Measurement processing method and apparatus, and device
By receiving and executing the target information configured by the terminal to perform CSI-RS measurement of the target cell, the problem of data transmission performance loss in handover scenarios is solved, and earlier channel characteristic measurement and more efficient data transmission are achieved.
Patent Information
- Application Number
- PCT/CN2025/112047
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-08-08
- Filing Date
- 2025-08-01
- Publication Date
- 2026-02-12
AI Technical Summary
In handover scenarios, Layer 1 measurements and reporting based on channel state information reference signals are only allowed for the serving cell, resulting in a loss of data transmission performance.
The terminal receives and performs target object measurements based on the target information configured in the first signaling, including target report configuration information and target measurement resource configuration information, to realize CSI-RS measurement of the target cell, improve the feasibility of neighbor cell measurement, and thus perform more accurate channel characteristic measurements before or during handover to the target cell.
Early CSI-RS measurements improved data transmission performance in mobile scenarios and increased data transmission efficiency.
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Figure CN2025112047_12022026_PF_FP_ABST
Abstract
Description
Measurement processing method, apparatus and device
[0001] Cross-reference to related applications
[0002] The present application claims priority from Chinese Patent Application No. 202411087021.1 filed on August 08, 2024, the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD
[0003] The present application belongs to the field of communication technology, and particularly relates to a measurement processing method, apparatus and device. BACKGROUND
[0004] In related technologies, layer 1 (L1) measurement and reporting based on channel state information reference signals (CSI-RS) are only allowed for a serving cell. Therefore, in a handover scenario, a terminal only measures and reports the CSI-RS of a target cell after successfully switching to the target cell. Before the terminal reports the measurement result based on the CSI-RS, the network can only determine a wider beam for transmission according to the synchronization signal block (SSB) of an access cell and perform conservative data scheduling according to a lower modulation and coding scheme (MCS).
[0005] However, the data transmission rate based on the SSB and the conservative transmission parameters is low, resulting in data transmission performance loss. SUMMARY
[0006] Embodiments of the present application provide a measurement processing method, apparatus and device, which can improve the problem of data transmission performance loss.
[0007] In a first aspect, a measurement processing method is provided, comprising: receiving, by a terminal, first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information;
[0008] The terminal measures a target object according to the target information.
[0009] In a second aspect, a measurement processing method is provided, comprising:
[0010] A network side device sends first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information, the target information being used for measuring a target object.
[0011] In a third aspect, a measurement processing apparatus is provided, comprising: a first transceiving unit and a first processing unit;
[0012] The first transceiving unit is configured to receive first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information.
[0013] The first processing unit is configured to perform measurement on a target object according to the target information.
[0014] In a fourth aspect, a measurement processing apparatus is provided, comprising: a second transceiving unit and a second processing unit;
[0015] The second transceiving unit is configured to send first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information, the target information being used for performing measurement on a target object.
[0016] In a fifth aspect, a measurement processing apparatus is provided, the apparatus being configured to perform the steps of the method according to the first aspect, or to implement the steps of the method according to the second aspect.
[0017] In a sixth aspect, a terminal is provided, comprising a processor and a memory, the memory storing programs or instructions executable on the processor, the programs or instructions being executed by the processor to implement the steps of the method according to the first aspect.
[0018] In a seventh aspect, a terminal is provided, comprising a processor and a communication interface, wherein the communication interface is configured to receive first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information; the processor is configured to perform measurement on a target object according to the target information.
[0019] In an eighth aspect, a network-side device is provided, comprising a processor and a memory, the memory storing programs or instructions executable on the processor, the programs or instructions being executed by the processor to implement the steps of the method according to the second aspect.
[0020] In a ninth aspect, a network-side device is provided, comprising a processor and a communication interface, wherein the communication interface is configured to send first signaling, the first signaling being used for configuring or indicating target information, the target information comprising at least one of target reporting configuration information and target measurement resource configuration information, the target information being used for performing measurement on a target object.
[0021] In a tenth aspect, a readable storage medium is provided, and the readable storage medium stores a program or instructions, which are executed by a processor to implement the steps of the method in the first aspect or the steps of the method in the second aspect.
[0022] In an eleventh aspect, a wireless communication system is provided, and the wireless communication system includes a terminal and a network side device, the terminal is configured to implement the steps of the method in the first aspect, and the network side device is configured to implement the steps of the method in the second aspect.
[0023] In a twelfth aspect, a chip is provided, and the chip includes a processor and a communication interface, the communication interface is coupled to the processor, and the processor is configured to run a program or instructions to implement the steps of the method in the first aspect or the steps of the method in the second aspect.
[0024] In a thirteenth aspect, a computer program / program product is provided, and the computer program / program product is stored in a storage medium, and the computer program / program product is executed by at least one processor to implement the steps of the method in the first aspect or the steps of the method in the second aspect.
[0025] In the embodiments of the present application, a terminal receives first signaling, and the first signaling is used for configuring or indicating target information, and the target information includes at least one of target reporting configuration information and target measurement resource configuration information; and the terminal performs measurement on a target object according to the target information, thereby improving the feasibility of neighbor cell measurement, and enabling the terminal to perform beam measurement or CSI measurement based on CSI-RS on a target cell before or during switching to the target cell, so that more accurate channel characteristics measured based on target measurement resources can be used for data transmission as early as possible, and the performance loss of data transmission in a mobile scenario is greatly improved. BRIEF DESCRIPTION OF DRAWINGS
[0026] FIG. 1 is a schematic diagram of an LTM process;
[0027] FIG. 2 is a schematic diagram of a cell handover command;
[0028] FIG. 3 is a schematic diagram of a system provided by an embodiment of the present application;
[0029] FIG. 4 is a flowchart of a measurement processing method provided by an embodiment of the present application;
[0030] FIG. 5 is a flowchart of another measurement processing method provided by an embodiment of the present application;
[0031] FIG. 6 is a schematic diagram of a determination method of a first CSI-RS set based on multiple CSI resource settings provided by an embodiment of the present application;
[0032] FIG. 7 is a schematic diagram of a method for determining a first set of CSI-RS based on a plurality of sets of CSI resources according to an embodiment of the present application;
[0033] FIG. 8 is a schematic diagram of a method for measuring a neighbor CSI based on a network activated CSI-RS resource according to an embodiment of the present application;
[0034] FIG. 9 is a schematic diagram of a method for measuring a neighbor CSI based on a network indicated periodic CSI-RS resource according to an embodiment of the present application;
[0035] FIG. 10 is a schematic diagram of a method for determining a CSI-RS resource for measuring a neighbor CSI based on a condition trigger according to an embodiment of the present application;
[0036] FIG. 11 is a schematic diagram of a method for measuring a neighbor CSI-RS based on a periodic L1 measurement interval according to an embodiment of the present application;
[0037] FIG. 12 is a schematic diagram of a method for measuring a neighbor CSI-RS based on a network activated L1 measurement interval according to an embodiment of the present application;
[0038] FIG. 13 is a schematic diagram of a method for measuring a neighbor CSI-RS based on an active state L1 measurement interval according to an embodiment of the present application;
[0039] FIG. 14 is a schematic diagram of a method for determining an L1 measurement interval based on a condition trigger according to an embodiment of the present application;
[0040] FIG. 15 is a structural diagram of a measurement processing apparatus according to an embodiment of the present application;
[0041] FIG. 16 is a structural diagram of another measurement processing apparatus according to an embodiment of the present application;
[0042] FIG. 17 is a structural diagram of a communication device according to an embodiment of the present application;
[0043] FIG. 18 is a structural diagram of a terminal according to an embodiment of the present application;
[0044] FIG. 19 is a structural diagram of a network side device according to an embodiment of the present application. DETAILED DESCRIPTION
[0045] The technical solutions in the embodiments of the present application will be clearly described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art belong to the scope of protection of the present application.
[0046] The terms "first", "second", and the like in the specification and claims of this application are used for distinguishing between similar elements and not necessarily for describing a sequential or chronological order. It is to be understood that the terms so used are interchangeable under appropriate circumstances such that the embodiments of the present application described herein are, for example, capable of orderly or chronological functioning or sequencing irrespective of the terms used to describe them. Furthermore, it is to be understood that the terms "comprise", "comprising", "comprises", "include", "including", "includes" and the like are used broadly and encompass the terms "consisting of", "consisting essentially of", and "consist of". As used herein, "or" is used in its inclusive sense (i.e., "and / or") unless the context clearly indicates otherwise. As used herein, "and / or" means and / or both.
[0047] The term "indicate" in the present application can be a direct indication (or explicit indication) or an indirect indication (or implicit indication). The direct indication can be understood as that the sender explicitly informs the receiver of specific information, operations to be performed or requested results, etc. in the indication sent by the sender. The indirect indication can be understood as that the receiver determines the corresponding information according to the indication sent by the sender, or judges and determines the operations to be performed or the requested results according to the judgment result.
[0048] It is worth noting that the technology described in the embodiments of the present application is not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be used in other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA) or other systems.
[0049] The terms "system" and "network" are often used interchangeably in the embodiments of the present application, and the described techniques can be used in the above-mentioned systems and radio technologies, as well as other systems and radio technologies. The following description describes a New Radio (NR) system for example purposes, and NR terminology is used in most of the following description, but these techniques can also be applied to systems other than NR systems, such as 6th Generation (6G) communication systems. th
[0050] In order to facilitate understanding of the embodiments of the present application, the following technical points are introduced first:
[0051] 1. Layer 1 or layer 2 triggered mobility.
[0052] In order to reduce the handover delay and further improve the user experience, a layer 1 or layer 2 triggered mobility switching technology (L1 / L2-triggered Mobility, LTM) is proposed in the related art, and the general process is as shown in FIG. 1, which specifically includes the following steps:
[0053] (1) LTM preparation;
[0054] The terminal informs the network of the quality of the candidate cell through layer 3 measurement and reporting, the network selects a suitable candidate cell for LTM from it, and sends the configuration information of the candidate cell for LTM (including but not limited to Physical Cell Identifier (PCI), SSB configuration information, Physical Random Access Channel (RACH) configuration information for uplink synchronization, Transmission Configuration Indicator (TCI) state configuration information, data channel and control channel configuration information, etc.) to the terminal side;
[0055] (2) LTM execution;
[0056] L1 measurement and reporting: the terminal measures the SSB of the current serving cell and the candidate cell according to the high layer parameters such as LTM-Channel State Information (CSI)-ReportConfig configured by the network side, selects L cells, and selects M measurement results in each cell for reporting;
[0057] Early synchronization (Early sync):
[0058] - Downlink (DL) synchronization (DL sync): the terminal needs to complete coarse synchronization, align the time slot, and determine the SSB index before performing L1 measurement. In addition, LTM also introduces the activation of the TCI state of the candidate cell before cell switching to complete fine synchronization in advance;
[0059] - Uplink (UL) synchronization (UL sync): for the candidate cell with uplink asynchronization, LTM supports uplink synchronization through the following three ways, as follows:
[0060] a) Trigger the terminal to send the preamble to the candidate cell through the Physical Downlink Control Channel (PDCCH) order before cell switching;
[0061] b) The terminal determines the TA value of the candidate cell through real-time differential (RTD) measurement and the Timing Advance (TA) value of the current serving cell (only for the candidate cell with RTD < Cyclic prefix (CP) of the source cell);
[0062] c) Trigger the terminal to send the preamble to the target cell through the cell switching command to obtain the TA value;
[0063] Switching command: the terminal receives the cell switching signaling sent by the network side, and applies the Radio Resource Control (RRC) configuration information of the target cell; wherein, taking the Medium Access Control (MAC) control element (Control Element, CE) as the carrier of the cell switching command, as shown in FIG. 2, the cell switching command at least includes at least one of the following contents:
[0064] a) Configuration index of the target cell group;
[0065] b) Beam indication information: TCI state identity (Identity, id), or TCI state id and TCI-UL-State id;
[0066] c) Timing advance (Timing advance, TA) related information;
[0067] d) Indication information of Physical Random Access Channel (PRACH), including SSB index, Preamble index, Preamble Mask index;
[0068] (3) LTM completion.
[0069] The terminal sends the handover completion message through the network pre-configured Configured Grant (CG)-Physical Uplink Shared Channel (PUSCH) or the uplink grant (UL grant) scheduled by the target cell. When the terminal receives a downlink control information (DCI) for scheduling new transmission and the hybrid automatic repeat request (HARQ) process ID is the same as that of the handover completion message, it is considered that the cell handover is successful.
[0070] 2. L1 measurement and reporting based on CSI-RS.
[0071] As a reference signal for measuring beams and channel-related parameters in New Radio (NR), CSI-RS includes periodic, semi-persistent, and aperiodic time-domain characteristic resources. Among them, the periodic CSI-RS resource is configured by the network through RRC signaling, the semi-persistent CSI-RS resource is activated by the Medium Access Control Control Element (MAC CE) signaling, and the aperiodic CSI-RS resource is activated by the DCI signaling.
[0072] In NR, only CSI-RS of the serving cell is currently supported for CSI measurement and reporting. Similar to the time-domain characteristics of CSI-RS resources, CSI reporting also includes periodic reporting, semi-persistent reporting, and aperiodic reporting, as follows:
[0073] a) Periodic reporting: associated with periodic CSI-RS resources, the reporting resource is a physical uplink control channel (PUCCH) resource, configured by the network through RRC;
[0074] b) Semi-Persistent Reporting; associated with periodic or semi-persistent CSI-RS resources, reporting resources can be PUCCH resources or PUSCH resources, where PUCCH resources are determined by MAC CE signaling and PUSCH resources are determined by DCI;
[0075] c) Aperiodic Reporting: associated with periodic or semi-persistent or aperiodic CSI-RS resources, reporting resources are PUSCH resources, where PUSCH resources are determined by DCI;
[0076] The corresponding reporting measurement quantities of CSI reporting based on CSI-RS mainly include two types of beam reporting measurement quantities and CSI reporting measurement quantities, where the beam reporting measurement quantities include CSI-RS resource indicator (cri)-reference signal received power (rsrp), cri-signal-to-noise and interference ratio (sinr), cri-rsrp-index, cri-sinr-index, i.e., L1-RSRP or L1-SINR based beam reporting measurement results and reference signal (RS) identification; the CSI reporting measurement quantities include precoding matrix indicator (PMI), channel quality indicator (CQI), layer indication (Li), rank indication (RI), etc.
[0077] In NR, the configuration framework of CSI measurement and reporting based on CSI-RS includes the following contents:
[0078] a) One CSI reporting setting can be associated with a maximum of 3 CSI resource settings (including: CSI resource settings for channel measurement, CSI resource settings for interference measurement (for example, CSI interference measurement (CSI-IM)), and CSI resource settings for interference measurement (for example, non-zero power (NZP)-CSI-RS));
[0079] b) One aperiodic CSI resource setting can contain multiple CSI-RS resource sets (e.g. NZP-CSI-RS resource set or CSI-IM resource set), one periodic or semi-persistent CSI resource setting contains only one CSI-RS resource set;
[0080] c) One CSI-RS resource set can contain multiple CSI-RS resources (e.g. CSI-IM or NZP-CSI-RS).
[0081] 3. CSI processing criteria.
[0082] UE capability of processing CSI reporting, i.e. the number of simultaneous CSI computation N CPU supported, needs to be reported to the network. If a UE supports N CPU simultaneous CSI computation means that the UE has N CPU CSI processing units (CPU) to process CSI reporting of all configured cells.
[0083] Available CPU number: In a certain Orthogonal frequency division multiplex (OFDM) symbol, if there are already L CPUs occupied to process CSI reporting, the UE has N CPU available to process CSI reporting. CPU -L CPUs. If there are N CSI reports to start occupying CPUs in this OFDM symbol, the nth=0, …, N-1 CSI report needs to occupy CPUs, it is possible that the number of available CPUs is less than the number of CPUs that N CSI reports need to occupy, then the UE does not need to update N-M low priority CSI reports, where 0≤M≤N is the maximum value that satisfies .
[0084] 4. Active RS.
[0085] In any slot, the number of active CSI-RS ports or active CSI-RS resources in the active Bandwidth Part (BWP) of the terminal cannot be more than the capability reported by the terminal.
[0086] NZP CSI-RS resources are active in the following time period:
[0087] a) For aperiodic CSI-RS, from the end of the PDCCH containing the request to the end of the PUSCH with this aperiodic CSI-RS.
[0088] b) For semi-persistent CSI-RS, from the end of the application of the activation command until the end of the application of the deactivation command.
[0089] c) For periodic CSI-RS, from the time when the periodic CSI-RS is configured by higher layers until the time when the periodic CSI-RS configuration is released.
[0090] If one CSI-RS resource is associated with one or more CSI reports N times, the CSI-RS resource and the CSI-RS ports within the CSI-RS resource are counted N times.
[0091] FIG. 3 shows a block diagram of a wireless communication system to which embodiments of the present application can be applied. The wireless communication system includes a terminal 31 and a network-side device 32.
[0092] The terminal 31 can be a terminal-side device such as a mobile phone, a Tablet Personal Computer, a Laptop Computer, a notebook computer, a Personal Digital Assistant (PDA), a palm PC, a netbook, an Ultra-mobile Personal Computer (UMPC), a Mobile Internet Device (MID), an Augmented Reality (AR) device, a Virtual Reality (VR) device, a robot, a wearable device, a flight vehicle, a Vehicle User Equipment (VUE), a shipboard device, a Pedestrian User Equipment (PUE), a smart home (a home device with a wireless communication function such as a refrigerator, a television, a washing machine, or furniture, etc.), a game console, a Personal Computer (PC), a kiosk, or a self-service machine. The wearable device includes a smart watch, a smart bracelet, a smart earphone, smart glasses, smart jewelry (a smart bracelet, a smart necklace, a smart ring, a smart necklace, a smart anklet, a smart necklace, etc.), a smart wristband, smart clothes, etc. The vehicle-mounted device can also be referred to as a vehicle-mounted terminal, a vehicle-mounted controller, a vehicle-mounted module, a vehicle-mounted component, a vehicle-mounted chip, or a vehicle-mounted unit, etc. It should be noted that the specific type of the terminal 31 is not limited in the embodiments of the present application.
[0093] The network-side device 32 can include an access network device or a core network device, wherein the access network device can also be referred to as a Radio Access Network (RAN) device, a radio access network function, a radio access network unit, or a satellite. The access network device can include a base station, a Wireless Local Area Network (WLAN) Access Point (AP), or a Wireless Fidelity (WiFi) node, etc. Among them, the base station can be referred to as a Node B (NB), an Evolved Node B (eNB), a next generation Node B (gNB), a New Radio Node B (NR Node B), an access point, a relay station (RBS), a serving base station (SBS), a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a home Node B (HNB), a home evolved Node B, a transmit / receive point (TRP), or some other suitable term in the art, as long as the same technical effect is achieved. The base station is not limited to a specific technical term, and it should be noted that in the embodiments of the present application, only the base station in the NR system is taken as an example for introduction, and the specific type of the base station is not limited.
[0094] The core network device can also be referred to as a core network node, a core network function, or a core network network element, etc., which includes but is not limited to at least one of the following: a mobility management entity (MME), an access and mobility management function (AMF), a session management function (SMF), a user plane function (UPF), a policy control function (PCF), a policy and charging rules function (PCRF), an edge application server discovery function (EASDF), a unified data management (UDM), a unified data repository (UDR), a home subscriber server (HSS), a centralized network configuration (CNC), a network repository function (NRF), a network exposure function (NEF), a local NEF (L-NEF), a binding support function (BSF), an application function (AF), a location management function (LMF), a gateway mobile location center (GMLC), a network data analytics function (NWDAF), etc. It should be noted that only the core network device in the NR system is taken as an example for introduction in the embodiments of the present application, and the specific type of the core network device is not limited. If the name of the core network device mentioned in the embodiments of the present application changes in the subsequent protocol version (for example, 6G), it is also within the protection scope of the present application.
[0095] Optionally, the core network device can be implemented by one or more function modules in one device, or can be implemented by multiple devices together, and the embodiments of the present application do not make a specific limitation in this regard. It can be understood that the above function modules can be network elements in a hardware device, can be software function modules running on a dedicated hardware, or can be virtualized function modules instantiated on a platform (for example, a cloud platform).
[0096] Referring to FIG. 4, the embodiments of the present application provide a measurement processing method, and the specific steps include:
[0097] Step 41: a terminal receives first signaling, the first signaling being used for configuring or indicating target information, the target information including at least one of target reporting configuration information and target measurement resource configuration information;
[0098] Step 42: the terminal performs measurement on a target object according to the target information.
[0099] Optionally, the target object includes at least one of a first object and a currently served object, and the first object is an object whose first identification information is different from that of the currently served object.
[0100] Optionally, the first identification information includes at least one of the following:
[0101] 1) a physical cell identifier (PCI);
[0102] 2) an RS resource group identifier;
[0103] 3) a coreset pool index;
[0104] 4) an object configuration information identifier, for example, a network configures an object configuration information list containing {cell#1, cell#4, cell#8}, and the object configuration information identifier of cell#4 can be 1 or 2;
[0105] 5) frequency point information;
[0106] Optionally, the object includes at least one of the following:
[0107] 1) an RS resource group;
[0108] 2) a channel group;
[0109] 3) a TRP;
[0110] 4) a cell;
[0111] 5) a cell group.
[0112] In an embodiment of the present application, the target information is associated with the target object in at least one of the following manners:
[0113] 1) the target report configuration information is associated with the target object;
[0114] 2) the target measurement resource configuration information is associated with the target object;
[0115] 3) the target measurement resource set is associated with the target object;
[0116] Optionally, the target measurement resource set is at least one measurement resource set under the target measurement resource configuration.
[0117] Optionally, the target resource set can also be one of a target resource list, a target measurement resource subset, a target measurement resource group, and the like.
[0118] 4) the target measurement resource is associated with the target object.
[0119] Optionally, the target measurement resource is at least one measurement resource in the target measurement resource set.
[0120] Optionally, the measurement resource is an RS resource, which includes at least one of a CSI-RS for beam measurement, a tracking reference signal (TRS), a CSI-RS for CSI measurement, and an SSB.
[0121] In an embodiment of the present application, the method further comprises:
[0122] In the case where the target report configuration information is associated with at least two target measurement resource configuration information, the target measurement resource configuration information includes a target measurement resource set, the target measurement resource set includes at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0123] 1) if a first parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a first value, the terminal determines that an i-th measurement resource in a plurality of target measurement resource sets contained in the at least two target measurement resource configuration information is transmitted through the same downlink spatial filter;
[0124] Or, 2) if the first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a second value, the terminal determines that the i-th measurement resource in the plurality of target measurement resource sets contained in the at least two target measurement resource configuration information is not transmitted through the same downlink spatial filter.
[0125] wherein i is an integer, and the first parameter is a parameter indicating whether the transmission beams of the target measurement resources are consistent, for example, the first parameter is a repetition parameter.
[0126] In another embodiment of the present application, the method further comprises:
[0127] In the case that the target report configuration information is associated with at least one target measurement resource configuration information, the at least one target measurement resource configuration information comprises at least two target measurement resource sets, the target measurement resource sets comprise at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0128] 1) if a second parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a third value, the terminal determines that the ith measurement resource in the at least two target measurement resource sets is transmitted by the same downlink spatial filter;
[0129] or 2) if a first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a fourth value, the terminal determines that the ith measurement resource in the at least two target measurement resource sets is not transmitted by the same downlink spatial filter;
[0130] wherein i is an integer, and the second parameter is a parameter indicating whether the transmission beams of the target measurement resources are consistent, for example, the second parameter is a repetition parameter.
[0131] In an embodiment of the present application, the method further comprises:
[0132] The terminal reports the identification information of the first target measurement resource, and the first target measurement resource comprises at least one resource in the target measurement resources.
[0133] Optionally, the resources include but are not limited to CSI-RS resources.
[0134] In an embodiment of the present application, the identification information of the first target measurement resource comprises at least one of the following:
[0135] 1) position information of the first target measurement resource in the first target measurement resource set, the first target measurement resource set comprising target measurement resources associated with different target objects;
[0136] 2) identification information of the target object associated with the first target measurement resource;
[0137] 3) location information of the first target measurement resource in the target measurement resource set;
[0138] 4) identification information of a target measurement resource set to which the first target measurement resource belongs;
[0139] 5) identification information of target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs;
[0140] 6) identification information of a target report configuration associated with the target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs.
[0141] In an embodiment of the present application, the terminal performs measurement on a target object according to the target information, comprising:
[0142] The terminal performs measurement on a target object in a first frequency domain range according to the target information;
[0143] The first frequency domain range is determined by at least one of the following:
[0144] 1) according to the frequency domain resources corresponding to all target measurement resources associated with the target report configuration information;
[0145] 2) according to a first bandwidth identifier corresponding to the target measurement resource configuration information associated with the target report configuration information;
[0146] 3) determining an absolute bandwidth range as the first frequency domain range according to at least one of a high-level parameter and a protocol agreement;
[0147] 4) according to an active BWP on at least one active member carrier associated with a first object, the first object being a current service object of the terminal.
[0148] In the present embodiment, the first frequency domain range is a frequency domain range for CSI-RS measurement of the target object, and the terminal performs CSI-RS measurement in the first frequency domain range, so as to obtain the channel state in the first frequency domain range and feed back to the network side, so as to facilitate subsequent data scheduling of the network in the first frequency domain range. In addition, the first frequency domain range limits the CSI-RS measurement of the target object in the frequency domain, i.e. the terminal can only measure the RS resource in the first frequency domain range, which greatly reduces the measurement overhead and power consumption of the terminal compared with full-bandwidth reception.
[0149] In an embodiment of the present application, in the case where the first frequency domain range is determined according to the first bandwidth identifier corresponding to the target measurement resource configuration information associated with the target report configuration information, the method further comprises:
[0150] The terminal determines a frequency domain range corresponding to the first bandwidth identifier as a first frequency domain range according to a first preset rule.
[0151] The first preset rule includes at least one of the following:
[0152] 1) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a current serving cell;
[0153] For example, the bandwidth corresponding to the first bandwidth identifier in the current serving cell is taken as the first frequency domain range.
[0154] 2) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a target object with the smallest identifier among a plurality of target objects;
[0155] 3) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a target object with the largest number of associated target measurement resources among a plurality of target objects;
[0156] 4) determining a corresponding frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in each of a plurality of target objects, and selecting a largest bandwidth as the first frequency domain range;
[0157] 5) determining a corresponding frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in each of a plurality of target objects, and selecting a target measurement resource with the largest number as the first frequency domain range.
[0158] In an embodiment of the present application, the terminal performs measurement on a target object according to the target information, including:
[0159] The terminal performs measurement on the target object in a first time domain range according to the target information;
[0160] The first time domain range is determined by at least one of the following:
[0161] 1) a first time window;
[0162] It should be noted that the first time window can also be expressed as a first time interval, and the first time window can be used for L1 measurement of inter-frequency and inter-system, and the terminal needs to adjust the radio frequency (RF retuning) before and after the first time window.
[0163] 2) a time domain position of a target measurement resource;
[0164] 3) a first time period after the terminal receives second signaling;
[0165] 4) a second time period after a first condition is met.
[0166] In the embodiment, the first time domain range is the time domain range of the CSI-RS measurement of the target object, i.e., the terminal can only perform the CSI-RS measurement of the target object in the first time domain range. In addition to the CSI-RS measurement, before the cell switching, the terminal also needs to receive and transmit the data of the serving cell. In order to reduce the influence on the data transmission of the serving cell, the first time domain range is introduced, i.e., the terminal only performs the CSI-RS measurement of the target object in this time period, and performs other operations outside the time period, so as to standardize the behavior of the UE side.
[0167] In an embodiment of the present application, the start position and / or duration of the first time window is determined by at least one of the following:
[0168] 1) determined by high layer signaling configuration;
[0169] Optionally, the first time window can be a periodic resource, and the high layer signaling includes the period of the first time window and a bias value.
[0170] 2) determined by third signaling indication;
[0171] Optionally, the third signaling is used to trigger aperiodic first time window, or activate a semi-persistent first time window, and the terminal performs measurement in the first time window triggered or activated by the network. Further, the third signaling is the same as the second signaling, i.e., the terminal is informed of the first time window (i.e., the time domain position information corresponding to the measurement) at the same time when the terminal is triggered to perform measurement and report on the target object.
[0172] Optionally, the third signaling includes at least one of the following: first time window identifier, time interval of the third signaling and the first time window, duration of the first time window, etc. The above time interval can be configured by RRC or agreed by protocol.
[0173] 3) determined according to at least one of the following: number of target measurement resources, number of target objects, number of target objects associated with the target measurement resources.
[0174] Optionally, the number of target measurement resources, the number of target objects, and the number of target objects associated with the target measurement resources can be determined by at least one of the following:
[0175] a) determined by network side indication, optionally, the network side indicates by RRC, MAC CE or DCI.
[0176] b) determined according to the second condition, i.e., the terminal only measures the target measurement resources and the target objects that meet the second condition, and optionally, the second condition is the same as the first condition.
[0177] In an embodiment of the present application, the second signaling includes at least one of the following:
[0178] 1) signaling for indicating cell switching;
[0179] 2) signaling for triggering first operation on target object, the first operation including at least one of target measurement, reporting;
[0180] 3) signaling for activating TCI state of target object.
[0181] In an embodiment of the present application, the first condition includes at least one of:
[0182] 1) at least one measurement result corresponding to measurement resource of target object is reported by first resource, the first resource including uplink resource for carrying event triggered reporting;
[0183] 2) at least one measurement result of first RS of target object is higher than measurement result of second RS of current serving object; wherein the first RS is at least one RS associated with the target object, and the second RS is at least one RS associated with the current serving object;
[0184] Optionally, the RS can be at least one of SSB and CSI-RS.
[0185] Optionally, the measurement result includes at least one of measurement result of one measurement, measurement result based on results of multiple measurements and linearly averaged in time domain or space domain.
[0186] Optionally, the measurement result includes measurement result obtained after L1 filtering or L3 filtering.
[0187] 3) at least one object quality of target object is higher than object quality of current serving object by a first threshold;
[0188] 4) communication quality of current serving object is lower than a second threshold.
[0189] It can be understood that the first threshold and the second threshold are not limited in the embodiment.
[0190] In an embodiment of the present application, the communication quality of the current serving object being lower than the second threshold includes at least one of:
[0191] 1) measurement result of third RS of current serving object is lower than the second threshold;
[0192] Optionally, the third RS is a QCL source RS of an indicated TCI state of the terminal in a current serving object; or is a RS with the highest measurement result (L1-RSRP or L1-SINR or L1-RSRQ) in the current serving object; or is at least one RS associated with the current serving object according to a protocol.
[0193] 2) the object quality of the current serving object is lower than a second threshold.
[0194] Optionally, the object quality refers to a value obtained after filtering in the time domain and / or the spatial domain based on measurement results of all or part of RSs associated with the object.
[0195] In an embodiment of the present application, when the first time domain range and the second time domain range overlap, the method further comprises:
[0196] The terminal measures the target object according to the target information according to a second preset rule; wherein the second time domain range comprises at least one of the following:
[0197] 1) SS / PBCH Block Measurement Time Configuration (SMTC);
[0198] 2) a measurement interval for Radio Resource Management (RRM) measurement;
[0199] 3) measurement resources for layer 1 measurement of a current serving cell, for example, CSI-RS or SSB.
[0200] Optionally, the overlap of the first time domain range and the second time domain range comprises partial overlap or complete overlap.
[0201] In an embodiment of the present application, the second preset rule comprises at least one of the following:
[0202] 1) the terminal does not measure the target measurement resource in the first time domain range;
[0203] Optionally, the corresponding report of the measurement is invalid, or the measurement time of the target measurement resource is adjusted according to a first coefficient factor, which can be understood as increasing the measurement time of the target measurement resource to ensure the measurement accuracy.
[0204] Optionally, the first coefficient factor can be different in different scenarios, such as a first coefficient factor corresponding to any one of the first time domain range overlapping with SMTC, measurement interval for RRM measurement, or measurement resource for L1 measurement in the current serving object. Another first coefficient factor corresponding to the first time domain range overlapping with SMTC or measurement interval for RRM measurement, and overlapping with L1 measurement resource of the current serving object; the "a first coefficient factor" is different from the "another first coefficient factor".
[0205] Optionally, the terminal performs L3 measurement in the second time domain range.
[0206] Optionally, the terminal performs L1 measurement on the current serving cell in the second time domain range.
[0207] 2) The terminal measures the target measurement resource in the first time domain range.
[0208] Optionally, if the second time domain range includes SMTC or measurement interval for radio resource management measurement, the method further comprises at least one of the following:
[0209] a) The terminal performs RRM measurement in the second time domain range, the measurement time of the target measurement resource is relaxed according to a second coefficient factor, and the time of the RRM measurement is relaxed according to a third coefficient factor.
[0210] b) The terminal does not perform RRM measurement in the second time domain range, and the RRM measurement time requirement is relaxed according to a seventh coefficient factor.
[0211] Optionally, if the second time domain range includes measurement resource for layer 1 measurement of the current serving cell, the method further comprises at least one of the following:
[0212] a) The terminal does not perform L1 measurement on the measurement resource of the current serving object in the second time domain range, and the time of the L1 measurement is relaxed according to a fourth coefficient factor;
[0213] b) The terminal performs L1 measurement on the measurement resource of the current serving object in the second time domain range, the measurement time of the target measurement resource is relaxed according to a fifth coefficient factor, and the time of the L1 measurement is relaxed according to a sixth coefficient factor.
[0214] Optionally, the first coefficient factor, the second coefficient factor, the third coefficient factor, the fourth coefficient factor, the fifth coefficient factor, the sixth coefficient factor or the seventh coefficient factor can be determined according to at least one of the following:
[0215] a) The size of the overlapping time domain range;
[0216] b) the number of measurement resources overlapped;
[0217] c) the number of target objects associated with the overlapped measurement resources;
[0218] d) the frequency band where the measurement resources or the target objects associated with the measurement resources are located;
[0219] e) the SCS of the overlapped measurement resources.
[0220] In an embodiment of the present application, in the case that the terminal performs measurement in the first time domain range, the method further comprises:
[0221] the terminal processes according to the scheduling restriction;
[0222] wherein the scheduling restriction comprises at least one of:
[0223] a) the current serving object cannot send PDCCH or PDSCH in the first time domain range;
[0224] b) the current serving object cannot indicate or schedule the terminal to send at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range;
[0225] c) the first target object cannot send PDCCH or PDSCH in the first time domain range;
[0226] For example, the first target object cannot send PDCCH or PDSCH in the first time domain range comprises at least one of: the first target object cannot send PDCCH and PDSCH in the first time domain range, the first target object cannot send PDCCH in the first time domain range, and the first target object cannot send PDSCH in the first time domain range.
[0227] wherein the first target object is an object indicated in a cell handover command, or at least one of the target objects.
[0228] d) the first target object cannot indicate or schedule the terminal to send at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range.
[0229] e) the current serving object cannot send PDCCH or PDSCH in the third time domain range;
[0230] For example, the current serving object being unable to send the PDCCH or the PDSCH in the third time domain range includes at least one of the following: the current serving object being unable to send the PDCCH and the PDSCH in the third time domain range, the current serving object being unable to send the PDCCH in the third time domain range, and the current serving object being unable to send the PDSCH in the third time domain range.
[0231] f) the current serving object being unable to indicate or schedule the terminal to send at least one of the PUCCH, the PUSCH, the SRS, and the PRACH in the third time domain range;
[0232] g) the first target object being unable to send the PDCCH or the PDSCH in the third time domain range;
[0233] For example, the first target object being unable to send the PDCCH or the PDSCH in the third time domain range includes at least one of the following: the first target object being unable to send the PDCCH and the PDSCH in the third time domain range, the first target object being unable to send the PDCCH in the third time domain range, and the first target object being unable to send the PDSCH in the third time domain range.
[0234] h) the first target object being unable to indicate or schedule the terminal to send at least one of the PUCCH, the PUSCH, the SRS, and the PRACH in the third time domain range;
[0235] In an embodiment of the present application, the third time domain range is a period of time including the first time domain range.
[0236] For example, the first time domain range is [t1, t2], and the third time domain range is [t1-Δt1, t2+Δt2], where the values of Δt1 and Δt2 can be specified by a protocol or configured by a network; further optionally, the values of Δt1 and Δt2 can be 0.
[0237] In the embodiments of the present application, the terminal receives first signaling, and the first signaling is used to configure or indicate target information, and the target information includes at least one of target reporting configuration information and target measurement resource configuration information; the terminal performs measurement on a target object according to the target information, thereby improving the feasibility of neighbor cell measurement, enabling the terminal to perform CSI-RS-based measurement before switching to a target cell, so that more accurate channel characteristics based on target measurement resource measurement can be used for data transmission as early as possible, and the performance loss of data transmission in a mobile scenario is greatly improved.
[0238] Referring to FIG. 5, the embodiments of the present application provide a measurement processing method, and the specific steps include:
[0239] Step 51: The network-side device sends first signaling, the first signaling is used for configuring or indicating target information, the target information includes at least one of target report configuration information, target measurement resource configuration information, and the target information is used for measuring a target object.
[0240] In an embodiment of the present application, the target information has at least one of the following association relationships with the target object:
[0241] 1) The target report configuration information is associated with the target object;
[0242] 2) The target measurement resource configuration information is associated with the target object;
[0243] 3) The target measurement resource set is associated with the target object; and 4) The target measurement resource is associated with the target object.
[0244] In an embodiment of the present application, the method further comprises:
[0245] The network-side device receives the terminal reported first target measurement resource identification information, and the first target measurement resource includes at least one of the target measurement resources.
[0246] In an embodiment of the present application, the first target measurement resource identification information includes at least one of the following:
[0247] 1) The first target measurement resource position information in the first target measurement resource set, the first target measurement resource set includes target measurement resources associated with different target objects;
[0248] 2) The first target measurement resource associated target object identification information;
[0249] 3) The first target measurement resource position information in the target measurement resource set;
[0250] 4) The first target measurement resource belongs to the target measurement resource set identification information;
[0251] 5) The first target measurement resource belongs to the target measurement resource set corresponding target measurement resource configuration information identification information;
[0252] 6) The first target measurement resource belongs to the target measurement resource set corresponding target measurement resource configuration information associated target report configuration identification information.
[0253] In the embodiments of the present application, a network side device sends first signaling, the first signaling is used for configuring or indicating target information, the target information includes at least one of target report configuration information and target measurement resource configuration information, and the target information is used for measuring a target object, so that the terminal performs CSI-RS-based measurement before switching to a target cell, thereby the more accurate channel characteristics based on target measurement resource measurement can be used for data transmission as early as possible, and the data transmission performance loss in a mobile scenario is greatly improved.
[0254] The implementation manners of the present application will be described below in combination with Embodiment One and Embodiment Two.
[0255] Embodiment One: Measurement report configuration.
[0256] In the present embodiment, the L1 measurement report configuration for the target object can be implemented by at least one of the following 1-5:
[0257] 1. The target report configuration information is associated with the target object.
[0258] Optionally, a new RRC parameter is added in the target report configuration information (for example, LTM-CSI-ReportConfig (ReportConfig)) to indicate the identification information of the target object.
[0259] Optionally, a new RRC parameter is added in the report configuration for event triggered report to indicate the identification information of the target object.
[0260] Optionally, the target object includes at least one of a first object and a current service object, and the first object can be an object with first identification information different from the current service object.
[0261] Optionally, the first identification information includes at least one of the following: 1) PCI; 2) RS resource group identification; 3) CoresetPoolindex; 4) object configuration information identification, for example, a network configures an object configuration information list containing {cell#1, cell#4, cell#8}, and the object configuration information identification of cell#4 is 1 or 2; 5) frequency point information.
[0262] Optionally, the object includes at least one of the following: 1) RS resource group; 2) channel group; 3) TRP; 4) cell; 5) cell group.
[0263] Optionally, all measurement resources associated with the target report configuration information are associated with the target object, and the terminal determines the specific measurement resource according to the configuration information of the target object.
[0264] For example, the measurement resource is an RS resource, and the RS resource includes at least one of a CSI-RS for beam measurement, a TRS, a CSI-RS for CSI measurement, and an SSB.
[0265] 2. Target measurement resource configuration information is associated with a target object;
[0266] For example, a new RRC parameter is added in the target measurement resource configuration information (LTM-CSI-ResourceConfig) to indicate the identification information of the target object.
[0267] 3. A target measurement resource set is associated with a target object;
[0268] For example, a new RRC parameter is added in the target measurement resource set (ltm-CSI-SSB-ResourceSet or NZP-CSI-RS resource set) to indicate the identification information of the target object.
[0269] 4. A target measurement resource subset in a target measurement resource set is associated with a target object;
[0270] For example, a new RRC parameter is added in the target measurement resource subset (ltm-CSI-SSB-ResourceSubset or NZP-CSI-RS resource subset) to indicate the identification information of the target object.
[0271] 5. A target measurement resource in a target measurement resource set or a target measurement resource subset is associated with a target object.
[0272] For example, a target object list is added in the target measurement resource set (NZP-CSI-RS resource set) or the target measurement resource subset (ltm-CSI-SSB-ResourceSubset or NZP-CSI-RS resource subset), and the number of measurement resources in the target measurement resource set or the target measurement resource subset is the same as the number of objects in the target object list, that is, there is a one-to-one correspondence between the elements in the two lists.
[0273] In this embodiment, the configuration of the CSI-RS for beam measurement, i.e., repetition, can be implemented in the following three ways:
[0274] Method 1: One target measurement resource set is associated with one target object, and an RRC parameter repetition is introduced in the target measurement resource set to indicate whether the transmission beams of all CSI-RS resources in the target measurement resource set are consistent.
[0275] For example, when the network configures the repetition parameter and sets it as "off" or does not configure the repetition parameter, the transmission beams of all CSI-RS resources in the target measurement resource set are not assumed to be consistent.
[0276] For example, when the network configures the repetition parameter and sets it as "on", the transmission beams of all CSI-RS resources in the target measurement resource set are assumed to be consistent.
[0277] Option 2: One target report configuration information is associated with m CSI measurement resource configurations, each of the m CSI measurement resource configurations is associated with a CSI-RS resource set, each of the CSI-RS resource sets contains n CSI-RSs, and the n CSI-RSs are associated with different target objects; an RRC parameter is added in the target report configuration information to indicate whether the transmission beams of all CSI-RSs in the ith first CSI-RS set are consistent; the ith first CSI-RS set is composed of the ith (i = 1, 2, 3,..., n) CSI-RS resource in the CSI-RS resource set associated with the m CSI measurement resource configurations, as shown in FIG. 6.
[0278] Optionally, the RRC parameter can be repetition.
[0279] For example, when the network configures the repetition parameter and sets it as "off" or does not configure the repetition parameter, the transmission beams of all CSI-RS resources in the ith first CSI-RS set are not assumed to be consistent.
[0280] For example, when the network configures the repetition parameter and sets it as "on", the transmission beams of all CSI-RS resources in the ith first CSI-RS set are assumed to be consistent.
[0281] Further, the number of CSI-RSs in the m CSI-RS resource sets associated with the m CSI measurement resource configurations must be the same.
[0282] Further, all CSI-RS resources in the ith first CSI-RS set are associated with the same target object.
[0283] Option 3: One target report configuration information is associated with one CSI measurement resource configuration, the CSI measurement resource configuration contains m CSI-RS resource sets, and the CSI-RS in each CSI-RS resource set is associated with a different target object; a new RRC parameter is added in the target report configuration information or the CSI measurement resource configuration, which is used to indicate whether the transmission beams of all CSI-RS in the ith first CSI-RS set are consistent; the ith first CSI-RS set is composed of the ith (i = 1, 2, 3, …, n) CSI-RS resource in the m CSI-RS resource sets, as shown in FIG. 7; n is the number of CSI-RS in the measurement resource set.
[0284] Optionally, the RRC parameter can be a repetition parameter.
[0285] For example, when the network configures the repetition parameter and sets it to “off” or does not configure the repetition parameter, the transmission beams of all CSI-RS resources in the first CSI-RS set are not assumed to be consistent.
[0286] For example, when the network configures the repetition parameter and sets it to “on”, the transmission beams of all CSI-RS resources in the first CSI-RS set are assumed to be consistent.
[0287] Further, the number of CSI-RS in the m CSI-RS resource sets is the same.
[0288] Further, all CSI-RS resources in the ith first CSI-RS set are associated with the same target object.
[0289] Embodiment 2: Determination of the corresponding time domain resource.
[0290] In this embodiment, the determination of the time domain position of the L1 measurement based on the CSI-RS of the target object includes the following methods:
[0291] Option 1: For the target object that is synchronized with the current service object, i.e., RTD < CP, at least one of the following a-c can be used to determine:
[0292] a) After receiving the CSI-RS configuration information of the target object, the terminal determines the CSI-RS resource of the target object according to the timing information of the current service object, and performs L1 measurement on the CSI-RS resource;
[0293] b) the terminal determines the CSI-RS resource of the target object according to the timing information of the current serving object and the second signaling after receiving the CSI-RS configuration information of the target object and the second signaling is applied, and performs L1 measurement on the CSI-RS resource;
[0294] Optionally, the second signaling is used for at least one of the following 1) to 5):
[0295] 1) activating the semi-persistent CSI-RS resource of the target object, as shown in FIG. 8;
[0296] 2) activating the aperiodic CSI-RS resource of the target object, as shown in FIG. 8;
[0297] 3) instructing the terminal to start measurement on the second CSI-RS resource, as shown in FIG. 9;
[0298] Optionally, the second CSI-RS resource is a periodic resource.
[0299] Optionally, the second CSI-RS is at least one CSI-RS resource associated with the target object.
[0300] Optionally, the second CSI-RS resource is indicated by the second signaling.
[0301] 4) instructing the terminal to perform L1 or L2 triggered cell switching;
[0302] 5) activating at least one TCI state associated with the target object;
[0303] c) the terminal determines the CSI-RS resource of the target object according to the timing information of the current serving object and the content of the first condition after receiving the CSI-RS configuration information of the target object and the first condition is met, and performs L1 measurement on the CSI-RS resource, as shown in FIG. 10.
[0304] Further, when the first condition is no longer met, the terminal no longer performs L1 measurement on the CSI-RS resource of the target object.
[0305] Method 2, when the target object and the current serving object are asynchronous (i.e., RTD> CP), or the SCS of the CSI-RS of the target object is different from the SCS of the CSI-RS of the current serving object, or the center frequency point of the CSI-RS of the target object is different from the center frequency point of the CSI-RS of the current serving object, the time domain position of the L1 measurement based on the CSI-RS of the target object can be determined by at least one of the following a) to c):
[0306] a) After receiving the configuration information of the measurement interval for CSI-RS L1 measurement, the terminal determines the time domain position of the measurement interval according to the timing information of the current service object, and performs L1 measurement on the CSI-RS resource therein (as shown in FIG. 11) ;
[0307] b) After receiving the configuration information of the measurement interval for CSI-RS L1 measurement and the third signaling is applied, the terminal determines the time domain position of the measurement interval according to the timing information of the current service object and the third signaling, and performs L1 measurement on the CSI-RS resource therein;
[0308] Optionally, the third signaling is used for at least one of the following 1) to 4) :
[0309] 1) Activating the measurement interval for CSI-RS L1 measurement (as shown in FIG. 12) ;
[0310] Optionally, the terminal measures the CSI-RS resource of the associated target object in the measurement interval activated by the third signaling, which can be semi-persistent or aperiodic.
[0311] For example, when the measurement interval is semi-persistent, the position of the measurement interval is determined according to the period, time slot offset, etc. after the measurement interval is activated by the third signaling; and the number of measurement intervals is determined according to an additional RRC parameter, or when the terminal receives a deactivation command (the sixth signaling in FIG. 12) of the measurement interval and the command takes effect, it is determined that the measurement interval is invalid or deactivated, and the terminal cannot perform L1 measurement of the CSI-RS resource of the target object.
[0312] 2) Indicating the terminal to start L1 measurement on the CSI-RS resource in the measurement interval, as shown in FIG. 13;
[0313] Optionally, the measurement interval is determined by RRC configuration, and the corresponding time domain position is fixed. The measurement interval is divided into active state and inactive state, and the two states can be dynamically indicated by the network. The initial state of the measurement interval can be determined by RRC configuration or protocol. When the measurement interval is in the active state, the terminal will perform L1 measurement of the CSI-RS resource of the target object therein; otherwise, the terminal cannot perform L1 measurement of the CSI-RS resource of the target object.
[0314] Further optionally, the scheduling restriction is determined according to the measurement interval in the active state, that is, the terminal cannot perform transmission of uplink signals and channels and reception of PDSCH and PDCCH in the measurement interval for L1 measurement in the active state.
[0315] 3) Indicating the terminal to perform L1 / L2 triggered cell switching;
[0316] 4) activating at least one TCI state associated with the target object.
[0317] Further optionally, the second signaling and the third signaling can be the same signaling. For example, the cell switching command contains the indication information of the non-periodic CSI-RS resource of the target object, which is used for the terminal to perform CSI measurement and reporting as soon as possible during the cell switching process or after the completion of the cell switching, so as to realize high-quality data transmission as soon as possible. Or the signaling of activating the TCI state associated with the target object also carries the trigger information of the non-periodic measurement interval, that is, the terminal measures the QCL source RS of the activated TCI state or the CSI-RS associated with the TCI state in the non-periodic measurement interval, that is, the terminal can also obtain the CSI information corresponding to the TCI state as soon as possible when the TCI state is activated, so that the network side can also schedule in time according to the CSI corresponding to the TCI state when scheduling through a certain TCI state, and improve the data transmission performance.
[0318] c) After receiving the measurement interval for CSI-RS L1 measurement and the first condition is met, the terminal determines the time domain position of the measurement interval according to the timing information of the current service object and the content of the first condition, and performs L1 measurement on the CSI-RS resource therein, as shown in FIG. 14.
[0319] Similar to the principle of FIG. 13, the active state and the inactive state of the measurement interval are determined by the UE according to whether the first condition is met.
[0320] Optionally, the scheduling restriction is determined according to the measurement interval configured by the network side, that is, the terminal cannot perform transmission of uplink signals and channels and reception of PDSCH and PDCCH in the measurement interval configured by the network side for L1 measurement.
[0321] Optionally, the scheduling restriction is determined according to the measurement interval in the active state, that is, the terminal cannot perform transmission of uplink signals and channels and reception of PDSCH and PDCCH in the measurement interval in the active state for L1 measurement.
[0322] Further, when the first condition is met, the terminal reports the state of all measurement intervals configured by the network side for L1 measurement or the identification information of the measurement interval in the active state to the network side, so as to help the network to perform correct data scheduling and transmission.
[0323] It should be noted that the measurement interval can be configured per UE, that is, the measurement interval can be used for L1 measurement of the CSI-RS resource of the second object, the second object including the current serving object and all target objects, or only all target objects; or the measurement interval is configured per frequency range, that is, the measurement interval can be used for L1 measurement of the CSI-RS of the target object only on the frequency range (Frequency Range, FR) 1, or FR2, or FR3; or the measurement interval is configured per target object, that is, the measurement interval can be used for L1 measurement of the CSI-RS or SSB of the corresponding target object.
[0324] In the embodiment, the configuration signaling framework, time-frequency domain range, and scheduling restriction of the serving cell during measurement of the CSI-RS of the neighbor cell are determined, the feasibility of the CSI-RS measurement of the neighbor cell is improved, the terminal can complete the CSI measurement as soon as possible in the handover scenario, and therefore the terminal can use more accurate channel characteristics based on the CSI-RS measurement for data transmission as early as possible, and the performance loss of data transmission in the mobile scenario is greatly improved.
[0325] The embodiment of the present application provides a measurement processing apparatus. As an example, the measurement processing apparatus can be a communication device or a component in the communication device, for example, a chip. The communication device can be a terminal, a network side device, a server, or the like. For example, the terminal can include, but is not limited to, the types of terminals listed above, the network side device can include, but is not limited to, the types of network side devices listed above, and the embodiment of the present application is not limited in particular.
[0326] The measurement processing apparatus can include a receiving module, a sending module and a processing module. The receiving module, the sending module and the processing module can be implemented by software or by hardware. When implemented by hardware, the processing module can be implemented by a processor, which can include a general-purpose processor, a special-purpose processor, a central processing unit (CPU), a microprocessor, a digital signal processor (DSP), an artificial intelligent (AI) processor, a graphics processing unit (GPU), an application specific integrated circuit (ASIC), a network processor (NP), a field programmable gate array (FPGA) or other programmable logic device, a gate circuit, a transistor, a discrete hardware component, etc. The receiving module and the sending module can be implemented by a communication interface, which can include a transceiver, a pin, a circuit, a bus, a radio frequency unit, etc.
[0327] Referring to FIG. 15, an embodiment of the present application provides a measurement processing apparatus applied to a terminal, which includes a first transceiving unit 1501 and a first processing unit 1502.
[0328] The first transceiving unit 1501 is configured to receive first signaling, which is used to configure or indicate target information, the target information including at least one of target report configuration information and target measurement resource configuration information.
[0329] The first processing unit 1502 is configured to perform measurement on a target object according to the target information.
[0330] In an embodiment of the present application, the target information and the target object have at least one of the following association relationships:
[0331] 1) The target report configuration information is associated with the target object;
[0332] 2) The target measurement resource configuration information is associated with the target object;
[0333] 3) The target measurement resource set is associated with the target object;
[0334] Optionally, the target measurement resource set is at least one measurement resource set under the target measurement resource configuration.
[0335] Optionally, the target resource set can also be expressed as one of a target resource list, a target measurement resource subset, a target measurement resource group, etc.
[0336] 4) the target measurement resource is associated with a target object;
[0337] Optionally, the target measurement resource is at least one measurement resource in the target measurement resource set.
[0338] In an embodiment of the present application, the first processing unit 1502 is further configured to:
[0339] In the case where the target report configuration information is associated with at least two target measurement resource configuration information, the target measurement resource configuration information includes a target measurement resource set, the target measurement resource set includes at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0340] 1) if a first parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a first value, it is determined that an ith measurement resource in a plurality of target measurement resource sets included in the at least two target measurement resource configuration information is transmitted through the same downlink spatial filter;
[0341] Or, 2) if the first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a second value, it is determined that the ith measurement resource in the plurality of target measurement resource sets included in the at least two target measurement resource configuration information is not transmitted through the same downlink spatial filter.
[0342] Wherein, the first parameter is a parameter i indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer.
[0343] In another embodiment of the present application, the first processing unit 1502 is further configured to:
[0344] In the case where the target report configuration information is associated with at least one target measurement resource configuration information, the at least one target measurement resource configuration information includes at least two target measurement resource sets, the target measurement resource set includes at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0345] 1) if a second parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a third value, the terminal determines that an ith measurement resource in at least two target measurement resource sets is transmitted through the same downlink spatial filter;
[0346] Or, 2) if the first parameter in the target report configuration information or the target measurement resource configuration information is not configured or is configured as the fourth value, it is determined that the i-th measurement resource in the at least two target measurement resource sets is not transmitted through the same downlink spatial filter;
[0347] Wherein, the second parameter is a parameter i indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer.
[0348] In an embodiment of the present application, the first transceiver 1501 is further configured to:
[0349] report the identification information of the first target measurement resource, the first target measurement resource including at least one of the target measurement resources.
[0350] In an embodiment of the present application, the identification information of the first target measurement resource includes at least one of the following:
[0351] 1) position information of the first target measurement resource in the first target measurement resource set, the first target measurement resource set including target measurement resources associated with different target objects;
[0352] 2) identification information of a target object associated with the first target measurement resource;
[0353] 3) position information of the first target measurement resource in the target measurement resource set;
[0354] 4) identification information of a target measurement resource set to which the first target measurement resource belongs;
[0355] 5) identification information of target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs;
[0356] 6) identification information of a target report configuration associated with the target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs.
[0357] In an embodiment of the present application, the first processing unit 1502 is further configured to:
[0358] measure a target object in a first frequency domain range according to the target information;
[0359] Wherein, the first frequency domain range is determined by at least one of the following:
[0360] 1) according to the frequency domain resources corresponding to all target measurement resources associated with the target report configuration information;
[0361] 2) determining a first bandwidth identifier corresponding to the target measurement resource configuration information according to the target report configuration information;
[0362] 3) determining an absolute bandwidth range as the first frequency domain range according to at least one of a high-level parameter and a protocol agreement;
[0363] 4) determining according to an active BWP on at least one active member carrier associated with a first object, the first object being a current service object of the terminal.
[0364] In an embodiment of the present application, the first processing unit 1502 is further configured to: determine a frequency domain range corresponding to the first bandwidth identifier as the first frequency domain range according to a first preset rule;
[0365] The first preset rule includes at least one of the following:
[0366] 1) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a current serving cell;
[0367] 2) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a target object with the smallest identifier among a plurality of target objects;
[0368] 3) determining the first frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in a target object with the largest number of associated target measurement resources among a plurality of target objects;
[0369] 4) determining a corresponding frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in each of a plurality of target objects, and selecting a largest bandwidth as the first frequency domain range;
[0370] 5) determining a corresponding frequency domain range according to a bandwidth corresponding to the first bandwidth identifier in each of a plurality of target objects, and selecting a target object with the largest number of target measurement resources as the first frequency domain range.
[0371] In an embodiment of the present application, the first processing unit 1502 is further configured to:
[0372] measuring a target object in a first time domain range according to the target information;
[0373] The first time domain range is determined according to at least one of the following:
[0374] 1) a first time window;
[0375] It should be noted that the first time window can also be expressed as a first time interval.
[0376] 2) a time domain location of the target measurement resource;
[0377] 3) a first time period after the terminal receives the second signaling;
[0378] 4) a second time period after the first condition is satisfied.
[0379] In an embodiment of the present application, the start position and / or duration of the first time window is determined by at least one of the following:
[0380] 1) determined by high layer signaling configuration;
[0381] Optionally, the first time window can be a periodic resource, and the high layer signaling includes the period of the first time window and an offset value.
[0382] 2) determined by third signaling indication;
[0383] Optionally, the third signaling is used to trigger aperiodic first time window, or activate a semi-persistent first time window, and the terminal performs measurement in the first time window triggered or activated by the network. Further, the third signaling is the same as the second signaling, that is, the terminal is informed of the first time window (i.e. the time domain position information corresponding to the measurement) at the same time as the terminal is triggered to perform measurement and report on the target object.
[0384] Optionally, the third signaling includes at least one of the following: first time window identifier, time interval of the third signaling and the first time window, duration of the first time window, etc. The above time interval can be configured by RRC or agreed by protocol.
[0385] 3) determined according to at least one of the following: number of target measurement resources, number of target objects, number of target objects associated with target measurement resources.
[0386] Optionally, the number of target measurement resources, the number of target objects, and the number of target objects associated with target measurement resources can be determined by at least one of the following:
[0387] a) determined by network side indication, optionally, the network side indicates by RRC, MAC CE or DCI.
[0388] b) determined according to a second condition, that is, the terminal only measures target measurement resources and target objects that satisfy the second condition, optionally, the second condition is the same as the first condition.
[0389] In an embodiment of the present application, the second signaling includes at least one of the following:
[0390] 1) signaling for indicating cell switching;
[0391] 2) signaling for triggering first operation on the target object, the first operation including at least one of the following: target measurement, reporting;
[0392] 3) signaling for activating the TCI state of the target object.
[0393] In an embodiment of the present application, the first condition comprises at least one of the following:
[0394] 1) there is at least one measurement result corresponding to a measurement resource of the target object reported on a first resource, wherein the first resource comprises an uplink resource for carrying event-triggered reporting;
[0395] 2) there is at least one measurement result of a first RS of the target object higher than a measurement result of a second RS of a current service object; wherein the first RS is at least one RS associated with the target object, and the second RS is at least one RS associated with the current service object;
[0396] Optionally, the RS can be at least one of SSB and CSI-RS.
[0397] Optionally, the measurement result comprises at least one of a measurement result of one measurement, a measurement result based on results of multiple measurements and linearly averaged in time domain or space domain.
[0398] Optionally, the measurement result comprises a measurement result obtained after L1 filtering or L3 filtering.
[0399] 3) there is at least one target object whose object quality is higher than the object quality of the current service object by a first threshold;
[0400] 4) the communication quality of the current service object is lower than a second threshold.
[0401] It can be understood that the first threshold and the second threshold are not limited in the embodiment.
[0402] In an embodiment of the present application, the communication quality of the current service object being lower than the second threshold comprises at least one of the following:
[0403] 1) the measurement result of a third RS of the current service object is lower than the second threshold;
[0404] Optionally, the third RS is a QCL source RS of an indicated TCI state of the terminal in the current service object; or is an RS with the highest measurement result (L1-RSRP or L1-SINR or L1-RSRQ) in the current service object; or is at least one RS associated with the current service object agreed by a protocol;
[0405] 2) the object quality of the current service object is lower than the second threshold.
[0406] Optionally, the object quality refers to a value obtained after filtering in the time domain and / or the space domain based on measurement results of all or part of RSs associated with the object.
[0407] In an embodiment of the present application, the first processing unit 1502 is further configured to:
[0408] measure the target object according to a second preset rule according to the target information;
[0409] The second time domain range includes at least one of the following:
[0410] 1) SS / PBCH Block Measurement Time Configuration (SMTC);
[0411] 2) measurement interval for Radio Resource Management (RRM) measurement;
[0412] 3) measurement resource for layer 1 measurement of the current serving cell, for example, CSI-RS or SSB.
[0413] In an embodiment of the present application, the second preset rule includes at least one of the following:
[0414] 1) the terminal does not measure the target measurement resource in the first time domain range;
[0415] Optionally, the corresponding report of the measurement is invalid, or the measurement time of the target measurement resource is adjusted according to a first coefficient factor. It can be understood that the first coefficient factor increases the measurement time of the target measurement resource to ensure the measurement accuracy.
[0416] Optionally, the first coefficient factor can be different in different scenarios. For example, a first coefficient factor corresponding to any one of the following: the first time domain range overlaps with SMTC, the measurement interval for RRM measurement, or the measurement resource for L1 measurement of the current serving object. Another first coefficient factor corresponding to the first time domain range overlapping with SMTC or the measurement interval for RRM measurement, and overlapping with the L1 measurement resource of the current serving object. The above-mentioned "a first coefficient factor" can be different from "another first coefficient factor".
[0417] Optionally, the terminal performs L3 measurement in the second time domain range.
[0418] Optionally, the terminal performs L1 measurement of the current serving cell in the second time domain range.
[0419] 2) the terminal performs measurement on the target measurement resource in the first time domain range.
[0420] Optionally, if the second time domain range includes SMTC or measurement interval for radio resource management measurement, the method further comprises at least one of:
[0421] a) the terminal performs RRM measurement in the second time domain range, measurement time of the target measurement resource is relaxed by a second coefficient factor, and time of the RRM measurement is relaxed by a third coefficient factor.
[0422] b) the terminal does not perform RRM measurement in the second time domain range, and time of the RRM measurement is relaxed by a seventh coefficient factor.
[0423] Optionally, if the second time domain range includes measurement resource for layer 1 measurement of a current serving cell, the first processing unit 1502 is further configured to at least one of:
[0424] a) not performing L1 measurement on measurement resource of the current serving object in the second time domain range, and time of the L1 measurement is relaxed by a fourth coefficient factor;
[0425] b) performing L1 measurement on measurement resource of the current serving object in the second time domain range, measurement time of the target measurement resource is relaxed by a fifth coefficient factor, and time of the L1 measurement is relaxed by a sixth coefficient factor.
[0426] Optionally, the first coefficient factor, the second coefficient factor, the third coefficient factor, the fourth coefficient factor, the fifth coefficient factor, the sixth coefficient factor, or the seventh coefficient factor can be determined according to at least one of:
[0427] a) size of the overlapping time domain range;
[0428] b) number of overlapping measurement resources;
[0429] c) number of target objects associated with the overlapping measurement resources;
[0430] d) frequency band where the measurement resource or the target object associated with the measurement resource is located;
[0431] e) SCS of the overlapping measurement resources.
[0432] In an embodiment of the present application, in the case where the terminal performs measurement in the first time domain range, the first processing unit 1502 is further configured to perform processing according to a scheduling restriction.
[0433] The scheduling restriction comprises at least one of:
[0434] a) the current serving object is unable to transmit PDCCH or PDSCH in the first time domain range;
[0435] For example, the current serving object is unable to transmit PDCCH and PDSCH in the first time domain range.
[0436] b) the current serving object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range;
[0437] c) the first target object is unable to transmit PDCCH or PDSCH in the first time domain range;
[0438] The first target object is an object indicated in a cell handover command, or at least one of the target objects.
[0439] d) the first target object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range.
[0440] e) the current serving object is unable to transmit PDCCH or PDSCH in the third time domain range;
[0441] f) the current serving object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the third time domain range;
[0442] g) the first target object is unable to transmit PDCCH or PDSCH in the third time domain range;
[0443] h) the first target object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the third time domain range;
[0444] In an embodiment of the present application, the third time domain range is a period of time including the first time domain range.
[0445] The apparatus provided by the embodiments of the present application can implement each process implemented by the method embodiment of FIG. 4 and achieve the same technical effects. To avoid repetition, details are not described herein.
[0446] Referring to FIG. 16, the embodiments of the present application provide a measurement processing apparatus, applied to a network side device, the apparatus 1600 includes a second transceiver unit 1601 and a second processing unit 1602.
[0447] The second transceiver unit 1601 is configured to send first signaling, wherein the first signaling is used to configure or indicate target information, and the target information comprises at least one of target report configuration information and target measurement resource configuration information, and the target information is used to measure a target object.
[0448] In an embodiment of the present application, the target information is associated with the target object in at least one of the following ways:
[0449] 1) the target report configuration information is associated with the target object;
[0450] 2) the target measurement resource configuration information is associated with the target object;
[0451] 3) the target measurement resource set is associated with the target object;
[0452] 4) the target measurement resource is associated with the target object.
[0453] In an embodiment of the present application, the second transceiver unit 1601 is further configured to:
[0454] receive identification information of a first target measurement resource reported by a terminal, wherein the first target measurement resource comprises at least one of the target measurement resources.
[0455] In an embodiment of the present application, the identification information of the first target measurement resource comprises at least one of the following:
[0456] 1) position information of the first target measurement resource in a first target measurement resource set, wherein the first target measurement resource set comprises target measurement resources associated with different target objects;
[0457] 2) identification information of a target object associated with the first target measurement resource;
[0458] 3) position information of the first target measurement resource in the target measurement resource set;
[0459] 4) identification information of a target measurement resource set to which the first target measurement resource belongs;
[0460] 5) identification information of target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs;
[0461] 6) identification information of target report configuration associated with target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs.
[0462] The apparatus provided by the embodiments of the present application can realize each process of the method embodiments of FIG. 5, and achieve the same technical effects. To avoid repetition, details are not described herein.
[0463] As shown in FIG. 17, the embodiments of the present application further provide a communication device 1700, which includes a processor 1701 and a memory 1702, and the memory 1702 stores programs or instructions executable on the processor 1701. For example, when the communication device 1700 is a terminal, the programs or instructions are executed by the processor 1701 to realize each step of the method embodiments shown in FIG. 4, and achieve the same technical effects. When the communication device 1700 is a network side device, the programs or instructions are executed by the processor 1701 to realize each step of the method embodiments shown in FIG. 5, and achieve the same technical effects. To avoid repetition, details are not described herein.
[0464] The embodiments of the present application further provide a terminal, which includes a processor and a communication interface, the communication interface is coupled to the processor, and the processor is configured to run programs or instructions to realize the steps in the method embodiments shown in FIG. 4. The terminal embodiments correspond to the above-mentioned terminal side method embodiments, and each implementation process and implementation manner of the above-mentioned method embodiments can be applicable to the terminal embodiments, and can achieve the same technical effects. The terminal can be the measurement processing apparatus shown in FIG. 15. Specifically, FIG. 18 is a schematic diagram of a hardware structure of a terminal for implementing the embodiments of the present application.
[0465] The terminal 1800 includes, but is not limited to, at least part of components such as a radio frequency unit 1801, a network module 1802, an audio output unit 1803, an input unit 1804, a sensor 1805, a display unit 1806, a user input unit 1807, an interface unit 1808, a memory 1809, and a processor 1810.
[0466] Those skilled in the art can understand that the terminal 1800 can further include a power supply (such as a battery) for supplying power to each component, and the power supply can be logically connected to the processor 1810 through a power management system, so as to realize functions such as power management, discharge management, and power consumption management through the power management system. The terminal structure shown in FIG. 18 does not constitute a limitation on the terminal, and the terminal can include more or fewer components than those shown, or combine certain components, or different component arrangements, which are not described herein.
[0467] It should be understood that in the embodiments of the present application, the input unit 1804 can include a graphics processor 18041 and a microphone 18042, and the graphics processor 18041 processes image data of a still picture or a video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode. The display unit 1806 can include a display panel 18061, which can be configured in the form of a liquid crystal display, an organic light-emitting diode, etc. The user input unit 1807 includes at least one of a touch panel 18071 and other input devices 18072. The touch panel 18071 is also called a touch screen. The touch panel 18071 can include two parts of a touch detection device and a touch controller. The other input devices 18072 can include, but are not limited to, a physical keyboard, function keys (such as volume control keys, on-off keys, etc.), a trackball, a mouse, a joystick, and the like, which will not be described here.
[0468] In the embodiments of the present application, after the radio frequency unit 1801 receives the downlink data from the network side device, it can be transmitted to the processor 1810 for processing. In addition, the radio frequency unit 1801 can send uplink data to the network side device. Generally, the radio frequency unit 1801 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.
[0469] The memory 1809 can be used to store software programs or instructions and various data. The memory 1809 can mainly include a first storage area storing programs or instructions and a second storage area storing data, wherein the first storage area can store an operating system, application programs or instructions required by at least one function (such as a sound playing function, an image playing function, etc.), and the like. In addition, the memory 1809 can include a volatile memory or a non-volatile memory. The non-volatile memory can be a Read-Only Memory (ROM), a Programmable ROM (PROM), an Erasable PROM (EPROM), an Electrically EPROM (EEPROM), or a flash memory. The volatile memory can be a Random Access Memory (RAM), a Static RAM (SRAM), a Dynamic RAM (DRAM), a Synchronous DRAM (SDRAM), a Double Data Rate SDRAM (DDR SDRAM), an Enhanced SDRAM (ESDRAM), a Synch link DRAM (SLDRAM), and a Direct Rambus RAM (DRRAM). The memory 1809 in the embodiments of the present application includes but is not limited to these and any other suitable types of memory.
[0470] The processor 1810 can include one or more processing units; optionally, the processor 1810 integrates an application processor and a modem processor, wherein the application processor mainly processes operations related to an operating system, a user interface, and an application program, and the modem processor mainly processes wireless communication signals, such as a baseband processor. It can be understood that the above-mentioned modem processor can also not be integrated into the processor 1810.
[0471] The radio frequency unit 1801 is configured to receive first signaling, wherein the first signaling is used to configure or indicate target information, and the target information includes at least one of target report configuration information and target measurement resource configuration information; and the processor 1810 is configured to measure a target object according to the target information.
[0472] In an embodiment of the present application, the target information and the target object have at least one of the following association relationships:
[0473] 1) the target report configuration information is associated with a target object;
[0474] 2) the target measurement resource configuration information is associated with a target object;
[0475] 3) the target measurement resource set is associated with a target object;
[0476] Optionally, the target measurement resource set is at least one measurement resource set under the target measurement resource configuration.
[0477] Optionally, the target resource set can also be one of a target resource list, a target measurement resource subset, a target measurement resource group, etc.
[0478] 4) the target measurement resource is associated with a target object;
[0479] Optionally, the target measurement resource is at least one measurement resource in the target measurement resource set.
[0480] In an embodiment of the present application, the radio frequency unit 1801 is further configured to:
[0481] In the case that the target report configuration information is associated with at least two target measurement resource configuration information, the target measurement resource configuration information contains a target measurement resource set, the target measurement resource set contains at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0482] 1) if a first parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a first value, it is determined that the i-th measurement resource in the multiple target measurement resource sets contained in the at least two target measurement resource configuration information is transmitted through the same downlink spatial filter;
[0483] Or, 2) if the first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a second value, it is determined that the i-th measurement resource in the multiple target measurement resource sets contained in the at least two target measurement resource configuration information is not transmitted through the same downlink spatial filter.
[0484] Wherein, the first parameter is a parameter i indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer.
[0485] In another embodiment of the present application, the processor 1810 is further configured to:
[0486] In the case that the target report configuration information is associated with at least one target measurement resource configuration information, the at least one target measurement resource configuration information comprises at least two target measurement resource sets, the target measurement resource set comprises at least one target measurement resource, and the at least one target measurement resource is associated with different target objects,
[0487] 1) If a second parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a third value, the terminal determines that an i-th measurement resource in the at least two target measurement resource sets is transmitted through the same downlink spatial filter;
[0488] Or, 2) If a first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a fourth value, it is determined that an i-th measurement resource in the at least two target measurement resource sets is not transmitted through the same downlink spatial filter;
[0489] Wherein, the second parameter is a parameter indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer.
[0490] In an embodiment of the present application, the radio frequency unit 1801 is further configured to:
[0491] Report the identification information of the first target measurement resource, the first target measurement resource comprising at least one resource in the target measurement resources.
[0492] In an embodiment of the present application, the identification information of the first target measurement resource comprises at least one of the following:
[0493] 1) Position information of the first target measurement resource in the first target measurement resource set, the first target measurement resource set comprising target measurement resources associated with different target objects;
[0494] 2) Identification information of a target object associated with the first target measurement resource;
[0495] 3) Position information of the first target measurement resource in the target measurement resource set;
[0496] 4) Identification information of a target measurement resource set to which the first target measurement resource belongs;
[0497] 5) Identification information of target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs;
[0498] 6) Identification information of target report configuration associated with the target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs.
[0499] Optionally, the processor 1810 is further configured to:
[0500] measure the target object in a first frequency domain range according to the target information;
[0501] wherein the first frequency domain range is determined according to at least one of the following:
[0502] 1) according to the frequency domain resources corresponding to all target measurement resources associated with the target report configuration information;
[0503] 2) according to a first bandwidth identifier corresponding to the target measurement resource configuration information associated with the target report configuration information;
[0504] 3) according to at least one of a high-level parameter or a protocol agreement to determine an absolute bandwidth range as the first frequency domain range;
[0505] 4) according to an active BWP on at least one active member carrier associated with a first object, the first object being a current service object of the terminal.
[0506] Optionally, the processor 1810 is further configured to: determine the frequency domain range corresponding to the first bandwidth identifier as the first frequency domain range according to a first preset rule;
[0507] wherein the first preset rule includes at least one of the following:
[0508] 1) according to the bandwidth corresponding to the first bandwidth identifier in the current serving cell to determine the first frequency domain range;
[0509] 2) according to the bandwidth corresponding to the first bandwidth identifier in the target object with the smallest identifier among a plurality of target objects to determine the first frequency domain range;
[0510] 3) according to the bandwidth corresponding to the first bandwidth identifier in the target object with the largest number of associated target measurement resources among a plurality of target objects to determine the first frequency domain range;
[0511] 4) according to the bandwidth corresponding to the first bandwidth identifier in a plurality of target objects to determine the corresponding frequency domain range respectively, and select the largest bandwidth as the first frequency domain range;
[0512] 5) according to the bandwidth corresponding to the first bandwidth identifier in a plurality of target objects to determine the corresponding frequency domain range respectively, and select the one containing the largest number of target measurement resources as the first frequency domain range.
[0513] Optionally, the processor 1810 is further configured to:
[0514] measure the target object in a first time domain range according to the target information;
[0515] wherein the first time domain range is determined by at least one of:
[0516] 1) a first time window;
[0517] It should be noted that the first time window can also be expressed as a first time interval.
[0518] 2) a time domain location where the target measurement resource is located;
[0519] 3) a first time period after the terminal receives the second signaling;
[0520] 4) a second time period after the first condition is met.
[0521] In an embodiment of the present application, the start position and / or the duration of the first time window is determined by at least one of:
[0522] 1) determined by high layer signaling configuration;
[0523] Optionally, the first time window can be a periodic resource, and the high layer signaling includes a period of the first time window and an offset value.
[0524] 2) determined by the third signaling indication;
[0525] Optionally, the third signaling is used to trigger aperiodic first time window, or activate a semi-persistent first time window, and the terminal performs measurement in the first time window triggered or activated by the network. Further, the third signaling is the same as the second signaling, that is, the terminal is informed of the first time window (i.e., the time domain location information corresponding to the measurement) at the same time as the terminal is triggered to measure and report the target object.
[0526] Optionally, the third signaling includes at least one of the following: a first time window identifier, a time interval of the third signaling and the first time window, a duration of the first time window, etc. The above time interval can be configured by RRC or agreed by protocol.
[0527] 3) determined according to at least one of the following: a number of target measurement resources, a number of target objects, a number of target objects associated with the target measurement resources.
[0528] Optionally, the number of target measurement resources, the number of target objects, and the number of target objects associated with the target measurement resources can be determined by at least one of the following:
[0529] a) determined by network side indication, optionally, the network side indicates by RRC, MAC CE or DCI.
[0530] b) determining according to a second condition, i.e., the terminal only measures the target measurement resource and the target object satisfying the second condition, optionally, the second condition is the same as the first condition.
[0531] In an embodiment of the present application, the second signaling includes at least one of the following:
[0532] 1) signaling for indicating cell switching;
[0533] 2) signaling for triggering the first operation on the target object, the first operation including at least one of target measurement, reporting;
[0534] 3) signaling for activating the TCI state of the target object.
[0535] Optionally, the first condition includes at least one of the following:
[0536] 1) at least one measurement result corresponding to the measurement resource of the target object is reported on the first resource, the first resource including uplink resource for carrying event-triggered reporting;
[0537] 2) at least one measurement result of the first RS of the target object is higher than the measurement result of the second RS of the current serving object; wherein the first RS is at least one RS associated with the target object, and the second RS is at least one RS associated with the current serving object;
[0538] Optionally, the RS can be at least one of SSB, CSI-RS.
[0539] Optionally, the measurement result includes at least one of the measurement result of one measurement, the measurement result based on the result of multiple measurements and the time domain or spatial domain linear average.
[0540] Optionally, the measurement result includes the measurement result obtained after L1 filtering or L3 filtering.
[0541] 3) at least one object quality of the target object is higher than the object quality of the current serving object by a first threshold;
[0542] 4) the communication quality of the current serving object is lower than a second threshold.
[0543] It can be understood that the first threshold and the second threshold are not limited in the embodiment.
[0544] In an embodiment of the present application, the communication quality of the current serving object being lower than the second threshold includes at least one of the following:
[0545] 1) the measurement result of the third RS of the current serving object is lower than the second threshold;
[0546] Optionally, the third RS is a QCL source RS of an indicated TCI state of the terminal in a current serving object; or is a RS with the highest measurement result (L1-RSRP or L1-SINR or L1-RSRQ) in the current serving object; or is at least one RS associated with the current serving object according to a protocol.
[0547] Optionally, the object quality refers to a value obtained after filtering in the time domain and / or the spatial domain based on measurement results of all or part of RSs associated with the object.
[0548] Optionally, the processor 1810 is further configured to:
[0549] measure the target object according to a second preset rule according to the target information;
[0550] The second time domain range includes at least one of the following:
[0551] 1) SMTC;
[0552] 2) a measurement interval for RRM measurement;
[0553] 3) measurement resources for layer 1 measurement of a current serving cell, for example, CSI-RS or SSB.
[0554] In an embodiment of the present application, the second preset rule includes at least one of the following:
[0555] 1) the terminal does not measure the target measurement resource in the first time domain range;
[0556] Optionally, a corresponding report of the measurement is invalid, or the measurement time of the target measurement resource is adjusted according to a first coefficient factor. It can be understood that the first coefficient factor increases the measurement time of the target measurement resource to ensure the measurement accuracy.
[0557] Optionally, the terminal performs L3 measurement in the second time domain range.
[0558] Optionally, the terminal performs L1 measurement of the current serving cell in the second time domain range.
[0559] 2) the terminal measures the target measurement resource in the first time domain range.
[0560] Optionally, if the second time domain range includes SMTC or a measurement interval for RRM measurement, the method further includes at least one of the following:
[0561] a) the terminal performs RRM measurement in the second time domain range, measurement time of the target measurement resource is relaxed by a second coefficient factor, and time of the RRM measurement is relaxed by a third coefficient factor.
[0562] b) the terminal does not perform RRM measurement in the second time domain range, and time of the RRM measurement is relaxed by a seventh coefficient factor.
[0563] Optionally, if the second time domain range includes measurement resources used by the current serving cell for layer 1 measurement, the processor 1810 is further configured to at least one of:
[0564] a) not performing layer 1 measurement on measurement resources of the current serving object in the second time domain range, and time of the layer 1 measurement is relaxed by a fourth coefficient factor;
[0565] b) performing layer 1 measurement on measurement resources of the current serving object in the second time domain range, measurement time of the target measurement resource is relaxed by a fifth coefficient factor, and time of the layer 1 measurement is relaxed by a sixth coefficient factor.
[0566] Optionally, the first coefficient factor, the second coefficient factor, the third coefficient factor, the fourth coefficient factor, the fifth coefficient factor, the sixth coefficient factor, or the seventh coefficient factor can be determined according to at least one of:
[0567] a) size of the overlapping time domain range;
[0568] b) number of overlapping measurement resources;
[0569] c) number of target objects associated with the overlapping measurement resources;
[0570] d) frequency band in which the measurement resources or the target objects associated with the measurement resources are located;
[0571] e) SCS of the overlapping measurement resources.
[0572] Optionally, in the case that the terminal performs measurement in the first time domain range, the processor 1810 is further configured to perform processing according to a scheduling restriction.
[0573] The scheduling restriction includes at least one of:
[0574] a) the current serving object cannot send PDCCH or PDSCH in the first time domain range;
[0575] For example, the current serving object cannot send PDCCH and PDSCH in the first time domain range.
[0576] b) the current serving object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range;
[0577] c) the first target object is unable to transmit PDCCH or PDSCH in the first time domain range;
[0578] wherein the first target object is an object indicated in a cell handover command, or at least one of the target objects.
[0579] d) the first target object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the first time domain range.
[0580] e) the current serving object is unable to transmit PDCCH or PDSCH in the third time domain range;
[0581] f) the current serving object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the third time domain range;
[0582] g) the first target object is unable to transmit PDCCH or PDSCH in the third time domain range;
[0583] h) the first target object is unable to indicate or schedule the terminal to transmit at least one of PUCCH, PUSCH, SRS, PRACH in the third time domain range;
[0584] Optionally, the third time domain range is a period of time including the first time domain range.
[0585] It can be understood that the implementation processes of the various implementation manners mentioned in the embodiment can refer to the related descriptions of the method embodiment shown in FIG. 4, and achieve the same or corresponding technical effects. To avoid repetition, they will not be described here.
[0586] The embodiment of the application further provides a network side device, comprising a processor and a communication interface, the communication interface and the processor are coupled, the processor is used for running programs or instructions, and the steps of the method embodiment shown in FIG. 5 are realized. The network side device embodiment corresponds to the network side device method embodiment described above. The various implementation processes and implementation manners of the above method embodiment can be applied to the network side device embodiment, and the same technical effects can be achieved.
[0587] Specifically, the embodiment of the present application further provides a network side device, which can be the position information obtaining apparatus shown in FIG. 19. As shown in FIG. 19, the network side device 1900 includes an antenna 1901, a radio frequency device 1902, a baseband device 1903, a processor 1904 and a memory 1905. The antenna 1901 is connected with the radio frequency device 1902. In the uplink direction, the radio frequency device 1902 receives information through the antenna 1901 and sends the received information to the baseband device 1903 for processing. In the downlink direction, the baseband device 1903 processes information to be sent and sends the information to the radio frequency device 1902, which processes the received information and sends it out through the antenna 1901.
[0588] The method performed by the network side device in the above embodiment can be implemented in the baseband device 1903, which includes a baseband processor.
[0589] The baseband device 1903 may, for example, include at least one baseband board on which a plurality of chips are arranged, as shown in FIG. 19, one of which is a baseband processor, for example, which is connected with the memory 1905 through a bus interface to call programs in the memory 1905 and perform the network device operations shown in the above method embodiments.
[0590] The network side device can further include a network interface 1906, which is a Common Public Radio Interface (CPRI), for example.
[0591] Specifically, the network side device 1900 of the embodiment of the present application further includes instructions or programs stored in the memory 1905 and executable on the processor 1904, and the processor 1904 calls the instructions or programs in the memory 1905 to perform the method performed by each module shown in FIG. 16 and achieve the same technical effects, and thus the description is omitted here.
[0592] Optionally, the radio frequency device 1902 is configured to send first signaling, the first signaling being used for configuring or indicating target information, the target information including at least one of target report configuration information and target measurement resource configuration information, and the target information being used for measuring a target object.
[0593] In an embodiment of the present application, the target information and the target object have at least one of the following association relationships:
[0594] 1) the target report configuration information is associated with the target object;
[0595] 2) the target measurement resource configuration information is associated with the target object;
[0596] 3) the target measurement resource set is associated with a target object;
[0597] 4) the target measurement resource is associated with a target object.
[0598] Optionally, the radio frequency device 1902 is further configured to:
[0599] receive the identification information of the first target measurement resource reported by the terminal, the first target measurement resource comprising at least one resource in the target measurement resource.
[0600] In an embodiment of the present application, the identification information of the first target measurement resource comprises at least one of the following:
[0601] 1) position information of the first target measurement resource in the first target measurement resource set, the first target measurement resource set comprising target measurement resources associated with different target objects;
[0602] 2) identification information of a target object associated with the first target measurement resource;
[0603] 3) position information of the first target measurement resource in the target measurement resource set;
[0604] 4) identification information of a target measurement resource set to which the first target measurement resource belongs;
[0605] 5) identification information of target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs;
[0606] 6) identification information of a target report configuration associated with the target measurement resource configuration information corresponding to the target measurement resource set to which the first target measurement resource belongs.
[0607] It can be understood that the implementation process of each implementation mode mentioned in the embodiment can refer to the related description of the method embodiment shown in FIG. 5, and achieve the same or corresponding technical effects. To avoid repetition, it will not be repeated here.
[0608] The embodiment of the present application further provides a readable storage medium, the readable storage medium stores a program or instructions, the program or instructions are executed by a processor to realize each process of the method embodiments shown in FIG. 4 or FIG. 5, and can achieve the same technical effects. To avoid repetition, it will not be repeated here.
[0609] The processor is the processor in the terminal in the above embodiments. The readable storage medium includes a computer readable storage medium, such as a computer readable memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, etc. In some examples, the readable storage medium can be a non-transitory readable storage medium.
[0610] The chip provided by the embodiment of the present application also can be called system chip, chip system, system on chip or system on chip system.
[0611] It should be understood that the chip mentioned in the embodiment of the present application also can be called system chip, chip system, system on chip or system on chip system.
[0612] The computer program / program product provided by the embodiment of the present application is stored in a storage medium, and is executed by at least one processor to implement the processes of the method embodiments shown in FIG. 4 or FIG. 5 and achieve the same technical effects. To avoid repetition, details are not described here.
[0613] The embodiment of the present application further provides a wireless communication system, including: a terminal and a network side device, the terminal can be used for executing the steps of the method shown in FIG. 4 provided by the embodiment of the present application, and the network side device can be used for executing the steps of the method shown in FIG. 5 provided by the embodiment of the present application.
[0614] It should be noted that in this document, the terms "comprising", "containing", or any other variant thereof are intended to cover non-exclusive inclusion, so that processes, methods, articles or devices including a series of elements not only include those elements, but also include other elements not explicitly listed, or include elements inherent to such processes, methods, articles or devices. Without more limitations, the element defined by the statement "comprising a" does not exclude the presence of additional identical elements in the process, method, article or device including the element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present application is not limited to the order of performing the functions shown or discussed, and can also include performing the functions in a substantially simultaneous manner or in a reverse order, for example, the described method can be performed in an order different from the described order, and various steps can also be added, omitted or combined. In addition, the features described with reference to some examples can be combined in other examples.
[0615] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be realized by means of computer software product and general hardware platform, of course, also can be realized by hardware. The computer software product is stored in a storage medium (such as ROM, RAM, magnetic disc, optical disc, etc.), including a plurality of instructions, used to make the terminal or network side device execute the method described in each embodiment of the present application.
[0616] The embodiments of the present application are described above with reference to the accompanying drawings, but the present application is not limited to the above-described specific embodiments, and the above-described specific embodiments are merely illustrative, but not restrictive, and a person of ordinary skill in the art can make many forms of embodiments under the inspiration of the present application without departing from the purpose of the present application and the scope protected by the claims, and these embodiments all belong to the protection of the present application.
Claims
1. A method for measurement processing, comprising: receiving, by a terminal, first signaling for configuring or indicating target information, the target information comprising at least one of target report configuration information and target measurement resource configuration information; measuring, by the terminal, a target object according to the target information.
2. The method of claim 1, wherein, The target information is associated with the target object in at least one of the following ways: The target report configuration information is associated with the target object. The target measurement resource configuration information is associated with the target object. A target measurement resource set is associated with the target object. The target measurement resource is associated with the target object. 3.The method of claim 1 or 2, further comprising: In a case where the target report configuration information is associated with at least two target measurement resource configuration information, each of the target measurement resource configuration information comprises a target measurement resource set, and each of the target measurement resource set comprises at least one target measurement resource, and each of the at least one target measurement resource is associated with a different target object, If a first parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a first value, the terminal determines that an i th target measurement resource in a plurality of target measurement resource sets comprised by the at least two target measurement resource configuration information is transmitted by a same downlink spatial filter. Or, if the first parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a second value, the terminal determines that the i th target measurement resource in the plurality of target measurement resource sets comprised by the at least two target measurement resource configuration information is not transmitted by the same downlink spatial filter. Or, In a case where the target report configuration information is associated with at least one target measurement resource configuration information, each of the at least one target measurement resource configuration information comprises at least two target measurement resource sets, and each of the target measurement resource set comprises at least one target measurement resource, and each of the at least one target measurement resource is associated with a different target object, If a second parameter in the target report configuration information or the target measurement resource configuration information is configured or configured as a third value, the terminal determines that an i th target measurement resource in at least two target measurement resource sets is transmitted by a same downlink spatial filter. Or, if the second parameter in the target report configuration information or the target measurement resource configuration information is not configured or configured as a fourth value, the terminal determines that the i th target measurement resource in the at least two target measurement resource sets is not transmitted by the same downlink spatial filter. Wherein, the first parameter or the second parameter is a parameter indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer. 4.The method of claim 3, further comprising: reporting, by the terminal, identification information of a first target measurement resource, the first target measurement resource comprising at least one of the target measurement resources.
5. The method of claim 4, wherein, The identification information of the first target measurement resource comprises at least one of the following: location information of the first target measurement resource in the first target measurement resource set, the first target measurement resource set including target measurement resources associated with different target objects; identification information of a target object associated with the first target measurement resource; location information of the first target measurement resource in the target measurement resource set; identification information of a target measurement resource set to which the first target measurement resource belongs; identification information of target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs; identification information of a target report configuration associated with target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs.
6. The method of claim 1, wherein, The terminal performs measurement on a target object according to the target information, including: The terminal performs measurement on a target object in a first frequency domain range according to the target information; The first frequency domain range is determined by at least one of the following: According to the frequency domain resource corresponding to all target measurement resources associated with the target report configuration information; According to a first bandwidth identifier corresponding to the target measurement resource configuration information associated with the target report configuration information; According to at least one of a high-level parameter or a protocol agreement, an absolute bandwidth range is determined as the first frequency domain range; According to an active BWP on at least one active member carrier associated with a first object, the first object being a current service object of the terminal.
7. The method of claim 6, wherein, In the case where the first frequency domain range is determined according to a first bandwidth identifier corresponding to the target measurement resource configuration information associated with the target report configuration information, the method further comprises: The terminal determines the frequency domain range corresponding to the first bandwidth identifier as the first frequency domain range according to a first preset rule; The first preset rule includes at least one of the following: According to the bandwidth corresponding to the first bandwidth identifier in the current serving cell, the first frequency domain range is determined; According to the bandwidth corresponding to the first bandwidth identifier in the target object with the smallest identifier among a plurality of target objects, the first frequency domain range is determined; According to the bandwidth corresponding to the first bandwidth identifier in the target object with the largest number of target measurement resources associated with a plurality of target objects, the first frequency domain range is determined; According to the bandwidth corresponding to the first bandwidth identifier in a plurality of target objects, the corresponding frequency domain range is determined respectively, and the largest bandwidth is selected as the first frequency domain range; According to the bandwidth corresponding to the first bandwidth identifier in a plurality of target objects, the corresponding frequency domain range is determined respectively, and the largest bandwidth is selected as the first frequency domain range.
8. The method of claim 1, wherein, The terminal performs measurement on a target object according to the target information, including: The terminal performs measurement on a target object in a first time domain range according to the target information; The first time domain range is determined by at least one of the following: A first time window; A time domain location where the target measurement resource is located; A first time period after the terminal receives the second signaling; A second time period after a first condition is met.
9. The method of claim 8, wherein, The start position and / or duration of the first time window is determined by at least one of the following: determined through high-layer signaling configuration; determined through third signaling indication; determined according to at least one of the following: a target measurement resource quantity, a target object quantity, a target object quantity associated with a target measurement resource.
10. The method of claim 8, wherein, The second signaling includes at least one of the following: signaling for indicating cell switching; signaling for triggering a first operation on a target object, the first operation including at least one of target measurement, reporting; signaling for activating a transmission configuration indication state (TCI state) of a target object.
11. The method of claim 8, wherein, The first condition includes at least one of the following: At least one measurement result corresponding to a measurement resource of a target object is reported on a first resource, the first resource including an uplink resource for carrying event-triggered reporting; A measurement result of a first RS of at least one target object is higher than a measurement result of a second RS of a current service object; wherein the first RS is at least one RS associated with the target object, and the second RS is at least one RS associated with the current service object; An object quality of at least one target object is higher than an object quality of the current service object by a first threshold value; A communication quality of the current service object is lower than a second threshold value.
12. The method of claim 11, wherein, The communication quality of the current service object being lower than the second threshold value includes at least one of the following: A measurement result of a third RS of the current service object is lower than the second threshold value; An object quality of the current service object is lower than the second threshold value.
13. The method of claim 8, wherein, In a case where the first time domain range and the second time domain range overlap, the method further includes: The terminal measures a target object according to a second preset rule based on the target information; The second time domain range includes at least one of the following: a synchronization signal block measurement timing configuration (SMTC); a measurement interval for radio resource management (RRM) measurement; a measurement resource for layer 1 measurement of a current serving cell.
14. The method of claim 13, wherein, In a case where the second preset rule includes that the terminal does not measure the target measurement resource within the first time domain range, a report corresponding to the measurement is invalid, or a measurement time of the target measurement resource is adjusted by a first coefficient factor.
15. The method of claim 13, wherein, In a case where the second preset rule includes that the terminal measures the target measurement resource within the first time domain range, and the second time domain range includes an SMTC or a measurement interval for RRM measurement, the method further includes: The terminal performs RRM measurement within the second time domain range, a measurement time of the target measurement resource is relaxed by a second coefficient factor, and a time of the RRM measurement is relaxed by a third coefficient factor.
16. The method of claim 13, wherein, In a case where the second preset rule includes that the terminal measures the target measurement resource within the first time domain range, and the second time domain range includes a measurement resource for layer 1 measurement of a current serving cell, the method further includes at least one of the following: The terminal does not perform layer 1 (L1) measurement on a measurement resource of a current service object in the second time domain range, and a time of the L1 measurement is relaxed by a fourth coefficient factor. The terminal performs L1 measurement on a measurement resource of a current serving object in a second time domain range, a measurement time of the target measurement resource is relaxed by a fifth coefficient factor, and a time of the L1 measurement is relaxed by a sixth coefficient factor.
17. The method of claim 8, wherein, In a case where the terminal performs measurement in the first time domain range, the method further includes: The terminal processes according to a scheduling restriction; The scheduling restriction includes at least one of the following: The first target object cannot send PDCCH or PDSCH in the first time domain range; The first target object cannot indicate or schedule the terminal to send PUCCH, PUSCH, SRS, or PRACH in the first time domain range; The current serving object cannot send PDCCH or PDSCH in a third time domain range; The current serving object cannot indicate or schedule the terminal to send at least one of PUCCH, PUSCH, SRS, or PRACH in the third time domain range; The first target object cannot send PDCCH or PDSCH in the third time domain range; The first target object cannot indicate or schedule the terminal to send at least one of PUCCH, PUSCH, SRS, or PRACH in the third time domain range; The first target object is at least one of an object indicated in a cell handover command or a target object.
18. The method of claim 17, wherein, The third time domain range is a period of time including the first time domain range.
19. A measurement processing method, comprising: A network-side device sends first signaling, the first signaling is used for configuring or indicating target information, the target information includes at least one of target report configuration information and target measurement resource configuration information, and the target information is used for measuring a target object.
20. The method of claim 19, wherein, The target information and the target object have at least one of the following association relationships: The target report configuration information is associated with a target object; The target measurement resource configuration information is associated with a target object; The target measurement resource set is associated with a target object; The target measurement resource is associated with a target object.
21. The method of claim 19, further comprising: The network-side device receives identification information of a first target measurement resource reported by a terminal, and the first target measurement resource includes at least one of the target measurement resources.
22. The method of claim 21, wherein, The identification information of the first target measurement resource includes at least one of the following: Position information of the first target measurement resource in a first target measurement resource set including target measurement resources associated with different target objects; Identification information of a target object associated with the first target measurement resource; Position information of the first target measurement resource in the target measurement resource set; Identification information of a target measurement resource set to which the first target measurement resource belongs; Identification information of target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs; Identification information of a target report configuration associated with target measurement resource configuration information corresponding to a target measurement resource set to which the first target measurement resource belongs.
23. A measurement processing apparatus, comprising: a first transceiver and a first processing unit; the first transceiver configured to receive first signaling, the first signaling configured to configure or indicate target information, the target information comprising at least one of target reporting configuration information, target measurement resource configuration information; the first processing unit configured to perform measurement on a target object according to the target information.
24. The apparatus of claim 23, wherein, The target information has at least one of the following association relationships with the target object: The target reporting configuration information is associated with the target object; The target measurement resource configuration information is associated with the target object; The target measurement resource set is associated with the target object; The target measurement resource is associated with the target object.
25. The apparatus of claim 23 or 24, wherein, The first processing unit is further configured to: In a case where the target reporting configuration information is associated with at least two target measurement resource configuration information, each of the at least two target measurement resource configuration information comprises a target measurement resource set, and each of the target measurement resource set comprises at least one target measurement resource, and each of the at least one target measurement resource is associated with a different target object, if a first parameter in the target reporting configuration information or the target measurement resource configuration information is configured or configured as a first value, it is determined that an ith measurement resource in a plurality of target measurement resource sets comprised by the at least two target measurement resource configuration information is transmitted by a same downlink spatial filter; or, if the first parameter in the target reporting configuration information or the target measurement resource configuration information is not configured or configured as a second value, it is determined that the ith measurement resource in the plurality of target measurement resource sets comprised by the at least two target measurement resource configuration information is not transmitted by the same downlink spatial filter; or, In a case where the target reporting configuration information is associated with at least one target measurement resource configuration information, each of the at least one target measurement resource configuration information comprises at least two target measurement resource sets, and each of the target measurement resource set comprises at least one target measurement resource, and each of the at least one target measurement resource is associated with a different target object, if a second parameter in the target reporting configuration information or the target measurement resource configuration information is configured or configured as a third value, it is determined that an ith measurement resource in at least two target measurement resource sets is transmitted by a same downlink spatial filter; or, if the second parameter in the target reporting configuration information or the target measurement resource configuration information is not configured or configured as a fourth value, it is determined that the ith measurement resource in the at least two target measurement resource sets is not transmitted by the same downlink spatial filter; wherein the first parameter or the second parameter is a parameter indicating whether the transmission beams of the target measurement resources are consistent, and i is an integer.
26. A measurement processing apparatus comprising: a second transceiver and a second processing unit; the second transceiver configured to transmit first signaling, the first signaling configured to configure or indicate target information, the target information comprising at least one of target reporting configuration information, target measurement resource configuration information, the target information used for performing measurement on a target object.
27. The apparatus of claim 26, wherein, The target information has at least one of the following association relationships with the target object: The target report configuration information is associated with a target object; The target measurement resource configuration information is associated with a target object; The target measurement resource set is associated with a target object; The target measurement resource is associated with a target object.
28. The apparatus of claim 26, wherein, The second transceiver is further configured to: receive, from the terminal, identification information of a first target measurement resource, the first target measurement resource including at least one of the target measurement resources. 29.A terminal comprising a processor and a memory, the memory storing programs or instructions executable on the processor, the programs or instructions, when executed by the processor, implementing steps of the measurement processing method according to any one of claims 1 to 18. 30.A network-side device comprising a processor and a memory, the memory storing programs or instructions executable on the processor, the programs or instructions, when executed by the processor, implementing steps of the measurement processing method according to any one of claims 19 to 22. 31.A readable storage medium, the readable storage medium storing programs or instructions, the programs or instructions, when executed by a processor, implementing steps of the measurement processing method according to any one of claims 1 to 18, or implementing steps of the measurement processing method according to any one of claims 19 to 22.
32. A computer program product, wherein, The computer program product is stored in a storage medium, and the computer program product is executed by at least one processor to implement steps of the measurement processing method according to any one of claims 1 to 18, or implement steps of the measurement processing method according to any one of claims 19 to 22.
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