CSI measurement resource processing method and device, terminal and readable storage medium
The method and device enable accurate reporting of CSI measurement resources by associating them with TRPs or cells, addressing the issue of UE mobility and enhancing data transmission reliability in carrier aggregation.
Patent Information
- Application Number
- JP2023569964
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-05-10
- Filing Date
- 2022-05-05
- Publication Date
- 2025-11-10
- Estimated Expiration
- 2042-05-05
AI Technical Summary
User Equipment (UE) cannot distinguish which cell a Synchronization Signal Block (SSB) or Channel State Information Reference Signal (CSI-RS) comes from, leading to reported contents being from the same cell, which is detrimental to Carrier Aggregation (CA) and UE mobility.
A method and device for processing CSI measurement resources, involving a terminal performing a first processing operation on a first measurement resource based on configuration information that includes an association between the CSI measurement resource and a multi-transmission/reception point (TRP) or cell, and reporting a processing result that distinguishes the cell or TRP.
This solution allows the terminal to report processing results accurately, enhancing high-speed data transmission in carrier aggregation and improving data transmission reliability when the terminal is moving.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority from Chinese Patent Application No. 202110507881.6, filed in China on May 10, 2021, the entire contents of which are incorporated herein by reference.
[0002] The present application relates to the technical field of communications, and in particular to a method and apparatus for processing CSI measurement resources, a terminal, and a readable storage medium. [Background technology]
[0003] In inter-cell Multi-Transmission and Receiving Points (MTRP) beam and Channel State Information (CSI) measurements, currently, User Equipment (UE) cannot distinguish which cell a Synchronization Signal Block (SSB) or Channel State Information Reference Signal (CSI-RS) comes from, resulting in the reported content being from the same cell, which is detrimental to Carrier Aggregation (CA) and UE mobility. Summary of the Invention [Problem to be solved by the invention]
[0004] The embodiments of the present application provide a method and device for processing CSI measurement resources, a terminal, and a readable storage medium, which can solve the problem in the prior art that the terminal cannot distinguish which cell the SSB or CSI-RS is from, and therefore the reported contents are from the same cell. [Means for solving the problem]
[0005] In a first aspect, there is provided a method for processing channel state information (CSI) measurement resources, the method including: a step of a terminal performing a first processing operation on a first measurement resource based on configuration information configured by a network side device; and a step of the terminal reporting a processing result of the first processing operation, wherein the first measurement resource includes one or more CSI measurement resources, the configuration information includes an association between the CSI measurement resource and a multi-transmission / reception point (TRP) or a cell, and the first processing operation includes at least one of channel measurement and interference measurement.
[0006] In a second aspect, there is provided a CSI measurement resource processing device, comprising: a first execution module for performing a first processing operation on a first measurement resource based on configuration information configured by a network side device; and a first reporting module for reporting a processing result of the first processing operation, wherein the first measurement resource includes one or more CSI measurement resources, the configuration information includes an association between the CSI measurement resource and a multi-transmission / reception point TRP or a cell, and the first processing operation includes at least one of channel measurement and interference measurement.
[0007] In a third aspect, there is provided a terminal including a processor, a memory, and a program or command stored in the memory and executable on the processor, the program or command performing the steps of the method according to the first aspect when executed by the processor.
[0008] In a fourth aspect, a terminal is provided that includes a processor for performing a first processing operation on a first measurement resource based on configuration information configured by a network side device, and a communication interface for reporting a processing result of the first processing operation.
[0009] In a fifth aspect, there is provided a readable storage medium having stored thereon a program or commands that, when executed by a processor, implements the steps of the method according to the first aspect.
[0010] In a sixth aspect, there is provided a chip including a processor and a communication interface, the communication interface and the processor being coupled together, the processor being used to execute a program or command to implement the method of the first aspect.
[0011] In a seventh aspect, there is provided a computer program / program product stored on a storage medium and adapted to implement the steps of the method according to the first aspect when executed by at least one processor.
[0012] In an eighth aspect, there is provided a communications device arranged to perform the steps of the method according to the first aspect. [Effects of the Invention]
[0013] In an embodiment of the present application, a terminal may perform a first processing operation on a CSI measurement resource based on configuration information configured by a network side device, the configuration information including an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, and report a processing result of the first processing operation. Since the configuration information includes an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, the terminal may report the processing result by distinguishing which cell or which TRP the processing result comes from. This avoids the problem in the prior art that the terminal cannot distinguish which cell the SSB or CSI-RS comes from, resulting in the reported content being from the same cell. This not only benefits high-speed data transmission in carrier aggregation for the terminal, but also improves the reliability of data transmission when the terminal is moving. [Brief explanation of the drawings]
[0014] [Figure 1] 1 is a structural diagram showing a wireless communication system to which an embodiment of the present application can be applied; [Figure 2] FIG. 1 is a schematic diagram of multi-TRP transmission based on a non-ideal backhaul in an embodiment of the present application. [Figure 3]1 is a schematic diagram of multi-TRP transmission based on an ideal backhaul in an embodiment of the present application; [Figure 4] FIG. 1 is a structural schematic diagram of a MAC CE according to an embodiment of the present application. [Figure 5] 1 is a flowchart of a method for processing CSI measurement resources in an embodiment of the present application; [Figure 6] FIG. 2 is a schematic diagram of a MAC CE updating QCL assumptions for one or more periodic CSI-RS in an embodiment of the present application; [Figure 7] FIG. 2 is a schematic diagram of a MAC CE updating the QCL assumption of one CSI-RS resource set in an embodiment of the present application; [Figure 8] FIG. 2 is a schematic diagram of a MAC CE updating a QCL assumption sequence for one CSI-RS resource set in an embodiment of the present application; [Figure 9] FIG. 2 is a structural schematic diagram of a processing device for CSI measurement resources in an embodiment of the present application; [Figure 10] 1 is a structural schematic diagram of a communication device according to an embodiment of the present application; [Figure 11] 1 is a structural schematic diagram of a terminal according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, the technical solutions in the embodiments of the present application will be clearly and completely described with reference to the drawings in the embodiments of the present application, and it should be understood that the described embodiments are only a part of the embodiments of the present application, and not all of the embodiments, and all other embodiments that persons skilled in the art can obtain based on the embodiments in the present application shall fall within the scope of protection of the present application.
[0016] The terms "first," "second," and the like used in the specification and claims of this application are not intended to describe a particular order or chronology, but rather to distinguish between similar objects. It should be understood that terms used in this manner may be interchangeable in some cases, allowing the embodiments of this application to be implemented in an order other than that illustrated or described herein. Furthermore, the objects distinguished by "first" and "second" generally represent one type, and the number of objects is not limited; for example, the first object may be one or multiple. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the " / " symbol generally indicates that the related objects before and after are in an "or" relationship.
[0017] It should be noted that the techniques described in the embodiments of the present application are 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), and other systems. The terms "system" and "network" in the embodiments of the present application can generally be used interchangeably, and the techniques described can be used in other systems and wireless technologies in addition to those mentioned above. The following description will discuss New Radio (NR) systems for illustrative purposes, and NR terminology will be used in most of the following description, however, these techniques may also be applied to applications other than NR system applications, such as 6th Generation (6G) communication systems.
[0018] FIG. 1 shows a structural diagram of a wireless communication system to which the embodiments of the present application can be applied. The wireless communication system includes a terminal 11 and a network side device 12. Here, the terminal 11 may be referred to as a terminal device or user equipment (UE), and may be a terminal side device such as a mobile phone, a tablet computer, a laptop computer (also called a notebook computer), a personal digital assistant (PDA), a personal digital assistant, a netbook, an ultra-mobile personal computer (UMPC), a mobile internet device (MID), a wearable device, a vehicle-mounted equipment (VUE), a pedestrian-mounted equipment (PUE), etc., and wearable devices include a smart watch, a bracelet, earphones, glasses, etc. Note that the embodiments of the present application are not limited to a specific type of the terminal 11. The network side device 12 may be a base station or a core network. The base station may be referred to as a Node B, an Evolved Node B, an access point, a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a B node, an evolved B node (eNB), a home B node, a home evolved B node, a wireless local area network (WLAN) access point, a wireless fidelity (WiFi) node, a transmitting and receiving point (TRP), or any other suitable term in the art. The base station is not limited to a specific technical term as long as it achieves the same technical effect. In the embodiments of this application, a base station in an NR system is used as an example, and the specific type of the base station is not limited.
[0019] First, the relevant terms in the examples of this application will be explained and explained.
[0020] 1. Multi-Transmission and Receiving Point (TRP) transmission technology In the current protocol, multi-TRP / multi-panel scenarios are standardized, which can improve transmission reliability and throughput performance. For example, a user equipment can receive the same or different data from multiple TRPs. Multi-TRP scenarios can be divided into ideal and non-ideal backhauls.
[0021] As shown in Figure 2, when multiple TRPs have non-ideal backhaul links, there is a large time delay in information exchange between the multiple TRPs, so independent scheduling is appropriate, and acknowledgement (ACK) / negative acknowledgement (NACK) and channel state information reports are fed back to each TRP. Typically, multi-DCI scheduling is appropriate, i.e., each TRP transmits its own physical downlink control channel (PDCCH), and each PDCCH schedules its own physical downlink shared channel (PDSCH). Multiple control resource sets (CORESETs) configured for a UE are associated with different RRC parameters CORESETPoolIndex and correspond to different TRPs. Multiple PDSCHs scheduled by multiple DCIs may be non-overlapping, partially overlapping, or completely overlapping on time-frequency resources. On the overlapping time-frequency resources, each TRP performs independent precoding according to its respective channel, and the UE receives multi-layer data streams belonging to multiple PDSCHs through non-coherent joint transmission (NCJT).
[0022] As shown in Figure 3, when the multi-TRPs have ideal backhaul links, they can exchange scheduling information and UE feedback information in real time. In addition to scheduling multi-PDSCHs using the above-mentioned multi-Downlink Control Information (DCI), PDSCHs can also be scheduled using a single DCI, including the following transmission schemes:
[0023] Space Division Multiplexing (SDM): Different data layers of the same Transport Block (TB) are transmitted by NCJT transmissions from different TRPs. Frequency-Division Multiplexing (FDM): The same Redundancy Version (RV) of the same TB is mapped to different frequency domain resources and is from different TRPs, or different RVs of the same TB are mapped to different frequency domain resources and is from different TRPs. Time Division Multiplexing (TDM): Multiple repetitions of different RVs of the same TB from different TRPs, for example within one timeslot or across multiple timeslots.
[0024] In this case, the ACK / NACK feedback and the CSI report may be fed back to any TRP.
[0025] 2. Single-TRP CSI Framework The CSI report states: 1) Periodic CSI reporting (P-CSI) transmitted only on PUCCH; 2) Semi-Continuous CSI reporting (SP-CSI) transmitted on PUCCH or PUSCH; 3) Aperiodic CSI reporting (A-CSI) transmitted only on PUSCH; may be placed in
[0026] The CSI resource configuration (resource setting / CSI-ResourceConfig) is as follows: 1) Resource setting where M≧1. 2) A resource configuration includes S≧1 CSI-RS resource sets. 3) One resource set includes Ks≧1 RS resources, such as CSI-RS / CSI-IM resources. 4) One CSI-RS resource is used to configure the number of CSI-RS ports and time-frequency location information, and one CSI-IM resource is used to configure the time-frequency location information of CSI-IM.
[0027] 3. Potential CSI framework for multi-TRP In the current protocol, multi-TRP / multi-panel is specifically defined in terms of CSI report configuration and CSI resource configuration, etc., and specifically includes the following:
[0028] 1) Multiple inter-associated CSI report settings (CSI-ReportConfig) are configured, and the resource setting (CSI-ResourceConfig) of each report setting corresponds to one TRP, i.e., each CSI report setting corresponds to a CSI report of one TRP.
[0029] 2) One CSI report setting is arranged as a CSI report for multiple TRPs, and since a UE needs to measure CSI-RS from different TRPs, they are arranged within one CSI report setting. 2.1) Each of the CSI resource settings of the associated multiple groups corresponds to a different TRP, and the CSI resource setting of each group includes one or more CSI resource settings for channel measurement, interference measurement, and interference measurement of non-zero power CSI-RS. 2.2) The associated CSI resource setting includes CSI resource sets (CSI measurement resource sets) with S>1 (current protocols specify S=1 for periodic or semi-continuous resource settings), each corresponding to a different TRP (with a different QCL). 2.3) The CSI resource set in the associated CSI resource setting includes multiple subsets, and each subset includes multiple CSI resources and corresponds to one TRP.
[0030] Currently, it is permitted that one CSI report setting may be arranged as a CSI report for multiple TRPs, and a UE may need to measure CSI-RS from different TRPs. However, it is not yet clear whether the CSI-RS for different TRPs should be expressed in the form of multiple CSI measurement resource sets or multiple subsets of one CSI measurement resource set.
[0031] 4. CSI-RS (Reference Signal, RS) Transmission Configuration Indication (TCI) state configuration In the current protocol, the TCI state for periodic CSI-RS is configured per CSI-RS resource by RRC and is indicated by the higher layer configuration parameter qcl-InfoPeriodicCSI-RS.
[0032] The semi-static CSI-RS is activated by a Media Access Control (MAC) control unit (Control Element, CE) in the form of a CSI-RS resource set, and the TCI state of each semi-static CSI-RS in the set is also determined by the MAC CE, and the specific format of the MAC CE is shown in Figure 4.
[0033] The aperiodic CSI-RS is activated by a DCI, and one domain Trigger state in the DCI is associated with multiple CSI report configuration information, and the CSI report configuration information is configured by the RRC, and each CSI report configuration information includes one CSI report configuration identifier, one CSI-RS resource set identifier, and a TCI state set corresponding to the CSI-RS on the resource set. Therefore, the aperiodic CSI-RS and its corresponding TCI state are associated with the CSI-RS by the DCI. resource are selected and triggered as a set.
[0034] V. Default Quasi Co-Location (QCL) Assumption for Aperiodic CSI-RS Aperiodic CSI-RS transmission is triggered by DCI, and PDCCH carrying DCI including the csi_request domain transmits CSI-RS resource If the TCI state of the first aperiodic CSI-RS in the set is different from the TCI state of the first aperiodic CSI-RS in the set, the UE needs to switch the receiving beam. resource If the time interval between the first symbols of the first aperiodic CSI-RS in the set is shorter than the time it takes for the UE to switch beams, it is necessary to define a default QCL assumption for the aperiodic CSI-RS. The default QCL assumption for the aperiodic CSI-RS in MTRP defined in the current protocol is as follows:
[0035] 1) mDCI MTRP 1. If there is another downlink signal whose transmission starts with the same code as the aperiodic CSI-RS, receive the aperiodic CSI-RS using the QCL assumption of that downlink signal. A PDSCH, in which the PDCCH that triggers the PDSCH and the PDCCH that triggers the aperiodic CSI-RS correspond to the same CORESET Poolindex, and the scheduling time interval of the PDSCH is longer than timeDurationForQCL (the time required to switch the receiving beam of the PDCCH and PDSCH reported by the UE); an aperiodic CSI-RS, wherein a PDCCH triggering the aperiodic CSI-RS and a PDCCH triggering the aperiodic CSI-RS correspond to the same CORESET Poolindex, and a scheduling time interval of the aperiodic CSI-RS is longer than a time required to switch the receiving beams of the PDCCH and the aperiodic CSI-RS; Semi-static CSI-RS, and It may be any one of the periodic CSI-RS.
[0036] 2. If the uplink signal is not present, the QCL assumption of the CORESET with the smallest CORESET ID associated with a search space is the default QCL assumption for the aperiodic CSI-RS, and the CORESET must be associated with the same CORESETPoolindex as the PDCCH that triggers the aperiodic CSI-RS.
[0037] 2) sDCI MTRP 1. If there is another downlink signal whose transmission starts with the same code as the aperiodic CSI-RS, receive the aperiodic CSI-RS using the QCL assumption of that downlink signal. A PDSCH in which the scheduling time interval of the PDSCH is longer than timeDurationForQCL (the time required to switch the receiving beam of the PDCCH and PDSCH reported by the UE) and the PDSCH includes two TCI states, the PDSCH receives the aperiodic CSI-RS in the first TCI state; an aperiodic CSI-RS, wherein a scheduling time interval of the aperiodic CSI-RS is longer than a time required to switch between a PDCCH and a receive beam of the aperiodic CSI-RS; Semi-static CSI-RS, and It may be either periodic CSI-RS or periodic CSI-RS.
[0038] 2. When the uplink signal is not present, there are two TCI states in the MAC CE, and the aperiodic CSI-RS is received in the first TCI state of the TCI state with the smallest codepoint value, and the MAC CE is used to downselect a TCI state for receiving a PDSCH located in the same cell as the aperiodic CSI-RS.
[0039] The following describes in detail the CSI measurement resource processing method provided in the embodiments of the present application according to several embodiments and application scenarios with reference to the drawings.
[0040] As shown in FIG. 5, an embodiment of the present application provides a CSI measurement resource processing method, which includes the following steps:
[0041] In step 502, the terminal performs a first processing operation on a first measurement resource according to configuration information configured by the network side device.
[0042] In step 504, the terminal reports the processing result of the first processing operation.
[0043] The first measurement resource includes one or more CSI measurement resources, the configuration information includes an association between the CSI measurement resource and a multi-transmission point TRP or cell, and the first processing operation includes at least one of channel measurement and interference measurement.
[0044] Through the above steps 502 and 504, the terminal can perform a first processing operation on the CSI measurement resource based on the configuration information configured by the network side device, including the association between the CSI measurement resource and the multi-transmission / reception point TRP or cell, and report the processing result of the first processing operation. Since the configuration information includes the association between the CSI measurement resource and the multi-transmission / reception point TRP or cell, the terminal can report the processing result by distinguishing which cell or which TRP the processing result comes from. This avoids the problem in the prior art that the terminal cannot distinguish which cell the SSB or CSI-RS comes from, and therefore the reported contents come from the same cell. This not only benefits high-speed data transmission in carrier aggregation of the terminal, but also improves the reliability of data transmission when the terminal is moving.
[0045] In an alternative embodiment of the present application, the TRP may be determined by at least one of a control resource set pool index, an identifier of a CSI measurement resource set, and an identifier of a CSI measurement resource subset, where multiple CSI measurement resources are divided into one or more CSI measurement resource sets, and one CSI measurement resource set is divided into one or more CSI measurement resource subsets.
[0046] Furthermore, the cell in the embodiment of the present application may include at least one of a serving cell and a non-serving cell. The physical cell identifier (PCI) corresponding to the serving cell is different from the PCI corresponding to the non-serving cell. The PCIs of neighboring cells are also different. Therefore, the PCI corresponding to the serving cell is different from the PCI corresponding to the non-serving cell, indicating that the non-serving cell is a neighboring cell of the serving cell. That is, the embodiment of the present application can distinguish whether the CSI measurement resource is from the serving cell or the non-serving cell, and can select and report measurement results corresponding to different cells. This not only benefits high-speed data transmission in carrier aggregation for the terminal, but also improves the reliability of data transmission when the terminal is moving.
[0047] Optionally, the association in the examples of the present application is 1) When multiple CSI measurement resources are divided into multiple CSI measurement resource sets, the multiple CSI measurement resource sets correspond to multiple TRPs or multiple cells; 2) When multiple CSI measurement resources are divided into one CSI measurement resource set and one CSI measurement resource set includes multiple CSI measurement resource subsets, the multiple CSI measurement resource subsets correspond to multiple TRPs or multiple cells; and 3) each of the CSI measurement resources corresponds to one TRP or one cell.
[0048] Therefore, in the embodiment of the present application, the different associations not only help the terminal to transmit data at high speed in carrier aggregation, but also improve the reliability of data transmission when the terminal is moving.
[0049] In a specific embodiment of the present application, the CSI measurement resource is set as an SSB, and an association between the SSB and a non-serving cell is established as an example. The correspondence relationship in the present application will be described by way of example.
[0050] When all SSBs are divided into multiple measurement resource sets or multiple subsets in one measurement resource set, and the SSBs in one measurement resource set or subset are associated with one non-serving cell, the specific association may be realized by using an existing domain in the upper layer configuration parameters of the measurement resource set or subset, or by adding one or more domains to indicate another PCI (Physical Cell Identifier) and related information different from the current serving cell PCI.
[0051] When all SSBs are divided into one measurement resource set and each SSB in the measurement resource set is associated with a corresponding non-serving cell, the specific association may be realized by associating an SSB-Index with the corresponding non-serving cell, i.e., by adding one or more domains to the upper layer parameter SSB-Index to indicate another PCI and related information different from the current serving cell PCI.
[0052] In an alternative embodiment of the present application, in the above step 504, as a specific manner in which the terminal reports the processing result of the first processing operation, the terminal may report the processing result through one or more CSI reports.
[0053] Furthermore, the steps of the method of the embodiment of the present application may further include the following steps:
[0054] In step 506, if the processing result is at least one of a channel state information reference signal resource indicator (CSI-RS Resource Indicator, CRI), a synchronization signal block resource indicator (SSB Resource Indicator, SSBRI), and a layer 1 measurement value, the terminal performs a beam report according to at least one report type of a group-based beam report type and a non-group-based beam report type.
[0055] In an alternative embodiment of the present application, the CSI measurement resource includes at least one of a channel measurement resource (CMR) and an interference measurement resource (IMR), where the CMR includes at least one of a channel state information reference signal (CSI-RS) and a synchronization signal block (SSB).
[0056] In an optional embodiment of the embodiment of the present application, the configuration information in the embodiment of the present application further includes at least one of an identifier of a CSI measurement resource, a quasi-co-location QCL hypothesis of the CSI measurement resource.
[0057] Furthermore, the CSI measurement resource and QCL assumptions are 1) The relationship between one CSI measurement resource and one QCL assumption; 2) A relationship in which one CSI measurement resource set corresponds to one QCL assumption list, and multiple CSI measurement resources are divided into multiple CSI measurement resource sets; and 3) One CSI measurement resource subset corresponds to one QCL assumption list, and multiple CSI measurement resources are divided into one CSI measurement resource set, and one CSI measurement resource set is divided into multiple CSI measurement resource subsets.
[0058] In an alternative embodiment of the present application, the QCL assumption may be determined by at least one of configuring by a radio resource control (RRC) message and determining by at least one of a media access control (MAC) control unit (CE) and downlink control information (DCI) after configuring by an RRC message.
[0059] It should be noted that in the embodiment of the present application, the first measurement resource and the second measurement resource corresponding to different quasi-co-location Type D QCLs Type D overlap on the time domain resource.
[0060] Furthermore, the time domain characteristic of the first measurement resource includes one of periodic, semi-static, and aperiodic.
[0061] In an alternative embodiment of the present application example, the method of the present application example further comprises the following steps:
[0062] In step 508, the terminal performs at least one of update, add, and delete operations on the configuration information according to the MAC CE.
[0063] In step 508, the step of updating the configuration information by the terminal includes: 1) updating QCL assumptions for one or more CSI measurement resources; 2) updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource set, where multiple CSI measurement resources are divided into multiple CSI measurement resource sets; 3) updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource subset, where multiple CSI measurement resources are divided into one CSI measurement resource set and one CSI measurement resource set is divided into multiple CSI measurement resource subsets; 4) updating the QCL assumptions for all CSI measurement resources associated with the CSI resource configuration; and 5) updating the QCL assumptions for all CSI measurement resources associated with the CSI reporting configuration.
[0064] In the examples of the present application, MAC CE is 1) IDs of CSI measurement resources and QCL assumptions corresponding to the CSI measurement resources; 2) QCL assumptions corresponding to a target CSI measurement resource set ID and all CSI measurement resources associated with the target CSI measurement resource set ID, where the QCL assumptions corresponding to all CSI measurement resources associated with the target CSI measurement resource set are indicated by a plurality of transmission configuration indication state TCI state IDs or one TCI state sequence ID; 3) A QCL assumption corresponding to a target CSI measurement resource subset ID and all CSI measurement resources associated with the target CSI measurement resource subset ID, where the QCL assumption corresponding to all CSI measurement resources associated with the target CSI measurement resource subset ID is indicated by a plurality of transmission configuration indication state TCI state IDs or one TCI state sequence ID; 4) QCL assumptions corresponding to a target CSI resource configuration ID and all CSI measurement resources associated with the target CSI resource configuration ID, where the QCL assumptions corresponding to all CSI measurement resources associated with the target CSI resource configuration are indicated by multiple TCI state IDs or one TCI state sequence ID indication; and 5) A target CSI report configuration ID and a QCL assumption corresponding to all CSI measurement resources associated with the target CSI report configuration ID, wherein the QCL assumption corresponding to all CSI measurement resources associated with the target CSI report configuration includes at least one of QCL assumptions indicated by multiple TCI state IDs or one TCI state sequence ID.
[0065] In the prior art, the TCI state of periodic CSI-RS is configured by the network side via RRC for each CSI-RS resource. When an update is required, reconfiguration can currently only be performed via RRC, which requires a long RRC reconfiguration period, high signaling overhead, and lacks flexibility. On the other hand, for aperiodic CSI-RS, the network side configures multiple CSI-RS resource sets and multiple TCI state sequences via RRC. One aperiodic CSI-RS resource set and one TCI state sequence are indicated by DCI, and the UE completes measurements on the aperiodic CSI-RS resource set according to the indicated TCI state sequence. In the case of MTRP, the CSI-RS simultaneously measured by the UE are from multiple TRPs, which increases the number of TCI state pair combinations. Therefore, it is difficult to configure various possible TCI state pairs in advance via RRC. Therefore, the prior art has the above-mentioned problems with updating the TCI state of periodic CSI-RS and aperiodic CSI-RS. However, in the embodiment of the present application, the updating process in step 508 allows the MAC CE to update the QCL assumption of the CSI measurement resource, for example, by updating the TCI state of the CSI-RS, so that the terminal can adjust the receiving beam more quickly and flexibly, and can conveniently update the TCI state of the CSI-RS while reducing signaling overhead.
[0066] In an alternative embodiment of the present application examples, the steps of the method in the present application examples may further include the following steps:
[0067] In step 510, if the CSI measurement resource is an aperiodic CSI-RS resource and the first scheduling time interval is shorter than the beam switching time interval, the terminal determines a default QCL assumption based on a first preset rule.
[0068] In step 512, the terminal receives aperiodic CSI-RS resources using the default QCL assumption.
[0069] The first scheduling time interval is resource is the number of symbols between the last symbol of the PDCCH and the first symbol of the aperiodic CSI-RS resource that triggers the beam switching time interval is determined by the capabilities of the terminal.
[0070] The above steps 510 In the method, the terminal may further include the following steps as a method for determining a default QCL assumption based on a first preset rule.
[0071] In step 512-11, if the terminal receives the upper layer parameter physical downlink control channel configuration PDCCH-Config including multiple control resource set pool indexes and the enablement of the default TCI state enableDefaultTCIStatePerCoresetPoolIndex for each control resource set pool index, the terminal associates the aperiodic CSI-RS resource with one control resource set pool index based on a second preset rule.
[0072] Note that enableDefaultTCIStatePerCoresetPoolIndex means that enabling each control resource set pool index corresponds to one default TCI state.
[0073] In step 512-12, the terminal: a QCL assumption for a physical downlink shared channel (PDSCH) transmitted with the same code as the aperiodic CSI-RS resource, in which a control resource set pool index corresponding to a physical downlink control channel (PDCCH) scheduling the PDSCH is the same as a control resource set pool index associated with the aperiodic CSI-RS resource, and a second scheduling time interval, which is the time interval between the last code of the PDCCH scheduling the PDSCH and the first code of the PDSCH, is longer than a quasi-co-location switching period (timeDurationForQCL) that is a capability of the terminal; a QCL assumption for an aperiodic CSI-RS transmitted with the same code as the aperiodic CSI-RS resource, where the control resource set pool index corresponding to the PDCCH triggering the aperiodic CSI-RS is the same as the control resource set pool index associated with the aperiodic CSI-RS resource, and the first scheduling time interval is longer than the capability of the terminal; QCL assumptions for semi-static CSI-RS resources transmitted on the same code as aperiodic CSI-RS resources, where the control resource set pool index corresponding to a PDCCH activating the semi-static CSI-RS resource is the same as the control resource set pool index associated with the aperiodic CSI-RS resource; a QCL assumption for a periodic CSI-RS resource transmitted with the same code as the aperiodic CSI-RS resource, wherein the corresponding control resource set pool index according to a second preset rule for the periodic CSI-RS resource is the same as the control resource set pool index associated with the aperiodic CSI-RS resource; and A QCL hypothesis corresponding to the smallest CORESET ID in one search space, where the control resource set pool index corresponding to the CORESET is aperiodic CSI-RS resource and determining at least one of the QCL assumptions, which is the same as the control resource set pool index associated with the QCL assumption, as a default QCL assumption.
[0074] The above steps 510 In the above, the terminal may include the following steps as a method for determining a default QCL assumption based on a first preset rule.
[0075] In step 512-21, if the terminal receives the upper layer parameter physical downlink control channel configuration PDCCH-Config including multiple control resource set pool indexes and the default TCI state enable enableDefaultTCIStatePerCoresetPoolIndex for each control resource set pool index, the terminal divides the aperiodic CSI measurement resources into multiple measurement resource sets or multiple measurement resource subsets, among which multiple CSI measurement resources are divided into one or more CSI measurement resource sets and one CSI measurement resource set is divided into one or more CSI measurement resource subsets.
[0076] In step 512-22, the terminal maps a plurality of resource sets or resource subsets to a plurality of control resource set pool indexes according to a third preset rule; The QCL assumption of the CORESET with the smallest CORESET ID in the control resource set pool index corresponding to each CSI measurement resource set or CSI measurement resource subset is determined as the default QCL assumption for the CSI measurement resource set or CSI measurement resource subset.
[0077] The above steps 510 In the method, the terminal may further include the following steps as a method for determining a default QCL assumption based on a first preset rule.
[0078] In step 512-31, the terminal receives enableTwoDefaultTCIStates for two default TCI states, and if there is at least one TCI domain corresponding to the two TCI states, determining at least one of the QCL assumptions of the PDSCH, which is transmitted with the same code as the aperiodic CSI-RS resource and corresponds to the two TCI states, as a default QCL assumption; When the aperiodic CSI measurement resource is divided into multiple CSI measurement resource sets, or when the aperiodic CSI measurement resource is divided into multiple CSI measurement resource subsets in one CSI measurement resource set, the two TCI states corresponding to the lowest codepoint having two TCI states are taken as the default QCLs of the multiple measurement resource sets or the multiple measurement resource subsets.
[0079] In the prior art, in MTRP, MTRP beam measurement or MTRP CSI measurement is realized with only one CSI report, i.e., when one DCI activates aperiodic CSI-RS signals for multiple TRPs, and the scheduling time interval between the PDCCH and the aperiodic CSI-RS is shorter than the UE capability (reported beam switching time), the default QCL assumption for the aperiodic CSI-RS defined in the current protocol no longer applies. Furthermore, for UEs with multiple panels, the restriction that CSI-RSs with different QCL assumptions defined in the current protocol cannot collide in the time domain can be lifted. Therefore, the default QCL assumption for the aperiodic CSI-RS needs to be redefined, especially for mDCI.
[0080] According to steps 510 and 512 in the embodiment of the present application, if the first scheduling time interval is shorter than the beam switching time interval, the terminal determines a default QCL assumption based on the first preset rule, and the first scheduling time interval is the same as the aperiodic CSI-RS resource is the number of symbols between the last symbol of the PDCCH and the first symbol of the aperiodic CSI-RS resource that triggers the beam switching time interval is determined by the terminal capability, i.e., if the scheduling time interval between the PDCCH and the aperiodic CSI-RS is shorter than the UE capability, the default QCL assumption can be used.
[0081] Below, the process of updating the QCL assumptions by the MAC CE is explained with an example.
[0082] Optional embodiment 1: The MAC CE updates the QCL assumptions for one or more CSI-RS.
[0083] The format of a MAC CE for updating the QCL assumptions of one or more periodic CSI-RS is as follows: As shown in Figure 6, Serving Cell ID is the identifier of the current serving cell, Bandwidth Part (BWP) ID is the identifier of the downlink BWP transmitted by the MAC CE at the physical layer, CSI-RS resource set ID is the identifier of the CSI-RS resource set in which the CSI-RS is located, CSI-RS resource ID is the identifier of the CSI-RS resource, TCI state ID is the TCI state identifier of the CSI-RS resource identified by the CSI-RS resource ID after the update, and R is a reserved bit with a value of 0.
[0084] Since the QCL assumptions for IMR and CMR are the same, the QCL assumptions for the Nth NZP CSI-RS used for channel measurement are updated, and the corresponding QCL assumptions for the CSI-IM or NZP CSI-RS used for interference measurement are also updated to the QCL assumption indicated in the MAC CE.
[0085] Optional embodiment 2: The MAC CE updates the QCL assumption for one CSI-RS resource set.
[0086] Method 1: The method for updating the MAC CE of the QCL hypotheses for all CSI-RS resources associated with one CSI-RS resource set ID is shown in Figure 7. This method applies to both periodic and aperiodic CSI-RS resource set updates.
[0087] Method 2: Assuming that RRC configures multiple TCI state lists, MAC CE resource Updating the QCL assumptions for a set only requires updating one TCI state list ID. A list for indicating new QCL assumptions for all CSI-RS resources associated with one CSI-RS resource set ID is shown in Figure 8.
[0088] Note that Method 2 is applicable to updating the QCL assumptions for periodic and aperiodic CSI-RS. When applied to aperiodic CSI-RS, if RRC configures multiple TCI state lists, the qcl_info in the upper layer configuration parameter ReportConfigInfo does not need to correspond to one TCI state ID sequence, but only needs to correspond to the identifier of one TCI state list.
[0089] In addition, in the CSI measurement resource processing method provided in the embodiments of the present application, the executing entity may be a CSI measurement resource processing device, or may be a control module for executing the CSI measurement resource processing method in the CSI measurement resource processing device. In the embodiments of the present application, the CSI measurement resource processing device provided in the embodiments of the present application will be described by taking the CSI measurement resource processing method being executed by the CSI measurement resource processing device as an example.
[0090] As shown in FIG. 9 , in an embodiment of the present application, a CSI measurement resource processing device applied to a terminal includes: a first execution module 92 for performing a first processing operation on a first measurement resource according to the configuration information configured by the network side device; a first reporting module 94 for reporting a processing result of the first processing operation; The present invention provides a CSI measurement resource processing device, wherein the first measurement resource includes one or more CSI measurement resources, the configuration information includes an association of the CSI measurement resource with a multi-transmission / reception point TRP or a cell, and the first processing operation includes at least one of channel measurement and interference measurement.
[0091] An apparatus in an embodiment of the present application can perform a first processing operation on a CSI measurement resource based on configuration information configured by a network side device, the configuration information including an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, and report a processing result of the first processing operation. Since the configuration information includes an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, the terminal can report the processing result by distinguishing which cell or multi-TRP the processing result comes from. This avoids the problem in the prior art that the terminal cannot distinguish which cell the SSB or CSI-RS comes from, resulting in the reported content being from the same cell. This not only benefits high-speed data transmission in carrier aggregation for the terminal, but also improves the reliability of data transmission when the terminal is moving.
[0092] Optionally, in an embodiment of the present application, the TRP is determined by at least one of a control resource set pool index, an identifier of a CSI measurement resource set, and an identifier of a CSI measurement resource subset, where multiple CSI measurement resources are divided into one or more CSI measurement resource sets, and one CSI measurement resource set is divided into one or more CSI measurement resource subsets.
[0093] Optionally, the cells in the embodiment of the present application include at least one of a serving cell and a non-serving cell, and the physical cell identifier PCI corresponding to the serving cell is different from the PCI corresponding to the non-serving cell.
[0094] Optionally, the CSI measurement resource in the embodiment of the present application includes at least one of a channel measurement resource CMR and an interference measurement resource IMR.
[0095] Optionally, the CMR in the embodiment of the present application includes at least one of a channel state information reference signal CSI-RS and a synchronization signal block SSB.
[0096] Optionally, the configuration information in the embodiment of the present application further includes at least one of an identifier of a CSI measurement resource, a quasi-co-location QCL hypothesis of the CSI measurement resource.
[0097] Optionally, the CSI measurement resource and QCL assumption in the embodiment of the present application are: 1) The relationship between one CSI measurement resource and one QCL assumption; 2) A relationship in which one CSI measurement resource set corresponds to one QCL assumption list, and multiple CSI measurement resources are divided into multiple CSI measurement resource sets; and 3) One CSI measurement resource subset corresponds to one QCL assumption list, and multiple CSI measurement resources are divided into one CSI measurement resource set, and one CSI measurement resource set is divided into multiple CSI measurement resource subsets.
[0098] Optionally, in an embodiment of the present application, the QCL assumption is determined by at least one of configuring by a radio resource control (RRC) message and determining by at least one of a media access control (MAC) control unit (CE) and downlink control information (DCI) after configuring by the RRC message.
[0099] Optionally, in the embodiment of the present application, the first measurement resource and the second measurement resource, which respectively correspond to different quasi-co-location Type D QCLs Type D, overlap on the time domain resource.
[0100] Optionally, the time domain characteristic of the first measurement resource in the embodiment of the present application includes one of periodic, semi-static, and aperiodic.
[0101] Optionally, the association in the examples of the present application is 1) When multiple CSI measurement resources are divided into multiple CSI measurement resource sets, the multiple CSI measurement resource sets correspond to multiple TRPs or multiple cells; 2) When multiple CSI measurement resources are divided into one CSI measurement resource set and one CSI measurement resource set includes multiple CSI measurement resource subsets, the multiple CSI measurement resource subsets correspond to multiple TRPs or multiple cells; and 3) indicating at least one of: each CSI measurement resource corresponds to one TRP or one cell.
[0102] Optionally, the first reporting module in the embodiment of the present application may further include a reporting unit for reporting the processing results through one or more CSI reports.
[0103] Optionally, the device in an embodiment of the present application may further include a second reporting module for the terminal to perform beam reporting according to at least one reporting type of a group-based beam reporting type and a non-group-based beam reporting type when the processing result is at least one of CRI, SSBRI, and Layer 1 measurement values.
[0104] Optionally, the apparatus in the embodiment of the present application may further include a second execution module for performing at least one of the following operations on the configuration information according to the MAC CE: update, add, delete.
[0105] Optionally, the update operation performed by the second execution module in the embodiment of the present application is: 1) updating QCL assumptions for one or more CSI measurement resources; 2) updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource set, where multiple CSI measurement resources are divided into multiple CSI measurement resource sets; 3) updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource subset, where multiple CSI measurement resources are divided into one CSI measurement resource set and one CSI measurement resource set is divided into multiple CSI measurement resource subsets; 4) updating the QCL assumptions for all CSI measurement resources associated with the CSI resource configuration; and 5) updating the QCL assumptions for all CSI measurement resources associated with the CSI reporting configuration.
[0106] Optionally, the MAC CE in the embodiments of the present application is 1) IDs of CSI measurement resources and QCL assumptions corresponding to the CSI measurement resources; 2) QCL assumptions corresponding to a target CSI measurement resource set ID and all CSI measurement resources associated with the target CSI measurement resource set ID, where the QCL assumptions corresponding to all CSI measurement resources associated with the target CSI measurement resource set are indicated by a plurality of transmission configuration indication state TCI state IDs or one TCI state sequence ID; 3) A QCL assumption corresponding to a target CSI measurement resource subset ID and all CSI measurement resources associated with the target CSI measurement resource subset ID, where the QCL assumption corresponding to all CSI measurement resources associated with the target CSI measurement resource subset ID is indicated by a plurality of transmission configuration indication state TCI state IDs or one TCI state sequence ID; 4) QCL hypotheses corresponding to a target CSI resource configuration ID and all CSI measurement resources associated with the target CSI resource configuration ID, where the QCL hypotheses corresponding to all CSI measurement resources associated with the target CSI resource configuration are indicated by multiple TCI state IDs or one TCI state sequence ID; and 5) A QCL assumption corresponding to a target CSI report configuration ID and all CSI measurement resources associated with the target CSI report configuration ID, wherein the QCL assumption corresponding to all CSI measurement resources associated with the target CSI report configuration includes at least one of QCL assumptions indicated by multiple TCI state IDs or one TCI state sequence ID indication.
[0107] Optionally, the device in the embodiment of the present application comprises: a determination module for determining a default QCL assumption based on a first preset rule when the CSI measurement resource is an aperiodic CSI-RS resource and the first scheduling time interval is shorter than the beam switching time interval; and a processing module for receiving aperiodic CSI-RS resources using a default QCL assumption.
[0108] The first scheduling time interval is resource is the number of symbols between the last symbol of the PDCCH and the first symbol of the aperiodic CSI-RS resource that triggers the beam switching time interval is determined by the capabilities of the terminal.
[0109] The decision module in the embodiment of the present application comprises: an association unit for associating aperiodic CSI-RS resources with one control resource set pool index based on a second preset rule when receiving higher layer parameters physical downlink control channel configuration PDCCH-Config including multiple control resource set pool indexes and enabling a default TCI state for each control resource set pool index; QCL assumption for the physical downlink shared channel (PDSCH) transmitted with the same code as the aperiodic CSI-RS resource; QCL assumption for aperiodic CSI-RS transmitted with the same code as the aperiodic CSI-RS resource; QCL assumption for semi-static CSI-RS resources transmitted with the same code as aperiodic CSI-RS resources; QCL assumptions for periodic CSI-RS resources transmitted with the same code as aperiodic CSI-RS resources; and The QCL hypothesis determination unit may further comprise a first determination unit for determining at least one of the QCL hypotheses corresponding to the CORESET with the smallest CORESET ID in one search space as a default QCL hypothesis.
[0110] a control resource set pool index corresponding to a physical downlink control channel (PDCCH) for scheduling the PDSCH is the same as a control resource set pool index associated with a non-periodic CSI-RS resource, and a second scheduling time interval, which is a time interval between the last code of the PDCCH for scheduling the PDSCH and the first code of the PDSCH, is longer than a quasi-co-location switching period that is a capability of the terminal; a control resource set pool index corresponding to a PDCCH triggering the aperiodic CSI-RS is the same as a control resource set pool index associated with the aperiodic CSI-RS resource, and the first scheduling time interval is longer than the capability of the terminal; the control resource set pool index corresponding to the PDCCH that activates the semi-static CSI-RS resource is the same as the control resource set pool index associated with the aperiodic CSI-RS resource; the control resource set pool index corresponding to the periodic CSI-RS resource according to the second preset rule is the same as the control resource set pool index associated with the aperiodic CSI-RS resource; The control resource set pool index corresponding to CORESET is aperiodic CSI-RS resource The control resource set pool index associated with the
[0111] Optionally, the decision module in the embodiment of the present application comprises: a division unit for dividing aperiodic CSI measurement resources into a plurality of measurement resource sets or a plurality of measurement resource subsets when receiving higher layer parameters physical downlink control channel configuration (PDCCH-Config) including a plurality of control resource set pool indexes and enabling a default TCI state of each control resource set pool index, wherein the plurality of CSI measurement resources are divided into one or more CSI measurement resource sets and one CSI measurement resource set is divided into one or more CSI measurement resource subsets; a processing unit for associating a plurality of resource sets or resource subsets with a plurality of controlled resource set pool indexes according to a third preset rule; The CSI measurement resource set or CSI measurement resource subset may further include a second determining unit for determining a QCL assumption of a CORESET having a smallest CORESET ID in a control resource set pool index corresponding to each CSI measurement resource set or CSI measurement resource subset as a default QCL assumption for the CSI measurement resource set or CSI measurement resource subset.
[0112] The decision module in the embodiment of the present application comprises: If two default TCI state enablements are received and there is at least one TCI domain corresponding to the two TCI states, determining at least one of the QCL assumptions of the PDSCH, which is transmitted with the same code as the aperiodic CSI-RS resource and corresponds to the two TCI states, as a default QCL assumption; When an aperiodic CSI measurement resource is divided into a plurality of the CSI measurement resource sets or when an aperiodic CSI measurement resource is divided into a plurality of CSI measurement resource subsets in one CSI measurement resource set, the communication channel may further include a third determining unit for setting two TCI states corresponding to the lowest codepoint having two TCI states as default QCLs for the plurality of measurement resource sets or the plurality of measurement resource subsets.
[0113] In the embodiments of the present application, the CSI measurement resource processing device may be a device having an operating system or an electronic device, or may be a component, integrated circuit, or chip in a terminal. The device or electronic device may be a mobile terminal or a non-mobile terminal. For example, the mobile terminal may include, but is not limited to, the types of terminals 11 listed above. The non-mobile terminal may be, for example, a server, a network-attached storage (NAS), a personal computer (PC), a television (TV), an automated teller machine (ATM), a self-service machine, etc., and is not specifically limited in the embodiments of the present application.
[0114] The CSI measurement resource processing device of the embodiment of the present application can implement each process implemented by the method embodiment of Figure 5 and achieve the same technical effects, which will be omitted here to avoid repetition.
[0115] Optionally, as shown in FIG. 10 , an embodiment of the present application further provides a communications device 1000 including a processor 1001, a memory 1002, and a program or command stored in the memory 1002 and executable by the processor 1001. For example, if the communications device 1000 is a terminal, the processes of the embodiment of the CSI measurement resource processing method can be realized and similar technical effects can be achieved when the program or command is executed by the processor 1001. If the communications device 1000 is a network side device, the processes of the embodiment of the CSI measurement resource processing method can be realized and similar technical effects can be achieved when the program or command is executed by the processor 1001. To avoid repetition, the description will be omitted here.
[0116] The present application further provides a terminal including a processor for performing a first processing operation on a first measurement resource based on configuration information configured by a network-side device, and a communication interface for reporting a processing result of the first processing operation. The terminal embodiment corresponds to the method embodiment on the terminal side, and the implementation processes and realization modes of the method embodiment can be applied to the terminal embodiment, and similar technical effects can be achieved. Specifically, Figure 11 is a schematic diagram of the hardware configuration of a terminal implementing the embodiment of the present application.
[0117] The terminal 100 includes at least some components such as, but not limited to, a radio frequency unit 101, a network module 102, an audio output unit 103, an input unit 104, a sensor 105, a display unit 106, a user input unit 107, an interface unit 108, a memory 109, and a processor 110.
[0118] Those skilled in the art will understand that the terminal 100 may further include a power source (e.g., a battery) for powering each component, and that the power source may be logically connected to the processor 110 through a power management system, which may further realize functions such as charge / discharge management and power consumption management. The structure of the terminal shown in Figure 11 is not intended to limit the terminal, and the terminal may include more or fewer components than those shown, or a combination of some components, or a different component arrangement, and description thereof will be omitted here.
[0119] In the embodiment of the present application, the input unit 104 may include a graphics processing unit (GPU) 1041 that processes image data of still or video images captured by an image capture device (e.g., a camera) in a video capture mode or an image capture mode, and a microphone 1042. The display unit 106 may include a display panel 1061, which may be configured in the form of a liquid crystal display, an organic light-emitting diode, or the like. The user input unit 107 includes a touch panel 1071 and other input devices 1072. The touch panel 1071 is also called a touch screen. The touch panel 1071 may include two parts: a touch detection device and a touch controller. The other input devices 1072 may include, but are not limited to, a physical keyboard, function buttons (e.g., volume control buttons, switch buttons, etc.), a trackball, a mouse, and a control lever, and description thereof will be omitted here.
[0120] In the embodiment of the present application, the high frequency unit 101 receives downlink data from the network side device, processes the data in the processor 110, and transmits uplink data to the network side device. Typically, the high frequency unit 101 includes, but is not limited to, an antenna, at least one amplifier, a receiver / transmitter, a coupler, a low-noise amplifier, a duplexer, etc.
[0121] The memory 109 can be used to store software programs or commands and various data. The memory 109 may primarily include a program or command storage area capable of storing an operating system, an application or command required for at least one function (e.g., audio playback function, image playback function, etc.), and a data storage area. The memory 109 may also include high-speed random access memory and may further include nonvolatile memory. The nonvolatile memory may be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. For example, the memory 109 may include at least one magnetic disk storage device, flash memory device, or other volatile solid-state storage device.
[0122] The processor 110 may include one or more processing units, and may optionally integrate an application processor that mainly processes an operating system, a user interface, and applications or commands, etc., and a modem processor that mainly processes wireless communications, such as a baseband processor, in the processor 110. It is understandable that the modem processor need not be integrated into the processor 110.
[0123] Among them, the processor 110 is used to perform a first processing operation on a first measurement resource based on the configuration information configured by the network side equipment, and the radio frequency unit 101 is used to report the processing result of the first processing operation.
[0124] The first measurement resource includes one or more CSI measurement resources, the configuration information includes an association between the CSI measurement resource and a multi-transmission point TRP or cell, and the first processing operation includes at least one of channel measurement and interference measurement.
[0125] In an embodiment of the present application, a terminal can perform a first processing operation on a CSI measurement resource based on configuration information configured by a network side device, the configuration information including an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, and report a processing result of the first processing operation. Since the configuration information includes an association between the CSI measurement resource and a multi-transmission / reception point TRP or cell, the terminal can report the processing result by distinguishing which cell or multi-TRP the processing result comes from. This avoids the problem in the prior art that the terminal cannot distinguish which cell the SSB or CSI-RS comes from, resulting in the reported content being from the same cell. This not only benefits high-speed data transmission in carrier aggregation for the terminal, but also improves the reliability of data transmission when the terminal is moving.
[0126] Optionally, the radio frequency unit 101 reports the processing results in one or more CSI reports.
[0127] Optionally, the processor 110 is used to perform at least one of the following operations on the configuration information according to the MAC CE: update, add, delete.
[0128] Optionally, the processor 110 is used to update the configuration information: updating QCL assumptions for one or more CSI measurement resources; updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource set, wherein the plurality of CSI measurement resources are divided into the plurality of CSI measurement resource sets; updating QCL assumptions for all CSI measurement resources associated with a CSI measurement resource subset, wherein a plurality of CSI measurement resources are divided into one CSI measurement resource set and a CSI measurement resource set is divided into a plurality of CSI measurement resource subsets; updating the QCL assumptions for all CSI measurement resources associated with the CSI resource configuration; and updating the QCL assumptions for all CSI measurement resources associated with the CSI reporting configuration.
[0129] Optionally, when the CSI measurement resource is an aperiodic CSI-RS resource and the first scheduling time interval is shorter than the beam switching time interval, the processor 110 determines a default QCL assumption based on the first preset rule and is used to receive the aperiodic CSI-RS resource using the default QCL assumption.
[0130] Optionally, when the processor 110 receives higher layer parameters physical downlink control channel configuration PDCCH-Config including a plurality of control resource set pool indexes and enables a default TCI state of each control resource set pool index, it associates the aperiodic CSI-RS resource with one control resource set pool index based on a second preset rule; QCL assumption for the physical downlink shared channel (PDSCH) transmitted with the same code as the aperiodic CSI-RS resource; QCL assumption for aperiodic CSI-RS transmitted with the same code as the aperiodic CSI-RS resource; QCL assumption for semi-static CSI-RS resources transmitted with the same code as aperiodic CSI-RS resources; QCL assumptions for periodic CSI-RS resources transmitted with the same code as aperiodic CSI-RS resources; and At least one of the QCL hypotheses corresponding to the CORESET with the smallest CORESET ID in one search space is used to determine as the default QCL hypothesis.
[0131] Alternatively, when processor 110 receives an upper layer parameter physical downlink control channel configuration PDCCH-Config including a plurality of control resource set pool indexes and an enablement of a default TCI state for each control resource set pool index, processor 110 is used to divide the aperiodic CSI measurement resources into a plurality of measurement resource sets or a plurality of measurement resource subsets, among which a plurality of CSI measurement resources are divided into one or more CSI measurement resource sets, and one CSI measurement resource set is divided into one or more CSI measurement resource subsets.
[0132] The processor 110 is further used for mapping the plurality of resource sets or resource subsets to the plurality of controlled resource set pool indexes based on a third preset rule.
[0133] The processor 110 is further used to determine the QCL assumption of the CORESET with the smallest CORESET ID in the control resource set pool index corresponding to each CSI measurement resource set or CSI measurement resource subset as the default QCL assumption for the CSI measurement resource set or CSI measurement resource subset.
[0134] Optionally, the processor 110 receives two default TCI state enablements, and there is at least one TCI domain corresponding to the two TCI states; determining at least one of the QCL assumptions of the PDSCH, which is transmitted with the same code as the aperiodic CSI-RS resource and corresponds to the two TCI states, as a default QCL assumption; When an aperiodic CSI measurement resource is divided into multiple CSI measurement resource sets, or when an aperiodic CSI measurement resource is divided into multiple CSI measurement resource subsets in one CSI measurement resource set, the two TCI states corresponding to the lowest codepoint having two TCI states are used to set the default QCLs of the multiple measurement resource sets or the multiple measurement resource subsets.
[0135] The embodiments of the present application further provide a readable storage medium, which stores a program or command, and when the program or command is executed by a processor, the processes of the embodiments of the method for processing CSI measurement resources are realized and similar technical effects can be achieved. To avoid repetition, the description will be omitted here.
[0136] The processor may be the processor in the terminal described in the above embodiment. The readable storage medium may include a computer-readable storage medium, such as a computer read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0137] The embodiments of the present application further provide a chip, which includes a processor and a communication interface, and the communication interface and the processor are coupled together, and the processor executes programs or commands to implement the processes of the embodiments of the CSI measurement resource processing method, and can achieve similar technical effects. To avoid repetition, the description will be omitted here.
[0138] The chip described in the embodiments of the present application is also called a system on a chip, a system chip, a chip system, or an SoC.
[0139] The embodiments of the present application further provide a computer program product, which is stored in a storage medium and executed by at least one processor to implement the processes of the embodiments of the CSI measurement resource processing method and achieve similar technical effects. To avoid repetition, the description will be omitted here.
[0140] The embodiments of the present application further provide a communication device, which is configured to perform the processes of the embodiments of the CSI measurement resource processing method, and can achieve similar technical effects. To avoid repetition, the description will be omitted here.
[0141] It should be noted that, as used herein, the terms "comprise," "consist," and any other variations thereof are intended to include a non-exclusive inclusion, such that a process, method, article, or apparatus comprising a set of elements includes not only those elements but also other elements not expressly specified or inherent in such process, method, article, or apparatus. Unless otherwise specified, elements qualified by the phrase "comprise..." do not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element. Furthermore, the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed herein, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functionality involved. For example, methods described above may be performed in a different order than described, and various steps may be added, omitted, or combined. Furthermore, features described with reference to some examples may be combined with other examples.
[0142] From the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be realized in the form of a combination of software and a necessary common hardware platform, and of course, they can also be realized by hardware, but in many cases the former is a more preferred embodiment. Based on this view, the technical solutions of the present application can be substantially embodied in the form of a software product, and the computer software product is stored in a storage medium (e.g., ROM / RAM, magnetic disk, optical disk) and includes a plurality of commands that cause a terminal (which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to execute the methods described in each embodiment of the present application.
[0143] Although the examples of the present application have been described above with reference to the drawings, the present application is not limited to the above-mentioned specific embodiments, which are merely illustrative and not limiting. Based on the suggestions of the present application, many forms that a person skilled in the art can make without departing from the spirit of the present application and the scope of protection of the claims are all within the scope of protection of the present application.
Claims
1. The terminal performs a first processing operation on a first measurement resource according to configuration information configured by a network side device; The terminal reports a processing result of the first processing operation; the first measurement resource includes one or more CSI measurement resources, the configuration information includes associations between the CSI measurement resources and cells, and the first processing operation includes at least one of channel measurement and interference measurement; The CSI measurement resource includes a channel measurement resource (CMR), and the CMR includes a synchronization signal block (SSB); The method further includes updating the configuration information according to the MAC CE by the terminal; The step of updating the configuration information by the terminal includes: updating QCL assumptions for one or more of the CSI measurement resources; updating QCL assumptions for all the CSI measurement resources associated with a CSI measurement resource set, wherein the plurality of CSI measurement resources are divided into a plurality of the CSI measurement resource sets; updating QCL assumptions for all the CSI measurement resources associated with a CSI measurement resource subset, wherein the plurality of CSI measurement resources are divided into one CSI measurement resource set and the one CSI measurement resource set is divided into the plurality of CSI measurement resource subsets; updating QCL assumptions for all the CSI measurement resources associated with a CSI resource configuration; and updating QCL assumptions for all the CSI measurement resources associated with a CSI reporting configuration.
2. The method of claim 1 , wherein the plurality of CSI measurement resources are divided into one or more CSI measurement resource sets, and one of the CSI measurement resource sets is divided into one or more CSI measurement resource subsets.
3. the cell includes at least one of a serving cell and a non-serving cell; The method of claim 1 , wherein a physical cell identifier (PCI) corresponding to the serving cell is different from a PCI corresponding to the non-serving cell.
4. The method of claim 1 , wherein the CSI measurement resource further includes an interference measurement resource (IMR).
5. The method of claim 1 , wherein the CMR further includes a channel state information reference signal (CSI-RS).
6. The placement information is an identifier of the CSI measurement resource; and The method of claim 1 , further comprising at least one of a quasi-co-location QCL assumption of the CSI measurement resource.
7. The CSI measurement resource and the QCL assumption are: a relationship in which one CSI measurement resource corresponds to one QCL assumption; a relationship in which one CSI measurement resource set corresponds to one QCL hypothesis list, and the plurality of CSI measurement resources are divided into a plurality of the CSI measurement resource sets; and 7. The method of claim 6, wherein one CSI measurement resource subset corresponds to one QCL hypothesis list, and wherein the plurality of CSI measurement resources are divided into one CSI measurement resource set, and the one CSI measurement resource set is divided into a plurality of the CSI measurement resource subsets.
8. The method of claim 6 , wherein the first and second measurement resources, each corresponding to a different quasi-co-location type D QCL Type D, overlap on a time domain resource.
9. The association is When the plurality of CSI measurement resources are divided into a plurality of CSI measurement resource sets, the plurality of CSI measurement resource sets correspond to a plurality of cells; When the plurality of CSI measurement resources are divided into one CSI measurement resource set, and the one CSI measurement resource set includes multiple CSI measurement resource subsets, the plurality of CSI measurement resource subsets correspond to multiple cells; and 3. The method of claim 2, wherein each of the CSI measurement resources corresponds to one cell.
10. The step of the terminal reporting the processing result of the first processing operation includes: The method of claim 9 , comprising the terminal reporting the processing results through one or more CSI reports.
11. 11. The method of claim 10, further comprising: when the processing result is at least one of a CRI, an SSBRI, and a Layer 1 measurement value, the terminal performing a beam report according to at least one of a group-based beam report type and a non-group-based beam report type.
12. The MAC CE is an ID of the CSI measurement resource and a QCL assumption corresponding to the CSI measurement resource; a target CSI measurement resource subset ID and a QCL assumption corresponding to all the CSI measurement resources associated with the target CSI measurement resource subset ID; a target CSI measurement resource set ID and a QCL assumption corresponding to all the CSI measurement resources associated with the target CSI measurement resource set ID; A target CSI resource configuration ID and a QCL assumption corresponding to all the CSI measurement resources associated with the target CSI resource configuration ID; and The method of claim 1 , comprising at least one of a target CSI reporting configuration ID and a QCL assumption corresponding to all the CSI measurement resources associated with the target CSI reporting configuration ID.
13. 13. A terminal comprising a processor, a memory, and programs or commands stored in the memory and executable on the processor, the programs or commands, when executed by the processor, implementing the steps of the method of any one of claims 1 to 12.
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