Report sending apparatus, report receiving apparatus, and communication system

WO2026199129A1PCT designated stage Publication Date: 2026-10-011FINITY INC +2
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Patent Information

Application Number
PCT/CN2025/084520
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-10-01

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Abstract

Embodiments of the present application provide a report sending apparatus, a report receiving apparatus, and a communication system. The report sending apparatus comprises: a receiver, which receives a cell handover command for layer 1 / layer 2 triggered mobility (LTM); and a processor, which measures a channel state information reference signal (CSI-RS) resource before and / or after receiving the cell handover command, and sends a CSI report on the basis of a measurement result.
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Description

Report sending device, report receiving device and communication system Technical Field

[0001] The embodiments of this application relate to the field of communication technology. Background Technology

[0002] During the standardization process of Release 18 (Rel-18), the 3GPP standardization organization studied Layer 1 / Layer 2 Triggered Mobility (LTM). For Rel-18 LTM, the goal is to reduce handover interruption through Layer 1 / Layer 2 signaling-based (Layer 1 / Layer 2 triggered) cell handover, thereby enabling faster handover from the serving cell (source cell) to the target cell. The target cell is the cell after the handover, which can be either the serving cell or a non-serving cell. Handover interruption refers to the time from when the terminal device receives the cell switch command (CSC) to when the terminal device successfully completes its first uplink or downlink transmission with the target cell. Compared to traditional Layer 3 signaling-based cell handover, Layer 1 / Layer 2 signaling-based cell handover can further reduce handover interruption.

[0003] In existing networks, terminal devices can measure the current channel based on the Channel State Information (CSI) resource settings and CSI reporting configuration configured on the network device side, and report the channel state information by carrying the uplink control information (UCI) in the uplink channel (such as the Physical Uplink Control Channel PUCCH or the Physical Uplink Shared Channel PUSCH).

[0004] It should be noted that the above introduction to the technical background is only for the purpose of providing a clear and complete explanation of the technical solutions of this application and facilitating understanding by those skilled in the art. It should not be assumed that these technical solutions are known to those skilled in the art simply because they have been described in the background section of this application. Summary of the Invention

[0005] Rel-18 LTM only supports sending Channel Statement Information Reports (CSI Reports) before cell handover commands. The CSI report includes Layer 1 Reference Signal Receiving Power (L1-RSRP) obtained based on SSB measurements of one or more candidate cells. In other words, the CSI report sent before the cell handover command is used to obtain beam information of the candidate cells, which can be called beam reporting. Therefore, network devices can select candidate cells with better beams for handover to terminal devices.

[0006] In version 19 (Rele-19), LTM further enhances the CSI report, supporting its transmission after a cell handover command. This CSI report includes the CSI obtained based on measurements of the Channel State Information Reference Signal (CSI-RS) of the target cell. Specifically, the CSI report sent after the handover command is used to acquire the target cell's CSI. The CSI includes at least one of the following: Precoding Matrix Indicator (PMI), Channel Quality Indication (CQI), Rank Indication (RI), and CSI-RS Resource Indicator (CRI). This allows network devices to obtain the CSI as quickly as possible after handover, enabling them to select better MIMO transmission schemes and modulation / coding methods for uplink and downlink transmissions, thus facilitating the rapid achievement of high-throughput or high-reliability transmissions after handover.

[0007] To assist base stations in transmitting data more accurately, CSI measurement and reporting are crucial. However, in traditional networks, CSI measurement and reporting configuration is primarily based on the completion of traditional cell handover and / or Radio Resource Control (RRC) configuration, resulting in a significant time delay. Therefore, current CSI measurement and reporting mechanisms do not adequately align with the primary objective of LTM mechanisms—reducing time delay and cell handover interruption time—and consequently, network devices cannot acquire CSI more quickly after a cell handover command.

[0008] Currently, how to conduct and report LTM-based CSI measurements is a problem that needs to be solved.

[0009] To address at least one of the above-mentioned problems, embodiments of this application provide a report sending device, a report receiving device, and a communication system.

[0010] According to another aspect of the embodiments of this application, a report sending apparatus is provided, configured in a terminal device, the apparatus comprising:

[0011] The receiver receives Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information from network devices, wherein the CSI reporting configuration information is associated with one or more candidate cells;

[0012] The processor measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to a cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0013] According to another aspect of the embodiments of this application, a report sending apparatus is provided, configured in a network device, the apparatus comprising:

[0014] A transmitter that sends Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information to a terminal device, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0015] A receiver receives a CSI report sent by the terminal, wherein the CSI report is obtained by measuring CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and the CSI report is related to a cell handover command for mobility (LTM) triggered at Layer 1 or Layer 2.

[0016] According to another aspect of the embodiments of this application, a communication system is provided, the communication system comprising: a network device and a terminal device, wherein the terminal device receives channel state information reference signal (CSI-RS) resource configuration information and / or channel state information (CSI) reporting configuration information from the network device, wherein the CSI reporting configuration information is associated with one or more candidate cells;

[0017] The terminal device measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to the cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0018] One of the beneficial effects of this application embodiment is that, through this application embodiment, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0019] Specific embodiments of this application are disclosed in detail with reference to the following description and accompanying drawings, indicating how the principles of this application can be adopted. It should be understood that the embodiments of this application are not limited in scope. Within the spirit and scope of the appended claims, embodiments of this application include many changes, modifications, and equivalents.

[0020] Features described and / or illustrated for one embodiment may be used in the same or similar manner in one or more other embodiments, combined with features in other embodiments, or substituted for features in other embodiments.

[0021] It should be emphasized that the term "including / comprises" as used herein refers to the presence of a feature, whole, step, or component, but does not exclude the presence or addition of one or more other features, wholes, steps, or components. Attached Figure Description

[0022] The elements and features described in one drawing or embodiment of this application may be combined with elements and features shown in one or more other drawings or embodiments. Furthermore, in the drawings, similar reference numerals denote corresponding parts in several drawings and can be used to indicate corresponding parts used in more than one embodiment.

[0023] Figure 1 is a schematic diagram of a communication system according to an embodiment of this application;

[0024] Figure 2 is a schematic diagram of a report sending method according to an embodiment of this application;

[0025] Figures 3A and 3B are schematic diagrams of CSI reporting configuration and CSI resource configuration according to an embodiment of this application;

[0026] Figures 4A and 4B are schematic diagrams of CSI reporting configuration and CSI resource configuration according to an embodiment of this application;

[0027] Figures 5A and 5B are schematic diagrams of CSI reporting configuration and CSI resource configuration according to an embodiment of this application;

[0028] Figures 6A and 6B are schematic diagrams of CSI reporting configuration and CSI resource configuration according to an embodiment of this application;

[0029] Figure 7 is a schematic diagram of a report receiving method according to an embodiment of this application;

[0030] Figure 8 is a schematic diagram of a report sending device according to an embodiment of this application;

[0031] Figure 9 is a schematic diagram of a report receiving device according to an embodiment of this application;

[0032] Figure 10 is a schematic diagram of a terminal device according to an embodiment of this application;

[0033] Figure 11 is a schematic diagram of a network device according to an embodiment of this application. Detailed Implementation

[0034] Referring to the accompanying drawings, the foregoing and other features of this application will become apparent from the following description. Specific embodiments of this application are specifically disclosed in the description and drawings, illustrating partial implementations in which the principles of this application may be employed. It should be understood that this application is not limited to the described embodiments; rather, it includes all modifications, variations, and equivalents falling within the scope of the appended claims.

[0035] In the embodiments of this application, the terms "first," "second," etc., are used to distinguish different elements by name, but do not indicate the spatial arrangement or chronological order of these elements, and these elements should not be limited by these terms. The term "and / or" includes any one or more of the terms listed in association and all combinations thereof. The terms "comprising," "including," "having," etc., refer to the presence of the stated features, elements, components, or assemblies, but do not exclude the presence or addition of one or more other features, elements, components, or assemblies.

[0036] In the embodiments of this application, the singular forms "a," "the," etc., including the plural forms, should be broadly understood as "a kind" or "a class" rather than limited to the meaning of "an." Furthermore, the term "the" should be understood to include both the singular and plural forms, unless the context explicitly indicates otherwise. Additionally, the term "according to" should be understood as "at least partially based on…," and the term "based on" should be understood as "at least partially based on…," unless the context explicitly indicates otherwise.

[0037] In the embodiments of this application, the term "communication network" or "wireless communication network" may refer to a network that conforms to any of the following communication standards, such as Long Term Evolution (LTE), LTE-Advanced (LTE-A), Wideband Code Division Multiple Access (WCDMA), High-Speed ​​Packet Access (HSPA), etc.

[0038] Furthermore, communication between devices in a communication system can be carried out according to communication protocols at any stage, including but not limited to the following communication protocols: 1G (generation), 2G, 2.5G, 2.75G, 3G, 4G, 4.5G and 5G, New Radio (NR), future 6G, etc., and / or other currently known or future communication protocols.

[0039] In the embodiments of this application, the term "network device" refers, for example, to a device in a communication system that connects a terminal device to a communication network and provides services to that terminal device. Network devices may include, but are not limited to, the following devices: base station (BS), access point (AP), transmission reception point (TRP), broadcast transmitter, mobile management entity (MME), gateway, server, radio network controller (RNC), base station controller (BSC), etc.

[0040] Base stations can include, but are not limited to: NodeBs (or NBs), evolved NodeBs (eNodeBs or eNBs), and 5G base stations (gNBs), IAB hosts, etc. They can also include Remote Radio Heads (RRHs), Remote Radio Units (RRUs), relays, or low-power nodes (e.g., femeto, pico, etc.). The term "base station" can encompass some or all of their functions, and each base station can provide communication coverage to a specific geographic area. The term "cell" can refer to a base station and / or its coverage area, depending on the context in which the term is used.

[0041] In the embodiments of this application, the terms "User Equipment" (UE) or "Terminal Equipment" (TE) refer, for example, to a device that accesses a communication network and receives network services through a network device. A terminal device can be fixed or mobile, and may also be referred to as a mobile station (MS), terminal, subscriber station (SS), access terminal (AT), station, etc.

[0042] The terminal device may include, but is not limited to, the following devices: cellular phone, personal digital assistant (PDA), wireless modem, wireless communication device, handheld device, machine-type communication device, laptop computer, cordless phone, smartphone, smartwatch, digital camera, etc.

[0043] For example, in scenarios such as the Internet of Things (IoT), terminal devices can also be machines or devices for monitoring or measurement, such as including but not limited to: machine-type communication (MTC) terminals, vehicle communication terminals, device-to-device (D2D) terminals, machine-to-machine (M2M) terminals, and so on.

[0044] Furthermore, the terms "network side" or "network equipment side" refer to one side of the network, which can be a base station or include one or more network devices as described above. The terms "user side," "terminal side," or "terminal equipment side" refer to the side of the user or terminal, which can be a UE or include one or more terminal devices as described above. Unless otherwise specified, "equipment" can refer to either network equipment or terminal equipment.

[0045] The following examples illustrate the scenarios of embodiments of this application, but this application is not limited thereto.

[0046] Figure 1 is a schematic diagram of a communication system according to an embodiment of this application, illustrating the case of a terminal device and a network device as examples. As shown in Figure 1, the communication system 100 may include a network device 101 and terminal devices 102 and 103. For simplicity, Figure 1 only illustrates the case of two terminal devices and one network device, but the embodiments of this application are not limited to this.

[0047] In this embodiment of the application, network device 101 and terminal devices 102 and 103 can transmit existing services or services that can be implemented in the future. For example, these services may include, but are not limited to: enhanced mobile broadband (eMBB), massive machine-type communication (mMTC), and ultra-reliable and low-latency communication (URLLC), etc.

[0048] It is worth noting that Figure 1 shows that both terminal devices 102 and 103 are within the coverage area of ​​network device 101, but this application is not limited to this. Both terminal devices 102 and 103 may be outside the coverage area of ​​network device 101, or one terminal device 102 may be within the coverage area of ​​network device 101 while the other terminal device 103 may be outside the coverage area of ​​network device 101.

[0049] In the embodiments of this application, the signaling may be, for example, Radio Resource Control (RRC) signaling; for example, referred to as an RRC message, including MIB, system information, dedicated RRC messages; or referred to as an RRC information element. The signaling may also be, for example, Medium Access Control (MAC) signaling; or referred to as a MAC control element. However, this application is not limited to these.

[0050] In the following description, without confusion, the terms "PDCCH" and "Physical Downlink Control Channel" or "Downlink Control Information" are used interchangeably, as are the terms "PDSCH" and "Physical Downlink Data Channel" or "Downlink Data". Furthermore, transmitting or receiving a PDCCH can be understood as transmitting or receiving downlink control information carried by the PDCCH; transmitting or receiving a PDSCH can be understood as transmitting or receiving downlink data carried by the PDSCH.

[0051] The terms "PUCCH" and "Physical Uplink Control Channel" or "Uplink Control Information" are interchangeable, as are the terms "PUSCH" and "Physical Uplink Data Channel" or "Uplink Data." Furthermore, transmitting or receiving a PUCCH can be understood as transmitting or receiving downlink control information carried by the PUCCH; transmitting or receiving a PUSCH can be understood as transmitting or receiving downlink data carried by the PUSCH.

[0052] For ease of understanding, the following further explains LTM.

[0053] For Rel-18 LTM, the terminal device performs measurements based on SSB or CSI-RS, which enables downlink synchronization with candidate cells (including the target cell) to a certain extent. The terminal device can be triggered by a Physical Downlink Control Channel (PDCCH) order sent by the serving cell to send a Physical Random Access Channel (PRACH) to the candidate cell, thereby achieving uplink synchronization with the candidate cell. The serving cell instructs the terminal device, via a cell handover command (e.g., carried by the Media Access Control (MAC) Control Unit (CE)), to select which candidate cell to hand over to (the indicated candidate cell becomes the target cell), and indicates the beam used for uplink and downlink transmission on the target cell after the handover. For example, the beam refers to the transmission configuration indication state (TCI state). In LTM, the serving cell, candidate cell, and target cell all support a unified TCI state; therefore, the aforementioned indicated TCI state is a unified TCI state. The terminal device receives the cell handover command, which indicates the target cell and the TCI state applied on the target cell. Before receiving the cell handover command, the terminal device has already synchronized with the target cell. After handover to the target cell, it can perform uplink and downlink transmissions with the target cell according to the indicated TCI state. The source reference signal included in the TCI state IE can be either SSB or TRS.

[0054] A unified TCI state can be a joint TCI state or a separate TCI state. A joint TCI state is both a downlink TCI state and an uplink TCI state; a separate TCI state is either a downlink TCI state or an uplink TCI state. The serving cell can activate the candidate cell's TCI state for the terminal device before the cell handover command, and then indicate one (or a pair) of activated TCI states in the cell handover command; alternatively, the serving cell can also indicate one (or a pair) of inactive TCI states in the cell handover command, which is equivalent to the cell handover command directly indicating and activating the TCI state.

[0055] In LTM, the cell that a terminal device may hand over to is called a candidate cell, and the cell that the terminal device actually hands over to is called the target cell. A candidate cell can be a serving cell or a non-serving cell. The terminal device can be provided with candidate cell configuration, receive a cell switch command and a TCI state indication, hand over to the target cell, and apply the indicated TCI state on the target cell.

[0056] For ease of understanding, the existing CSI feedback mechanism will be further explained below.

[0057] In mobile communication systems, terminal devices typically perform CSI measurements according to the instructions and configurations of network devices, and then report the measured CSI to the network devices. When scheduling the terminal device, the network devices can refer to the CSI to schedule the terminal device to transmit using appropriate transmission methods on suitable physical resources. Different terminal devices may experience different physical channel conditions; using a CSI feedback mechanism can make reasonable and effective use of physical resources, thereby improving the overall network transmission efficiency.

[0058] In the CSI feedback mechanism, the terminal device mainly measures and reports reference signals based on the CSI configuration. The reference signals include CSI-RS and SSB, etc. The CSI configuration is mainly divided into two parts: first, the network device configures the reference resources for CSI measurement for the terminal device (CSI-RS resource configuration); second, the network device configures how the terminal device reports (CSI reporting configuration).

[0059] CSI-RS resource settings can be used for interference measurements and CSI channel measurements. Each resource setting contains S resource sets, and each resource set contains Ks CSI-RS resources. A non-periodic resource setting can contain one or more resource sets. For periodic and semi-persistent resource settings, only one resource set can be included when used for CSI acquisition.

[0060] In the CSI reporting framework, CSI reports (used for reporting) are associated with CSI resources (used for measurement). CSI reports can be configured into three types: Periodic CSI reports (P-CSI): transmitted only on the Physical Uplink Control Channel (PUCCH); Semi-persistent CSI reports (SP-CSI): transmitted on either the PUCCH or the Physical Uplink Shared Channel (PUSCH); and Aperiodic CSI reports (AP-CSI): transmitted only on the PUSCH.

[0061] Periodic CSI reports can only be associated with periodic CSI-RS, semi-persistent CSI reports can be associated with both periodic and semi-persistent CSI-RS, and aperiodic CSI reports can be associated with periodic, semi-persistent, and aperiodic CSI-RS.

[0062] P (Period): The feedback period and time slot offset of periodic CSI feedback are configured by RRC. Periodic CSI reporting can only use periodic CSI-RS for channel measurements and periodic CSI-IM (CSI Interference Measurement) for interference measurements. It does not support interference measurements using NZP CSI-RS (Non-Zero Power Channel State Information-Reference Signal). During CSI acquisition, each periodic CSI reporting setting is associated with only one CSI-RS resource set in its associated resource setting. The QCL (quasi-co-location) information for each CSI-RS resource is determined by the TCI state of this resource setting.

[0063] SP (Semi-Persistent): SP-CSI feedback can use periodic CSI-RS or semi-persistent CSI-RS (SP-CSI-RS) for channel measurements, and correspondingly use periodic CSI-IM or semi-persistent CSI-IM (SP-CSI-IM) for interference measurements. NZP CSI-RS is not supported for interference measurements. SP-CSI can be reported based on either PUSCH or PUCCH. PUSCH-based SP-CSI is more similar to aperiodic CSI reporting, with dynamically allocated feedback resources; while PUCCH-based SP-CSI is more similar to periodic CSI reporting, with semi-static feedback resource indication. Therefore, these two feedback methods employ different activation and deactivation mechanisms.

[0064] PUSCH-based SP-CSI: Activated and deactivated by DCI signaling. Within the CSI feedback framework, RRC configures multiple trigger states, up to 64, with each trigger state corresponding to a CSI reporting setting. A trigger state is activated using the CSI request field in DCI. Multiple PUSCH-based SP-CSI instances can be active simultaneously. During CSI acquisition, each CSI reporting setting's associated resource setting contains only one CSI-RS resource set.

[0065] SP-CSI Activation and Deactivation: To distinguish between non-periodic CSI reporting triggering and SP-CSI reporting activation, the DCI format 0_1 ​​scrambled with SP-CSI C-RNTI (Cell-Radio Network Temporary Identifier) ​​is used to activate and deactivate SP-CSI.

[0066] SP-CSI Feedback Slot Offset: Since PUSCH resources are dynamically allocated, the SP-CSI feedback slot offset is indicated by the DCI. This feedback slot offset represents the number of slots from DCI activation to SP-CSI reporting. When SP-CSI reporting is activated in slot n, and the DCI indicates a slot offset of Y, the first SP-CSI reporting slot is n+Y, the second SP-CSI reporting slot is n+Y+P, and so on. Here, P represents the SP-CSI feedback period. The candidate value for this feedback slot Y is configured in the report setting by RRC signaling.

[0067] Activation and deactivation during BWP (Bandwidth Part) handover: Because PUSCH resources are dynamically allocated, CSI reporting based on PUSCH is deactivated during uplink or downlink BWP handover. When the BWP handover is restored, it needs to be reactivated using DCI signaling.

[0068] PUCCH-based SP-CSI: Activated and deactivated by MAC CE. Within the CSI feedback framework, RRC configures multiple SP CSI report settings, and each report setting is configured with multiple PUCCH resources, with one PUCCH resource configured for each candidate UL BWP. MAC CE activates only one report setting at a time.

[0069] SP-CSI Feedback Slot Offset: PUCCH resources are semi-statically allocated, therefore the SP-CSI feedback period and slot offset are configured by RRC in the report settings. It represents the absolute slot position of the system and is independent of the MAC CE activation time.

[0070] Activation and deactivation during BWP handover: During uplink BWP handover, since the PUCCH resources for each candidate BWP have already been configured by RRC, continuous SP-CSI feedback can be guaranteed. Considering the semi-static allocation of PUCCH resources, during downlink BWP handover, CSI reporting based on PUCCH remains active. When the BWP handover back, there is no need to use new DCI signaling to reactivate it, and reporting can continue.

[0071] AP (Aperiodic): Aperiodic CSI reporting is configured and triggered using MAC CE combined with DCI, and is reported based on PUSCH. RRC configures multiple CSI trigger states. Unlike SP-CSI reporting, each CSI trigger state can correspond to one or more report settings. A report setting is triggered by the CSI request field in DCI. The size of the CSI request field in DCI format 0_1 ​​can be configured from 0 to 6 bits by RRC signaling, thus indicating a maximum of 64 CSI trigger states. When the number of CSI trigger states configured by RRC exceeds 64, MAC CE signaling maps 64 of these CSI trigger states to the CSI request field. Aperiodic CSI reporting can use periodic, semi-persistent, or aperiodic CSI-RS for channel measurement, and correspondingly use periodic, semi-persistent, or aperiodic CSI-IM for interference measurement. Only aperiodic NZP CSI-RS can be used for interference measurement.

[0072] Each triggered state can be associated with 1, 2, or 3 resource settings.

[0073] Associated with one resource setting: used for beam management.

[0074] It is associated with two resource settings: one setting for channel measurement and the other setting for interference measurement based on CSI-IM or interference measurement based on NZP CSI-RS.

[0075] It is associated with three resource settings: one setting for channel measurement, one setting for CSI-IM-based interference measurement, and another setting for NZP CSI-RS-based interference measurement.

[0076] If a resource setting contains multiple resource sets, only one resource set is selected. The QCL information for the CSI-RS resources in this resource set is configured for each resource by the TCI state.

[0077] Feedback slot offset for A-CSI (Aperiodic CSI): Similar to SP-CSI, the slot offset reported by Aperiodic CSI is indicated by DCI, and its candidate values ​​are configured in the report setting by RRC signaling. Since each trigger state can correspond to multiple report settings, and different report settings may be configured with different reporting offsets, a unique reporting offset needs to be determined to ensure that all A-CSI reports in the same PUSCH resource. The maximum slot offset among the slot offsets reported by each A-CSI indicated by DCI can be defined as the slot offset corresponding to this trigger state. Assuming a trigger state corresponds to N report settings, if Yi represents the reporting offset of report setting i indicated by DCI, i = 0, 1, ..., N-1, then the reporting offset of A-CSI for this trigger state is determined as follows:

[0078] In the following embodiments, "CSI" can be equivalently replaced with "CSI report", "CSI resource" can be equivalently replaced with "CSI-RS resource", "reporting setting" can be equivalently replaced with "report setting", and "trigger status" can be equivalently replaced with "CSI trigger status". "Report" can be interchanged with "report". "Configuration" and "configuration information" can be interchanged. "Activate or indicate or trigger CSI-RS resource" and "Activate or indicate or trigger CSI report" can be interchanged. "Resource" and "reference signal" can be interchanged.

[0079] The following description is based on specific examples.

[0080] First aspect of the embodiments

[0081] This application provides a report sending method, which is described from the perspective of the terminal device.

[0082] Figure 2 is a schematic diagram of a report sending method according to an embodiment of this application. As shown in Figure 2, the method includes:

[0083] 201. The terminal device receives Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information from the network device, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0084] 202. The terminal device measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to the cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0085] Through the embodiments of this application, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0086] In some embodiments, a cell handover command for Layer 1 or Layer 2 triggered mobility (LTM) can be carried by a MAC CE, which can indicate the candidate cell for handover and the TCI state applied on that cell. The CSC MAC CE may also include a Timing Advance Command (TAC) field, which the terminal device can use for uplink synchronization.

[0087] For example, a Timing Advance (TA) can be specified, or a capable terminal device can be instructed to obtain the TA based on measurements, thus eliminating the need for the terminal device to perform the RACH procedure after a cell handover command. This is called RACH-less LTM. Additionally, Rel-18 also supports performing the RACH procedure after a cell handover command; this is called RACH-based LTM. If the cell handover command does not specify a valid TA, and the terminal device is not capable of obtaining the TA based on measurements, then the terminal device needs to obtain the TA through the RACH procedure after the cell handover command. This RACH procedure can be Contention-Free Random Access (CFRA), i.e., random access without contention, or Contention-Based Random Access (CBRA).

[0088] In some embodiments, in an LTM scenario, CSI acquisition based on CSI-RS can be specified on a candidate cell before or during cell handover.

[0089] In some embodiments, the terminal device may perform CSI-RS measurement and CSI reporting operations after receiving a Cell Handover Command (CSC) for Layer 1 or Layer 2 Mobility (LTM) triggered. For example, based on the target cell indicated in the CSC, the terminal device may perform CSI-RS measurement for that target cell and send the generated CSI report directly to that target cell.

[0090] In other embodiments, the terminal device can initiate CSI-RS measurements before receiving a Cell Handover Command (CSC) for Layer 1 or Layer 2 Mobility (LTM) triggered. Upon receiving the CSC, the terminal device reports the CSI of the target cell as indicated in the CSC. This further reduces time delays and cell handover interruption time.

[0091] When a terminal device begins CSI-RS measurement before receiving a CSC (Cell Controller Search), since the terminal device is unsure which candidate cell the target cell is after the cell handover, it can configure CSI-RS resources for one or more candidate cells before receiving the CSC and acquire the CSI of those candidate cells based on the configured CSI-RS resources. After receiving the CSC, based on the target cell indicated by the CSC, the terminal device selects the CSI of the candidate cell identified as the target cell from the acquired candidate cell CSIs and reports that CSI.

[0092] The following is an exemplary description of the CSI-RS resource configuration information and CSI reporting configuration information in Embodiment 201 of this application.

[0093] In some embodiments, each resource configuration in the CSI-RS resource configuration information configuration includes at least one CSI-RS resource set, and one CSI-RS resource set is associated with one or more candidate cells. Before receiving a CSC, the terminal device is pre-configured with the CSI-RS resources of one or more candidate cells, thereby enabling the terminal device to perform CSI-RS measurements on the one or more candidate cells and thus acquire the CSI of the one or more candidate cells. After receiving a CSC, the CSI of the target cell can be quickly reported, thereby further reducing time delay and cell handover interruption time. The aforementioned candidate cells can be all or some of the candidate cells.

[0094] In some embodiments, a CSI-RS resource set may contain CSI-RS resources for one candidate cell, or a CSI-RS resource set may contain CSI-RS resources for multiple candidate cells. Each candidate cell may be associated with one CSI-RS resource, or at least one CSI-RS resource, and / or each candidate cell may be associated with a CSI-RS resource set. The number of CSI-RS resources associated with each candidate cell may be the same or different.

[0095] In some examples (i), a CSI-RS resource set contains CSI-RS resources for multiple candidate cells. Each resource in a CSI-RS resource set is associated with a candidate cell, and each candidate cell is associated with one or more CSI-RS resources. The number of CSI-RS associated with each candidate cell may be the same or different.

[0096] In some examples (ii), a CSI-RS resource set contains CSI-RS resources for multiple candidate cells, each resource in a CSI-RS resource set is associated with a candidate cell, and each candidate cell is associated with a CSI-RS resource.

[0097] In some examples (iii), a CSI-RS resource set contains a CSI-RS resource for a candidate cell. A CSI-RS resource set includes at least one resource, meaning that each candidate cell is associated with one or more CSI-RS resources.

[0098] In some examples (iv), a CSI-RS resource set contains a CSI-RS resource for a candidate cell. A CSI-RS resource set includes one resource, meaning that each candidate cell is associated with one CSI-RS resource.

[0099] The above examples can be implemented independently or in combination in different scenarios. Considering the varying requirements for computational complexity and time in different scenarios, the number of resources associated with candidate cells can be configured for each scenario; for example, when the UE performs CSI measurements before CSC, each candidate cell is associated with one or more CSI-RS resources; if the UE performs CSI measurements after CSC, each candidate cell is associated with only one CSI-RS resource. Further examples are not provided here.

[0100] In some embodiments, the CSI-RS resource configuration information includes at least one or more index values ​​of candidate cells. Thus, the terminal device can determine the correspondence between the configured CSI-RS and the candidate cells, and further determine the correspondence between the CSI measured based on the CSI-RS and the candidate cells, thereby enabling accurate reporting of CSI.

[0101] In some embodiments, the index value of a candidate cell can be various values ​​that can distinguish candidate cells. For example, the index value of a candidate cell can be a Physical Cell Identifier (PCI).

[0102] In some embodiments, the CSI reporting configuration information is associated with one or more candidate cells. Before receiving a CSC, the terminal device is pre-configured with the CSI reporting configuration of one or more candidate cells. Therefore, after receiving a CSC, the terminal device can report the CSI of the target cell according to the CSI reporting configuration of the target cell among the one or more candidate cells, thereby further reducing time delay and cell handover interruption time. The aforementioned candidate cells can be all or some of the candidate cells.

[0103] In some embodiments, the CSI reporting configuration information includes at least the index values ​​of one or more candidate cells and / or information on the associated CSI-RS resource configuration and / or information on the associated CSI-RS resource set. Thus, the terminal device can determine the correspondence between the CSI reporting configuration and the candidate cells, as well as the correspondence between the CSI reporting configuration and the resource configuration.

[0104] In some implementations (i), as in the aforementioned examples (i) and (ii), the CSI reporting configuration information is associated with a candidate cell. New information elements, such as the candidate cell index (PCI) and / or the LTM candidate configuration identifier (LTM-CandidateID), can be added to each CSI reporting configuration information to determine the correspondence between the CSI reporting configuration and the candidate cell. Alternatively, each CSI reporting configuration information can include CSI resource configuration information (identifier) ​​and / or CSI-RS resource set information (identifier) ​​within the CSI resource configuration to determine the correspondence between the CSI reporting configuration and the resource configuration. As shown in Figure 3A, CSI reporting configuration #X is associated with a candidate cell i and a CSI-RS resource set #Y. This reporting configuration information includes the PCI of candidate cell i and the identifier of resource set #Y. The CSI resource set #Y includes multiple CSI-RS resources, each CSI-RS resource being associated with a candidate cell. Candidate cell i is associated with one CSI-RS resource, and candidate cell j is associated with three CSI-RS resources. As shown in Figure 3B, the difference from Figure 3A is that each candidate cell is associated with one CSI-RS resource, that is, candidate cell i is associated with 1 CSI-RS resource.

[0105] In some implementations (ii), as in the aforementioned examples (iii) and (iv), the CSI reporting configuration information is associated with a candidate cell. New information elements, such as the candidate cell index value (PCI) and / or the LTM candidate configuration identifier (LTM-CandidateID), can be added to each CSI reporting configuration information to determine the correspondence between the CSI reporting configuration and the candidate cell. Information on CSI resource configuration (identifier) ​​and / or information on CSI-RS resource sets within the CSI resource configuration can also be included in each CSI reporting configuration information to determine the correspondence between the CSI reporting configuration and the resource configuration. As shown in Figure 4A, CSI reporting configuration #X is associated with a candidate cell i and a CSI-RS resource set #Y. This reporting configuration information includes the PCI of candidate cell i and the identifier of resource set #Y. The CSI resource set #Y includes multiple CSI-RS resources associated with a candidate cell i. As shown in Figure 4B, the difference from Figure 4A is that each candidate cell is associated with one CSI-RS resource, that is, candidate cell i is associated with 1 CSI-RS resource.

[0106] In some implementations (iii), in the aforementioned examples (i) and (ii), the CSI reporting configuration information is associated with multiple candidate cells. It is not necessary to add new information elements to each CSI reporting configuration information, such as the candidate cell index value (PCI) and / or LTM candidate configuration identifier (LTM-CandidateID). All candidate cells in the CSI-RS reporting configuration share the same resource configuration information. Alternatively, each CSI reporting configuration information may include CSI resource configuration information (identifier) ​​and / or CSI-RS resource set information (identifier) ​​within the CSI resource configuration to determine the correspondence between CSI reporting configurations and resource configurations. As shown in Figure 5A, CSI reporting configuration #X is associated with CSI-RS resource set #Y, which includes multiple CSI-RS resources. Each CSI-RS resource is associated with one candidate cell. Candidate cell i is associated with 3 CSI-RS resources, and candidate cell j is associated with 1 CSI-RS resource. This means that CSI reporting configuration #X is associated with candidate cells i and j. As shown in Figure 5B, the difference from Figure 5A is that each candidate cell is associated with one CSI-RS resource, that is, candidate cell i is associated with 1 CSI-RS resource.

[0107] In some implementations (iv), as in the aforementioned examples (iii) and (iv), the CSI reporting configuration information is associated with multiple candidate cells. New information elements, such as the candidate cell index value (PCI) and / or the LTM candidate configuration identifier (LTM-CandidateID), can be added to each CSI reporting configuration information to determine the correspondence between the CSI reporting configuration and the candidate cells. Information (identifiers) of CSI resource configuration and / or information (identifiers) of CSI-RS resource sets within the CSI resource configuration can also be included in each CSI reporting configuration information to determine the correspondence between the CSI reporting configuration and the resource configuration. As shown in Figure 6A, CSI reporting configuration #X is associated with multiple candidate cells, i.e., candidate cells i and j; CSI-RS resource set #Y is associated with candidate cell i; and CSI-RS resource set #Z is associated with candidate cell j. This reporting configuration information includes the PCIs of candidate cells i and j, as well as the identifiers of resource sets #Y and #Z. The CSI resource set #Y includes multiple CSI-RS resources associated with candidate cell i. The CSI resource set #Z includes one CSI-RS resource associated with candidate cell j. As shown in Figure 6B, the difference from Figure 6A is that each candidate cell is associated with one CSI-RS resource, that is, candidate cell i is associated with 1 CSI-RS resource.

[0108] In some embodiments, the method may further include: a terminal device receiving CSI trigger status configuration information sent by a network device, the trigger status configuration information including one or more trigger states, each trigger state corresponding to a CSI reporting configuration. New information elements, such as the candidate cell index (PCI), may not be added to the CSI reporting configuration information. The CSI trigger status configuration information at least includes the index values ​​of one or more candidate cells and the associated CSI reporting configuration information (identifier).

[0109] In some embodiments, in step 202, the terminal device can measure the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and send a CSI report based on the measurement results. The following describes the issues involved in the CSI measurement process.

[0110] In some embodiments, the method may further include: the terminal device also receiving a cell handover command and measuring CSI-RS resources before or after receiving the CSC.

[0111] In some implementations, after receiving a CSC, the terminal device measures the CSI-RS resources associated with the target candidate cell, which is indicated by a cell handover command.

[0112] In some implementations, the terminal device measures the CSI-RS resources associated with one or more candidate cells before receiving the CSC.

[0113] In some examples, the terminal device measures all (M, where M is an integer greater than or equal to 1) CSI-RS resources associated with candidate cells in a higher-layer signaling configuration. This higher-layer signaling may be higher-layer signaling carrying CSI reporting configurations and / or resource configurations. For example, the terminal device measures all CSI-RS resources associated with all M candidate cells within the CSI-RS resource set. Alternatively, the terminal device measures the CSI-RS resources associated with the relevant candidate cells in each of the all CSI reporting configurations.

[0114] In some examples, the terminal device measures the CSI-RS resources associated with M' candidate cells (hereinafter referred to as first candidate cells) out of all (M, where M is an integer greater than or equal to 1) candidate cells in the higher-layer signaling configuration. For example, the terminal device measures all CSI-RS resources associated with all M' candidate cells within the CSI-RS resource set. Another example is that the terminal device measures the CSI-RS resources associated with the relevant M' candidate cells in each CSI reporting configuration of all CSI reporting configurations.

[0115] The following explains how to determine the first candidate cell (M' candidate cells).

[0116] In some embodiments, the terminal device receives first indication information for determining a first candidate cell to be measured. The first indication information includes a first bitmap, the number of bits in the first bitmap being equal to the total number of candidate cells (M). When the value of each bit is a first value, the candidate cell corresponding to that bit is the first candidate cell. For example, among M bits, the candidate cell corresponding to the bit with a value of 1 is the first candidate cell, and the candidate cell corresponding to the bit with a value of 0 is not considered the first candidate cell. That is, M' bits out of M bits have a value of 1, and vice versa. Alternatively, for the above embodiments (i) and (ii), since one CSI reporting configuration is only associated with one candidate cell, the number of bits in the first bitmap is equal to the total number of reporting configurations. When the value of each bit is a first value, the candidate cell associated with the reporting configuration corresponding to that bit is the first candidate cell. The specific embodiments are as described above and will not be repeated here. Alternatively, the first indication information may also directly indicate the index of the first candidate cell or indicate the information (identifier ID) of the CSI reporting configuration associated with the first candidate cell.

[0117] In the above embodiments, the first indication information is carried by radio resource control signaling, media access control control elements, and / or downlink control information. For example, it may be indicated by the DCI or MAC CE through the current serving cell before receiving the CSC, or by the RRC by adding information elements in the LTM-config, or by the PDCCH order. This application embodiment is not intended to limit it.

[0118] In some embodiments, the first candidate cell is the candidate cell associated with the target and / or source reference signal in the TCI state of the serving cell. For example, the TCI state is dynamically activated via MAC CE. The TCI state includes the identifier of the reference signal and its QCL type information. The cell associated with the reference signal in the activated TCI state is determined as the first candidate cell.

[0119] In some embodiments, to determine the caching capacity (activation port and / or activation resources) of a terminal device, it is necessary to count the cached resources within a predetermined window. In conventional technology, for a CSI-RS resource, as long as it is referred in the reporting configuration, the CSI-RS resource is counted as occupying one cached resource. In the embodiments of this application, after receiving the CSC, the CSI-RS resources related to the target cell i indicated in the CSC within the CSI reporting configuration information are counted. Before receiving the CSC, all resources within all CSI-RS resource sets related to the CSI reporting configuration information are counted; all resources within the CSI-RS resource sets related to the CSI reporting configuration information are... Where M' is an integer greater than or equal to 1 and less than or equal to the total number of candidate cells M, and K i This refers to the CSI-RS resource data associated with the i-th candidate cell.

[0120] In some embodiments, the computing power of the terminal device can be indicated by the number of simultaneous CSI calculations (N_CPU), i.e., the number of CSI calculations supported concurrently. If CPU resources are insufficient to support all requested CSI calculations, the terminal device can selectively process CSI reports based on priority. For example, high-priority CSI reports will be processed first, while low-priority reports may not be updated.

[0121] In some embodiments, the terminal device calculates the CSI report in the CSI reporting configuration within a specified window using the central processing unit (CPU) resources described below. The CPU resource usage of the CSI report is explained below.

[0122] In some embodiments, the number of CPUs occupied by the CSI report is equal to 1, or equal to the number of CSI-RS resources associated with the target candidate cell indicated in the CSC, or equal to the total number of resources Ks in the CSI-RS resource set associated with the CSI reporting configuration information, or equal to the total number of candidate cells M, or equal to the number of first candidate cells M', or equal to the total number of CSI-RS resources associated with all first candidate cells. Or it is equal to the maximum number of CSI-RS resources among the CSI-RS resources associated with each first candidate cell, Max(K). i ), i = 1, 2, ... M′, or equal to the product of the total number of resources Ks in the CSI-RS resource set related to the CSI reported configuration information and the adjustment coefficient X, wherein the adjustment coefficient X is a positive number greater than or less than 1.

[0123] For example, in implementation (i), the number of CPUs occupied by the CSI report is equal to 1, or equal to the total number of resources Ks in the CSI-RS resource set related to the CSI reporting configuration information, or equal to the total number of candidate cells M, or equal to the number of first candidate cells M', or equal to the total number of CSI-RS resources related to all first candidate cells. Or it is equal to the maximum number of CSI-RS resources among the CSI-RS resources associated with each first candidate cell, Max(K). i ), i = 1, 2, ... M′, or equal to the product of the total number of resources Ks in the CSI-RS resource set related to the CSI reported configuration information and the adjustment coefficient X, wherein the adjustment coefficient X is a positive number greater than or less than 1.

[0124] For example, in implementation (ii), the number of CPUs occupied by the CSI report is equal to 1, or equal to the total number of resources Ks in the CSI-RS resource set related to the CSI reporting configuration information, or equal to the product of the total number of resources Ks in the CSI-RS resource set related to the CSI reporting configuration information and the adjustment coefficient X, wherein the adjustment coefficient X is a positive number greater than or less than 1.

[0125] For example, in implementation (iii), the number of CPUs occupied by the CSI report is equal to 1, or equal to the number of CSI-RS resources associated with the target candidate cell indicated in the CSC, or equal to the total number of resources Ks in the CSI-RS resource set associated with the CSI reporting configuration information, or equal to the total number of candidate cells M, or equal to the product of the total number of resources Ks in the CSI-RS resource set associated with the CSI reporting configuration information and the adjustment coefficient X, wherein the adjustment coefficient X is a positive number greater than or less than 1.

[0126] For example, in implementation (iv), the number of CPUs occupied by the CSI report is equal to 1, or equal to the total number of resources Ks in the CSI-RS resource set related to the CSI reporting configuration information, or equal to the number of CSI-RS resources related to all candidate cells or the first candidate cell. Alternatively, it can be equal to the product of the total number of resources Ks in the CSI-RS resource set related to the CSI reported configuration information and the adjustment coefficient X, where the adjustment coefficient X is a positive number greater than or less than 1.

[0127] In some embodiments, when a terminal device performs CSI-RS measurements based on a CSI reporting configuration, each CSI report occupies a certain amount of CPU resources within one or more orthogonal frequency division multiplexing (OFDM) symbols.

[0128] In some examples, regardless of whether it is a target candidate cell or other candidate cells, the CSI report begins from the first symbol after receiving the second indication information and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report, occupying the CPU; or, the CSI report begins from the first symbol after receiving the cell handover command and continues until the end of the PUSCH symbol carrying the CSI report, occupying the CPU. That is, the CPU occupation period (CPU occupation window) begins at the first symbol after receiving the second indication information or the first symbol after receiving the cell handover command, and continues until the end of the PUSCH symbol carrying the CSI report.

[0129] In some examples, the CSI report for the target cell indicated in the CSC begins from the first symbol after receiving the higher-layer signaling carrying the CSI reporting configuration information and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report, occupying the CPU. For other (M-1) candidate cells, the CSI report begins from the first symbol after receiving the higher-layer signaling carrying the CSI reporting configuration information and continues until the end of the symbol carrying the second indication information, occupying the CPU; and / or until the end of the symbol carrying the CSC. That is, the CPU occupation time period (CPU occupation window) begins from the first symbol after receiving the higher-layer signaling. For the target cell in the CSC, the CPU occupation time period (CPU occupation window) continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report; for non-target cells, the CPU occupation time period (CPU occupation window) continues until the end of the symbol carrying the second indication information, or until the end of the symbol carrying the CSC.

[0130] In some examples, the CSI report for the target cell begins with the first symbol after receiving the first indication information used to determine the first candidate cell to be measured, and occupies the CPU until the end of the symbol of the Physical Uplink Shared Channel (PUSCH) carrying the CSI report; the CSI report for other candidate cells begins with the first symbol after receiving the first indication information used to determine the first candidate cell to be measured, and occupies the CPU until the end of the symbol of the second indication information received; and / or until the end of the symbol of the CSC received. That is, CPU occupation begins with the first symbol after receiving the information indicating the first candidate cell. For the target cell in the CSC, the CPU occupation period (CPU occupation window) lasts until the end of the symbol of the Physical Uplink Shared Channel (PUSCH) carrying the CSI report; for non-target cells, the CPU occupation period (CPU occupation window) lasts until the end of the symbol of the second indication information received, or until the end of the symbol of the CSC received.

[0131] The second indication information is described below. This second indication information is used to activate, indicate, or trigger CSI. This second indication information can be carried in at least one of the following: a Media Access Control Element (MAC CE) signaling carrying the cell handover instruction, downlink control information (DCI), and a Physical Downlink Shared Channel (PDSCH) carrying a Random Access Response (RAR) uplink grant. In other words, the second indication information can be sent together with the CSC, for example, by activating, indicating, or triggering a CSI report via MAC CE signaling carrying the cell handover instruction. Alternatively, the second indication information can also be sent after the CSC, for example, by activating, indicating, or triggering a CSI report via CSI request indication information based on the DCI or a PDSCH channel carrying a RAR uplink grant. This second indication information can be associated with a CSI trigger state in a CSI trigger list configured in higher-layer signaling. In other words, the second indication information can indicate a CSI trigger state. The terminal device can select a CSI trigger state from the first 2^Q CSI trigger states in the CSI trigger list based on this second indication information. A subset of CSI trigger states in the CSI trigger list can be selected and indicated via a second indication message (e.g., MAC CE signaling). In other words, a subset of CSI trigger states in the CSI trigger list can be indicated via MAC CE signaling. This application is not limited to this; other signaling can also be used to indicate the subset. When indicating a subset of CSI trigger states in the CSI trigger list via MAC CE, the selection and indication of the trigger states in the subset can also be made via CSI request indication information in the DCI and / or a PDSCH channel carrying RAR uplink grants. The MAC CE signaling can be MAC CE signaling carrying cell handover instructions. This application is not limited to this; other signaling can also be used. A single MAC CE signaling can activate, indicate, or trigger CSI-RS resources and CSI. This application is not limited to this; a single other signaling can also activate, indicate, or trigger CSI-RS resources and CSI simultaneously, or two separate signaling messages can be used to activate, indicate, or trigger CSI-RS resources and CSI. The MAC CE signaling can be MAC CE signaling carrying cell handover instructions. This application is not limited to this; the MAC CE signaling can also be other signaling.

[0132] The following example illustrates this.

[0133] Example 1: When the CSI reporting type is semi-persistent or aperiodic CSI reporting, the number of trigger states in the CSI trigger list configured in the higher-layer signaling will not exceed 2^Q, where Q is one of {0, 1, 2, 3, 4, 5, 6}. In this case, CSI and / or CSI trigger states can be activated and / or indicated and / or triggered in the following ways:

[0134] (1) The second indication information is carried in the Media Access Control (MAC CE) element that carries the cell handover command. It can be indicated by the existing reserved bits (R) in the CSC signaling. At most, R = Q bits are used for indication, where Q is one of {0, 1, 2, 3, 4, 5, 6}.

[0135] (2) The second indication information is the CSI request indication information in DCI, specifically indicated by Q bits.

[0136] (3) The second instruction information carries the RAR UL grant (Random Access Response Uplink Grant, PDSCH).

[0137] Specifically, it is indicated using Q bits.

[0138] Example 2: When the CSI reporting type is aperiodic CSI reporting, the number Z of trigger states in the CSI trigger list configured in the higher-layer signaling is greater than 2^Q. In this case, a selection indicator can be added to the MAC CE of the CSC to select trigger states less than or equal to 2^Q. Then, combined with the DCI or RAR UL grant as the second indicator information, a trigger state can be selected from the set of selected trigger states as the active CSI trigger state for the current CSI report.

[0139] In some embodiments, the CSI report includes at least one of the following: Precoding Matrix Indicator (PMI), Channel Quality Indication (CQI), and Rank Indication (RI).

[0140] In some embodiments, for example (i) above, since each resource in the CSI-RS resource set is associated with a candidate cell, and each candidate cell is associated with one or more CSI-RS resources, the terminal device can include a CSI-RS Resource Indicator (CRI) based on the target cell i in the CSI report. The CRI is reported within the range of K resources associated only with the target cell i. iOne CSI-RS resource. The CRI reporting bit width is... For example, K associated with CRI and the target cell i i One of the CSI-RS resources is associated with a resource, or, CRI k is associated with K of the target cell i. i The (k+1)th resource in a CSI-RS resource corresponds to the configured (k+1)th entry of associated nzp-CSI-RS-Resources in the corresponding NZP-CSI-RS-ResourceSet for channel measurement). For example, for Figures 3A and 5A, the reporting range of CRIs includes CSI-RS resources 0-2 associated with target cell i, and CSI-RS resource 3 associated with target cell j.

[0141] In some embodiments, in the CSI report, for example (ii) above, since each resource in the CSI-RS resource set is associated with a candidate cell, and each candidate cell is associated with a CSI-RS resource, the CRI does not need to be included in the CSI report. As shown in Figures 3B and 5B, the CRI does not need to be included in the CSI report.

[0142] In some embodiments, for example (iii) above, the CSI report may include a CSI-RS Resource Indicator (CRI) based on target cell i, wherein the CRI is reported within the range of K cells in the CSI resource set. s One CSI-RS resource. The CRI reporting bit width is... For example, for Figures 4A and 6A, the reporting range of CRI includes CSI-RS resources 0-2.

[0143] In some embodiments, in the CSI report, for example (iv) above, since each resource in the CSI-RS resource set is associated with a candidate cell, and each candidate cell is associated with a CSI-RS resource, the CRI does not need to be included in the CSI report. As shown in Figures 4B and 6B, the CRI does not need to be included in the CSI report.

[0144] It is worth noting that the above figures are merely illustrative of embodiments of this application, and the application is not limited thereto. For example, the execution order between various operations can be appropriately adjusted, and other operations can be added or some operations can be removed. Those skilled in the art can make appropriate modifications based on the above description, and are not limited to the description in the above figures.

[0145] The above embodiments are merely illustrative examples of the embodiments of this application, but this application is not limited thereto, and appropriate modifications can be made based on the above embodiments. For example, the above embodiments can be used alone, or one or more of the above embodiments can be combined. The embodiments of this application are illustrated using two reports as an example, but can be extended to cases with more than two reports, which will not be elaborated further.

[0146] Through the above embodiments, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0147] Second aspect of the embodiments

[0148] This application provides a report receiving method, described from the perspective of a network device. The embodiments of the second aspect can be combined with the embodiments of the first aspect, and the content identical to that of the embodiments of the first aspect will not be repeated.

[0149] Figure 7 is a schematic diagram of a report sending method according to an embodiment of this application. As shown in Figure 7, the method includes:

[0150] 701. The network device sends Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information to the terminal device, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0151] 702, The network device receives a CSI report sent by the terminal device, wherein the CSI report is obtained by measuring the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and the CSI report is related to a cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0152] For the implementation methods of 701-702, please refer to 201-202. Repeated parts will not be repeated.

[0153] In some embodiments, the network device may also send a cell handover command and / or a first indication information and / or a second indication information to the terminal device. For specific implementation details, please refer to the embodiments of the first aspect, which will not be repeated here.

[0154] In some embodiments, the implementation of resource configuration information and channel state information reporting configuration information can refer to the embodiments of the first aspect, and will not be repeated here.

[0155] It is worth noting that the above figures are merely illustrative of embodiments of this application, and the application is not limited thereto. For example, the execution order between various operations can be appropriately adjusted, and other operations can be added or some operations can be removed. Those skilled in the art can make appropriate modifications based on the above description, and are not limited to the description in the above figures.

[0156] The above embodiments are merely illustrative examples of embodiments of this application, but this application is not limited thereto, and appropriate modifications can be made based on the above embodiments. For example, the above embodiments can be used alone, or one or more of the above embodiments can be combined.

[0157] Through the above embodiments, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0158] Third aspect of the embodiments

[0159] This application provides a report sending device. This device may be, for example, a terminal device, or one or more components or parts configured within a terminal device; details identical to those in the first aspect of the embodiment will not be repeated.

[0160] Figure 8 is a schematic diagram of a report sending apparatus according to an embodiment of this application. As shown in Figure 8, the report sending apparatus 800 includes:

[0161] Receiver 801 receives Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information from network devices, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0162] The processor 802 measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to a cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0163] In some embodiments, the implementation of receiver 801-processor 802 may refer to the embodiments of the first aspect, which will not be repeated here.

[0164] In some embodiments, the CSI-RS resource configuration information includes at least the index values ​​of one or more candidate cells; and / or the CSI reporting configuration information includes at least the index values ​​of one or more candidate cells and / or the associated CSI-RS resource configuration information and / or the associated CSI-RS resource set information; and / or the receiver 801 also receives CSI trigger status configuration information, which includes at least the index values ​​of one or more candidate cells and the associated CSI reporting configuration information.

[0165] In some embodiments, the CSI-RS resource configuration information is used to configure at least one CSI-RS resource set, and one CSI-RS resource set is associated with one or more candidate cells. One CSI-RS resource in a CSI-RS resource set is associated with one candidate cell. Alternatively, each candidate cell may be associated with one CSI-RS resource, or at least one CSI-RS resource, and / or each candidate cell may be associated with one CSI-RS resource set. The number of CSI-RS resources associated with each candidate cell may be the same or different.

[0166] In some embodiments, the CSI reporting configuration information is associated with a candidate cell, and a CSI-RS resource set in the CSI-RS resource configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource within a CSI-RS resource set is associated with one candidate cell, and each candidate cell contains one CSI-RS resource or at least one CSI-RS resource; or...

[0167] Both the CSI reporting configuration information and the CSI-RS resource configuration information are associated with a candidate cell. Specifically, a CSI-RS resource set may contain one CSI-RS resource, or a CSI-RS resource set may contain at least one resource; or...

[0168] One CSI-RS resource set in the CSI-RS resource configuration information is associated with one candidate cell, and the CSI reporting configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource set includes one CSI-RS resource, or one CSI-RS resource set includes at least one resource; or...

[0169] One CSI-RS resource set in the CSI-RS resource configuration information is associated with multiple candidate cells, and the CSI reporting configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource in one CSI-RS resource set is associated with one candidate cell, and each candidate cell contains one CSI-RS resource or at least one CSI-RS resource.

[0170] In some embodiments, receiver 801 further receives the cell handover command, and the processor measures CSI-RS resources before or after receiving the CSC. Processor 802 measures CSI-RS resources associated with one or more candidate cells before receiving the CSC, including:

[0171] The processor 802 measures the CSI-RS resources associated with all candidate cells configured in the higher-layer signaling, or...

[0172] The receiver 801 also receives first indication information for determining a first candidate cell to be measured. The processor 802 measures the CSI-RS resources associated with the first candidate cell determined according to the first indication information. Alternatively, the processor 802 measures the CSI-RS resources associated with the first candidate cell associated with the target and / or source reference signal in the Transmission Configuration Indication (TCI) state of the serving cell.

[0173] The implementation method for the first instruction information can be referred to the implementation method of the first aspect, and will not be repeated here.

[0174] In some embodiments, the CSI report for the target cell indicated in the CSC starts from the first symbol after receiving the higher-layer signaling carrying the CSI reporting configuration information and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report occupies the CPU.

[0175] Alternatively, for other candidate cells, CSI reports may begin from the first symbol after receiving higher-layer signaling carrying the CSI reporting configuration information, and continue until the symbol after receiving the second indication information ends CPU usage; and / or until the symbol after receiving the CSC ends CPU usage;

[0176] Alternatively, the CSI report for the target cell begins with the first symbol after receiving the first indication information used to determine the first candidate cell to be measured, and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report, which occupies the CPU.

[0177] Alternatively, the CSI report for other candidate cells may start from the first symbol after receiving the first indication information for determining the first candidate cell to be measured, and continue until the symbol after receiving the second indication information ends, occupying the CPU; and / or until the symbol after receiving the CSC ends, occupying the CPU.

[0178] The second indication information is used to activate, indicate, or trigger the CSI. The implementation of the second indication information can be referred to the implementation of the first aspect, and will not be repeated here.

[0179] In some embodiments, the number of CPUs occupied by the CSI report is equal to 1, or equal to the number of CSI-RS resources associated with the target candidate cell indicated in the CSC, or equal to the number of resources in the CSI-RS resource set associated with the CSI reporting configuration information, or equal to the total number of candidate cells, or equal to the number of first candidate cells, or equal to the number of CSI-RS resources associated with all first candidate cells, or equal to the largest number of CSI-RS resources among the CSI-RS resources associated with each first candidate cell, or equal to the product of the number of resources in the CSI-RS resource set associated with the CSI reporting configuration information and the adjustment coefficient, wherein the adjustment coefficient is a positive number greater than or less than 1.

[0180] In some embodiments, when determining the cache resources for the CSI report, all resources within the CSI-RS resource set related to the CSI reporting configuration information are calculated before the CSC.

[0181] After the CSC, the CSI-RS resources related to the target cell indicated in the CSC are calculated within the CSI-RS resource set related to the CSI reporting configuration information.

[0182] In some embodiments, the CSI report may or may not include a CSI-RS Resource Indicator (CRI). When each candidate cell is associated with one CSI-RS resource, the CSI report does not include the CRI; or, when each candidate cell is associated with at least one CSI-RS resource, the CSI report includes K associated with the target cell i. i Each CSI-RS resource corresponds to a CRI. Wherein, the CRI is associated with K of the target cell i. i One of the CSI-RS resources is associated with a resource, or, CRI k is associated with K of the target cell i. i The (k+1)th resource in a CSI-RS resource is relevant.

[0183] In some embodiments, the terminal device may further include a transmitter (not shown) that sends a CSI report generated by the processor to the network device.

[0184] It is worth noting that the above description only covers the components or modules relevant to this application, but this application is not limited thereto. The report sending device may also include other components or modules, and for details regarding these components or modules, please refer to related technologies.

[0185] Furthermore, for simplicity, the above figures only exemplarily illustrate the connection relationships or signal flows between the various components or modules. However, those skilled in the art should understand that various related technologies, such as bus connections, can be employed. The aforementioned components or modules can be implemented using hardware facilities such as processors, memory, transmitters, and receivers; this application does not limit this implementation.

[0186] Through the above embodiments, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0187] Fourth aspect of the embodiment

[0188] This application provides a report receiving device. This device may be, for example, a network device, or one or more components or parts configured within a network device; details identical to those in the embodiments of the first to third aspects will not be repeated.

[0189] Figure 9 is a schematic diagram of a report receiving device according to an embodiment of this application. As shown in Figure 9, the report receiving device 900 includes:

[0190] Transmitter 901 sends Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information to terminal equipment, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0191] Receiver 902 receives a CSI report sent by the terminal, wherein the CSI report is obtained by measuring CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and the CSI report is related to a cell handover command for mobility (LTM) triggered at Layer 1 or Layer 2.

[0192] In some embodiments, the implementation of the transmitter 901 and the receiver 902 may refer to the embodiments of the second aspect, which will not be repeated here.

[0193] It is worth noting that the above description only covers the components or modules relevant to this application, but this application is not limited thereto. The report sending device may also include other components or modules, and for details regarding these components or modules, please refer to related technologies.

[0194] Furthermore, for simplicity, the above figures only exemplarily illustrate the connection relationships or signal flows between the various components or modules. However, those skilled in the art should understand that various related technologies, such as bus connections, can be employed. The aforementioned components or modules can be implemented using hardware facilities such as processors, memory, transmitters, and receivers; this application does not limit this implementation.

[0195] Through the above embodiments, when the network side triggers cell handover based on L1 / L2, channel measurement can be performed more quickly and efficiently, and CSI reporting can be performed based on the channel measurement results.

[0196] Fifth aspect of the embodiment

[0197] This application also provides a communication system, including network equipment and terminal equipment.

[0198] In the embodiments of this application, the terminal device, as the sender of the CSI report, may include the apparatus described in the third aspect embodiment, and is configured to execute the method of the first aspect embodiment. Since the method has been described in detail in the first aspect embodiment, its contents are incorporated herein and will not be repeated.

[0199] In the embodiments of this application, the network device, as the receiving end of the CSI report, may include the apparatus described in the embodiments of the fourth aspect, and be configured to perform the method of the embodiments of the second aspect. Since the method has been described in detail in the embodiments of the first and second aspects, its contents are incorporated herein and will not be repeated.

[0200] In addition, the terminal device and the network device can also perform their respective regular operations, and the network device can also perform operations corresponding to the operations of the terminal device, such as the network device receiving information / signals from the terminal device, and / or the network device sending information / signals to the terminal device, the details of which are omitted here.

[0201] This application also provides a terminal device, which may be a UE, but this application is not limited to this and may also be other terminal devices.

[0202] Figure 10 is a schematic diagram of a terminal device according to an embodiment of this application. As shown in Figure 10, the terminal device 1000 may include a processor 1010 and a memory 1020; the memory 1020 stores data and programs and is coupled to the processor 1010. It is worth noting that this figure is exemplary; other types of structures may also be used to supplement or replace this structure to achieve telecommunications functions or other functions.

[0203] In some embodiments, the functionality of the apparatus of the third aspect embodiment can be integrated into the processor 1010, wherein the processor 1010 can be configured to execute a program to implement the method as described in the first aspect embodiment, the contents of which are incorporated herein and will not be repeated here.

[0204] In other embodiments, the apparatus of the third aspect embodiment may be configured separately from the processor 1010. For example, the apparatus of the third aspect embodiment may be configured as a chip connected to the processor 1010, and the functions of the apparatus of the third aspect embodiment may be implemented through the control of the processor 1010.

[0205] As shown in Figure 10, the terminal device 1000 may further include: a communication module 1030, an input unit 1040, a display 1050, and a power supply 1060. The functions of these components are similar to those in the prior art and will not be described in detail here. It is worth noting that the terminal device 1000 does not necessarily include all the components shown in Figure 10; these components are not essential. Furthermore, the terminal device 1000 may also include components not shown in Figure 10, which can be referred to in related technologies.

[0206] This application also provides a network device, which may be, for example, a base station, but this application is not limited to this and may also be other network devices.

[0207] Figure 11 is a schematic diagram of the configuration of a network device according to an embodiment of this application. As shown in Figure 11, the network device 1100 may include a processor 1110 and a memory 1120; the memory 1120 is coupled to the processor 1110. The memory 1120 can store various data; in addition, it also stores information processing programs, and executes the programs under the control of the processor 1110.

[0208] In some embodiments, the functionality of the apparatus of the fourth aspect embodiment can be integrated into the processor 1110, wherein the processor 1110 can be configured to execute a program to implement the method of the second aspect embodiment, the contents of which are incorporated herein and will not be repeated here.

[0209] In other embodiments, the apparatus of the fourth aspect embodiment may be configured separately from the processor 1110. For example, the apparatus of the fourth aspect embodiment may be configured as a chip connected to the processor 1110, and the functions of the apparatus of the fourth aspect embodiment may be implemented through the control of the processor 1110.

[0210] In addition, as shown in Figure 11, network device 1100 may also include a transceiver 1130 and an antenna 1140. The functions of these components are similar to those in the prior art and will not be described again here. It is worth noting that network device 1100 does not necessarily need to include all the components shown in Figure 11; furthermore, network device 1100 may also include components not shown in Figure 11, which can be referred to in the prior art.

[0211] This application also provides a computer program, wherein when the program is executed in a terminal device, the program causes the terminal device to perform the method described in the first aspect of the embodiment.

[0212] This application also provides a storage medium storing a computer program, wherein the computer program causes a terminal device to perform the method described in the first aspect of the embodiment.

[0213] This application also provides a computer program product, which includes at least a computer program that, when executed by a processor, causes a terminal device to perform the method described in the first aspect of the embodiment.

[0214] This application also provides a computer program, wherein when the program is executed in a network device, the program causes the network device to perform the method described in the second aspect of the embodiment.

[0215] This application also provides a storage medium storing a computer program, wherein the computer program causes a network device to perform the method described in the second aspect of the embodiment.

[0216] This application also provides a computer program product, which includes at least a computer program that, when executed by a processor, causes a network device to perform the method described in the second aspect of the embodiments.

[0217] The apparatus and methods described above in this application can be implemented in hardware or in combination with software. This application relates to a computer-readable program that, when executed by a logic component, enables the logic component to implement the apparatus or components described above, or to implement the various methods or steps described above. This application also relates to storage media for storing the above programs, such as hard disks, magnetic disks, optical disks, DVDs, flash memory, etc.

[0218] The methods / apparatus described in conjunction with the embodiments of this application can be directly embodied in hardware, software modules executed by a processor, or a combination of both. For example, one or more and / or combinations of one or more functional block diagrams shown in the figures can correspond to various software modules in a computer program flow, or to various hardware modules. These software modules can correspond to the various steps shown in the figures, respectively. These hardware modules can be implemented, for example, using a field-programmable gate array (FPGA) to embed these software modules.

[0219] The software module can reside in RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, hard disk, removable disk, CD-ROM, or any other form of storage medium known in the art. A storage medium can be coupled to the processor, enabling the processor to read information from and write information to the storage medium; or the storage medium can be an integral part of the processor. The processor and storage medium can reside in an ASIC. The software module can be stored in the memory of a mobile terminal or in a memory card that can be inserted into the mobile terminal. For example, if the device (such as a mobile terminal) uses a high-capacity MEGA-SIM card or a high-capacity flash memory device, the software module can be stored in the MEGA-SIM card or the high-capacity flash memory device.

[0220] One or more and / or one or more combinations of functional blocks described in the accompanying drawings can be implemented as a general-purpose processor, digital signal processor (DSP), application-specific integrated circuit (ASIC), field-programmable gate array (FPGA), or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, or any suitable combination thereof for performing the functions described herein. One or more and / or one or more combinations of functional blocks described in the accompanying drawings can also be implemented as a combination of computing devices, such as a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in communication with a DSP, or any other such configuration.

[0221] The present application has been described above with reference to specific embodiments. However, those skilled in the art should understand that these descriptions are exemplary and not intended to limit the scope of protection of the present application. Those skilled in the art can make various modifications and variations to the present application based on its spirit and principles, and these modifications and variations are also within the scope of the present application.

[0222] The following notes are also included in relation to this application:

[0223] 1. A report sending method, applied to a terminal device, the method comprising:

[0224] The terminal device receives Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information from the network device, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0225] The terminal device measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to the cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

[0226] 2. A report receiving method, applied to a network device, the method comprising:

[0227] The network device sends Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information to the terminal device, wherein the CSI reporting configuration information is related to one or more candidate cells;

[0228] The network device receives a CSI report sent by the terminal device, wherein the CSI report is obtained by measuring the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and the CSI report is related to the cell handover command for mobility (LTM) triggered by layer 1 or layer 2.

[0229] 3. A terminal device, comprising a memory and a processor, the memory storing a computer program and the processor being configured to execute the computer program to implement the method as described in Appendix 1.

[0230] 4. A network device comprising a memory and a processor, the memory storing a computer program and the processor being configured to execute the computer program to implement the method as described in Appendix 2.

[0231] 5. A computer program product comprising at least a computer program that, when executed by a processor, causes a terminal device to perform the method as described in Appendix 1.

[0232] 6. A computer program product comprising at least a computer program that, when executed by a processor, causes a network device to perform the method as described in Appendix 2.

Claims

1. A report sending device, configured in a terminal device, wherein, The device includes: The receiver receives Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information from network devices, wherein the CSI reporting configuration information is associated with one or more candidate cells; The processor measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to a cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.

2. The apparatus according to claim 1, wherein, The CSI-RS resource configuration information includes at least one or more index values ​​of candidate cells; and / or The CSI reported configuration information includes at least the index values ​​of one or more candidate cells and / or the associated CSI-RS resource configuration information and / or the associated CSI-RS resource set information; and / or The receiver also receives CSI trigger status configuration information, which includes at least the index values ​​of one or more candidate cells and the associated CSI reporting configuration information.

3. The apparatus according to claim 1, wherein, The CSI-RS resource configuration information is used to configure at least one CSI-RS resource set, and a CSI-RS resource set is associated with one or more candidate cells.

4. The apparatus according to claim 3, wherein, A CSI-RS resource in a CSI-RS resource set is associated with a candidate cell.

5. The apparatus according to claim 3, wherein, Each candidate cell is associated with one CSI-RS resource, or at least one CSI-RS resource, and / or each candidate cell is associated with a set of CSI-RS resources.

6. The apparatus according to claim 5, wherein, The number of CSI-RS resources associated with each candidate cell may be the same or different.

7. The apparatus according to claim 3, wherein, The CSI reporting configuration information is associated with a candidate cell, and a CSI-RS resource set in the CSI-RS resource configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource within a CSI-RS resource set is associated with one candidate cell, and each candidate cell contains one CSI-RS resource or at least one CSI-RS resource; or... Both the CSI reporting configuration information and the CSI-RS resource configuration information are associated with a candidate cell. Specifically, a CSI-RS resource set may contain one CSI-RS resource, or a CSI-RS resource set may contain at least one resource; or... One CSI-RS resource set in the CSI-RS resource configuration information is associated with one candidate cell, and the CSI reporting configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource set includes one CSI-RS resource, or one CSI-RS resource set includes at least one resource; or... One CSI-RS resource set in the CSI-RS resource configuration information is associated with multiple candidate cells, and the CSI reporting configuration information is associated with multiple candidate cells. Specifically, one CSI-RS resource in one CSI-RS resource set is associated with one candidate cell, and each candidate cell contains one CSI-RS resource or at least one CSI-RS resource.

8. The apparatus according to claim 2, wherein, The receiver also receives the cell handover command, and the processor measures CSI-RS resources before or after receiving the CSC.

9. The apparatus according to claim 8, wherein, Before receiving the CSC, the processor measures the CSI-RS resources associated with one or more candidate cells, including: The processor measures the CSI-RS resources associated with all candidate cells configured in the higher-layer signaling, or... The receiver also receives first indication information for determining a first candidate cell to be measured, and the processor measures the CSI-RS resources associated with the first candidate cell determined according to the first indication information, or... The processor measures the CSI-RS resources associated with the first candidate cell in the Transmission Configuration Indication (TCI) state of the serving cell.

10. The apparatus according to claim 9, wherein, The first indication information is carried by radio resource control signaling, media access control control elements and / or downlink control information.

11. The apparatus according to claim 9, wherein, The first indication information includes a first bitmap, wherein the number of bits in the first bitmap is equal to the total number of candidate cells, and when the value of each bit is a first value, the candidate cell corresponding to that bit is the first candidate cell; or, the number of bits in the first bitmap is equal to the total number of reported configurations, and when the value of each bit is a first value, the candidate cell related to the reported configuration corresponding to that bit is the first candidate cell; or The first indication information includes information used to indicate the first candidate cell identifier or the CSI reporting configuration ID associated with the first candidate cell.

12. The apparatus according to claim 1, wherein, The CSI report for the target cell indicated in the CSC starts from the first symbol after receiving the higher-layer signaling carrying the CSI reporting configuration information and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report, occupying the CPU. Alternatively, for other candidate cells, CSI reports may begin from the first symbol after receiving higher-layer signaling carrying the CSI reporting configuration information, and continue until the symbol after receiving the second indication information ends CPU usage; and / or until the symbol after receiving the CSC ends CPU usage; Alternatively, the CSI report for the target cell begins with the first symbol after receiving the first indication information used to determine the first candidate cell to be measured, and continues until the end of the Physical Uplink Shared Channel (PUSCH) symbol carrying the CSI report, which occupies the CPU. Alternatively, the CSI report for other candidate cells may start from the first symbol after receiving the first indication information for determining the first candidate cell to be measured, and continue until the symbol after receiving the second indication information ends, occupying the CPU; and / or until the symbol after receiving the CSC ends, occupying the CPU. The second indication information is used to activate, indicate, or trigger the CSI.

13. The apparatus according to claim 1, wherein, The number of CPUs occupied by the CSI report is equal to 1, or equal to the number of CSI-RS resources related to the target candidate cell indicated in the CSC, or equal to the total number of resources in the CSI-RS resource set related to the CSI reporting configuration information, or equal to the total number of candidate cells, or equal to the number of first candidate cells, or equal to the total number of CSI-RS resources related to all first candidate cells, or equal to the largest number of CSI-RS resources among the CSI-RS resources related to each first candidate cell, or equal to the product of the number of resources in the CSI-RS resource set related to the CSI reporting configuration information and the adjustment coefficient, wherein the adjustment coefficient is a positive number greater than or less than 1.

14. The apparatus according to claim 8, wherein, When determining the cache resources for the CSI report, all resources in the CSI-RS resource set related to the CSI reporting configuration information are calculated before CSC; After the CSC, the CSI-RS resources related to the target cell indicated in the CSC are calculated within the CSI-RS resource set related to the CSI reporting configuration information.

15. The apparatus according to claim 1, wherein, The CSI report may or may not include the CSI-RS Resource Indicator (CRI).

16. The apparatus according to claim 15, wherein, When each candidate cell is associated with a CSI-RS resource, the CSI report does not include the CRI; or... When each candidate cell is associated with at least one CSI-RS resource, the CSI report includes K associated with target cell i. i The CRI corresponding to each CSI-RS resource.

17. The apparatus according to claim 16, wherein, The K associated with the CRI and the target cell i i One of the CSI-RS resources is associated with a resource, or, CRI k is associated with K of the target cell i. i The (k+1)th resource in a CSI-RS resource is relevant.

18. The apparatus according to claim 16, wherein, The bit width of the CRI is 19. A report receiving device, configured in a network device, wherein, The device includes: A transmitter that sends Channel State Information Reference Signal (CSI-RS) resource configuration information and / or Channel State Information (CSI) reporting configuration information to a terminal device, wherein the CSI reporting configuration information is related to one or more candidate cells; A receiver receives a CSI report sent by the terminal, wherein the CSI report is obtained by measuring CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and the CSI report is related to a cell handover command for mobility (LTM) triggered at Layer 1 or Layer 2.

20. A communication system comprising a terminal device and a network device, wherein the terminal device receives channel state information reference signal (CSI-RS) resource configuration information and / or channel state information (CSI) reporting configuration information from the network device, the CSI reporting configuration information being associated with one or more candidate cells; The terminal device measures the CSI-RS resources based on the CSI-RS resource configuration information and / or the CSI reporting configuration information, and sends a CSI report based on the measurement results. The CSI report is related to the cell handover command for mobility (LTM) triggered by Layer 1 or Layer 2.