Methods, apparatus, terminals, network equipment and media for wireless resource management measurement
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2026-08-14
AI Technical Summary
[0003]在现有的无线资源管理(Radio Resource Management,RRM)测量中,终端的测量延迟过长将导致结果可靠性下降,并影响终端和网络的整体性能,有必要采用RRM测量的增强方案以缩短测量时延,而采用RRM测量增强方案时,在达到测量时延缩短的条件下,满足终端能耗控制和网络负荷控制的灵活性,成为目前RRM测量的重要研究方向
[0112]上述方案中,网络设备能够向终端发送指示RRM测量的第一测量参数进行调整的第一配置条件信息,和/或指示RRM测量时对应不同类型载波的测量能力分配信息,以使终端能够根据网络设备所配置的第一配置条件信息进行用于实现测量时延更短的第一测量参数的调整,和/或,根据网络设备所配置的测量能力分配信息确定对应不同类型载波的测量能力分配,在满足RRM测量时延缩短的条件下,根据网络设备所指示的信息进行RRM测量,达到满足终端能耗控制和网络负荷控制的灵活性的目的。
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Figure CN122579153A_ABST
Abstract
Description
[0001] This application claims priority to the patent application filed on February 14, 2025, with application number 2025101646777, entitled "Method, Apparatus, Terminal, Network Equipment and Medium for Wireless Resource Management Measurement". Technical Field
[0002] This application relates to the field of communication technology, and in particular to a method, apparatus, terminal, network device, and medium for wireless resource management measurement. Background Technology
[0003] In existing Radio Resource Management (RRM) measurements, excessive measurement delays at the terminal can lead to decreased reliability of results and affect the overall performance of the terminal and the network. It is necessary to adopt enhanced RRM measurement schemes to shorten measurement delays. When adopting enhanced RRM measurement schemes, it is important to meet the flexibility of terminal power consumption control and network load control while achieving reduced measurement delays. Summary of the Invention
[0004] The purpose of this application is to provide a method, apparatus, terminal, network device, and medium for wireless resource management measurement, which can reduce measurement latency in RRM measurement while satisfying the flexibility of terminal power consumption control and network load control.
[0005] To address the aforementioned technical problems, this application provides a method for wireless resource management measurement, wherein the method is executed by a terminal and includes:
[0006] Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0007] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0008] In some embodiments, the method further includes:
[0009] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0010] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0011] In some embodiments, the method wherein the first configuration condition information includes one or more of the following:
[0012] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0013] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0014] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0015] In some embodiments, the method wherein the second configuration condition information includes one or more of the following:
[0016] Community quality threshold;
[0017] The threshold for the number of objects to be measured;
[0018] Ratio threshold;
[0019] The bias of the cell quality threshold.
[0020] In some embodiments, the method further includes:
[0021] The first measurement parameter is lowered if one of the following conditions is met:
[0022] The cell quality of the serving cell is less than or equal to the cell quality threshold.
[0023] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold;
[0024] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold.
[0025] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset.
[0026] The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
[0027] In some embodiments, the method further includes one or more of the following:
[0028] After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value.
[0029] During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised.
[0030] During the RRM measurement using the first measurement parameter after lowering the processing, after sending a first notification message to the network device via Terminal Assist Information (UAI), the first measurement parameter is then increased. The first notification message is used to notify the network device that the terminal will increase the first measurement parameter. If, before the RRM measurement using the first measurement parameter after lowering the processing reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is then increased.
[0031] If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher.
[0032] After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
[0033] In some embodiments, the method further includes:
[0034] The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
[0035] In some embodiments, the method wherein the measurement capability allocation information includes one or more of the following:
[0036] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0037] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0038] One embodiment of this application also provides a method for wireless resource management measurement, wherein the method is performed by a network device, the method comprising:
[0039] Send first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information.
[0040] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0041] In some embodiments, the method wherein the first configuration condition information includes one or more of the following:
[0042] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0043] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0044] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0045] In some embodiments, the method wherein the second configuration condition information includes one or more of the following:
[0046] Community quality threshold;
[0047] The threshold for the number of objects to be measured;
[0048] Ratio threshold;
[0049] The bias of the cell quality threshold.
[0050] In some embodiments, the method wherein the measurement capability allocation information includes one or more of the following:
[0051] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0052] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0053] One embodiment of this application also provides a terminal, including: a transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor; wherein,
[0054] The processor is used to read the program from the memory and execute the following processes:
[0055] Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0056] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0057] In some embodiments, the terminal, wherein the processor is further configured to read a program from memory and execute the following processes:
[0058] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0059] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0060] In some embodiments, the terminal includes one or more of the following:
[0061] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0062] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0063] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0064] In some embodiments, the terminal includes one or more of the following:
[0065] Community quality threshold;
[0066] The threshold for the number of objects to be measured;
[0067] Ratio threshold;
[0068] The bias of the cell quality threshold.
[0069] In some embodiments, the terminal, wherein the processor is further configured to read a program from memory and execute the following processes:
[0070] The first measurement parameter is lowered if one of the following conditions is met:
[0071] The cell quality of the serving cell is less than or equal to the cell quality threshold.
[0072] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold;
[0073] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold.
[0074] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset.
[0075] The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
[0076] In some embodiments, the terminal further includes a processor configured to read a program from memory and execute one or more of the following processes:
[0077] After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value.
[0078] During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised.
[0079] During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device via Terminal Assist Information (UAI), the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will raise the first measurement parameter.
[0080] If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased.
[0081] If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher.
[0082] After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
[0083] In some embodiments, the terminal, wherein the processor is further configured to read a program from memory and execute the following processes:
[0084] The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
[0085] In some embodiments, the terminal includes one or more of the following:
[0086] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0087] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0088] One embodiment of this application also provides a network device, including: a transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor; wherein,
[0089] The processor is used to read the program from the memory and execute the following processes:
[0090] Send first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information.
[0091] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0092] In some embodiments, the network device includes one or more of the following:
[0093] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0094] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0095] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0096] In some embodiments, the network device includes one or more of the following:
[0097] Community quality threshold;
[0098] The threshold for the number of objects to be measured;
[0099] Ratio threshold;
[0100] The bias of the cell quality threshold.
[0101] In some embodiments, the network device includes one or more of the following:
[0102] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0103] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0104] One embodiment of this application also provides a device for wireless resource management measurement, wherein the device is applied to a terminal and includes:
[0105] The acquisition module is used to acquire first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0106] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0107] One embodiment of this application also provides a device for wireless resource management measurement, wherein the device is applied to a network device, and the device includes:
[0108] The transmitting module is configured to transmit first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information;
[0109] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0110] One embodiment of this application also provides a processor-readable storage medium, wherein the processor-readable storage medium stores a computer program for causing the processor to perform any of the methods described above.
[0111] The beneficial effects of the above technical solution in this application are as follows:
[0112] In the above scheme, the network device can send the terminal first configuration condition information indicating the adjustment of the first measurement parameter for RRM measurement, and / or the measurement capability allocation information corresponding to different types of carriers during RRM measurement, so that the terminal can adjust the first measurement parameter to achieve shorter measurement latency according to the first configuration condition information configured by the network device, and / or determine the measurement capability allocation corresponding to different types of carriers according to the measurement capability allocation information configured by the network device. Under the condition of shortening the RRM measurement latency, RRM measurement is performed according to the information indicated by the network device, thereby achieving the goal of meeting the flexibility of terminal power consumption control and network load control. Attached Figure Description
[0113] Figure 1 This is a flowchart illustrating the method described in one embodiment of this application.
[0114] Figure 2 This is one of the schematic diagrams illustrating the relationship between community quality and timed duration.
[0115] Figure 3 The second diagram illustrating the relationship between community quality and timed duration;
[0116] Figure 4 This is a flowchart illustrating the method described in another embodiment of this application;
[0117] Figure 5 This is a schematic diagram of the structure of the terminal described in the embodiments of this application;
[0118] Figure 6 This is a schematic diagram of the network device described in the embodiments of this application;
[0119] Figure 7 This is a schematic diagram of the structure of the device according to one embodiment of this application;
[0120] Figure 8 This is a schematic diagram of the structure of the device according to another embodiment of this application. Detailed Implementation
[0121] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0122] In the embodiments of this application, the term "and / or" describes the relationship between associated objects, indicating that three relationships can exist. For example, A and / or B can represent three cases: A alone, A and B simultaneously, and B alone. The character " / " generally indicates that the preceding and following associated objects have an "or" relationship.
[0123] In the embodiments of this application, the term "multiple" refers to two or more, and other quantifiers are similar.
[0124] It should be noted that the technical solutions provided in this application are applicable to a variety of systems, especially 5th-Generation (5G) mobile communication systems. For example, applicable systems may include Global System for Mobile Communication (GSM), Code Division Multiple Access (CDMA), Wideband Code Division Multiple Access (WCDMA) General Packet Radio Service (GPRS), Long Term Evolution (LTE), LTE Frequency Division Duplex (FDD), LTE Time Division Duplex (TDD), Long Term Evolution Advanced (LTE-A), Universal Mobile Telecommunications System (UMTS), Worldwide Interoperability for Microwave Access (WiMAX), 5G New Radio (NR), and 6th-Generation (6G) mobile communication technologies. All of these systems include terminal equipment and network equipment. The system may also include a core network component, such as an evolved packet system (EPS), a 5G system (5GS), or a 6G system (6GS).
[0125] The user equipment (UE) involved in the embodiments of this application, also referred to as a terminal, can be a device that provides voice and / or data connectivity to a user, a handheld device with wireless connectivity, or other processing devices connected to a wireless modem. The name of the terminal device may differ in different systems; for example, in a 5G system, the terminal device can be called user equipment (UE). Wireless terminal devices can communicate with one or more core networks (CNs) via a radio access network (RAN). Wireless terminal devices can be mobile terminal devices, such as mobile phones (or "cellular" phones) and computers with mobile terminal devices, for example, portable, pocket-sized, handheld, computer-embedded, or vehicle-mounted mobile devices. They exchange voice and / or data with the radio access network. Examples include Personal Communication Service (PCS) phones, cordless phones, Session Initiated Protocol (SIP) phones, Wireless Local Loop (WLL) stations, and Personal Digital Assistants (PDAs). Wireless terminal equipment can also be referred to as a system, subscriber unit, subscriber station, mobile station, mobile station, remote station, access point, remote terminal, access terminal, user terminal, user agent, or user device, but is not limited to these terms in the embodiments of this application.
[0126] The network device involved in this application embodiment can be a base station, which may include multiple cells providing services to terminals. Depending on the specific application, a base station may also be called an access point, or a device in the access network that communicates with wireless terminal devices through one or more sectors on the air interface, or other names. The network device can be used to exchange received air frames with Internet Protocol (IP) packets, acting as a router between the wireless terminal device and the rest of the access network, where the rest of the access network may include an Internet Protocol (IP) communication network. The network device can also coordinate the attribute management of the air interface. For example, the network equipment involved in the embodiments of this application can be a base transceiver station (BTS) in a Global System for Mobile communications (GSM) or Code Division Multiple Access (CDMA), a NodeB in a Wide-band Code Division Multiple Access (WCDMA) system, an evolved Node B (eNB or e-NodeB) in a long term evolution (LTE) system, a 5G base station (gNB) in a next generation system, a Home evolved Node B (HeNB), a relay node, a femto, a pico, etc., and is not limited in the embodiments of this application. In some network structures, the network equipment may include centralized unit (CU) nodes and distributed unit (DU) nodes, and the centralized unit and distributed unit may also be geographically separated.
[0127] Network devices and terminal devices can each use one or more antennas for Multiple-Input Multiple-Output (MIMO) transmission. MIMO transmission can be Single-User MIMO (SU-MIMO) or Multiple-User MIMO (MU-MIMO). Depending on the configuration and number of antenna combinations, MIMO transmission can be 2D-MIMO, 3D-MIMO, Full-Dimension MIMO (FD-MIMO), or Massive-MIMO. It can also be diversity transmission, pre-coded transmission, or beamforming transmission, etc.
[0128] RRM measurement analyzes signal strength, signal quality, interference signals, cell load, and mobility collected in the network. Based on the analysis results, dynamic resource allocation is adjusted to ensure service quality and network efficiency, thereby optimizing resource allocation and network performance.
[0129] To avoid the degradation of measurement results due to excessive measurement delay at the terminal, it is necessary to adopt an enhanced RRM measurement scheme to shorten the measurement delay. To achieve both reduced measurement delay and flexibility in terminal power consumption control and network load control, this application provides a method for wireless resource management measurement. The network device can send first configuration condition information to the terminal, indicating adjustment of the first measurement parameter for RRM measurement, and / or indicating measurement capability allocation information for different carrier types during RRM measurement. This enables the terminal to adjust the first measurement parameter to achieve shorter measurement delay based on the first configuration condition information configured by the network device, and / or determine the measurement capability allocation for different carrier types based on the measurement capability allocation information configured by the network device. Under the condition of shortened RRM measurement delay, RRM measurement is performed according to the information indicated by the network device, thereby achieving the goal of flexible terminal power consumption control and network load control.
[0130] like Figure 1 As shown in the embodiments of this application, the wireless resource management measurement method is executed by a terminal and includes:
[0131] S101, Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0132] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0133] In this embodiment, the first measurement parameter is a parameter that can reduce the RRM measurement delay by adjusting it. This first measurement parameter includes, but is not limited to, the beam sweeping factor (BSF). During RRM measurement, the BSF can be reduced from 8 or 12 to 2, 4, or 6. The specific reduction depends on the terminal's capabilities, and the initial BSF value depends on the frequency range (FR) of the carrier being measured, which is not limited here.
[0134] In some embodiments, a terminal with downlink multi-receiver (DL multi-Rx) capability typically has the ability to shorten RRM measurement latency by reducing BSF. The situation where a terminal shortens RRM measurement latency by reducing BSF can be described as enabling "downlink multi-receiver capability," that is, achieving the effect of accelerating RRM measurement by enabling downlink multi-receiver (DL multi-Rx) capability.
[0135] In one embodiment of the method described in this application, the first information received by the terminal from the network device includes first configuration condition information for adjusting the first measurement parameter of the RRM measurement. This first configuration condition information indicates the execution conditions for adjusting the first measurement parameter. Through this first configuration condition, the terminal can adjust the first measurement parameter downwards or upwards according to the execution conditions or rules configured by the network device, or enable or disable the DL multi-Rx capability, thereby determining reasonable conditions for enabling or disabling the DL multi-Rx capability and avoiding the problem of high terminal power consumption due to the rapid completion of RRM measurements.
[0136] In another implementation, the first information sent by the network device obtained by the terminal includes measurement capability allocation information for different types of carriers during RRM measurement. In this way, the terminal can allocate measurement capabilities to different types of carriers based on the measurement capability allocation information indicated by the network device, thereby speeding up the measurement of the target carrier and reducing the corresponding measurement latency. In addition, for the terminal, the measurement capability allocation information is not a fixed setting, but can be flexibly allocated by the network device according to the terminal's processing capabilities, so as to achieve the goal of meeting the requirements of shortening RRM measurement latency while also meeting the requirements of flexible terminal power consumption control and network load control.
[0137] In some embodiments, the measurement capability allocation information includes allocation information for measurement objects and / or processing resources.
[0138] In some embodiments, the method described in this embodiment further includes:
[0139] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0140] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0141] Adjusting the first measurement parameter includes increasing or decreasing the first measurement parameter. In one embodiment of this application, the adjustment of the first measurement parameter can be performed during the RRM measurement process. That is, during the first measurement process, the cell quality and / or the number of objects to be measured are monitored, and when the first configuration condition information is met, the first measurement parameter is adjusted. In another embodiment, the adjustment of the first measurement parameter can also be performed when entering the RRM measurement. That is, before entering the RRM measurement, the parameter value of the first measurement parameter as defined by the network configuration or protocol is adjusted according to the current cell quality and / or the number of objects to be measured.
[0142] In this embodiment of the application, the measurement objects and / or processing resources corresponding to different types of carriers are determined based on the measurement capability allocation information. This can be done before entering RRM measurement.
[0143] In some embodiments of this application, step S101, acquiring first information sent by the network device for performing Radio Resource Management (RRM) measurements, includes:
[0144] Obtain the first information sent by the network device via Radio Resource Control (RRC) signaling or system messages.
[0145] The method for wireless resource management measurement described in the embodiments of this application will be described in detail below with reference to specific implementation methods.
[0146] In one embodiment, in step S101, the first information sent by the network device obtained by the terminal includes first configuration condition information for adjusting the first measurement parameter of the RRM measurement.
[0147] In some embodiments, the first configuration condition information includes one or more of the following:
[0148] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0149] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0150] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0151] Optionally, after the terminal performs RRM measurement using the first measurement parameter after the adjustment process reaches a first time interval, the terminal performs scheduling processing on the first measurement parameter; or, during the RRM measurement using the first measurement parameter after the terminal reports a valid measurement result, the terminal adjusts the first measurement parameter; or, during the RRM measurement using the first measurement parameter after the terminal sends a first notification message to the network device through UE Assistance Information (UAI) during the RRM measurement process, the terminal adjusts the first measurement parameter; the first notification message is used to notify the network device that the terminal will adjust the first measurement parameter.
[0152] In some embodiments, optionally, the terminal may actively trigger the reporting of a first notification message to notify the network device terminal that it will increase the first measurement parameter.
[0153] In this embodiment, lowering the first measurement parameter, i.e., using the lowered first measurement parameter for RRM measurement, can speed up the RRM measurement; raising the first measurement parameter, i.e., raising the first measurement parameter after lowering it, is the normal measurement method compared to using the lowered first measurement parameter.
[0154] When the first measurement parameter includes the beam scanning factor, lowering the first measurement parameter can be described as enabling "downlink multi-receiver capability", and raising the first measurement parameter can be described as disabling "downlink multi-receiver capability".
[0155] The method described in this application embodiment includes second configuration condition information in the first configuration condition information sent by the network device to the terminal, so that the terminal can determine to lower the first measurement parameter according to the second configuration condition information sent by the network device in order to enter the conditions for fast RRM measurement.
[0156] In some embodiments, the first configuration condition information further includes a first timing duration for performing RRM measurement using the first measurement parameter after the adjustment is lowered, and / or a second timing duration for performing RRM measurement using the first measurement parameter after the first measurement parameter is lowered to the first timing duration, or a valid measurement result is reported, or a first notification message is sent, thereby increasing the first measurement parameter. This allows the terminal to determine a reasonable timing duration for performing fast RRM measurement and re-evaluating the conditions for performing fast RRM measurement based on the first timing duration and / or the second timing duration, thereby maximizing the effect of applying fast RRM measurement and avoiding the problem of the terminal being unable to effectively control its power consumption when performing fast RRM measurement for a long time.
[0157] In some embodiments, the second configuration condition information includes one or more of the following:
[0158] Community quality threshold;
[0159] The threshold for the number of objects to be measured;
[0160] Ratio threshold;
[0161] The bias of the cell quality threshold.
[0162] In some embodiments, the cell quality threshold may include one or more of the thresholds for Reference Signal Receiving Power (RSRP) and / or Reference Signal Receiving Quality (RSRQ).
[0163] In one embodiment, the second configuration condition information includes a cell quality threshold, which is a condition for the terminal to enable DL multi-Rx capability or perform fast RRM measurement. When the terminal measures that the cell quality of the serving cell is less than or equal to the cell quality threshold, the DL multi-Rx capability is enabled or fast RRM measurement is performed. The DL multi-Rx capability is enabled by adjusting the first measurement parameter.
[0164] In another implementation, the second configuration condition information may include, in addition to the cell quality threshold, one or more of the following: a quantity threshold of the objects to be measured, a ratio threshold, and a bias of the cell quality threshold. By including one or more of the quantity threshold of the objects to be measured, the ratio threshold, and the bias, additional conditions or biases are added to enable DL multi-Rx capability or perform fast RRM measurement. This means that in addition to meeting the cell quality threshold, the additional conditions must also be met, or the quality threshold obtained by adding a bias to the cell quality threshold must be met. Compared to using only the cell quality threshold as the judgment condition for enabling DL multi-Rx capability or performing fast RRM measurement, the added additional conditions or thresholds make the conditions for enabling DL multi-Rx capability or performing fast RRM measurement higher and more difficult, thereby achieving balanced control of RRM measurement latency and terminal power consumption.
[0165] In addition, since the second configuration condition information uses the number of objects to be measured as an additional condition or a calculation parameter for bias calculation, enabling DL multi-Rx capability or performing fast RRM measurement takes into account the impact of the number of objects to be measured, making the measurement results obtained from performing RRM measurement more reliable.
[0166] Using the method described in the embodiments of this application, based on the second configuration condition information configured in the network device, the method further includes:
[0167] If one of the following conditions is met, the first measurement parameter is reduced during RRM measurement, or the DL multi-Rx capability is enabled, i.e., the BSF is reduced, such as from 8 or 12 to 2, 4 or 6:
[0168] The cell quality of the serving cell is less than or equal to the cell quality threshold.
[0169] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold;
[0170] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold.
[0171] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset.
[0172] The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
[0173] In one implementation, when the cell quality of the serving cell is less than or equal to the cell quality threshold and the number of objects to be measured is greater than or equal to the number threshold, the first measurement parameter is lowered, that is, the DLmulti-Rx capability is enabled to perform fast RRM measurement; when the number of objects to be measured is less than the number threshold, the first measurement parameter is not lowered, that is, the DL multi-Rx capability is not enabled, and RRM measurement is still performed according to the existing measurement method, so as to save terminal power consumption.
[0174] In one implementation, if the cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold, the first measurement parameter is lowered, that is, the DL multi-Rx capability is enabled to perform fast RRM measurement; if the ratio is less than the ratio threshold, the first measurement parameter is not lowered, that is, the DL multi-Rx capability is not enabled, so as to save terminal power consumption.
[0175] In some embodiments, the ratio of the number of objects to be measured to the number of objects configured for measurement by the network device for the terminal can also be referred to as the proportion of the current number of objects to be measured to the number of objects configured for measurement by the terminal, such as 20%. This ratio threshold can also be referred to as the proportion threshold. When the calculated proportion is greater than or equal to the proportion threshold, the DL multi-Rx capability is enabled to perform fast RRM measurement; when the calculated proportion is less than the proportion threshold, the DL multi-Rx capability is not enabled.
[0176] In one implementation, if the cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset, then the first measurement parameter is lowered, that is, the DL multi-Rx capability is enabled to perform fast RRM measurement; and if the offset calculation value determined based on the number of objects to be measured is less than the offset, then the first measurement parameter is not lowered, that is, the DL multi-Rx capability is not enabled.
[0177] In some embodiments, the bias calculation value is determined based on the ratio of the number of measurement objects configured by the network device for the terminal to the number of objects to be measured.
[0178] Alternatively, the bias calculation value α is determined according to the following formula:
[0179] α = 10 × log 10(N / M); where M is the number of objects to be measured; N is the number of objects to be measured configured for the terminal by the network device.
[0180] In another implementation, optionally, when the cell quality of the serving cell is less than or equal to the difference between the cell quality threshold and the offset calculation value, the first measurement parameter is lowered, that is, the DL multi-Rx capability is enabled to perform fast RRM measurement; while when the cell quality of the serving cell is greater than the difference between the cell quality threshold and the offset, the DL multi-Rx capability is not enabled.
[0181] For example, assuming the network device configures N measurement objects for the terminal, and the terminal needs to measure M (M<=N), optionally, the bias calculation value is 10×log 10 (N / M), when the terminal measures the serving cell quality to be lower than or equal to the following first value Y, the first measurement parameter is adjusted downwards, that is, the DL multi-Rx capability is enabled to perform fast RRM measurement:
[0182] Y = X - 10 × log 10 (N / M);
[0183] Where X is the cell quality threshold configured for the network device.
[0184] For example: N=64, M=15, and the cell quality threshold D1 is -75dBm. Then, the calculated threshold D2 = -75 - 6.3 = -81.3dBm. When the serving cell's cell quality is less than or equal to this calculated threshold, the terminal enables DL multi-Rx capability for rapid RRM measurement (e.g., reducing the beam scan factor from 8 or 12 to any one of 2, 4, or 6). Otherwise, the terminal can use the existing measurement method for RRM measurement (e.g., beam scan factor = 8 or 12).
[0185] In this implementation, the number of objects to be measured is used as a calculation parameter for the bias calculation value. The influence of the number of objects to be measured is converted into the cell quality. When the number of objects to be measured is small, the terminal is less likely to enter DLmulti-Rx mode.
[0186] It should be noted that, in the embodiments of this application, the cell quality of the serving cell and the number of objects to be measured mentioned can be the cell quality and the number of objects to be measured at the time corresponding to the monitoring time in the RRM measurement process. The monitoring time can be determined based on the second timing duration mentioned above, or it can be configured by the network device.
[0187] The methods described in the above embodiments of this application will be illustrated below with reference to specific implementation methods.
[0188] Implementation Method 1
[0189] In this embodiment, the first information sent by the network device obtained by the terminal includes first configuration condition information, and the first configuration condition information includes second configuration condition information, which includes a cell quality threshold and a threshold for the number of objects to be measured.
[0190] For example, the network device sends the first configuration condition information in the system message to instruct the terminal to enable downlink multi-receive capability (DL multi-Rx) under the following conditions: (1) the cell RSRP threshold (i.e., the cell quality threshold in the second configuration condition information) is -75dBm; (2) at least 10 measurement objects (MOs) configured by the terminal are associated with at least one measurement reporting configuration (hereinafter referred to as active MOs, i.e. the MOs that the terminal needs to measure), that is, the threshold for the number of measurement objects in the second configuration condition information is 10, and the total number of MOs configured by the network device for terminal 1 in this embodiment is set to 20:
[0191] At time A, terminal 1 measures the cell RSRP (serving cell quality) as -70dBm, which means that the cell quality of the current serving cell measured by the terminal is greater than the cell quality threshold. At this time, the terminal does not need to enable downlink multiple receive capability.
[0192] At time B, terminal 1 measures the cell RSRP (serving cell quality) to be -77 dBm. At this time, the terminal continues to compare the number of active MOs with the threshold of the number of active MOs indicated in the system message to determine whether to enable the DL multi-Rx capability. The results can be shown in Table 1 below:
[0193] Table 1
[0194]
[0195] That is, if the cell quality of the serving cell is less than or equal to the cell quality threshold and the number of objects to be measured is greater than or equal to the number threshold, the DL multi-Rx capability is enabled, that is, the first measurement parameter (BSF) is lowered; otherwise, the DL multi-Rx capability is not enabled.
[0196] In another implementation, the network may not indicate the threshold for the number of activated MOs (i.e., the threshold for the number of objects to be measured), but may indicate the ratio of the number of activated MOs to the number of configured MOs (i.e., the ratio threshold in the second configuration condition information). For example, the ratio threshold indicated by the network device in the system message may be 40% or 0.4.
[0197] In this embodiment, the second configuration condition information includes a cell quality threshold and a ratio threshold.
[0198] Based on the second configuration condition information, including the above parameters, sent by the network device, the terminal's determination of whether to enable DL multi-Rx capability under different conditions can be shown in Table 2 below:
[0199] Table 2
[0200]
[0201] That is, when the cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold, the DL multi-Rx capability is enabled, that is, the first measurement parameter (such as BSF) is lowered; otherwise, the DL multi-Rx capability is not enabled.
[0202] In another embodiment, the second configuration condition information includes a cell quality threshold. The terminal determines the offset calculation value according to the number of measurement objects as specified in the protocol, converts the offset calculation value to the cell quality threshold, and determines whether to activate the DL multi-Rx capability.
[0203] The cell RSRP (Serving Cell Quality) measured by Terminal 1 is set to -77dBm. The network does not indicate a threshold related to the number of activated MOs. The terminal, according to the protocol, factores the impact of the number of activated MOs into the cell RSRP threshold. Therefore, the first value Y of the cell RSRP(Y) that the terminal ultimately uses to decide whether to activate the DL multi-Rx capability is:
[0204] Y = X - 10 × log 10 (N / M);
[0205] Where X is the cell RSRP threshold (cell quality threshold) configured by the network device, which is equal to -75dBm; N is the number of MOs in the MO list configured by the terminal, that is, the number of measurement objects configured by the network device for the terminal; M is the number of MOs associated with at least one measurement reporting configuration (M<=N), that is, the number of objects to be measured. It should be noted that when an MO is associated with multiple measurement reporting configurations, that MO is only counted once.
[0206] At this time, the execution behavior of terminal 1 in determining whether to enable DL multi-Rx capability under different conditions can be shown in Table 3 below:
[0207] Table 3
[0208]
[0209] That is, the cell quality of the serving cell, -77dBm, is compared with the first value Y, which is the cell quality threshold of -75dBm and the bias calculation value of 10×log determined according to the number of objects to be measured. 10 If the difference (N / M) is less than or equal to the first value of the serving cell, the DL multi-Rx capability is enabled, that is, the first measurement parameter (BSF) is lowered; otherwise, the DL multi-Rx capability is not enabled.
[0210] In the wireless resource management measurement method described in this application embodiment, based on the second configuration condition information mentioned above, it is determined whether to lower the first measurement parameter, that is, whether to enable DL multi-Rx capability. In addition, the timer duration is combined to control the time for the terminal to perform fast RRM measurement, and / or to control the time for the terminal to re-enter fast RRM measurement after exiting fast RRM measurement, so as to configure a reasonable time for the terminal to perform fast RRM measurement, so as to maximize the latency reduction effect brought about by enabling DL multi-Rx capability.
[0211] In some embodiments of this application, the method further includes one or more of the following:
[0212] After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value.
[0213] During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised.
[0214] During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device via Terminal Assist Information (UAI), the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will raise the first measurement parameter.
[0215] If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased.
[0216] If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher.
[0217] After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
[0218] In some embodiments, the situation where the cell quality of the serving cell is detected to be greater than the cell quality threshold during RRM measurement using the first measurement parameter after the adjustment is lowered can also be described as the situation where the cell quality of the serving cell is detected to be greater than the cell quality threshold before exiting DL multi-Rx mode after RRM measurement using the first measurement parameter after the adjustment is lowered. Optionally, adjusting the first measurement parameter to higher levels is equivalent to exiting DL multi-Rx mode.
[0219] The first timing duration and the second timing duration can be different or the same.
[0220] In some embodiments, the first timing duration can be the runtime of the timer when it is turned on, denoted as Von; the second timing duration is the runtime of the timer when it is turned off, denoted as Voff.
[0221] Based on the first and second timing durations, the process of enabling and deactivating DL multi-Rx capability on the terminal can be as follows:
[0222] When the terminal determines that the conditions indicated by the second configuration condition information are met based on the above-mentioned second configuration condition information, it lowers the beam scanning factor (BSF), enters multi-Rx mode, and the first timing duration timer (Von) begins counting:
[0223] When the timer (Von) is running and detects that the cell quality of the serving cell has become greater than the cell quality threshold configured by the network device, the terminal exits the multi-Rx mode after completing the ongoing measurement and measures according to the existing measurement method (BSF=8). At the same time, the timer is reset to Voff, and the second timer starts running.
[0224] When the cell quality remains less than or equal to the cell quality threshold configured by the network device during the duration of timer(Von), the terminal exits multi-Rx mode when timer(Von) arrives and after completing the ongoing measurement, and performs the measurement according to the existing measurement method (BSF=8). The timer is then reset to Voff and operation resumes. When the second timer expires, the terminal will start to determine whether the conditions for entering multi-Rx mode are met, that is, whether the second configuration condition information is met.
[0225] When the timer (Voff) expires, the terminal then determines whether the conditions for entering multi-Rx mode are met: based on cell quality and / or the number of objects to be measured, if the second configuration condition information is met, the terminal enters multi-Rx mode, and the timer is reset to Von and begins operation. Otherwise, the terminal measures according to the existing measurement method (BSF=8) until the conditions set in the second configuration condition information for entering multi-Rx mode are met.
[0226] In another implementation, the first timing duration and the second timing duration can also be the runtime of the timing on of two different timers.
[0227] The process of enabling and disabling DL multi-Rx capability by the terminal using the first timing duration of the first timer and the second timing duration of the second timer can be the same as the process described above, and will not be repeated here.
[0228] In another implementation, the network configures only a second timer. When the terminal determines, based on the aforementioned second configuration condition information, that the conditions indicated by the second configuration condition information are met, it lowers the beam scanning factor (BSF), enters the DL multi-Rx mode, and performs measurements. After completing a valid measurement result report, or after notifying the network via UE assistance information (UAI) that the first measurement parameter will be increased (i.e., sending a first notification message), the terminal exits the DL multi-Rx mode and increases the beam scanning factor (BSF) for measurement. Simultaneously, the second timer is set to Voff and begins operation. When the second timer expires, it begins to determine whether the conditions for entering the multi-Rx mode are met, i.e., whether the second configuration condition information is satisfied.
[0229] The methods described in the above embodiments of this application will be illustrated below with reference to specific implementation methods.
[0230] Implementation Method 2
[0231] In this embodiment, the first information sent by the network device obtained by the terminal includes first configuration condition information, and the first configuration condition information includes second configuration condition information, first timing duration, and second timing duration.
[0232] In implementation method two, the network device configures the cell RSRP threshold (i.e., the cell quality threshold in the second configuration condition information) for enabling DL multi-Rx capability of the terminal in the system message to be -75dBm, and configures the duration of the timer for the terminal via RRC signaling (i.e., configures the first timing duration and / or the second timing duration in the first configuration condition information). The terminal comprehensively judges the RSRP measurement result and the timer duration to determine the entry and exit of DL multi-Rx mode. In this embodiment, when the terminal measures that the cell RSRP is greater than -75dBm, the timer is not enabled; when the terminal measures that the cell RSRP is less than or equal to -75dBm, the terminal enters DL multi-Rx mode and starts the timer.
[0233] The specific working method is as follows:
[0234] In one implementation, the network device configures a timer with a set duration, meaning the first duration in the configured first configuration condition information is equal to a second duration. Using this implementation, when the terminal measures that the RSRP of the current serving cell is consistently less than or equal to -75dBm, the duration the terminal is in DL multi-Rx mode is essentially the same as the duration in non-DL multi-Rx mode. For example, when the network device configures the timer value to 10 seconds via RRC signaling, and the terminal's RSRP measurement result is as follows... Figure 2 As the curves show changes, the execution behavior of the terminal in determining whether to enable or disable DL multi-Rx capability during different time periods and at different time intervals is described in Table 4:
[0235] Table 4
[0236]
[0237] That is, after the RRM measurement is performed using the first measurement parameter after the adjustment process is reduced to reach the first timing duration, the first measurement parameter is adjusted to increase to exit the DL multi-Rx mode.
[0238] If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher, and the DL multi-Rx mode is exited.
[0239] After RRM measurement is performed using the first measurement parameter after adjustment and the second timing duration is reached, if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value, and the DL multi-Rx mode is entered to perform fast RRM measurement.
[0240] In some embodiments, when configuring the first and second timing durations in the first configuration condition information, the network device configures a timer for the terminal, and the timer is configured with two timing durations. The first timing duration corresponds to the duration (Von) during which the terminal should be in DL multi-Rx mode, and the second timing duration corresponds to the duration (Voff) during which the terminal is not in DL multi-Rx mode. For example, the network device configures Von to be 10 seconds and Voff to be 20 seconds via RRC signaling, and when the terminal's RSRP measurement result is as follows... Figure 3 As the curve changes, the execution behavior of the terminal in determining whether to enable or disable DL multi-Rx capability during different time periods and at different time intervals is shown in Table 5.
[0241] Table 5
[0242]
[0243] In one implementation, when configuring the first and second time intervals in the first configuration condition information, the network device configures two timers with the same value. The two timers correspond to the first and second time intervals, respectively. In this implementation, the terminal's operating mechanism is basically the same as in the implementation with only one timer configured. The difference is that in this implementation, only one timer is active at any given time, while the other timer is deactivated after its value is reset. This will not be elaborated further. Similarly, when the network configures two timers, the values of the two timers can be different. In this case, the terminal's operating mechanism is the same as in the above implementation, and will not be elaborated further.
[0244] In addition, the above implementation method is illustrated by the example of the second configuration condition information including the cell quality threshold. When the first configuration condition information includes the first timing duration and / or the second timing duration, the second configuration condition information may also include one or more of the following: the number threshold of the object to be measured, the ratio threshold, and the bias of the cell quality threshold. For specific implementation methods, please refer to the description in Implementation Method 1, which will not be repeated here.
[0245] In another embodiment, the first configuration condition information may include only the first timing duration or the second timing duration. When one timing duration is included, the other timing duration can be determined according to the protocol agreement.
[0246] In another embodiment, the first configuration condition information may also include only the second timing duration. After performing RRM measurement using the first measurement parameter after the adjustment and reporting the measurement result once, or after notifying the network through the terminal auxiliary information UAI to increase the first measurement parameter, the first measurement parameter is adjusted to increase and the DL multi-Rx mode is exited.
[0247] If, before exiting DL multi-Rx mode, the cell quality of the serving cell is detected to be greater than the cell quality threshold when performing RRM measurement using the first measurement parameter after lowering it, the first measurement parameter is increased and the DL multi-Rx mode is exited.
[0248] After RRM measurement is performed using the first measurement parameter after adjustment and the second timing duration is reached, if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value, and the DL multi-Rx mode is entered to perform fast RRM measurement.
[0249] The method described in the embodiments of this application, combined with Figure 1 In step S101, the first information sent by the network device obtained by the terminal includes measurement capability allocation information.
[0250] In some embodiments, the measurement capability allocation information includes one or more of the following:
[0251] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0252] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0253] In this implementation, when the terminal reports support for higher measurement processing capabilities, the network device can indicate to the terminal the measurement processing capabilities corresponding to different types of carriers, or the terminal can determine the measurement processing capabilities for different types of carriers according to protocol requirements, so as to speed up the measurement of the target carrier and thus shorten the measurement latency.
[0254] In some embodiments of this application, measurement processing capability can also be understood as baseband resources for terminal to process measurement results, UE baseband processing resources, baseband functional modules for measurement, field programmable gate array (FPGA) functional modules, or independent programs / subprograms / threads for measurement, etc.
[0255] In some embodiments, the purpose of indicating measurement capability allocation information is to indicate the proportional values of measurement capability allocation corresponding to different types of carriers.
[0256] The different types of carriers may include one or more of the following: Primary Component Carrier (PCC), Primary Secondary Carrier Component (PSCC), and Secondary Carrier Component (SCC). The ratio of the measurement capability corresponding to the different types of carriers can be:
[0257] PCC:PSCC:SCC=X:Y:(3-XY);
[0258] Where X represents the proportion of measurement capacity allocated to PCC, and Y represents the proportion of measurement capacity allocated to PSCC.
[0259] In some embodiments, the ratio values for the measurement capability allocation of different types of carriers may include multiple combinations [X,Y], as shown in Table 6 below:
[0260] Table 6
[0261] Group number (index) X(0<X<=1) Y(0<=Y<=1) 0 0.5 0.25 1 0.5 0.5 2 0.5 0.75 3 0.5 0 4 1 0.25 5 1 0.5 6 1 0.75 7 1 0
[0262] Each group of numbers or indices corresponds to a set of record information [X,Y], which records the proportion of measurement capability scores for different types of carriers.
[0263] In some embodiments, the [X,Y] ratio values corresponding to different group numbers or indices can be explicitly specified by the protocol and indicated by the network device via signaling, or implicitly reflected by the Carrier-Specific Scaling Factor (CSSF) parameter. In another embodiment, the network device can explicitly configure the [X,Y] ratio values corresponding to different group numbers or indices via signaling.
[0264] In some embodiments of this application, the measurement capability allocation information in the first information sent by the network device to the terminal indicates the proportion of [X,Y] corresponding to different types of carriers by indicating the group number or index corresponding to multiple sets of recorded information. In other embodiments of this application, the measurement capability allocation information may display the proportion of [X,Y] indicating different types of carriers.
[0265] In some embodiments of this application, when the terminal belongs to the SA scenario, the measurement capability allocation information configured by the network device may not include the proportional value corresponding to PSCC, and the terminal defaults to a proportional value of 0 corresponding to PSCC.
[0266] In some embodiments of the method described in this application, when the first information does not include measurement capability allocation information corresponding to different types of carriers, the ratio of measurement capability allocated to PCC is: X = 1, and the ratio of measurement capability allocated to PSCC is: Y = 0.5.
[0267] The methods described in the above embodiments of this application will be illustrated below with reference to specific implementation methods.
[0268] Implementation Method 3
[0269] In this embodiment, the first information obtained by the terminal from the network device includes measurement capability allocation information.
[0270] In implementation method three, after the terminal reports to the network device that it supports higher measurement and processing capabilities, the network device instructs the terminal via signaling (first information) to allocate a proportion of measurement opportunities and processing resources to different types of carriers (i.e., measurement capability allocation information). Here, the different types of carriers include PCC, PSCC, and SCC. In one implementation method, multiple allocation methods are first specified in the protocol. Each allocation method includes an allocation ratio, which includes the proportion of measurement capabilities of PCC, PSCC, and SCC. Each allocation method corresponds to a group number or index, and the maximum allocation ratio value for each type of carrier is 1, as shown in Table 6.
[0271] Where X represents the proportion of measurement opportunities and processing resources allocated to the PCC, and Y represents the proportion of measurement opportunities and processing resources allocated to the PSCC, the network device configures a group number or index in the first information to indicate the proportion of processing resources allocated to the terminal. In another implementation, when the protocol does not specify the values in the table above, the network can directly indicate the values of X and Y in the signaling.
[0272] When the network device does not indicate this via any of the above methods, the terminal defaults to allocating measurement processing resources with X=1 and Y=0.5. Based on any of the above methods, after obtaining the values of X and Y, the terminal calculates the ratio of measurement opportunities and processing resources allocated to the SCC using 3-XY.
[0273] It should be noted that, under the default condition, the measurement opportunities and processing resources for each type of carrier are the same, so the total processing capacity is 3. When the numerical assumption of the total processing capacity of the terminal is different from that in this embodiment, the values of X and Y in this embodiment may need to be adjusted accordingly.
[0274] Based on the above, by adopting the method described in the embodiments of this application, the terminal can allocate measurement capabilities to different types of carriers based on the measurement capability allocation information indicated by the network device, so as to speed up the measurement of the target carrier and reduce the corresponding measurement latency.
[0275] The method described in the embodiments of this application, in some embodiments, further includes:
[0276] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0277] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0278] Using the method described in the embodiments of this application, the terminal can adjust the first measurement parameter to achieve a shorter measurement delay according to the first configuration condition information configured by the network device, and / or determine the measurement capability allocation corresponding to different types of carriers according to the measurement capability allocation information configured by the network device. Under the condition of shortening the RRM measurement delay, the terminal performs RRM measurement according to the information indicated by the network device, thereby achieving the goal of meeting the flexibility of terminal power consumption control and network load control.
[0279] The method described in this application embodiment has been explained in detail above regarding the first information including first configuration condition information and the first information including measurement capability allocation information. It should be noted that the first information may also include both first configuration condition information and measurement capability allocation information. While the terminal adjusts the first measurement parameters to achieve shorter measurement latency according to the first configuration condition information configured by the network device, it also determines the measurement capability allocation corresponding to different types of carriers according to the measurement capability allocation information configured by the network device.
[0280] By employing the method described in the embodiments of this application, the network device sends first configuration condition information, including first measurement parameters for adjustment, and / or measurement capability allocation information corresponding to different types of carriers during RRM measurement to the terminal. This can maximize the reduction gain of wireless resource management measurement latency caused by beam scanning factor while ensuring reasonable terminal power consumption and scheme flexibility. In addition, it can maximize the gain and flexibility of the scheme based on the allocation of terminal measurement opportunities and processing resource capabilities while effectively controlling network configuration load.
[0281] One embodiment of this application also provides a method for wireless resource management measurement, executed by a network device, such as... Figure 4 As shown, the method includes:
[0282] S401, send first information related to Radio Resource Management (RRM) measurement to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information; wherein, the first configuration condition information is used to indicate the conditions for adjusting the first measurement parameters, and the measurement capability allocation information is used to indicate the measurement capabilities corresponding to different types of carriers.
[0283] Using the wireless resource management measurement method described in this application embodiment, the network device can send first configuration condition information to the terminal, indicating that the first measurement parameter of the RRM measurement should be adjusted, and / or indicating the measurement capability allocation information corresponding to different types of carriers during the RRM measurement. This enables the terminal to adjust the first measurement parameter to achieve a shorter measurement delay based on the first configuration condition information configured by the network device, and / or determine the measurement capability allocation corresponding to different types of carriers based on the measurement capability allocation information configured by the network device. Under the condition of shortening the RRM measurement delay, the terminal performs RRM measurement according to the information indicated by the network device, thereby achieving the goal of meeting the flexibility of terminal power consumption control and network load control.
[0284] In some embodiments, the method wherein the first configuration condition information includes one or more of the following:
[0285] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0286] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0287] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0288] In some embodiments, the method wherein the second configuration condition information includes one or more of the following:
[0289] Community quality threshold;
[0290] The threshold for the number of objects to be measured;
[0291] Ratio threshold;
[0292] The bias of the cell quality threshold.
[0293] In some embodiments, the method wherein the measurement capability allocation information includes one or more of the following:
[0294] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0295] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0296] For specific implementations of the method described in this application applied to network devices, please refer to the detailed description of the specific implementations of the method applied to terminals, which will not be repeated here.
[0297] like Figure 5 As shown, this application embodiment also provides a terminal, including a processor 500, a transceiver 510, a memory 520, and a program stored in the memory 520 and executable on the processor 500; wherein the transceiver 510 is connected to the processor 500 and the memory 520 via a bus interface, and the processor 500 is used to read the program in the memory and execute the following processes:
[0298] Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0299] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0300] In some embodiments, the terminal, wherein the processor 500 is further configured to read a program from memory and execute the following processes:
[0301] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0302] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0303] In some embodiments, the terminal, wherein the first configuration condition information includes one or more of the following:
[0304] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0305] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0306] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0307] In some embodiments, the terminal, wherein the second configuration condition information includes one or more of the following:
[0308] Community quality threshold;
[0309] The threshold for the number of objects to be measured;
[0310] Ratio threshold;
[0311] The bias of the cell quality threshold.
[0312] In some embodiments, the terminal, wherein the processor 500 is further configured to read a program from memory and execute the following processes:
[0313] The first measurement parameter is lowered if one of the following conditions is met:
[0314] The cell quality of the serving cell is less than or equal to the cell quality threshold.
[0315] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold;
[0316] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold.
[0317] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset.
[0318] The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
[0319] In some embodiments, the terminal, wherein the processor 500 is further configured to read a program from memory and execute one or more of the following processes:
[0320] After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value.
[0321] During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised.
[0322] During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device via Terminal Assist Information (UAI), the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will raise the first measurement parameter.
[0323] If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased.
[0324] If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher.
[0325] After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
[0326] In some embodiments, the terminal, wherein the processor 500 is further configured to read a program from memory and execute the following processes:
[0327] The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
[0328] In some embodiments, the terminal, wherein the measurement capability allocation information includes one or more of the following:
[0329] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0330] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0331] In this embodiment of the application, the transceiver 510 is used to receive and send data under the control of the processor 500.
[0332] Among them, Figure 5 In this context, the bus architecture can include any number of interconnected buses and bridges, specifically linking various circuits of one or more processors represented by processor 500 and memory represented by memory 520 together. The bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and therefore will not be described further herein. The bus interface provides an interface. The transceiver 510 can be multiple components, including transmitters and receivers, providing a unit for communicating with various other devices over a transmission medium, including wireless channels, wired channels, optical fibers, etc. For different user equipment, the user interface 530 can also be an interface capable of connecting external or internal devices, including but not limited to keypads, displays, speakers, microphones, joysticks, etc.
[0333] The processor 500 is responsible for managing the bus architecture and general processing, while the memory 520 can store the data used by the processor 500 when performing operations.
[0334] In some embodiments, the processor 500 may be a CPU (Central Processing Unit), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array), or a CPLD (Complex Programmable Logic Device), and the processor may also adopt a multi-core architecture.
[0335] The processor executes any of the methods described in the embodiments of this application according to the obtained executable instructions by calling a computer program stored in memory. The processor and memory may also be physically separated.
[0336] It should be noted that the terminal provided in this application embodiment can implement all the method steps implemented in the above method embodiment and can achieve the same technical effect. Here, the parts that are the same as those in the method embodiment and the beneficial effects will not be described in detail.
[0337] like Figure 6 As shown, this application embodiment also provides a network device, including a processor 600, a transceiver 610, a memory 620, and a program stored in the memory 620 and executable on the processor 600; wherein the transceiver 610 is connected to the processor 600 and the memory 620 via a bus interface, and the processor 600 is used to read the program in the memory and execute the following processes:
[0338] Send first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information.
[0339] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0340] In some embodiments, the network device includes one or more of the following:
[0341] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0342] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0343] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0344] In some embodiments, the network device includes one or more of the following configuration condition information:
[0345] Community quality threshold;
[0346] The threshold for the number of objects to be measured;
[0347] Ratio threshold;
[0348] The bias of the cell quality threshold.
[0349] In some embodiments, the network device includes one or more of the following:
[0350] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0351] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0352] The transceiver 610 is used to receive and send data under the control of the processor 600.
[0353] exist Figure 6 In this context, the bus architecture can include any number of interconnected buses and bridges, specifically linking various circuits together, represented by one or more processors (processor 600) and memory (memory 620). The bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and therefore will not be described further herein. The bus interface provides an interface. The transceiver 610 can be multiple elements, including transmitters and receivers, providing a unit for communicating with various other devices over transmission media, including wireless channels, wired channels, optical fibers, etc. The processor 600 is responsible for managing the bus architecture and general processing, and the memory 600 can store data used by the processor 600 during operation.
[0354] The processor 600 can be a central processing unit (CPU), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or a complex programmable logic device (CPLD). The processor can also adopt a multi-core architecture.
[0355] It should be noted that the network device provided in this application embodiment can implement all the method steps implemented in the above method embodiment and can achieve the same technical effect. Here, the parts that are the same as those in the method embodiment and the beneficial effects will not be described in detail.
[0356] One embodiment of this application also provides a device for wireless resource management measurement, applied to a terminal, such as... Figure 7 As shown, the device includes:
[0357] Acquisition module 710 is used to acquire first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information;
[0358] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0359] In some embodiments, the apparatus further includes a first processing module 720 for:
[0360] If the first configuration condition information is met, the first measurement parameter is adjusted; and / or
[0361] Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
[0362] In some embodiments, the apparatus wherein the first configuration condition information includes one or more of the following:
[0363] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0364] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0365] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0366] In some embodiments, the apparatus wherein the second configuration condition information includes one or more of the following:
[0367] Community quality threshold;
[0368] The threshold for the number of objects to be measured;
[0369] Ratio threshold;
[0370] The bias of the cell quality threshold.
[0371] In some embodiments, the apparatus further includes a second processing module 730 for:
[0372] The first measurement parameter is lowered if one of the following conditions is met:
[0373] The cell quality of the serving cell is less than or equal to the cell quality threshold.
[0374] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold;
[0375] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold.
[0376] The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset.
[0377] The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
[0378] In some embodiments, the apparatus, wherein the second processing module 730 is further configured to perform one or more of the following:
[0379] After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value.
[0380] During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised.
[0381] During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device via Terminal Assist Information (UAI), the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will raise the first measurement parameter.
[0382] If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased.
[0383] If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher.
[0384] After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
[0385] In some embodiments, the apparatus, wherein the second processing module 730 is further configured to:
[0386] The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
[0387] In some embodiments, the apparatus includes one or more of the following:
[0388] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0389] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0390] It should be noted that the wireless resource management measurement apparatus provided in this application embodiment can implement all the method steps implemented in the above-mentioned terminal-side wireless resource management measurement method embodiment, and can achieve the same technical effect. Here, the parts that are the same as those in the method embodiment and the beneficial effects will not be described in detail.
[0391] One embodiment of this application also provides a device for wireless resource management measurement, applied to network devices, such as... Figure 8 As shown, the device includes:
[0392] The transmitting module 810 is used to transmit first information related to Radio Resource Management (RRM) measurement to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information;
[0393] The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
[0394] In some embodiments, the apparatus wherein the first configuration condition information includes one or more of the following:
[0395] The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter.
[0396] The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process;
[0397] The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
[0398] In some embodiments, the apparatus wherein the second configuration condition information includes one or more of the following:
[0399] Community quality threshold;
[0400] The threshold for the number of objects to be measured;
[0401] Ratio threshold;
[0402] The bias of the cell quality threshold.
[0403] In some embodiments, the apparatus includes one or more of the following:
[0404] The ratio of measurement capabilities corresponding to different types of carrier waves;
[0405] An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
[0406] It should be noted that the wireless resource management measurement apparatus provided in this application embodiment can implement all the method steps implemented in the above-mentioned method embodiment for wireless resource management measurement on the network device side, and can achieve the same technical effect. Here, the parts that are the same as those in the method embodiment and the beneficial effects will not be described in detail.
[0407] It should be noted that the division of units in the embodiments of this application is illustrative and only represents one logical functional division. In actual implementation, other division methods may be used. Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated units described above can be implemented in hardware or as software functional units.
[0408] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a processor-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) or processor to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0409] This application also provides a processor-readable storage medium storing a computer program for causing the processor to perform the above-described method for wireless resource management measurements.
[0410] The processor-readable storage medium can be any available medium or data storage device that the processor can access, including but not limited to magnetic memory (e.g., floppy disk, hard disk, magnetic tape, magneto-optical disk (MO)), optical memory (e.g., compact disc (CD), digital video disc (DVD), Blu-ray disc (BD), high-definition versatile disc (HVD)), and semiconductor memory (e.g., ROM, erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), non-volatile memory (NAND (Non-volatile Memory Device) FLASH), solid state hard disk (SSD)).
[0411] The implementation embodiments of the methods on the terminal side or network device side described above are all applicable to the embodiments of the readable storage medium and can achieve the same technical effect.
[0412] This application also provides a computer program product, including computer instructions. When these computer instructions are executed by a processor, they implement the various processes of the above method embodiments and achieve the same technical effects. To avoid repetition, they will not be described again here.
[0413] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program products. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program product implemented on one or more computer-usable storage media (including, but not limited to, disk storage and optical storage) containing computer-usable program code.
[0414] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer-executable instructions. These computer-executable instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart... Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0415] These processor-executable instructions may also be stored in a processor-readable memory that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the processor-readable memory produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0416] These processors can execute instructions that can also be loaded onto a computer or other programmable data processing device, causing a series of operational steps to be performed on the computer or other programmable device to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable device for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0417] Furthermore, it should be noted that in the apparatus and method of this application, it is obvious that the components or steps can be decomposed and / or recombined. These decompositions and / or recombinations should be considered equivalent solutions of this application. Moreover, the steps performing the above series of processes can naturally be executed in the order described, but are not necessarily required to be executed in chronological order; some steps can be executed in parallel or independently of each other. Those skilled in the art will understand that all or any step or component of the method and apparatus of this application can be implemented in any computing device (including processors, storage media, etc.) or network of computing devices, in hardware, firmware, software, or a combination thereof. This is something that those skilled in the art can achieve by using their basic programming skills after reading the description of this application.
[0418] It should be noted that the above division of modules is merely a logical functional division. In actual implementation, they can be fully or partially integrated into a single physical entity, or they can be physically separated. Furthermore, these modules can be implemented entirely in software via processing element calls; they can be fully implemented in hardware; or some modules can be implemented by processing element calls to software, while others are implemented in hardware. For example, a module can be a separate processing element, or it can be integrated into a chip in the aforementioned device. Alternatively, it can be stored as program code in the memory of the aforementioned device, and its function can be called and executed by a processing element of the device. The implementation of other modules is similar. Moreover, these modules can be fully or partially integrated together, or they can be implemented independently. The processing element mentioned here can be an integrated circuit with signal processing capabilities. In the implementation process, each step of the above method or each of the above modules can be completed through integrated logic circuits in the hardware of the processor element or through software instructions.
[0419] For example, each module, unit, subunit, or submodule can be one or more integrated circuits configured to implement the above methods, such as one or more application-specific integrated circuits (ASICs), one or more digital signal processors (DSPs), or one or more field-programmable gate arrays (FPGAs). As another example, when a module is implemented using processing element scheduler code, the processing element can be a general-purpose processor, such as a central processing unit (CPU) or other processor capable of calling program code. Furthermore, these modules can be integrated together as a system-on-a-chip (SOC).
[0420] The terms “first,” “second,” etc., used in the specification and claims of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data used in this way can be interchanged where appropriate so that embodiments of the application described herein may be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus. Additionally, the use of “and / or” in the specification and claims indicates at least one of the connected objects, such as A and / or B and / or C, indicating seven possibilities: A alone, B alone, C alone, and both A and B, both B and C, both A and C, and A, B, and C. Similarly, the use of “at least one of A and B” in this specification and claims should be understood as “A alone, B alone, or both A and B.”
[0421] Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. Therefore, if such modifications and variations fall within the scope of the claims of this application and their equivalents, this application also intends to include such modifications and variations.
Claims
1. A method for wireless resource management measurement, characterized in that, The method, executed by a terminal, includes: Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information; The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
2. The method according to claim 1, characterized in that, The method further includes: If the first configuration condition information is met, the first measurement parameter is adjusted; and / or Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
3. The method according to claim 1, characterized in that, The first configuration condition information includes one or more of the following: The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter. The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process; The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
4. The method according to claim 3, characterized in that, The second configuration condition information includes one or more of the following: Community quality threshold; The threshold for the number of objects to be measured; Ratio threshold; The bias of the cell quality threshold.
5. The method according to claim 4, characterized in that, The method further includes: The first measurement parameter is lowered if one of the following conditions is met: The cell quality of the serving cell is less than or equal to the cell quality threshold. The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold; The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold. The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset. The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
6. The method according to claim 3, 4 or 5, characterized in that, The method further includes one or more of the following: After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value. During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised. During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device through the terminal auxiliary information UAI, the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will increase the first measurement parameter; If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased. If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher. After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
7. The method according to claim 5, characterized in that, The method further includes: The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
8. The method according to claim 1 or 2, characterized in that, The measurement capability allocation information includes one or more of the following: The ratio of measurement capabilities corresponding to different types of carrier waves; An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
9. A method for wireless resource management measurement, characterized in that, Performed by a network device, the method includes: Send first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information. The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
10. The method according to claim 9, characterized in that, The first configuration condition information includes one or more of the following: The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter. The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process; The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
11. The method according to claim 10, characterized in that, The second configuration condition information includes one or more of the following: Community quality threshold; The threshold for the number of objects to be measured; Ratio threshold; The bias of the cell quality threshold.
12. The method according to claim 9, characterized in that, The measurement capability allocation information includes one or more of the following: The ratio of measurement capabilities corresponding to different types of carrier waves; An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
13. A terminal, comprising: A transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor; characterized in that, The processor is used to read the program from the memory and execute the following processes: Obtain first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information; The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
14. The terminal according to claim 13, characterized in that, The processor is also used to read programs from memory and execute the following processes: If the first configuration condition information is met, the first measurement parameter is adjusted; and / or Based on the measurement capability allocation information, the measurement objects and / or processing resources corresponding to different types of carriers are determined.
15. The terminal according to claim 13, characterized in that, The first configuration condition information includes one or more of the following: The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter. The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process; The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
16. The terminal according to claim 15, characterized in that, The second configuration condition information includes one or more of the following: Community quality threshold; The threshold for the number of objects to be measured; Ratio threshold; The bias of the cell quality threshold.
17. The terminal according to claim 16, characterized in that, The processor is also used to read programs from memory and execute the following processes: The first measurement parameter is lowered if one of the following conditions is met: The cell quality of the serving cell is less than or equal to the cell quality threshold. The cell quality of the serving cell is less than or equal to the cell quality threshold, and the number of objects to be measured is greater than or equal to the number threshold; The cell quality of the serving cell is less than or equal to the cell quality threshold, and the ratio of the number of objects to be measured to the number of objects to be measured configured by the network device for the terminal is greater than or equal to the ratio threshold. The cell quality of the serving cell is less than or equal to the cell quality threshold, and the offset calculation value determined based on the number of objects to be measured is greater than or equal to the offset. The cell quality of the serving cell is less than or equal to a first value; the first value is equal to the difference between the cell quality threshold and the bias calculation value determined based on the number of objects to be measured.
18. The terminal according to claim 15, 16 or 17, characterized in that, The processor is also configured to read programs from memory and execute one or more of the following processes: After the RRM measurement is performed using the first measurement parameter after the adjustment process to lower the value to reach the first timing duration, the first measurement parameter is adjusted to higher the value. During the RRM measurement process using the first measurement parameter after it has been lowered, after reporting the valid measurement results, the first measurement parameter is then raised. During the RRM measurement process using the first measurement parameter after it has been lowered, after sending a first notification message to the network device through the terminal auxiliary information UAI, the first measurement parameter is then raised. The first notification message is used to notify the network device that the terminal will increase the first measurement parameter; If, before the RRM measurement using the first measurement parameter after the adjustment reaches the first time interval, the cell quality of the serving cell is detected to be greater than the cell quality threshold, the first measurement parameter is adjusted to be increased. If, during the RRM measurement using the first measurement parameter after the adjustment, the cell quality of the serving cell is found to be greater than the cell quality threshold, the first measurement parameter is adjusted to be higher. After RRM measurement is performed using the first measurement parameter after adjustment to reach the second timing duration, and if the second configuration condition information is detected, the first measurement parameter is adjusted to a lower value.
19. The terminal according to claim 17, characterized in that, The processor is also used to read programs from memory and execute the following processes: The bias calculation value is determined based on the ratio of the number of measurement objects configured for the terminal by the network device to the number of objects to be measured.
20. The terminal according to claim 13 or 14, characterized in that, The measurement capability allocation information includes one or more of the following: The ratio of measurement capabilities corresponding to different types of carrier waves; An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
21. A network device, comprising: A transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor; characterized in that, The processor is used to read the program from the memory and execute the following processes: Send first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information. The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
22. The network device according to claim 21, characterized in that, The first configuration condition information includes one or more of the following: The second configuration condition information is used to indicate the conditions for lowering the first measurement parameter. The first timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process; The second timing duration is used to indicate the duration of RRM measurement using the first measurement parameter after the adjustment process.
23. The network device according to claim 22, characterized in that, The second configuration condition information includes one or more of the following: Community quality threshold; The threshold for the number of objects to be measured; Ratio threshold; The bias of the cell quality threshold.
24. The network device according to claim 21, characterized in that, The measurement capability allocation information includes one or more of the following: The ratio of measurement capabilities corresponding to different types of carrier waves; An allocation index is provided, wherein each allocation index corresponds to a set of record information, which records the ratio of measurement capabilities corresponding to different types of carriers.
25. A device for wireless resource management measurement, characterized in that, Applied to a terminal, the device includes: The acquisition module is used to acquire first information related to Radio Resource Management (RRM) measurements sent by the network device; the first information includes first configuration condition information and / or measurement capability allocation information; The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
26. A device for wireless resource management measurement, characterized in that, Applied to network devices, the device includes: The transmitting module is configured to transmit first information related to Radio Resource Management (RRM) measurements to the terminal; the first information includes first configuration condition information and / or measurement capability allocation information; The first configuration condition information is used to indicate the conditions for adjusting the first measurement parameter, and the measurement capability allocation information is used to indicate the measurement capability corresponding to different types of carriers.
27. A processor-readable storage medium, characterized in that, The processor-readable storage medium stores a computer program for causing the processor to perform the method according to any one of claims 1 to 8, or for implementing the method according to any one of claims 9 to 12.