the first time period, the second time period, the third time period, and the fourth time period all refer to the time for testing the RRM measurement performance of the terminal, and there is a time sequence relationship. Among them, the specific durations of the first time period, the second time period, the third time period, and the fourth time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0143] In an exemplary embodiment, the transmit powers of the above-mentioned first test signal and the above-mentioned second test signal are different, or the signal-to-noise ratios between the two test signals are different, or both the transmit power and the signal-to-noise ratio between the two test signals are different. Exemplarily, the above-mentioned first test signal and the above-mentioned second test signal can both be at least one of the following information:

[0144] A preset number of LP-WUS signals;

[0145] A preset number of LP-SS signals;

[0146] LP-SS signals with a fixed time window length;

[0147] LP-WUS signals with a fixed time window length.

[0148] Within the above-mentioned first time period and the second time period, the first receiving unit (low-power receiver) in the terminal 110 is in the working state, and the second receiving unit (main receiver) is in the sleep state. Thus, after the network-side device (test device) sends the above-mentioned first test information within the first time period, the first receiving unit can monitor the above-mentioned first test signal and perform the first stage of the above-mentioned first RRM measurement according to the monitored first test signal. After the network-side device (test device) sends the above-mentioned second test information within the second time period, the first receiving unit can monitor the above-mentioned second test signal and perform the second stage of the above-mentioned first RRM measurement according to the monitored second test signal.

[0149] Since the embodiments of the present application are used to test the wake-up ability / wake-up behavior of the second receiving unit of the terminal. Therefore, the above-mentioned second test information in the embodiments of the present application is a signal indicating that the signal quality of the current cell is poor, so as to ensure that the test results of the second stage of the above-mentioned first RRM measurement meet the above-mentioned second preset condition. Further, only when the measurement result of the second stage of the above-mentioned first RRM measurement is that the network quality of the current cell is poor, can the condition for starting the second receiving unit be met.

[0150] Exemplarily, the first stage of the first RRM measurement in the embodiments of the present application can be used as a control for the second stage of the first RRM measurement. Therefore, the above-mentioned first test information is a signal indicating that the signal quality of the current cell is strong, so as to ensure that the test results of the first stage of the above-mentioned first RRM measurement do not meet the above-mentioned second preset condition. Thus, the second receiving unit is not awakened during the second time period, but is awakened only when the measurement result of the second stage of the above-mentioned first RRM measurement is that the network quality of the current cell is poor.

[0151] S930. When the measurement result of the first RRM measurement meets the second preset condition, the above-mentioned terminal starts the second receiving unit; the above-mentioned second receiving unit responds to receive the fourth test signal sent by the above-mentioned network-side device and performs the first stage of the second RRM measurement of the above-mentioned first cell within the third time period; and, the above-mentioned second receiving unit responds to receive the third test signal sent by the above-mentioned network-side device and performs the second stage of the second RRM measurement of the above-mentioned first cell and the neighboring cell of the above-mentioned first cell within the fourth time period.

[0152] When the measurement result of the second stage of the first RRM measurement is that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the first stage of the second RRM measurement of the above-mentioned first cell within the third time period. Specifically, during the third time period, the test signal used by the second receiving unit when performing the first stage of the second RRM measurement can be called the fourth test signal, where the fourth test signal needs to meet: the network signal quality of the first cell is higher than that of the neighboring cell. Through the measurement of the second receiving unit in the first stage of the second RRM measurement, the accuracy of the second stage of the first RRM measurement of the first receiving unit during the second time period can be verified, so as to ensure the accuracy of the measurement results of the terminal RRM measurement. In addition, for the second receiving unit in the just-started state, by performing the first stage of the above-mentioned second RRM measurement, a warm-up start effect can be achieved, which is beneficial to ensuring the accuracy of the subsequent measurement of the second receiving unit.

[0153] Exemplarily, when the measurement result of the first stage by the second RRM measurement verifies that the network quality of the current cell is poor, the second receiving unit performs the second stage of the second RRM measurement on the first cell and the neighboring cells of the first cell within the fourth time period to achieve cell reselection.

[0154] Exemplarily, the second receiving unit simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells according to the test signal sent by the network side device. Among them, in the second stage of performing the above second RRM measurement, the third test signal sent by the network side device needs to meet the requirement that the network quality of at least one neighboring cell of the first cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0155] In an exemplary embodiment, after the second receiving unit is awakened, the first receiving unit can be controlled to switch from the working state to the sleep state to start the energy-saving effect.

[0156] S940. After the above fourth time period is completed, the above terminal performs cell reselection according to the measurement result of the above second RRM measurement; wherein, the access information of the above terminal in the second cell is used to determine the test result of the RRM measurement performance of the above terminal.

[0157] Exemplarily, after the second stage of the second RRM measurement is completed in the above fourth time period, the above terminal performs cell reselection according to the measurement result of the second stage of the above second RRM measurement and camps on the second cell. Further, the access information of the above terminal in the second cell is used to determine the test result of the RRM measurement performance of the above terminal. Among them, the specific implementation manner for the terminal 110 to determine the measurement result of the RRM measurement is the same as the specific implementation manner of S530 and will not be elaborated here.

[0158] During the test provided by method P900, the first receiving unit is in the startup state and the second receiving unit is in the sleep state during the first time period and the second time period. During the first time period, the first receiving unit listens for the first test information and performs the first stage of the first RRM measurement on the current cell based on the first test signal. During the second time period, the first receiving unit listens for the second test information and performs the second stage of the first RRM measurement on the current cell based on the second test signal. The measurement result of the second stage of the first RRM measurement is that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. During the third time period, the second receiving unit performs the first stage of the second RRM measurement on the first cell to verify the measurement result of the first receiving unit. During the fourth time period, the second receiving unit simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells. The terminal performs cell reselection according to the measurement result of the second stage of the second RRM measurement. After camping on the second cell, the access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the above terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of waking up the main receiver by a low-power receiver.

[0159] Embodiment VII

[0160] Embodiment VI of the present application provides a test method for RRM measurement performance, with the network-side device as the execution subject. Figure 10 The flowchart of the test method P1000 for RRM measurement performance provided by Embodiment VII of the present application is as Figure 10 shown. The test method P1000 for RRM measurement performance provided by this embodiment includes the following steps.

[0161] S1010. The network-side device sends a test signal to the terminal, so that the first receiving unit of the terminal responds to the received test signal and performs the first RRM measurement on the first cell, where the operating power of the first receiving unit meets the first preset condition.

[0162] In an exemplary embodiment, the above network-side device may be a test device. The types of signals sent by the above network-side device for the first receiving unit to perform the first RRM measurement include at least one of the following: a low-power wake-up signal LP-WUS, and a low-power synchronization signal (Low Power Synchronization Signal, LP-SS). Exemplarily, LP-WUS may be an on-off keying signal, where Figure 4It shows the time domain pattern of the test signal used by the first receiving unit in performing the first RRM measurement as LP-WUS. It can be understood that the type of the test signal used by the first receiving unit in performing the first RRM measurement is not limited to the above, and can also be other types, which are not limited in the embodiments of the present application.

[0163] Exemplarily, the above test signal (including the "first test signal" and "second test signal" in the subsequent embodiments) refers to the signal used for the first receiving unit to perform the first RRM measurement. Specifically, it can be a signal with specific test parameters, or a signal with random parameters determined according to the actual scenario, which is not limited in the embodiments of the present application.

[0164] Exemplarily, the above test signal can be received by the low-power receiver in the terminal through energy detection, sequence detection recognition or payload detection.

[0165] In an exemplary embodiment, the above terminal can be as Figure 2 shown, deployed with a first receiving unit serving as a low-power receiver and a second receiving unit that can serve as a main receiver. As described above, the first receiving unit serving as a low-power receiver does not involve signal detection (such as amplification, filtering, quantization, etc.) of the radio frequency (RF) module and complex processing of baseband (MODEM) signals, etc. It only relies on passive matched filtering and signal processing with relatively low power consumption; the operating power of the first receiving unit is lower than the preset value and can be called a near "zero" receiver.

[0166] In an exemplary embodiment, the above terminal is in the radio resource control (RRC) idle mode or inactivate mode. Exemplarily, the first cell can be the cell that the terminal 110 is currently accessing or located in. For simplicity of description, this cell can also be referred to as the home cell or the current cell of the terminal 110. For example, for the terminal 110 in the RRC idle mode or inactivate mode, the home cell is the cell where the terminal 110 camps. For another example, for the terminal in the RRC connected state, the home cell is the serving cell of the terminal 110.

[0167] Exemplarily, when the first receiving unit (low-power receiver) receives the above test signal, the received test signal can be used for RRM performance measurement. For example, when the received test signal is LP-SS, at least one of the following measurements can be performed: Reference Signal Received Power (RSRP) measurement, Reference Signal Received Quality (RSRQ) measurement, Signal-to-Interference-plus Noise Ratio (SINR) measurement, and Receive Signal Strength Indication (RSSI) measurement.

[0168] It should be noted that during the process of the first receiving unit (low-power receiver) performing the above first RRM measurement on the first cell, the second receiving unit (main receiver) is in a shutdown state or a sleep state to maintain a relatively low power consumption level, so as to achieve power consumption savings by receiving a wake-up signal. This can avoid or reduce the radio frequency transceiver processing and baseband processing of the second receiving unit (main receiver), thereby achieving energy saving of the terminal.

[0169] In an exemplary embodiment, when the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection.

[0170] In an exemplary embodiment, the above second preset condition may be that the measurement result of the first RRM measurement reaches a preset threshold or a preset threshold range. Among them, when the measurement result of the first RRM measurement meets the above second preset condition, it indicates that the current network quality is poor, and the second receiving unit (main receiver) needs to be awakened for cell reselection.

[0171] Exemplarily, the above measurement result of the first RRM measurement can be represented by at least one of RSRP, RSRQ, SINR, and RSSI. Among them, a corresponding threshold value can be defined for each measurement result. When at least one of the measurement results meets the corresponding threshold or threshold range, the terminal 110 needs to wake up the second receiving unit (main receiver) for cell reselection.

[0172] In an exemplary embodiment, a network - side device 120 sends a test signal (denoted as the "third test signal") to enable a terminal 110 to perform a second RRM measurement on a first cell and its neighboring cells (intra - frequency or inter - frequency) simultaneously. Among them, during the above - mentioned second RRM measurement, the third test signal sent by the network - side device needs to meet the condition that the network quality of at least one neighboring cell is higher than the network signal quality of the first cell to meet the test requirements for cell reselection.

[0173] Further, the access information of the terminal 110 in the second cell is used to determine the test result of the RRM measurement performance of the terminal. Exemplarily, the above - mentioned test result can be determined by the terminal 110 or by the network - side device 120 acting as a test device, thereby improving the test flexibility. Embodiments of the present application will be introduced separately in subsequent embodiments.

[0174] In the solution provided by method P1000, the first receiving unit of the terminal is in the startup phase to listen for the test signal sent by the network - side device, and the second receiving unit is in the sleep state. When the first receiving unit listens to the test signal sent by the network - side device to the terminal, a first RRM measurement is performed on the first cell. When the measurement result of the above - mentioned first RRM measurement meets the second preset condition, the terminal starts the second receiving unit. And the second RRM measurement is performed through the second receiving unit for cell reselection. Further, the access information of the terminal in the second cell can be used to determine the test result of the RRM measurement performance of the terminal. For example, the successful access of the terminal to the second cell indicates that the first receiving unit successfully wakes up the second receiving unit during the RRM measurement. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of a low - power receiver waking up a main receiver.

[0175] Embodiment Eight

[0176] Based on Embodiment Seven, Embodiment Eight of the present application provides a method for testing RRM measurement performance. The implementation methods described in Embodiment Seven can all be applied to Embodiment Eight and can achieve the same technical effects. Figure 11 This is a flowchart of the method P1100 for testing RRM measurement performance provided by Embodiment Eight of the present application. As Figure 11 shown, the method P1100 for testing RRM measurement performance provided in this embodiment includes the following steps.

[0177] S1110: The network - side device sends a test signal to the terminal, so that the first receiving unit of the terminal responds to the received test signal and performs a first RRM measurement on the first cell, where the operating power of the first receiving unit meets the first preset condition.

[0178] Wherein, when the measurement result of the first RRM measurement meets a second preset condition, the above terminal activates a second receiving unit, and performs a second RRM measurement through the second receiving unit to perform cell reselection; the access information of the above terminal in the second cell is used to determine the test result of the RRM measurement performance of the above terminal.

[0179] The specific implementation manner of S1110 is the same as that of S1010, and will not be elaborated here.

[0180] S1120. The above network side device determines a test result according to the access information of the terminal in the second cell.

[0181] As described above, the above second cell is an adjacent cell of the first cell. When the first receiving unit of the terminal 110 determines that the network quality of the first cell is poor, the second receiving unit of the terminal 110 is woken up. The second RRM policy is executed through the second receiving unit, so as to receive the network of the second cell through cell reselection. Further, after the terminal 110 camps on the second cell, it determines a test result according to its access information in the second cell.

[0182] S1120-1. After the terminal 110 camps on the second cell, the network side device 120 obtains the number of accesses to the Random Access Channel (RACH) initiated by the above second receiving unit within a preset duration. Among them, the RACH is an uplink transmission channel, and is the first message sent from the UE to the eNB when the terminal 110 starts. In all cellular technologies (CDMA, GSM, WCDMA, LTE), there is a signal similar to the RACH, which is the first message sent from the UE to the eNB, and this message is applicable to the embodiments of the present application.

[0183] S1120-2. Determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

[0184] Exemplarily, if the number of RACH accesses of the terminal within the above preset duration is less than a preset number, it indicates that the terminal 110 successfully accesses the second cell. Thus, it is proved that the first receiving unit of the terminal successfully wakes up the second receiving unit after determining to perform the second RRM in the first cell. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of the low-power receiver waking up the main receiver.

[0185] Embodiment Nine

[0186] Based on Embodiment Seven and Embodiment Eight, Embodiment Nine of the present application provides a method for testing RRM measurement performance. The implementation manners described in Embodiment Seven and Embodiment Eight can both be applied to Embodiment Nine and can achieve the same technical effects. Figure 12This is a flowchart of the test method P1200 for RRM measurement performance provided in the ninth embodiment of the present application. As Figure 12 shown, the test method P1200 for RRM measurement performance provided in this embodiment includes the following steps.

[0187] S1210: The network-side device sends a first test signal to the terminal, so that the first receiving unit of the terminal responds to the received first test signal and performs the first RRM measurement within a first time period.

[0188] In an exemplary embodiment, the first test signal may be at least one of the following information:

[0189] A preset number of LP-WUS signals;

[0190] A preset number of LP-SS signals;

[0191] LP-SS signals with a fixed time window length;

[0192] LP-WUS signals with a fixed time window length.

[0193] Within the first time period, the first receiving unit (low-power receiver) in the terminal 110 is in an operating state, and the second receiving unit (main receiver) is in a sleep state. Thus, after the network-side device (test device) sends the first test information, the first receiving unit can monitor the first test signal and perform the first RRM measurement according to the monitored first test signal.

[0194] Since the embodiment of the present application is used to test the wake-up ability / wake-up behavior of the second receiving unit of the terminal. Therefore, the first test information in the embodiment of the present application is a signal characterizing poor signal quality of the current cell, so as to ensure that the measurement result of the first RRM measurement meets the second preset condition. Further, only when the measurement result of the first RRM measurement is that the network quality of the current cell is poor, can the condition for starting the second receiving unit be satisfied.

[0195] Based on the first test signal sent by the network side, the terminal can execute the following two embodiments to implement the measurement process of the terminal RRM measurement.

[0196] S1220: The network-side device sends a third test signal, so that the second receiving unit responds to the received third test signal and performs the second RRM measurement of the first cell and the adjacent cells of the first cell within a second time period.

[0197] When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the network device continues to send a test signal so that the second receiving unit performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the second time period.

[0198] In the embodiments of the present application, both the first time period and the second time period refer to the time for performing the RRM measurement performance test of the terminal, and there is a time sequence relationship. Among them, the specific durations of the first time period and the second time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0199] Specifically, when the measurement result of the first RRM measurement indicates that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the second time period to achieve cell reselection.

[0200] In an exemplary embodiment, the network device 120 sends a test signal so that the terminal 110 simultaneously performs the second RRM measurement on the first cell and its neighboring cells. Among them, during the second RRM measurement, the third test signal sent by the network device needs to meet: the network quality of at least one neighboring cell of the first cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0201] In an exemplary embodiment, after the second receiving unit of the terminal 110 is woken up, the first receiving unit can be controlled to switch from the working state to the sleep state to initiate an energy-saving effect.

[0202] In an exemplary embodiment, after the second RRM measurement is completed, the terminal 110 camps on the second cell according to the measurement result of the second RRM measurement. Further, the access information of the second cell of the network device 120 is used to determine the test result of the RRM measurement performance of the terminal. The specific implementation manner for the network device 120 to determine the measurement result of the RRM measurement is the same as that of S1120, and will not be elaborated here.

[0203] During the test provided by method P1200, the first receiving unit is in the startup state and the second receiving unit is in the sleep state in the first time period. In the first time period, the network-side device sends the first test information. The first receiving unit of the terminal listens to the first test information and performs the first RRM measurement on the current cell based on the first test signal. The measurement result of the first RRM measurement shows that the network quality of the first cell is poor, which ensures the condition for the terminal to wake up the second receiving unit. Next, the network-side device sends a test signal to enable the second receiving unit to perform the second RRM measurement on the first cell and its neighboring cells simultaneously. The terminal performs cell reselection according to the measurement result of the second RRM measurement. After camping on the second cell, the network-side device determines the test result of the RRM measurement performance of the terminal according to the access information of the terminal in the second cell. It can be seen that the embodiment of the present application can provide a performance test solution for the behavior of waking up the main receiver by the low-power receiver.

[0204] Embodiment Ten

[0205] Based on Embodiment Seven and Embodiment Eight, Embodiment Ten of the present application provides a test method for RRM measurement performance. The implementation manners described in Embodiment Seven and Embodiment Eight can be applied to Embodiment Ten and can achieve the same technical effects. Figure 13 It is a flowchart of the test method P1300 for RRM measurement performance provided by Embodiment Ten of the present application. As Figure 13 shown, the test method P1300 for RRM measurement performance provided in this embodiment includes the following steps.

[0206] S1310. The network-side device sends the first test signal to the terminal, so that the first receiving unit of the terminal responds to the received first test signal and performs the first RRM measurement in the first time period.

[0207] The specific implementation manner of S1310 is the same as that of S1210 and will not be repeated here.

[0208] S1320. The network-side device sends the fourth test signal, so that the second receiving unit responds to the received fourth test signal and performs the first stage of the second RRM measurement on the first cell in the second time period; and the network-side device sends the third test signal, so that the second receiving unit responds to the received third test signal and performs the second stage of the second RRM measurement on the first cell and the neighboring cells of the first cell in the third time period.

[0209] When the measurement result of the first RRM measurement meets the second preset condition, the above-mentioned terminal activates the second receiving unit; the network-side device continues to send a test signal, so that the second receiving unit performs the first stage of the second RRM measurement of the first cell within the second time period, and performs the second stage of the second RRM measurement of the first cell and the neighboring cells of the first cell within the third time period through the second receiving unit.

[0210] In the embodiments of the present application, the first time period, the second time period, and the third time period all refer to the time for performing the RRM measurement performance test of the terminal, and have a time sequence relationship. Among them, the specific durations of the first time period, the second time period, and the third time period can be determined according to actual needs, and are not limited in the embodiments of the present application.

[0211] Specifically, when the measurement result of the first RRM measurement indicates that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the first stage of the second RRM measurement of the first cell within the second time period. Specifically, during the second time period, the test signal used by the second receiving unit for the second RRM measurement can be the same as the above-mentioned first test signal. Through the measurement in the first stage of the second RRM measurement by the second receiving unit, the accuracy of the first RRM measurement by the first receiving unit in the first time period can be verified, thereby ensuring the accuracy of the measurement result of the terminal RRM measurement. In addition, for the newly activated second receiving unit, performing the first stage of the above-mentioned second RRM measurement can achieve a warm-up start effect, which is beneficial to ensuring the accuracy of the subsequent measurement of the second receiving unit.

[0212] Exemplarily, when the network quality of the current cell is verified to be poor through the measurement result of the first stage of the second RRM measurement, the second receiving unit performs the second stage of the second RRM measurement of the first cell and the neighboring cells of the first cell within the third time period to achieve cell reselection.

[0213] Exemplarily, the second receiving unit simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells according to the test signal sent by the network-side device. Among them, during the second stage of the above-mentioned second RRM measurement, the third test signal sent by the network-side device needs to meet the requirement that the network quality of at least one neighboring cell of the first cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0214] In an exemplary embodiment, after the second receiving unit of the terminal 110 is awakened, the first receiving unit can be controlled to switch from the working state to the sleep state to start the energy-saving effect.

[0215] In an exemplary embodiment, after completing the second RRM measurement, the terminal 110 reselects a cell based on the measurement result of the second RRM measurement and camps on the second cell. Further, the access information of the terminal in the second cell is used by the network-side device 120 to determine the test result of the RRM measurement performance of the terminal. The specific implementation manner for the network-side device 120 to determine the measurement result of the RRM measurement is the same as that of S1120, which will not be elaborated here.

[0216] During the test provided by method P1300, the first receiving unit is in the startup state and the second receiving unit is in the sleep state within the first time period. During the first time period, the network-side device sends the first test information. The first receiving unit of the terminal listens for the first test information and performs the first RRM measurement on the current cell based on the first test signal. The measurement result of the first RRM measurement indicates that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. Next, the network-side device first performs an RRM measurement on the first cell and then simultaneously performs RRM measurements on the first cell and its neighboring cells. The terminal reselects a cell based on the measurement result of the second RRM measurement. After camping on the second cell, the network-side device uses the access information of the terminal in the second cell to determine the test result of the RRM measurement performance of the terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of a low-power receiver waking up the main receiver.

[0217] Embodiment Eleven

[0218] Based on Embodiment Seven and Embodiment Eight, Embodiment Eleven of the present application provides a method for testing the RRM measurement performance. The implementation manners described in Embodiment Seven and Embodiment Eight can be applied to Embodiment Eleven and can achieve the same technical effects. Figure 14 The flowchart of the method P1400 for testing the RRM measurement performance provided by Embodiment Eleven of the present application is as Figure 14 shown. The method P1400 for testing the RRM measurement performance provided in this embodiment includes the following steps.

[0219] S1410: The network-side device sends a first test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the first test signal and performs the first stage of the first RRM measurement within the first time period. And, S1420: The network-side device sends a second test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the second test signal and performs the second stage of the first RRM measurement within the second time period.

[0220] In an exemplary embodiment, the transmission powers of the above-mentioned first test signal and the above-mentioned second test signal are different, or the signal-to-noise ratios between the two test signals are different, or both the transmission disclosure and the signal-to-noise ratio between the two test signals are different. Exemplarily, the above-mentioned first test signal and the above-mentioned second test signal can both be at least one of the following information:

[0221] A preset number of LP-WUS signals;

[0222] A preset number of LP-SS signals;

[0223] LP-SS signals with a fixed time window length;

[0224] LP-WUS signals with a fixed time window length.

[0225] In the above-mentioned first time period and the second time period, the first receiving unit (low-power receiver) in the terminal 110 is in the working state, and the second receiving unit (main receiver) is in the sleep state. Thus, in the first time period, after the network-side device (test device) sends the above-mentioned first test information, the first receiving unit can monitor the above-mentioned first test signal and perform the first stage of the above-mentioned first RRM measurement based on the monitored first test signal. In the second time period, after the network-side device (test device) sends the above-mentioned second test information, the first receiving unit can monitor the above-mentioned second test signal and perform the second stage of the above-mentioned first RRM measurement based on the monitored second test signal.

[0226] Since the embodiment of the present application is used to test the wake-up ability / wake-up behavior of the terminal for the second receiving unit. Therefore, the above-mentioned second test information in the embodiment of the present application is a signal characterizing that the signal quality of the current cell is poor, so as to ensure that the test result of the second stage of the above-mentioned first RRM measurement meets the above-mentioned second preset condition. Further, only when the measurement result of the second stage of the above-mentioned first RRM measurement is that the network quality of the current cell is poor, can the condition for starting the second receiving unit be met.

[0227] Exemplarily, the first stage of the first RRM measurement in the embodiment of the present application can be used as a control for the second stage of the first RRM measurement. Therefore, the above-mentioned first test information is a signal characterizing that the signal quality of the current cell is strong, so as to ensure that the test result of the first stage of the above-mentioned first RRM measurement does not meet the above-mentioned second preset condition. Thus, the second receiving unit is not woken up in the second time period, but the second receiving unit is woken up only when the measurement result of the second stage of the above-mentioned first RRM measurement is that the network quality of the current cell is poor.

[0228] Based on the above-mentioned first test signal and second test signal sent by the network side, the terminal can execute the following two embodiments to implement the measurement process of the terminal RRM measurement.

[0229] S1430. The network-side device sends a third test signal, so that the second receiving unit responds to the received third test signal and performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the third time period.

[0230] When the measurement result of the first RRM measurement meets the second preset condition, the terminal starts the second receiving unit; the network-side device continues to send a test signal, so that the second receiving unit performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the third time period based on the test signal.

[0231] Specifically, when the measurement result of the second stage of the first RRM measurement indicates that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the second RRM measurement on the first cell and the neighboring cells of the first cell within the third time period to achieve cell reselection.

[0232] Exemplarily, the second receiving unit simultaneously performs the second RRM measurement on the first cell and its neighboring cells according to the test signal sent by the network-side device. Among them, during the above-mentioned second RRM measurement, the third test signal sent by the network-side device needs to meet the requirement that the network quality of at least one neighboring cell of the first cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0233] In an exemplary embodiment, after the second receiving unit is woken up, the first receiving unit can be controlled to switch from the working state to the sleep state to start the energy-saving effect.

[0234] In an exemplary embodiment, after the second RRM measurement is completed, the terminal 110 performs cell reselection and camps on the second cell according to the measurement result of the second RRM measurement. Further, the access information of the second cell of the network-side device 120 is used to determine the test result of the RRM measurement performance of the terminal. The specific implementation manner for the network-side device 120 to determine the measurement result of the RRM measurement is the same as that of S1120 and will not be elaborated here.

[0235] During the test provided by method P1400, the first receiving unit is in the startup state and the second receiving unit is in the sleep state during the first time period and the second time period. During the first time period, the network-side device sends a first test signal, and the first receiving unit listens for the first test information and performs the first stage of the first RRM measurement on the current cell based on the first test signal; during the second time period, the network-side device sends a second test signal, and the first receiving unit listens for the second test information and performs the second stage of the first RRM measurement on the current cell based on the second test signal. The measurement result of the second stage of the first RRM measurement is that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. Next, the network-side device continues to send test signals so that the second receiving unit of the terminal simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells. The terminal performs cell reselection according to the second RRM measurement result. After camping on the second cell, the network-side device uses the access information of the terminal in the second cell to determine the test result of the RRM measurement performance of the above terminal. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of waking up the main receiver by a low-power receiver.

[0236] Embodiment Twelve

[0237] Based on Embodiment Seven and Embodiment Eight, Embodiment Twelve of the present application provides a method for testing RRM measurement performance. The implementation manners described in Embodiment Seven and Embodiment Eight can both be applied to Embodiment Twelve and can achieve the same technical effects. Figure 15 The flowchart of the method P1500 for testing RRM measurement performance provided by Embodiment Twelve of the present application is as Figure 15 shown. The method P1500 for testing RRM measurement performance provided in this embodiment includes the following steps.

[0238] S1510. The network-side device sends a first test signal to the above terminal, so that the first receiving unit of the above terminal responds to receiving the first test signal and performs the first stage of the first RRM measurement within the first time period. And, S1520. The network-side device sends a second test signal to the above terminal, so that the first receiving unit of the above terminal responds to receiving the second test signal and performs the second stage of the first RRM measurement within the second time period; at least one of the following information is different between the first test signal and the second test signal: transmit power and signal-to-noise ratio.

[0239] The specific implementation manners of S1510 and S1520 are the same as those of S1410 and S1420, and will not be described in detail here.

[0240] The network - side device sends a fourth test signal, so that the second receiving unit responds to the received fourth test signal and performs the first stage of the second RRM measurement of the first cell within the third time period; and the network - side device sends a third test signal, so that the second receiving unit responds to the received third test signal and performs the second stage of the second RRM measurement of the first cell and its neighboring cells within the fourth time period.

[0241] When the measurement result of the first RRM measurement meets the second preset condition, the terminal starts the second receiving unit; the network - side device continues to send test signals, so that the second receiving unit performs the first stage of the second RRM measurement of the first cell within the third time period, and the second receiving unit performs the second stage of the second RRM measurement of the first cell and its neighboring cells within the fourth time period.

[0242] When the measurement result of the second stage of the first RRM measurement indicates that the network quality of the current cell is poor, the terminal (specifically, the first receiving unit) wakes up the second receiving unit. Further, the second receiving unit performs the first stage of the second RRM measurement of the first cell within the third time period. Specifically, within the third time period, the test signal used by the second receiving unit for the second RRM measurement can be the same as the second test signal. Through the measurement in the first stage of the second RRM measurement by the second receiving unit, the accuracy of the second stage of the first RRM measurement by the first receiving unit in the second time period can be verified, thus ensuring the accuracy of the measurement result of the terminal's RRM measurement. In addition, for the newly started second receiving unit, by performing the first stage of the second RRM measurement, a warm - up start effect can be achieved, which is beneficial to ensuring the accuracy of the subsequent measurement of the second receiving unit.

[0243] Exemplarily, when the network quality of the current cell is verified to be poor through the measurement result of the first stage of the second RRM measurement, the second receiving unit performs the second stage of the second RRM measurement of the first cell and its neighboring cells within the fourth time period to achieve cell reselection.

[0244] Exemplarily, the second receiving unit simultaneously performs the second stage of the second RRM measurement on the first cell and its neighboring cells according to the test signal sent by the network - side device. Among them, in the second stage of the second RRM measurement, the third test signal sent by the network - side device needs to meet the requirement that the network quality of at least one neighboring cell of the first cell is higher than the network signal quality of the first cell to meet the test requirements of cell reselection.

[0245] In an exemplary embodiment, after the second receiving unit is awakened, the first receiving unit can be controlled to switch from the working state to the sleep state to achieve an energy - saving effect.

[0246] In an exemplary embodiment, after completing the second RRM measurement, the terminal 110 performs cell reselection based on the measurement result of the second RRM measurement and camps on the second cell. Further, the access information of the second cell by the network device 120 is used to determine the test result of the RRM measurement performance of the terminal. The specific implementation manner for the network device 120 to determine the measurement result of the RRM measurement is the same as that of S1120 and will not be described herein again.

[0247] During the test provided by method P1500, the first receiving unit is in the startup state and the second receiving unit is in the sleep state in the first time period and the second time period. In the first time period, the network device sends a first test signal, and the first receiving unit listens for the first test information and performs the first stage of the first RRM measurement on the current cell based on the first test signal; in the second time period, the network device sends a second test signal, and the first receiving unit listens for the second test information and performs the second stage of the first RRM measurement on the current cell based on the second test signal. The measurement result of the second stage of the first RRM measurement is that the network quality of the first cell is poor, so as to ensure the condition for the terminal to wake up the second receiving unit. Next, the network device continues to send test signals so that the second receiving unit of the terminal first performs RRM measurement on the first cell, and then simultaneously performs RRM measurement on the first cell and its neighboring cells. The terminal performs cell reselection according to the second RRM measurement result. After camping on the second cell, the network device determines the test result of the RRM measurement performance of the terminal according to the access information of the terminal in the second cell. It can be seen that the embodiments of the present application can provide a performance test solution for the behavior of the low-power receiver waking up the main receiver.

[0248] Embodiment Thirteen

[0249] Based on the above embodiments, Embodiment Thirteen of the present application provides a test method for RRM measurement performance. This embodiment is used to describe the signaling interaction between the terminal and the network device during the positioning process. Figure 16 It is a signaling flow chart of a test method P1600 for RRM measurement performance provided by Embodiment Thirteen of the present application. As Figure 16 shown, the test method P1400 for RRM measurement performance provided by this embodiment includes the following steps.

[0250] S1601. The network device sends a test signal to the terminal;

[0251] S1602. The first receiving unit of the terminal responds to the test signal sent by the network device and performs the first RRM measurement on the first cell.

[0252] S1603. When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection;

[0253] S1604. The terminal determines the test result according to its access information in the second cell; or, S1604'. The network-side device determines the test result according to the terminal's access information in the second cell.

[0254] Among them, the specific implementation manners of the embodiments provided by method P1400 are the same as those of method P300 or method P1000, and will not be elaborated here.

[0255] Embodiment Fourteen

[0256] Based on the above embodiments, Embodiment Fourteen of the present application provides a test method for RRM measurement performance. This embodiment is used to describe the signaling interaction between the terminal and the network-side device during the positioning process. Figure 17 It is a signaling flow chart of a test method P1700 for RRM measurement performance provided by Embodiment Fourteen of the present application. As Figure 17 shown, the test method P1700 for RRM measurement performance provided by this embodiment includes the following steps.

[0257] S1701. The network-side device sends a first test signal to the terminal;

[0258] S1702. In response to receiving the first test signal sent by the network-side device, the first receiving unit of the terminal performs a first RRM measurement on the first cell;

[0259] S1703. When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit;

[0260] S1704. The network-side device sends a third test signal to the terminal;

[0261] S1705. In response to receiving the third test signal sent by the network-side device above, the second receiving unit performs a second RRM measurement on the first cell and the neighboring cells of the first cell within the second time period;

[0262] S1706. After the second time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement;

[0263] S1707. The terminal determines the test result according to its access information in the second cell; or, S1707'. The network-side device determines the test result according to the terminal's access information in the second cell.

[0264] Among them, the specific implementation manners of the embodiments provided by method P1700 are the same as those of method P600 or method P1200, and will not be described herein again.

[0265] Embodiment Fifteen

[0266] Based on the above embodiments, Embodiment Fifteen of the present application provides a test method for RRM measurement performance. This embodiment is used to describe the signaling interaction between the terminal and the network-side device during the positioning process. Figure 18 It is a signaling flow chart of a test method P1800 for RRM measurement performance provided by Embodiment Fifteen of the present application. As Figure 18 shown, the test method P1800 for RRM measurement performance provided by this embodiment includes the following steps.

[0267] S1801. The network-side device sends a first test signal to the terminal;

[0268] S1802. The first receiving unit of the terminal responds to the first test signal sent by the network-side device and performs a first RRM measurement on the first cell;

[0269] S1803. When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit;

[0270] S1804. The network-side device sends a fourth test signal to the terminal;

[0271] S1805. The second receiving unit responds to the fourth test signal sent by the network-side device above and performs the first stage of the second RRM measurement on the first cell within the second time period;

[0272] S1806. The network-side device sends a third test signal to the terminal;

[0273] S1807. The second receiving unit responds to the third test signal sent by the network-side device and performs the second stage of the second RRM measurement on the first cell and its neighboring cells within the third time period;

[0274] S1808. After the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement;

[0275] S1809. The terminal determines the test result according to its access information in the second cell; or, S1809'. The network-side device determines the test result according to the access information of the terminal in the second cell.

[0276] Among them, the specific implementation manners of the embodiments provided by method P1800 are the same as those of method P700 or method P1300, and will not be described herein again.

[0277] Embodiment XVI

[0278] Based on the above embodiments, Embodiment XVI of the present application provides a test method for RRM measurement performance. This embodiment is used to describe the signaling interaction between the terminal and the network-side device during the positioning process. Figure 19 It is a signaling flow chart of P1900 for a test method of RRM measurement performance provided by Embodiment XVI of the present application. As Figure 19 shown, the test method P1900 for RRM measurement performance provided by this embodiment includes the following steps.

[0279] S1901. The network-side device sends a first test signal to the terminal;

[0280] S1902. The first receiving unit of the terminal responds to the first test signal sent by the network-side device and performs the first stage of the first RRM measurement on the first cell within the first time period;

[0281] S1903. The network-side device sends a second test signal to the terminal;

[0282] S1904. The first receiving unit of the terminal responds to the first test signal sent by the network-side device and performs the second stage of the first RRM measurement on the first cell within the first time period;

[0283] S1905. When the measurement result of the first RRM measurement meets the second preset condition, the terminal starts the second receiving unit;

[0284] S1906. The network-side device sends a third test signal to the terminal;

[0285] S1907. The second receiving unit responds to the third test signal sent by the above network-side device and performs the second RRM measurement on the first cell and its neighboring cells within the third time period;

[0286] S1908. After the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement;

[0287] S1909. The terminal determines the test result according to its access information in the second cell; or, S1909'. The network-side device determines the test result according to the access information of the terminal in the second cell.

[0288] Among them, the specific implementation manner of the embodiment provided by method P1900 is the same as that of method P800 or method P1400, and will not be elaborated here.

[0289] Embodiment XVII

[0290] Based on the above embodiments, the seventeenth embodiment of the present application provides a test method for RRM measurement performance. This embodiment is used to describe the signaling interaction between the terminal and the network-side device during the positioning process. Figure 20 It is a signaling flow chart of the test method P2000 for RRM measurement performance provided by the seventeenth embodiment of the present application. As Figure 20 shown, the test method P2000 for RRM measurement performance provided by this embodiment includes the following steps.

[0291] S2001. The network-side device sends a first test signal to the terminal;

[0292] S2002. The first receiving unit of the terminal responds to the first test signal sent by the network-side device and performs the first stage of the first RRM measurement on the first cell within the first time period;

[0293] S2003. The network-side device sends a second test signal to the terminal;

[0294] S2004. The first receiving unit of the terminal responds to the first test signal sent by the network-side device and performs the second stage of the first RRM measurement on the first cell within the first time period;

[0295] S2005. When the measurement result of the first RRM measurement meets the second preset condition, the terminal starts the second receiving unit;

[0296] S2006. The network-side device sends a fourth test signal to the terminal;

[0297] S2007. The second receiving unit responds to the fourth test signal sent by the network-side device and performs the first stage of the second RRM measurement on the first cell within the third time period;

[0298] S2008. The network-side device sends a third test signal to the terminal;

[0299] S2009. The second receiving unit responds to the third test signal sent by the network-side device and performs the second stage of the second RRM measurement on the first cell and its neighboring cells within the fourth time period;

[0300] S2010. After the fourth time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement;

[0301] S2011. The terminal determines the test result according to its access information in the second cell; or, S2011'. The network-side device determines the test result according to the access information of the terminal in the second cell.

[0302] Among them, the specific implementation manner of the embodiment provided by method P2000 is the same as that of method P900 or method P1500, and will not be elaborated here.

[0303] Embodiment Eighteen

[0304] To facilitate better implementation of the test method for the RRM measurement performance of the embodiments of the present application, the embodiments of the present application further provide a test device for the RRM measurement performance. The test device for the RRM measurement performance can be applied in a terminal. Figure 21 As shown in the structural schematic diagram of a test device 2100 for the RRM measurement performance provided in Embodiment Eleven of the present application. Figure 21 As shown, the test device 2100 for the RRM measurement performance provided in this embodiment includes the following modules.

[0305] An RRM measurement module 2110 and a cell reselection module 2120; among them, the above-mentioned RRM measurement module 2110 is used for the first receiving unit of the terminal to perform a first RRM measurement on the first cell in response to receiving a test signal sent by a network-side device, where the operating power of the above-mentioned first receiving unit meets a first preset condition; the above-mentioned cell reselection module 2120 is used for, when the measurement result of the above-mentioned first RRM measurement meets a second preset condition, the above-mentioned terminal starts a second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection; among them, the access information of the above-mentioned terminal in the second cell is used to determine the test result of the RRM measurement performance of the above-mentioned terminal.

[0306] In some embodiments, based on the above solution, the above-mentioned first cell is the serving cell of the above-mentioned terminal when performing the above-mentioned first RRM measurement, and the above-mentioned second cell is an adjacent cell of the above-mentioned first cell.

[0307] In some embodiments, based on the above solution, the above-mentioned RRM measurement module 2110 is specifically used for: the first receiving unit of the above-mentioned terminal performs the above-mentioned first RRM measurement within a first time period in response to receiving a first test signal sent by a network-side device.

[0308] In some embodiments, based on the above solution, the above-mentioned RRM measurement module 2110 is specifically used for: the first receiving unit of the above-mentioned terminal performs the first stage of the above-mentioned first RRM measurement within a first time period in response to receiving a first test signal sent by a network-side device; and the first receiving unit of the above-mentioned terminal performs the second stage of the above-mentioned first RRM measurement within a second time period in response to receiving a second test signal sent by a network-side device; where at least one of the information between the above-mentioned first test signal and the above-mentioned second test signal is different: transmit power and signal-to-noise ratio.

[0309] In some embodiments, based on the above solution, the types of the first test signal and the second test signal both include at least one of the following: a low-power wake-up signal LP-WUS and a low-power synchronization signal LP-SS.

[0310] In some embodiments, based on the above solution, the apparatus 2100 further includes: a startup module;

[0311] The startup module is configured to cause the terminal to start a second receiving unit when the measurement result of the first RRM measurement meets a second preset condition; the RRM measurement module 2110 is further configured to: the second receiving unit responds to receiving a third test signal sent by the network-side device and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a second time period; the cell reselection module 2120 is specifically configured to: after the second time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

[0312] In some embodiments, based on the above solution, the apparatus 2100 further includes: a startup module;

[0313] The startup module is configured to cause the terminal to start a second receiving unit when the measurement result of the first RRM measurement meets a second preset condition; the RRM measurement module 2110 is further configured to: the second receiving unit responds to receiving a fourth test signal sent by the network-side device and performs a first stage of the second RRM measurement on the first cell within a second time period, and the second receiving unit responds to receiving a third test signal sent by the network-side device and performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a third time period; the cell reselection module 2120 is specifically configured to: after the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

[0314] In some embodiments, based on the above solution, the apparatus 2100 further includes: a startup module;

[0315] The startup module is configured to cause the terminal to start a second receiving unit when the measurement result of the first RRM measurement meets a second preset condition; the RRM measurement module 2110 is further configured to: the second receiving unit responds to receiving a third test signal sent by the network-side device and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a third time period; the cell reselection module 2120 is specifically configured to: after the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

[0316] In some embodiments, based on the above solution, the device 2100 further includes: a startup module;

[0317] The startup module is configured to start the second receiving unit when the measurement result of the first RRM measurement meets a second preset condition; the RRM measurement module 2110 is further configured to: the second receiving unit responds to receiving a fourth test signal sent by the network-side device and performs a first stage of the second RRM measurement of the first cell within a third time period, and the second receiving unit responds to receiving a third test signal sent by the network-side device and performs a second stage of the second RRM measurement of the first cell and adjacent cells of the first cell within a fourth time period; the cell reselection module 2120 is specifically configured to: after the fourth time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

[0318] In some embodiments, based on the above solution, the above device further includes: a determination module; the determination module is configured to: obtain the number of accesses to the random access channel (RACH) initiated by the second receiving unit within a preset duration after camping on the second cell; and determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

[0319] In some embodiments, based on the above solution, during the process of the first receiving unit performing the first RRM measurement on the first cell, the second receiving unit is in a shutdown state or a sleep state.

[0320] In some embodiments, based on the above solution, the first receiving unit determines the test signal through a prediction detection method, and the preset detection method includes at least one of the following: a sequence detection method, a threshold detection method, and a payload detection method.

[0321] In some embodiments, based on the above solution, the terminal is in an idle mode or a deactivated mode of radio resource control (RRC).

[0322] It should be understood that the test device embodiment for RRM measurement performance provided in Embodiment XVIII can correspond to the method embodiment with the terminal as the execution subject, and similar descriptions can refer to the method embodiment. To avoid repetition, it will not be elaborated here.

[0323] Embodiment XIX

[0324] To facilitate better implementation of the test method for RRM measurement performance in the embodiments of the present application, the embodiments of the present application further provide a test device for RRM measurement performance. The test device for RRM measurement performance can be applied in a network-side device. Figure 22Schematic diagram of a test device 2200 for RRM measurement performance provided in the seventeenth embodiment of the present application, as shown in Figure 22 shown, the test device 2200 for RRM measurement performance provided in this embodiment includes the following modules.

[0325] A first sending module 2210; wherein, the above-mentioned first sending module 2210 is used for the network-side device to send a test signal to the terminal, so that the first receiving unit of the terminal responds to the received test signal to perform a first RRM measurement on a first cell, wherein the operating power of the first receiving unit meets a first preset condition; wherein, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit and performs a second RRM measurement through the second receiving unit for cell reselection; the access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0326] In some embodiments, based on the above solution, the first cell is the resident cell of the terminal when performing the first RRM measurement, and the second cell is an adjacent cell of the first cell.

[0327] In some embodiments, based on the above solution, the first sending module 2210 is specifically configured to: the network-side device sends a first test signal to the terminal, so that the first receiving unit of the terminal responds to the received first test signal to perform the first RRM measurement within a first time period.

[0328] In some embodiments, based on the above solution, the first sending module 2210 is specifically configured to: the network-side device sends a first test signal to the terminal, so that the first receiving unit of the terminal responds to the received first test signal to perform the first stage of the first RRM measurement within a first time period; and, the network-side device sends a second test signal to the terminal, so that the first receiving unit of the terminal responds to the received second test signal to perform the second stage of the first RRM measurement within a second time period; wherein, at least one of the information between the first test signal and the second test signal is different: transmit power and signal-to-noise ratio.

[0329] In some embodiments, based on the above solution, the types of the first test signal and the second test signal both include at least one of the following: low-power wake-up signal LP-WUS, and low-power synchronization signal LP-SS.

[0330] In some embodiments, based on the above solution, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; the device 2200 further includes: a second sending module;

[0331] The second sending module is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a second time period.

[0332] In some embodiments, based on the above solution, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; the apparatus 2200 further includes: a second sending module;

[0333] The second sending module is configured to send a fourth test signal, so that the second receiving unit of the terminal responds to receiving the fourth test signal and performs a first stage of the second RRM measurement on the first cell within a second time period; and is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a third time period.

[0334] In some embodiments, based on the above solution, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; the apparatus 2200 further includes: a second sending module;

[0335] The second sending module is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a third time period.

[0336] In some embodiments, based on the above solution, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; the apparatus 2200 further includes: a second sending module;

[0337] The second sending module is configured to send a fourth test signal, so that the second receiving unit of the terminal responds to receiving the fourth test signal and performs a first stage of the second RRM measurement on the first cell within a third time period; and is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a fourth time period.

[0338] In some embodiments, based on the above solution, the apparatus 2200 further includes a determination module. The determination module is configured to: obtain the number of accesses to the random access channel (RACH) initiated by the second receiving unit within a preset time period after camping on the second cell; and determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

[0339] It should be understood that the test apparatus embodiment for RRM measurement performance provided in the nineteenth embodiment corresponds to the method embodiment with the network-side device as the execution subject. Similar descriptions can refer to the method embodiment. To avoid repetition, it will not be elaborated here.

[0340] The test apparatus for RRM measurement performance in the embodiments of the present application may be an electronic device, such as an electronic device with an operating system, or a component in an electronic device, such as an integrated circuit or a chip. The electronic device may be a terminal or other devices other than the terminal. Exemplarily, the terminal may include, but is not limited to, the types of terminals listed above. Other devices may be a server, a network attached storage (NAS), etc., which are not specifically limited in the embodiments of the present application.

[0341] Embodiment Twenty

[0342] As Figure 23 shown, the embodiments of the present application further provide a communication device 2300, including a processor 2301 and a memory 2302. A program or instruction that can run on the processor 2301 is stored on the memory 2302. For example, when the communication device 2300 is a terminal, when the program or instruction is executed by the processor 2301, it implements the steps of the corresponding embodiments in any of the figures in the above RRM measurement performance test method, and can achieve the same technical effect. When the communication device 2300 is a network-side device, when the program or instruction is executed by the processor 2301, it implements the steps of the corresponding embodiments in any of the figures in the above RRM measurement performance test method, and can achieve the same technical effect. To avoid repetition, it will not be elaborated here. Figures 3 to 9 Figures 10 to 15 Figures 10 to 15

[0343] Embodiment Twenty-One

[0344] The embodiments of the present application further provide a terminal, including a processor and a communication interface. The communication interface is coupled to the processor. The processor is configured to run a program or instruction to implement the steps in the method embodiments shown in any of the figures. This terminal embodiment corresponds to the above terminal-side method embodiments. The various implementation processes and implementation manners of the above method embodiments can be applied to this terminal embodiment, and can achieve the same technical effect. Specifically, Figures 3 to 9 Figure 24 Figure 24Schematic diagram of the hardware structure of a terminal according to an embodiment of the present application.

[0345] The terminal 2400 includes, but is not limited to, at least some components such as a radio frequency unit 2401, a network module 2402, an audio output unit 2403, an input unit 2404, a sensor 2405, a display unit 2406, a user input unit 2407, an interface unit 2408, a memory 2409, and a processor 2410.

[0346] Those skilled in the art can understand that the terminal 2400 may further include a power source (such as a battery) for supplying power to each component. The power source can be logically connected to the processor 2410 through a power management system, so as to implement functions such as management of charging, discharging, and power consumption management through the power management system. Figure 24 The terminal structure shown does not limit the terminal. The terminal may include more or fewer components than shown, or combine certain components, or have different component arrangements, which will not be elaborated here.

[0347] It should be understood that in the embodiment of the present application, the input unit 2404 may include a graphics processing unit (GPU) 24041 and a microphone 24042. The graphics processor 24041 processes the image data of static pictures or videos obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode. The display unit 2406 may include a display panel 24061, and the display panel 24061 may be configured in the form of a liquid crystal display, an organic light emitting diode, etc. The user input unit 2407 includes at least one of a touch panel 24071 and other input devices 24072. The touch panel 24071 is also called a touch screen. The touch panel 24071 may include two parts: a touch detection device and a touch controller. The other input devices 24072 may include, but are not limited to, a physical keyboard, function keys (such as volume control keys, power on / off keys, etc.), a trackball, a mouse, and a joystick, which will not be elaborated here.

[0348] In the embodiment of the present application, after the radio frequency unit 2401 receives downlink data from a network side device, it can be transmitted to the processor 2410 for processing; in addition, the radio frequency unit 2401 can send uplink data to the network side device. Generally, the radio frequency unit 2401 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.

[0349] The memory 2409 can be used to store software programs or instructions and various data. The memory 2409 may mainly include a first storage area for storing programs or instructions and a second storage area for storing data. Among them, the first storage area may store an operating system, application programs or instructions required for at least one function (such as a sound playback function, an image playback function, etc.). In addition, the memory 2409 may include volatile memory or non-volatile memory. Among them, the non-volatile memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM), a static random access memory (SRAM), a dynamic random access memory (DRAM), a synchronous dynamic random access memory (SDRAM), a double data rate synchronous dynamic random access memory (DDR SDRAM), an enhanced synchronous dynamic random access memory (ESDRAM), a synchlink dynamic random access memory (SLDRAM), and a direct rambus random access memory (DRRAM). The memory 2409 in the embodiments of the present application includes, but is not limited to, these and any other suitable types of memory.

[0350] The processor 2410 may include one or more processing units; optionally, the processor 2410 integrates an application processor and a modem processor. Among them, the application processor mainly processes operations related to the operating system, user interface, and application programs, etc., and the modem processor mainly processes wireless communication signals, such as a baseband processor. It can be understood that the above modem processor may not be integrated into the processor 2410.

[0351] Among them, the processor 2410 is used to control the first receiving unit to respond to the test signal sent by the network-side device and perform a first RRM measurement on the first cell, where the operating power of the first receiving unit meets a first preset condition; and, when the measurement result of the first RRM measurement meets a second preset condition, start the second receiving unit and perform a second RRM measurement through the second receiving unit for cell reselection; where the access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the terminal.

[0352] The terminal is deployed with a first receiving unit whose operating power meets the first preset condition, wherein, when the network side sends a test signal to the terminal, the first receiving unit performs a first RRM measurement on the first cell to reduce the power consumption of the terminal. When the measurement result of the first RRM measurement meets the second preset condition, the terminal restarts the second receiving unit, and performs a second RRM measurement through the second receiving unit to perform cell reselection. Furthermore, the access information of the terminal in the second cell can be used to determine the test result of the RRM measurement performance of the terminal. For example, the successful access of the terminal to the second cell indicates that the first receiving unit successfully wakes up the second receiving unit during the RRM measurement process. It can be seen that the embodiment of the present application can provide a performance test scheme for the behavior of a low-power receiver waking up a main receiver.

[0353] It can be understood that the implementation process of each implementation method mentioned in this embodiment can refer to the method embodiment such as Figures 3 to 9 The relevant description of any figure, which achieves the same or corresponding technical effects, will not be repeated here to avoid repetition.

[0354] Embodiment 22

[0355] The embodiment of the present application also provides a network side device, including a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run a program or instruction to implement the following Figures 10 to 15 The steps of the method embodiment shown in any figure. The network side device embodiment corresponds to the above network side device method embodiment, and each implementation process and implementation method of the above method embodiment can be applied to the network side device embodiment and can achieve the same technical effect.

[0356] Specifically, the embodiment of the present application also provides a network side device. Figure 25 As shown, the network side device 2500 includes: an antenna 251, a radio frequency device 252, a baseband device 253, a processor 254 and a memory 255. The antenna 251 is connected to the radio frequency device 252. In the uplink direction, the radio frequency device 252 receives information through the antenna 251 and sends the received information to the baseband device 253 for processing. In the downlink direction, the baseband device 253 processes the information to be sent and sends it to the radio frequency device 252. The radio frequency device 252 processes the received information and sends it out through the antenna 251.

[0357] The method executed by the network-side device in the above embodiment may be implemented in the baseband device 253, which includes a baseband processor.

[0358] The baseband device 253 may include, for example, at least one baseband board, on which a plurality of chips are provided, such as Figure 25 as shown. One of the chips is, for example, a baseband processor, which is connected to the memory 255 through a bus interface to call the program in the memory 255 and execute the operations of the network device shown in the above method embodiments.

[0359] The network-side device may further include a network interface 256, which is, for example, a Common Public Radio Interface (CPRI).

[0360] Specifically, the network-side device 2500 in the embodiments of the present invention further includes: instructions or programs stored on the memory 255 and executable on the processor 254. The processor 254 calls the instructions or programs in the memory 255 to execute Figure 22 the methods executed by the modules shown, and achieves the same technical effects. To avoid repetition, they are not described herein again.

[0361] Embodiment Twenty-Three

[0362] The embodiments of the present application further provide a readable storage medium, on which a program or instructions are stored. When the program or instructions are executed by a processor, each process of the above test method embodiment of the RRM measurement performance is implemented, and the same technical effects can be achieved. To avoid repetition, they are not described herein again.

[0363] Wherein, the processor is the processor in the terminal in the above embodiments. The readable storage medium includes computer-readable storage media, such as computer read-only memory ROM, random access memory RAM, magnetic disks, or optical discs, etc. In some examples, the readable storage medium may be a non-transitory readable storage medium.

[0364] Embodiment Twenty-Four

[0365] The embodiments of the present application further provide a chip, which includes a processor and a communication interface. The communication interface is coupled to the processor. The processor is used to run the program or instructions to implement each process of the above test method embodiment of the RRM measurement performance, and the same technical effects can be achieved. To avoid repetition, they are not described herein again.

[0366] It should be understood that the chip mentioned in the embodiments of the present application may also be referred to as a system-on-chip, system chip, chip system, or system-on-chip, etc.

[0367] Embodiment Twenty-Five

[0368] An embodiment of the present application provides a computer program / program product. The computer program / program product is stored in a storage medium and is executed by at least one processor to implement the various processes of the above-mentioned embodiment of the RRM measurement performance test method, and can achieve the same technical effects. To avoid repetition, it will not be elaborated here.

[0369] Embodiment Twenty-Six

[0370] An embodiment of the present application further provides a test system for RRM measurement performance, including: a terminal and a network-side device. The terminal can be used to execute the steps of the RRM measurement performance test method as described in Figures 3 to 9 any one of the figures, and the network-side device can be used to execute the steps of the RRM measurement performance test method as described in Figures 10 to 15 any one of the figures.

[0371] It should be noted that in this article, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device 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 process, method, article or device. Without more limitations, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including that element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in the reverse order according to the functions involved. For example, the described method may be performed in a different order than described, and various steps may be added, omitted or combined. In addition, the features described with reference to certain examples may be combined in other examples.

[0372] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of a computer software product plus a necessary general hardware platform, and of course, they can also be implemented by hardware. The computer software product is stored in a storage medium (such as ROM, RAM, magnetic disk, optical disk, etc.) and includes several instructions for causing the terminal or the network-side device to execute the RRM measurement performance test methods provided in the various embodiments of the present application.

[0373] The embodiments of the present application have been described above in conjunction with the accompanying drawings. However, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms of embodiments without departing from the purpose of the present application and the scope protected by the claims. All these embodiments fall within the protection scope of the present application.

Claims

1. A test method for the measurement performance of radio resource management (RRM), characterized in that, including: A first receiving unit of the terminal responds to receiving a test signal sent by a network-side device, and performs a first RRM measurement on a first cell, where the operating power of the first receiving unit meets a first preset condition; When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit, and performs a second RRM measurement through the second receiving unit to perform cell reselection; Wherein, the access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the terminal.

2. The method according to claim 1, wherein The first cell is the serving cell of the terminal when performing the first RRM measurement, and the second cell is an adjacent cell of the first cell.

3. The method according to claim 1 or 2, characterized in that The first receiving unit of the terminal responds to receiving a test signal sent by a network-side device, and performing a first RRM measurement on a first cell, including: The first receiving unit of the terminal responds to receiving a first test signal sent by a network-side device, and performs the first RRM measurement within a first time period.

4. The method according to claim 1 or 2, characterized in that, The first receiving unit of the terminal responds to receiving a test signal sent by a network-side device, and performing a first RRM measurement on a first cell, including: The first receiving unit of the terminal responds to receiving a first test signal sent by a network-side device, and performs a first stage of the first RRM measurement within a first time period; The first receiving unit of the terminal responds to receiving a second test signal sent by a network-side device, and performs a second stage of the first RRM measurement within a second time period; Wherein, at least one of the following information is different between the first test signal and the second test signal: transmit power and signal-to-noise ratio.

5. The method according to claim 4, wherein The types of the first test signal and the second test signal both include at least one of the following: low-power wake-up signal LP-WUS, and low-power synchronization signal LP-SS.

6. The method according to claim 4, characterized in that The first receiving unit determines the first test signal and the second test signal through a prediction detection method, and the preset detection method includes at least one of the following: sequence detection method, threshold detection method, and payload detection method.

7. The method according to claim 3 or 5 or 6, characterized in that, The method further includes: When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; The second receiving unit responds to receiving a third test signal sent by the network-side device, and performs a second RRM measurement on the first cell and an adjacent cell of the first cell within a second time period; After the second time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

8. The method according to claim 3 or 5 or 6, characterized in that, The method further includes: When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; The second receiving unit responds to receiving a fourth test signal sent by the network-side device, and performs a first stage of the second RRM measurement on the first cell within a second time period; The second receiving unit responds to receiving a third test signal sent by the network-side device, and performs a second stage of the second RRM measurement on the first cell and an adjacent cell of the first cell within a third time period; After the completion of the third time period, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

9. The method according to claim 4, wherein The method further includes: When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; In response to receiving a third test signal sent by the network side device, the second receiving unit performs a second RRM measurement on the first cell and adjacent cells of the first cell within a third time period; After the completion of the third time period, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

10. The method according to claim 4, wherein The method further includes: When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; In response to receiving a fourth test signal sent by the network side device, the second receiving unit performs a first stage of the second RRM measurement on the first cell within a third time period; In response to receiving a third test signal sent by the network side device, the second receiving unit performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a fourth time period; After the completion of the fourth time period, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

11. The method according to any one of claims 1 to 10, characterized in that, The method further includes: After the terminal camps on the second cell, it obtains the number of accesses to the random access channel (RACH) initiated by the second receiving unit within a preset duration; Based on the number of accesses, it determines the test result of the RRM measurement performance of the terminal.

12. The method according to any one of claims 1 to 10, characterized in that, During the process of the first receiving unit performing the first RRM measurement on the first cell, the second receiving unit is in a shutdown state or a sleep state.

13. The method according to any one of claims 1 to 10, characterized in that, The terminal is in the radio resource control (RRC) idle mode or deactivated mode.

14. A test method for the measurement performance of radio resource management (RRM), characterized in that, It includes: The network side device sends a test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the test signal to perform a first RRM measurement on the first cell, where the operating power of the first receiving unit meets a first preset condition; Wherein, when the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit, and the terminal performs a second RRM measurement through the second receiving unit for cell reselection; The access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the terminal.

15. The method according to claim 14, characterized in that, The first cell is the cell where the terminal camps when performing the first RRM measurement, and the second cell is an adjacent cell of the first cell.

16. The method according to claim 14 or 15, characterized in that The network side device sending a test signal to the terminal includes: The network side device sends a first test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the first test signal to perform the first RRM measurement within a first time period.

17. The method according to claim 14 or 15, characterized in that The network side device sending a test signal to the terminal includes: The first test signal sent by the network-side device to the terminal, so that the first receiving unit of the terminal performs the first stage of the first RRM measurement within a first time period in response to receiving the first test signal; The second test signal sent by the network-side device to the terminal, so that the first receiving unit of the terminal performs the second stage of the first RRM measurement within a second time period in response to receiving the second test signal; Wherein, at least one of the following information is different between the first test signal and the second test signal: transmission power and signal-to-noise ratio.

18. The method according to claim 17, wherein The types of the first test signal and the second test signal both include at least one of the following: low-power wake-up signal LP-WUS, and low-power synchronization signal LP-SS.

19. The method according to claim 16, wherein When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the method further includes: The network-side device sends a third test signal, so that the second receiving unit of the terminal performs the second RRM measurement on the first cell and the neighboring cells of the first cell within a second time period in response to receiving the third test signal.

20. The method according to claim 16, wherein When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the method further includes: The network-side device sends a fourth test signal, so that the second receiving unit of the terminal performs the first stage of the second RRM measurement on the first cell within a second time period in response to receiving the fourth test signal. The network-side device sends a third test signal, so that the second receiving unit of the terminal performs the second stage of the second RRM measurement on the first cell and the neighboring cells of the first cell within a third time period in response to receiving the third test signal.

21. The method according to claim 17, wherein When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the method further includes: The network-side device sends a third test signal, so that the second receiving unit of the terminal performs the second RRM measurement on the first cell and the neighboring cells of the first cell within a third time period in response to receiving the third test signal.

22. The method according to claim 17, wherein When the measurement result of the first RRM measurement meets the second preset condition, the terminal activates the second receiving unit; the method further includes: The network-side device sends a fourth test signal, so that the second receiving unit of the terminal performs the first stage of the second RRM measurement on the first cell within a third time period in response to receiving the fourth test signal. The network-side device sends a third test signal, so that the second receiving unit of the terminal performs the second stage of the second RRM measurement on the first cell and the neighboring cells of the first cell within a fourth time period in response to receiving the third test signal.

23. The method according to any one of claims 14 to 22, characterized in that The method further includes: The network-side device obtains the number of accesses to the random access channel RACH initiated by the second receiving unit within a preset duration after the terminal camps on the second cell; Determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

24. A test device for the measurement performance of radio resource management (RRM), characterized in that, Including: An RRM measurement module, configured to, when a first receiving unit of a terminal responds to receiving a test signal sent by a network-side device, perform a first RRM measurement on a first cell, where an operating power of the first receiving unit meets a first preset condition; A cell reselection module, configured to, when a measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit and performs a second RRM measurement through the second receiving unit to perform cell reselection; Wherein, access information of the terminal in a second cell is used to determine a test result of the RRM measurement performance of the terminal.

25. The device according to claim 24, characterized in that, The RRM measurement module is specifically configured to: when the first receiving unit of the terminal responds to receiving a first test signal sent by the network-side device, perform the first RRM measurement within a first time period.

26. The device according to claim 24, characterized in that, The RRM measurement module is specifically configured to: when the first receiving unit of the terminal responds to receiving a first test signal sent by the network-side device, perform a first stage of the first RRM measurement within a first time period; and when the first receiving unit of the terminal responds to receiving a second test signal sent by the network-side device, perform a second stage of the first RRM measurement within a second time period; Wherein, at least one of the following information is different between the first test signal and the second test signal: transmit power and signal-to-noise ratio.

27. The device according to claim 25, characterized in that, The apparatus further includes: a startup module; The startup module is configured to, when a measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; The RRM measurement module is further configured to: when the second receiving unit responds to receiving a third test signal sent by the network-side device, perform a second RRM measurement on the first cell and adjacent cells of the first cell within a second time period; The cell reselection module is specifically configured to: after the second time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

28. The device according to claim 25, characterized in that, The apparatus further includes: a startup module; The startup module is configured to, when a measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; The RRM measurement module is further configured to: when the second receiving unit responds to receiving a fourth test signal sent by the network-side device, perform a first stage of the second RRM measurement on the first cell within a second time period, and when the second receiving unit responds to receiving a third test signal sent by the network-side device, perform a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a third time period; The cell reselection module is specifically configured to: after the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

29. The device according to claim 26, characterized in that, The apparatus further includes: a startup module; The startup module is configured to, when a measurement result of the first RRM measurement meets a second preset condition, the terminal activates the second receiving unit; The RRM measurement module is further configured to: in response to receiving a third test signal sent by the network side device, the second receiving unit performs a second RRM measurement on the first cell and adjacent cells of the first cell within a third time period; The cell reselection module is specifically configured to: after the third time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

30. The device according to claim 26, characterized in that, The device further includes: a start module; The start module is configured to: when the measurement result of the first RRM measurement meets a second preset condition, the terminal starts the second receiving unit; The RRM measurement module is further configured to: in a first stage of the second RRM measurement of the first cell within a third time period when the second receiving unit responds to receiving a fourth test signal sent by the network side device, and in a second stage of the second RRM measurement of the first cell and adjacent cells of the first cell within a fourth time period when the second receiving unit responds to receiving a third test signal sent by the network side device; The cell reselection module is specifically configured to: after the fourth time period is completed, the terminal performs cell reselection according to the measurement result of the second RRM measurement.

31. The device according to any one of claims 24 to 30, characterized in that, The device further includes: a determination module; The determination module is configured to: obtain the number of accesses to the random access channel (RACH) initiated by the second receiving unit within a preset duration after camping on the second cell; and determine the test result of the RRM measurement performance of the terminal according to the number of accesses.

32. A test device for the measurement performance of radio resource management (RRM), characterized in that, It includes: A first sending module for the network side device to send a test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the test signal to perform a first RRM measurement on a first cell, where the operating power of the first receiving unit meets a first preset condition; Wherein, when the measurement result of the first RRM measurement meets a second preset condition, the terminal starts the second receiving unit, and the terminal performs a second RRM measurement through the second receiving unit for cell reselection; The access information of the terminal in the second cell is used to determine the test result of the RRM measurement performance of the terminal.

33. The device according to claim 32, wherein, The first sending module is specifically configured to: send a first test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the first test signal to perform the first RRM measurement within a first time period.

34. The device according to claim 32, wherein, The first sending module is specifically configured to: send a first test signal to the terminal, so that the first receiving unit of the terminal responds to receiving the first test signal to perform a first stage of the first RRM measurement within a first time period; and send a second test signal from the network side device to the terminal, so that the first receiving unit of the terminal responds to receiving the second test signal to perform a second stage of the first RRM measurement within a second time period; Wherein, at least one of the following information is different between the first test signal and the second test signal: transmit power and signal-to-noise ratio.

35. The device according to claim 33, characterized in that, When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; the device further includes: a second sending module; The second sending module is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a second time period.

36. The device according to claim 33, wherein When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; the device further includes: a second sending module; The second sending module is configured to send a fourth test signal, so that the second receiving unit of the terminal responds to receiving the fourth test signal and performs a first stage of the second RRM measurement on the first cell within a second time period; and is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a third time period.

37. The device according to claim 34, wherein When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; the device further includes: a second sending module; The second sending module is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second RRM measurement on the first cell and adjacent cells of the first cell within a third time period.

38. The apparatus according to claim 34, wherein When the measurement result of the first RRM measurement meets a second preset condition, the terminal activates a second receiving unit; the device further includes: a second sending module; The second sending module is configured to send a fourth test signal, so that the second receiving unit of the terminal responds to receiving the fourth test signal and performs a first stage of the second RRM measurement on the first cell within a third time period; and is configured to send a third test signal, so that the second receiving unit of the terminal responds to receiving the third test signal and performs a second stage of the second RRM measurement on the first cell and adjacent cells of the first cell within a fourth time period.

39. The device according to any one of claims 32 to 38, characterized in that The device further includes: a determining module; The determining module is configured to: obtain the number of accesses to a random access channel (RACH) initiated by the second receiving unit within a preset duration after camping on the second cell; and determine a test result of the RRM measurement performance of the terminal according to the number of accesses.

40. A terminal, characterized in that, It includes a processor and a memory, where the memory stores a program or instruction that can run on the processor, and when the program or instruction is executed by the processor, it implements the steps of the method for testing the radio resource management (RRM) measurement performance according to any one of claims 1 to 13.

41. A network-side device, characterized in that, It includes a processor and a memory, where the memory stores a program or instruction that can run on the processor, and when the program or instruction is executed by the processor, it implements the steps of the method for testing the radio resource management (RRM) measurement performance according to any one of claims 14 to 23.

42. A readable storage medium, characterized in that, The program or instructions are stored on the readable storage medium, and when the program or instructions are executed by the processor, the method for testing the radio resource management (RRM) measurement performance described in any one of claims 1 to 13 is implemented, or the steps of the method for testing the RRM measurement performance described in any one of claims 14 to 23 are implemented.