Communication processing method and device, equipment and readable storage medium
By sending beam reports between the terminal and the network side device and directly receiving resources for prediction and additional measurements, the problem of beam prediction results cannot be used as soon as possible is solved, and the beam is quickly enabled and reliability is improved.
Patent Information
- Application Number
- CN202311813114.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-26
- Publication Date
- 2025-06-27
AI Technical Summary
The results of beam prediction cannot be used as soon as possible because the terminal needs to wait for the network side to configure beam measurement resources.
By sending beam reports between the terminal and the network side device, the beam verification process is triggered, allowing the terminal to directly receive resources for prediction and additional measurements.
Accelerate beam enablement and improve beam reliability, ensuring timely use of beam prediction results.
Smart Images

Figure CN120224375A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of communication technologies, and particularly relates to a communication processing method, apparatus, device, and readable storage medium. Background Art
[0002] Since an unknown Transmission Configuration Indicator (TCI) requires an additional waiting time for a measurement reference signal (RS), this is based on considerations of system stability to ensure that the beam information in use is effectively available. However, for beam prediction on the terminal side, the predicted beam information is very likely to be beam information that has not been activated or beam information that has not been measured. If following the existing process, it is necessary to wait for the network to receive the beam report feedback from the terminal, and then the network configures the corresponding beam resource measurement, resulting in the beam prediction result not being able to be used as soon as possible. Summary of the Invention
[0003] Embodiments of this application provide a communication processing method, apparatus, device, and readable storage medium to solve the problem that the beam prediction result cannot be used as soon as possible.
[0004] In a first aspect, a communication processing method is provided, including:
[0005] A terminal sends a beam report, where the beam report is used to trigger a beam verification process, and the beam verification process includes at least one of the following: first measurement resource sending, second measurement resource sending;
[0006] Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with a beam verification function, and the beam verification function associated with the beam report is enabled;
[0007] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement, where the additional measurement refers to a measurement other than beam measurement.
[0008] In a second aspect, a communication processing method is provided, including:
[0009] A network-side device receives a beam report;
[0010] The network-side device performs a beam verification process according to the beam report, and the beam verification process includes at least one of the following: first measurement resource sending, second measurement resource sending;
[0011] Among them, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0012] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement, where the additional measurement refers to a measurement other than beam measurement.
[0013] In a third aspect, a communication processing device is provided, including:
[0014] A first sending module, configured to send a beam report;
[0015] A first receiving module, configured to, based on that the beam report is used to trigger a beam verification process, where the beam verification process includes at least one of the following: receiving a first measurement resource and receiving a second measurement resource;
[0016] Among them, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0017] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement, where the additional measurement refers to a measurement other than beam measurement.
[0018] In a fourth aspect, a communication processing device is provided, including:
[0019] A fourth receiving module, configured to receive a beam report;
[0020] A second sending module, configured to perform a beam verification process according to the beam report, where the beam verification process includes at least one of the following: sending a first measurement resource and sending a second measurement resource;
[0021] Among them, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0022] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement, where the additional measurement refers to a measurement other than beam measurement.
[0023] In a fifth aspect, a terminal is provided, including: a processor, a memory, and a program or instruction stored on the memory and executable on the processor, where when the program or instruction is executed by the processor, the steps of the method described in the first aspect are implemented.
[0024] In a sixth aspect, a network-side device is provided, including: a processor, a memory, and a program or instruction stored on the memory and executable on the processor, where when the program or instruction is executed by the processor, the steps of the method described in the second aspect are implemented.
[0025] In a seventh aspect, a readable storage medium is provided, where a program or instruction is stored on the readable storage medium, and when the program or instruction is executed by a processor of a terminal, the steps of the method described in the first aspect are implemented, or when the program or instruction is executed by a processor of a network-side device, the steps of the method described in the second aspect are implemented.
[0026] In an eighth aspect, a chip is provided, where the chip includes a processor and a communication interface, the communication interface is coupled to the processor, and the processor is used to run a program or instruction to implement the steps of the method described in the first aspect or the second aspect.
[0027] In a ninth aspect, a computer program / program product is provided, where the computer program / program product is stored in a non-transitory storage medium, and the program / program product is executed by at least one processor to implement the steps of the method described in the first aspect or the second aspect.
[0028] In a tenth aspect, a communication system is provided, where the communication system includes a terminal and a network-side device, the terminal is used to execute the steps of the method described in the first aspect, and the network-side device is used to execute the steps of the method described in the second aspect.
[0029] In an embodiment of the present application, after the terminal reports a beam report related to beam prediction or beam verification function to the network side, the terminal does not need to wait for the network side to configure beam measurement resources based on the beam report, and the terminal can receive a first measurement resource or a second measurement resource based on the beam report, so as to implement a beam verification process by triggering a downlink reference signal through a beam report related to beam prediction or beam verification function, thereby accelerating the enabling of the beam and improving the reliability of the beam. Description of the Drawings
[0030] Figure 1 is one of the schematic diagrams of beam prediction based on an AI unit;
[0031] Figure 2 is the second schematic diagram of beam prediction based on an AI unit;
[0032] Figure 3 It is the third schematic diagram of beam prediction based on the AI unit;
[0033] Figure 4 It is the schematic diagram of MAC CE;
[0034] Figure 5 It is the schematic diagram of the architecture of the wireless communication system according to the embodiment of the present application;
[0035] Figure 6 It is one of the flowcharts of the communication processing method provided by the embodiment of the present application;
[0036] Figure 7 It is the second flowchart of the communication processing method provided by the embodiment of the present application;
[0037] Figure 8 It is one of the schematic diagrams of the communication processing device provided by the embodiment of the present application;
[0038] Figure 9 It is the second schematic diagram of the communication processing device provided by the embodiment of the present application;
[0039] Figure 10 It is the schematic diagram of the terminal provided by the embodiment of the present application;
[0040] Figure 11 It is the schematic diagram of the network - side device provided by the embodiment of the present application;
[0041] Figure 12 It is the schematic diagram of the communication device provided by the embodiment of the present application. Detailed implementation manners
[0042] Next, the technical solutions in the embodiments of the present application will be clearly described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art belong to the scope of protection of the present application.
[0043] The terms "first", "second", etc. in this application are used to distinguish similar objects, rather than to describe a specific order or sequence. It should be understood that such terms can be interchanged under appropriate circumstances so that the embodiments of this application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first" and "second" are generally of the same category, and do not limit the number of objects. For example, the first object can be one or multiple. In addition, "or" in this application means at least one of the connected objects. For example, "A or B" covers three scenarios, namely, Scenario 1: including A and not including B; Scenario 2: including B and not including A; Scenario 3: including both A and B. The character " / " generally indicates that the related objects before and after are in an "or" relationship.
[0044] The term "indication" in this application can be either a direct indication (or an explicit indication) or an indirect indication (or an implicit indication). Among them, a direct indication can be understood as that the sender clearly informs the receiver of specific information, operations to be performed, or request results, etc. in the sent indication; an indirect indication can be understood as that the receiver determines the corresponding information according to the indication sent by the sender, or makes a judgment and determines the operations to be performed or request results, etc. according to the judgment result.
[0045] It is worth noting that the technology described in the embodiments of this application is not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be used in other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency Division Multiple Access (SC-FDMA), or other systems. The terms "system" and "network" in this application are often used interchangeably, and the described technology can be used not only in the systems and radio technologies mentioned above, but also in other systems and radio technologies. The following description describes the New Radio (NR) system for example purposes, and uses NR terms in most of the following descriptions, but these technologies can also be applied to systems other than NR system applications, such as the 6th generation (6 thGeneration, 6G) communication system.
[0046] To facilitate the understanding of the embodiments of this application, the following technical points will be introduced first.
[0047] 1. Regarding beam prediction using Artificial Intelligence (AI) methods.
[0048] A possible way is as Figure 1 shown. Using the Reference Signal Received Power (RSRP) of partial beam pairs as input, the output of the AI unit is the RSRP results of all beam pairs. Among them, a beam pair is composed of a transmit beam and a receive beam. The number of inputs of this AI unit is the number of selected partial beam pairs, and the number of outputs is the number of all beam pairs.
[0049] In addition, there are also methods to enhance beam prediction performance as Figure 2 shown.
[0050] Correlation information is added on the input side. The correlation information can be used to represent angle-related information, beam Identity (ID) information, etc. corresponding to the input beam pairs. Therefore, the number of inputs of this model is related to the number of selected partial beam pairs, and the number of outputs is equal to the number of all beam pairs.
[0051] There is also an improved method based on the above as Figure 3 shown.
[0052] It mainly affects the output of the AI unit by changing the desired information through the AI unit.
[0053] Among them, the input types of the AI unit include at least one of the following:
[0054] (1) Beam quality-related information;
[0055] (2) Beam information;
[0056] (3) Transmit beam information at end A;
[0057] For example, end A can be a terminal or a network-side device.
[0058] (4) Receive beam information at end B;
[0059] For example, end B can be a network-side device or a terminal.
[0060] (5) Desired beam information at end B;
[0061] (6) Desired receive beam information at end B at end B;
[0062] (7) Beam information expected to be sent by end A at end B;
[0063] (8) Time-related information of information related to beam quality;
[0064] (9) Expected predicted time-related information.
[0065] 2. Regarding beam reporting and beam resource configuration.
[0066] The association relationship is as follows: beam reporting configuration is associated with beam resource configuration, beam resource configuration is associated with beam resource set configuration, and beam resource set configuration is associated with beam resource configuration.
[0067] Specifically corresponding to the protocol: Channel State Information (CSI) report configuration (CSI-ReportConfig) is associated with CSI resource configuration (CSI-ResourceConfig), and CSI-ResourceConfig is associated with Resource Set and time domain behavior.
[0068] (1) If the Channel State Information Reference Signal (CSI-RS) resource set is used, the corresponding is Non-Zero-Power (NZP)-CSI-RS-ResourceSet. In this Resource Set, NZP-CSI-RS-Resoure is associated, and the time domain behavior is used to indicate the time domain periodic attribute associated with the CSI-RS resource set.
[0069] (2) If the Synchronization Signal and PBCH block (SSB) resource set is used, the corresponding is CSI-SSB-ResourceSet. In this Resource Set, the SSB index is associated, and at this time the time domain behavior is invalid.
[0070] A CSI-ReportConfig (such as beam reporting configuration) contains at most three CSI-ResoureConfig, and the specific relationship is as follows:
[0071] (1) Aperiodic CSI-ReportConifg can be associated with periodic, semi-persistent, and semi-persistent CSI-ResourceConfig, and at most 3 beam resource configurations can be configured.
[0072] a) When configuring 1 CSI-ResourceConfig, it is used for channel measurement (CM) channel measurement (including layer 1 reference signal received power (L1-RSRP) measurement);
[0073] b) When configuring 2 CSI-ResourceConfigs, the first one is used for CM, and the second one is used for interference measurement of zero-power resources;
[0074] c) When configuring 3 CSI-ResourceConfigs, the first one is used for CM, the second one is used for interference measurement of zero-power resources, and the third one is used for interference measurement of non-zero-power resources.
[0075] (2) The semi-persistent CSI-ReportConifg can be associated with a period, and the semi-persistent CSI-ResourceConfig can be configured with a maximum of 2 beam resource configurations;
[0076] a) 1 CSI-ResourceConfig, used for CM channel measurement (including L1-RSRP measurement);
[0077] b) 2 CSI-ResourceConfigs, the first one is used for CM, and the second one is used for interference measurement of zero-power resources.
[0078] (3) The periodic CSI-ReportConifg can be associated with a period, and the semi-persistent CSI-ResourceConfig can be configured with a maximum of 2 beam resource configurations
[0079] a) 1 CSI-ResourceConfig, used for CM channel measurement (including L1-RSRP measurement);
[0080] b) 2 CSI-ResourceConfigs, the first one is used for CM, and the second one is used for interference measurement of zero-power resources;
[0081] And the time-domain behaviors of 1 or more CSI-ResourceConfigs associated in the CSI-ReportConfig are the same.
[0082] For the periodic and semi-persistent CSI resourceConfig, only 1 Resource set is supported, but if groupBasedbeamReporting is supported in the report, 2 sets can be configured.
[0083] For aperiodic CSI resourceConfig, there is no limit to 1 set, and up to 16 sets can be configured.
[0084] A CSI-RS resource set supports up to 64 NZP CSI-RS reousrces. When the higher layer parameter (reportQuantity) is set to 'none', for CSI-RS resource indication (CSI-RS Resource Indicator, CRI)-resource indicator (Resource indicator, RI)-channel quality indicator (Channel quality indicator, CQI)', 'CRI-reference signal received power (Reference Signal Received Power, RSRP)' or'synchronization signal block (Synchronization Signal and PBCH block, SSB)-index (Index)-RSRP', all CSI-RS resource sets support a maximum of 128 resources in total.
[0085] Regarding the information of repetition associated in the CSI-RS resource set, if it is configured to be on (for example, User Equipment (UE)) will assume that all CSI-RS resources in the CSI-RS resource set use the same transmission beam information when transmitting. If it is configured to be off, the UE will not assume that these resources use the same transmission beam information. That is, the repetition parameter in the CSI-RS resource set controls the beam information attributes of all resources associated with this resource set.
[0086] 3. Regarding the beam indication mechanism.
[0087] After beam measurement and beam reporting, the network can perform beam indication on the downlink and uplink channels or reference signals, which is used to establish a beam link between the network and the UE to achieve the transmission of channels or reference signals.
[0088] For the beam indication of the Physical Downlink Control Channel (PDCCH), the network configures K Transmission Configuration Indication (TCI) states for each Control Resource Set (CORESET) using Radio Resource Control (RRC) signaling. When K>1, 1 TCI state is indicated or activated by a Media Access Control Control Element (MAC CE). When K = 1, no additional MAC CE command is required. When the UE monitors the PDCCH, the same Quasi-colocation (QCL), i.e., the same TCI state, is used for all Search Spaces (SS) within the CORESET to monitor the PDCCH. The reference signal (RS) (e.g., periodic CSI-RS resource, semi-persistent CSI-RS resource, SSB, etc.) in this TCI state is spatially QCL with the UE-specific PDCCH Demodulation Reference Signal (DMRS) port. The UE can know which receiving beam to use to receive the PDCCH according to this TCI state.
[0089] For the beam indication of the Physical Downlink Shared Channel (PDSCH), the network configures M TCI states using RRC signaling, then activates 2N TCI states using a MAC CE command, and then notifies the TCI state through the N-bit TCI field of the Downlink Control Information (DCI). The reference signal in this TCI state is QCL with the DMRS port of the PDSCH to be scheduled. The UE can know which receiving beam to use to receive the PDSCH according to this TCI state.
[0090] For the beam indication of CSI-RS, when the CSI-RS type is periodic CSI-RS, the network configures QCL information for the CSI-RS resource through RRC signaling. When the CSI-RS type is semi-persistent CSI-RS, the network activates the CSI-RS resource set configured by RRC through a MAC CE command, and associates QCL information with each CSI-RS resource. When the CSI-RS type is aperiodic CSI-RS, the network configures QCL for the CSI-RS resource through RRC signaling and uses DCI to trigger the CSI-RS.
[0091] For the beam indication of the Physical Uplink Control Channel (PUCCH), the network configures spatial relation information for each PUCCH resource through the parameter PUCCH-SpatialRelationInfo using RRC signaling. When there are multiple pieces of spatial relation information configured for the PUCCH resource, one of them is indicated or activated using a MAC-CE. When there is only one piece of spatial relation information configured for the PUCCH resource, no additional MAC CE command is required.
[0092] For the beam indication of PUSCH, the spatial relation information of PUSCH is that when the DCI carried by the PDCCH schedules the PUSCH, each SRI code point in the SRS Resource Indicator (SRI) field in the DCI indicates an SRI, and this SRI is used to indicate the spatial relation information of the PUSCH.
[0093] For the beam indication of SRS, when the SRS type is periodic SRS, the network configures the spatial relation information for the SRS resource through RRC signaling. When the SRS type is semi-persistent SRS, the network activates one from a set of spatial relation information configured by RRC through a MAC CE command. When the SRS type is aperiodic SRS, the network configures the spatial relation information for the SRS resource through RRC signaling.
[0094] 4. Regarding the unified TCI indication mechanism.
[0095] For further beam indication improvement, unified TCI indication is proposed. Briefly speaking, it indicates the beam information of subsequent reference signals and multiple channels through the TCI field in a DCI.
[0096] The unified TCI mechanism is divided into two modes, joint mode and separate mode, and the mode switch is performed through the RRC method;
[0097] The joint mode multiplexes the original TCI-StateId. One code point in the TCI field of the DCI corresponds to one downlink (DL) TCI information, and this one DL TCI information is used to indicate the beam information of subsequent reference signals and multiple channels, including uplink or downlink.
[0098] The separate mode multiplexes the original TCI-StateId as the DL TCI indication, and adds the TCI-Uplink (UL)-StateID as the UL TCI indication. One code point in the TCI field of the DCI corresponds to one DL TCI, or UL TCI, or DL TCI + UL TCI, which are respectively used to indicate the beam information of subsequent downlink reference signals and downlink channels, or to indicate the beam information of subsequent uplink reference signals and uplink channels, or to indicate the beam information of subsequent reference signals and multiple channels, including uplink and downlink at this time.
[0099] The RRC configures the TCI pool, and the MAC CE will activate the TCI information corresponding to no more than 8 code points from the transmission configuration indication pool (TCI pool). The specific signaling is as Figure 4 shown.
[0100] 1) Serving cell ID, 5 bits, used to determine in which serving cell the MAC CE is applied. Additionally, if only the serving cell is configured with simultaneous uplink transmission configuration indication update lists (simultaneousU-TCI-UpdateList) 1, simultaneousU-TCI-UpdateList2, simultaneousU-TCI-UpdateList3, or simultaneousU-TCI-UpdateList4, the MAC CE will be applied to all cells indicated in simultaneousU-TCI-UpdateList1, simultaneousU-TCI-UpdateList2, simultaneousU-TCI-UpdateList3, or simultaneousU-TCI-UpdateList4.
[0101] 2) Downlink bandwidth part ID (DL BWP ID), 2 bits. Each TCI state-Id corresponds to a serving cell ID and a BWP ID, so it is also necessary to clearly indicate which BWP it is under;
[0102] 3) Uplink bandwidth part ID (UL BWP ID), 2 bits;
[0103] 4) P i Each P i is used to indicate whether the corresponding TCI code point is associated with multiple TCI states or 1 TCI state. Theoretically, this field only takes effect in the separate TCI mode;
[0104] If the position indicated by P i is 1, it means that the i-th code point corresponds to a DL TCI state + UL TCI state, that is, a separate unified TCI;
[0105] If the position indicated by P i is 0, it means that the 1st code point corresponds to a DL or joint TCI state or a UL TCI state;
[0106] 5) D / U: Used to indicate whether the TCI state on the same line is for joint or DL TCI or UL TCI;
[0107] 6) Transmission Configuration Indicator State Identifier (TCI state ID): It directly corresponds to the ID configured in RRC. According to the configuration in RRC, if it is for DL or joint TCI, up to 128 IDs can be configured; if it is for UL TCI, up to 64 UL TCI IDs can be configured.
[0108] 7) The number of TCIs in the MAC CE. Consider two extreme cases: all are DL or joint TCIs, or all are separate TCIs.
[0109] 5. Regarding the enabling of Unified TCI.
[0110] The prerequisite is that a unified TCI pool needs to be configured first.
[0111] 1) For the PDCCH of COREST#0 and the scheduled PDSCH, enable the unified TCI function by following the unified TCI state (followUnifiedTCIstate) parameter.
[0112] 2) For other CORESETS:
[0113] a) For the PDCCH on the CORESET that is only associated with the User Specific Search Space (USS) or the type 3 Common Search Space (CSS) and the scheduled PDSCH, directly enable the unified TCI function;
[0114] b) For the PDCCH on the CORESET associated with at least one non-type 3 CSS and the scheduled PDSCH, enable the unified TCI function by following the followUnifiedTCIstate parameter.
[0115] 3) For CSI-RS:
[0116] a) Periodic CSI-RS and semi-persistent CSI-RS cannot use unified TCI;
[0117] b) For aperiodic CSI-RS, when the associated QCL-info is missing, use the unified TCI function.
[0118] 4) For PUCCH or PUSCH, directly enable the unified TCI function.
[0119] 5) For SRS:
[0120] a) Enable the unified TCI function through the followUnifiedTCIstate parameter;
[0121] b) Configure this parameter within each SRS resource set;
[0122] c) It is only applicable to the aperiodic SRS for beam management and any time-domain type of SRS for codebook, non-codebook, and antenna switching to take effect.
[0123] 6. Regarding the effective time of beam indication.
[0124] 1) PDCCH
[0125] If the UE receives a MAC CE activation command to indicate one of the TCI states, the UE makes this activation command take effect starting from the first slot after where k is the slot in which the UE sends a PUCCH with Hybrid Automatic Repeat reQuest-ACKnowledge (HARQ-ACK) for a PDSCH to provide the activation command (i.e., the HARQ-ACK of the activated MAC CE), and μ is the subcarrier spacing (SCS) of the PDCCH. The activated Bandwidth Part (BWP) is defined as the BWP activated in the slot where this activation command takes effect.
[0126] 2) PDSCH
[0127] The effective time of the MAC-CE activation. The PUCCH with HARQ-ACK (corresponding to the PDSCH, and the activation command carried by the MAC CE) in slot n, the effective time, that is, the mapping relationship between the TCI state and the DCI TCI field takes effect at the first slot after, where μ is the SCS of the PUCCH, that is, the MAC CE activation command takes effect 3 milliseconds (ms) after the corresponding HARQ-ACK.
[0128] DCI effective time: If tci-PresentInDCI is enabled or tci-PresentDCI-1-2 is configured in the CORESET scheduling the PDSCH, the time offset between receiving the DCI and the scheduled PDSCH shall be greater than or equal to timeDurationForQCL (if this parameter is reported).
[0129] 7. Regarding the effective time of unified TCI.
[0130] If only one TCI state corresponding to the activated codepoint in the MAC CE, the effective time is the same as the traditional (legacy) effective time;
[0131] If multiple TCI states corresponding to codepoints are activated in the MAC CE, the effective time of the TCI indicated in the DCI is the first time slot after Y symbols after receiving the ACK corresponding to the DCI activation command, and the interval (gap) between this effective slot and the last symbol of the DCI used for this beam indication needs to meet the UE capabilities. The Y symbols are configured by the network according to the capabilities reported by the UE. For CA, the above first slot and Y symbols both depend on the carrier with the smallest SCS in the Carrier Aggregation (CA).
[0132] 8. Regarding Unknown or known TCI state.
[0133] The above are all the handover times or effective times defined for known TCI states. However, for unknown TCI, additional time needs to be added to the above handover times or effective times.
[0134] First, the definition of known TCI state is as follows:
[0135] 1) During the time from A to B, define the known condition TCI:
[0136] a) A, starting from the time when the RS transmission for L1-RSRP reporting as the target TCI is sent;
[0137] b) B, until the TCI handover is completed.
[0138] 2) Conditions for known TCI:
[0139] a) The TCI handover command is received within 1280 ms of the above RS transmission.
[0140] b) Before receiving the TCI handover command, the UE needs to have sent at least 1 L1-RSRP report of the RS associated with the target TCI;
[0141] c) During the time of TCI handover, from A to B, the TCI state can always be detectable;
[0142] Among them, the condition for being detectable is that the signal-to-noise ratio (SNR) of the TCI state ≥ -3 dB.
[0143] d) During the time of TCI handover, from A to B, the SSB associated with the RS of the TCI state should also still be detectable;
[0144] For a TCI state that does not meet the known TCI state condition, it is considered an unknown TCI state, and for an unknown TCI state, the measurement time of the RS resource corresponding to the TCI needs to be increased.
[0145] In this application, the beam information includes but is not limited to at least one of the following: beam identity (ID) or index information, beam angle information, beam gain information, beam width information, desired information, beam quality information, etc.
[0146] Among them, the beam ID or index information is used to characterize the relevant information for identifying the identity of the beam, and the beam ID or index information includes but is not limited to at least one of the following: transmit beam ID or index, receive beam ID or index, beam ID or index, the reference signal set ID or index corresponding to the beam, the reference signal resource ID or index corresponding to the beam, a unique random ID or index, an encoded value after additional AI network processing, beam angle information, resource index information, channel state information reference signal resource indicator (CSI-RS Resource Indicator, CRI), synchronization signal block resource indicator (SS / PBCH Block Resource Indicator, SSBRI), etc.
[0147] Among them, the beam angle information is used to characterize the angle information corresponding to the beam, and includes but is not limited to at least one of the following: angle-related information, transmit angle-related information, receive angle-related information.
[0148] The above-mentioned angle-related information is used to characterize the relevant information of the angle or identity. For example, angle, radian, index encoded value, ID value, encoded value after additional AI network processing, etc.
[0149] Among them, the beam quality information includes, but is not limited to, at least one of the following types: Layer 1 signal-to-noise and interference ratio (L1-SINR), L1-RSRP, Layer 1 reference signal received quality (L1-RSRQ), Layer 3 signal-to-noise and interference ratio (L3-SINR), Layer 3 reference signal received power (L3-RSRP), Layer 3 reference signal received quality (L3-RSRQ), etc.
[0150] The beam information, spatial relation information, spatial domain transmission filter information, spatial filter information, TCI state information, QCL information, QCL parameters, spatial relation information, beam association relationship, etc. in this article have approximately the same meaning, and the above nouns can be replaced with each other.
[0151] Among them, the TCI state information or QCL information can be used to represent the downlink beam information, and the spatial relation information can be used to represent the uplink beam information.
[0152] The model in this application may include an AI unit. The AI unit may include an AI model, an AI structure, etc. Or the AI unit may also refer to a processing unit that can implement specific algorithms, formulas, processing flows, capabilities, etc. related to AI. Or the AI unit may also be a processing method, algorithm, function, module, or unit for a specific data set. Or the AI unit may also be a processing method, algorithm, function, module, or unit running on AI-related hardware such as a Graphics Processing Unit (GPU), a Neural Processing Unit (NPU), a Tensor Processing Unit (TPU), an Application Specific Integrated Circuit (ASIC), etc. This application does not make specific limitations on this. Optionally, the specific data set includes the input or output of the AI unit.
[0153] Optionally, the identification of the model may include at least one of the following: the identification of the AI unit, the AI model identification, the AI architecture identification, the AI algorithm identification, the identification of a specific data set associated with the AI unit, the identification of a specific scenario, environment, channel characteristic, or device related to AI, the identification of a function, feature, capability, or module related to AI. The identification of the model in this application is not specifically limited.
[0154] Figure 5 The block diagram of a wireless communication system to which the embodiments of this application can be applied is shown. The wireless communication system includes a terminal 51 and a network-side device 52. Among them, the wireless communication system may be a communication system with wireless AI functions such as 5G evolution (5G-Advanced) or 6G.
[0155] Among them, the terminal 51 may be a mobile phone, a tablet personal computer, a laptop computer, a notebook computer, a personal digital assistant (PDA), a handheld computer, a netbook, an ultra-mobile personal computer (UMPC), a mobile internet device (MID), an augmented reality (AR) / virtual reality (VR) device, a robot, a wearable device, an aircraft, a vehicle user equipment (VUE), a shipborne device, a pedestrian user equipment (PUE), a smart home (home devices with wireless communication functions, such as refrigerators, TVs, washing machines, or furniture), a game console, a personal computer (PC), a teller machine, or a self-service machine, etc. Wearable devices include: smart watches, smart bracelets, smart earphones, smart glasses, smart jewelry (smart bracelets, smart bracelets, smart rings, smart necklaces, smart anklets, smart ankle chains, etc.), smart wristbands, smart clothing, etc. Among them, the vehicle user equipment may also be referred to as a vehicle terminal, a vehicle controller, a vehicle module, a vehicle component, a vehicle chip, or a vehicle unit, etc. In addition to the above terminal devices, the terminal involved in this application may also be a chip inside the terminal, such as a modem chip or a system on chip (SoC). It should be noted that the specific type of the terminal 51 is not limited in the embodiments of this application.
[0156] The network-side device 52 may include an access network device or a core network device. Among them, the access network device may also be referred to as a radio access network device, a radio access network (RAN), a radio access network function, or a radio access network unit. The access network device may include a base station, a wireless local area network (WLAN) access point (AP), or a wireless fidelity (WiFi) node, etc. The base station may be referred to as a Node B (NB), an evolved Node B (eNB), a next generation Node B (gNB), a New Radio Node B (NR Node B), an access point, a relay base station (RBS), a serving base station (SBS), a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a home Node B (HNB), a home evolved Node B, a transmission reception point (TRP), or some other suitable term in the art. As long as the same technical effect is achieved, the base station is not limited to a specific technical term. It should be noted that in the embodiments of this application, only the base station in the NR system is taken as an example for introduction, and the specific type of the base station is not limited.
[0157] The core network device may include, but is not limited to, at least one of the following: core network node, core network function, Mobility Management Entity (MME), Access and Mobility Management Function (AMF), Session Management Function (SMF), User Plane Function (UPF), Policy Control Function (PCF), Policy and Charging Rules Function (PCRF), Edge Application Server Discovery Function (EASDF), Unified Data Management (UDM), Unified Data Repository (UDR), Home Subscriber Server (HSS), Centralized network configuration (CNC), Network Repository Function (NRF), Network Exposure Function (NEF), Local NEF (L-NEF), Binding Support Function (BSF), Application Function (AF), etc. It should be noted that in the embodiments of this application, only the core network devices in the NR system are taken as examples for introduction, and the specific types of core network devices are not limited.
[0158] The communication processing method, apparatus, communication device, and readable storage medium provided by the embodiments of this application will be described in detail below with reference to the accompanying drawings through some embodiments and their application scenarios.
[0159] See Figure 6 , a communication processing method, the specific steps include: step 601 and step 602.
[0160] Step 601: The terminal sends a beam report;
[0161] Step 602: The terminal triggers a beam verification process based on the beam report, and the beam verification process includes at least one of the following: first measurement resource reception, second measurement resource reception;
[0162] Wherein, the beam report satisfies at least one of the following: 1) The beam report is used for beam prediction; 2) The beam report is obtained based on the model inference result of the terminal; 3) The beam report is associated with the model of the terminal; 4) The beam report is associated with the beam verification function; 5) The beam verification function associated with the beam report is enabled.
[0163] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurements, where the additional measurements refer to measurements other than beam measurements.
[0164] Optionally, the above-mentioned beam prediction includes at least one of the following: spatial domain beam prediction and time domain beam prediction.
[0165] Optionally, the model includes, but is not limited to, an AI unit.
[0166] Optionally, the beam verification function includes a fast beam verification function.
[0167] In an embodiment of the present application, the beam verification process includes at least one of the following: a predicted beam resource verification process and an additional measurement resource verification process. Among them, the predicted beam resource verification process corresponds to the reception of the first measurement resource. The additional measurement resource verification process corresponds to the reception of the second measurement resource.
[0168] In an embodiment of the present application, the first measurement resource or the QCL signal corresponding to the first measurement resource is associated with the second measurement resource.
[0169] In an embodiment of the present application, the second measurement resource is quasi co-located with the first measurement resource, that is, the second measurement resource can be at least one of type A, type B, or type C as the quasi co-located type of the first measurement resource.
[0170] In an embodiment of the present application, the second measurement resource includes a synchronization signal block resource or a tracking reference signal resource.
[0171] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first usage, and the first usage is used to indicate that the transmission conditions of the first measurement resource include that the first measurement resource is configured or activated and the beam report triggers the transmission of the first measurement resource.
[0172] In an implementation manner of the present application, the first use is associated in the first measurement resource through explicit signaling, or the first measurement resource is associated with the beam report, that is, it indicates that the first measurement resource enables the first use.
[0173] Optionally, the first use includes a periodic configuration use or function, and the periodic configuration use or function is used to indicate that after the first measurement resource corresponding to periodic transmission or semi-persistent transmission is configured or activated, it still will not transmit the first measurement resource and can only be triggered by the corresponding beam report to send the resource.
[0174] In an implementation manner of the present application, when the first measurement resource is a periodic or semi-persistent resource, the beam verification process includes:
[0175] The terminal receives the first measurement resource according to the first time, or according to the first time and the first time delay.
[0176] Wherein, the first time includes at least one of the following:
[0177] 1) The time agreed upon by the protocol;
[0178] 2) The reporting time of the beam report associated with the first measurement resource;
[0179] 3) The sending time of the confirmation signaling corresponding to the beam report;
[0180] 4) The measurement time of the model input information used to obtain the beam report;
[0181] Optionally, the measurement time of the model input information includes the measurement moment of the model input parameters used for obtaining the beam report.
[0182] Wherein, the first time delay includes at least one of the following:
[0183] 1) The model inference time;
[0184] 2) The model prediction result processing time;
[0185] 3) The time from when the terminal receives the model input information to when it sends the beam report;
[0186] 4) The time for the network side to process the beam report;
[0187] 5) The time for the network side to configure the first measurement resource;
[0188] 6) The processing time agreed upon by the protocol;
[0189] 7) The time delay reported by the terminal;
[0190] 8) Delay indicated or configured by the network side.
[0191] Optionally, the unit of time can be seconds, milliseconds, time slots, or symbols, etc., but is not limited thereto.
[0192] Optionally, the time includes: start time, or end time.
[0193] Optionally, the terminal receives the first measurement resource at the first time + the first time delay.
[0194] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the method further includes:
[0195] The terminal determines the number of receptions or reception period for the terminal to receive the first measurement resource, or determines the number of transmissions or transmission period for the network side device to send the first measurement resource according to at least one of the future time of the predicted beam in the beam report, the ability of the terminal to support future time, and the future time of the predicted beam associated with the beam report configuration.
[0196] For example, the future time of the predicted beam in the beam report refers to the predicted beam in the beam report being a beam at one or more future times, and the future time may include T1, T2, T3... etc., and the number of the future times is not limited in this embodiment.
[0197] For example, the ability of the terminal to support future time is used to represent the ability of the terminal to support predicting beams at one or more future times.
[0198] For example, the future time of the predicted beam associated with the beam report configuration is used to represent that the beam report configuration can configure the predicted beam at one or more future times.
[0199] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the sending of the beam information or quasi-co-location signal associated with the first measurement resource, or the beam information or quasi-co-location signal associated with the first measurement resource is determined according to the most recent beam reporting information of the beam report.
[0200] In an embodiment of the present application, the method further includes:
[0201] The terminal receives the beam information or quasi-co-location signal associated with the first measurement resource according to the second time or the third time;
[0202] Wherein, the second time includes at least one of the following: 1) the time agreed upon by the protocol, 2) the reporting time of the beam report associated with the first measurement resource, 3) the transmission time of the acknowledgment signaling corresponding to the reporting of the beam report, 4) the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0203] The second time delay includes at least one of the following: 1) the model inference time, 2) the model prediction result processing time, 3) the time from when the terminal receives the model input information to when it sends the beam report, 4) the time for the network side to process the beam report, 5) the time for the network side to configure the first measurement resource, 6) the processing time agreed upon by the protocol, 7) the time delay reported by the terminal, 8) the time delay indicated or configured by the network side;
[0204] The third time is determined based on the second time and the second time delay. For example, the third time can be equal to the sum of the second time and the second time delay.
[0205] In an embodiment of the present application, if the second time or the third time is within a partial resource of the first measurement resource in the nth cycle, the beam information or quasi co-location signal of the first measurement resource in the (n + 1)th cycle is triggered to be sent by the beam report, where n is an integer greater than or equal to 1.
[0206] In an embodiment of the present application, in the case where the first measurement resource is an aperiodic resource, the beam verification process includes:
[0207] The terminal receives the first measurement resource according to the fourth time;
[0208] Wherein, the fourth time is determined according to one of the following:
[0209] 1) The fifth time and the third time delay;
[0210] For example, the fourth time is equal to the sum of the fifth time and the third time delay.
[0211] 2) The fifth time and the first time slot offset;
[0212] For example, the fourth time is equal to the sum of the fifth time and the first time slot offset.
[0213] 3) The fifth time, the third time delay, and the first time slot offset;
[0214] For example, the fourth time is equal to the sum of the fifth time, the third time delay, and the first time slot offset.
[0215] Among them, the fifth time includes at least one of the following: 1) the time agreed upon by the protocol, 2) the reporting time of the beam report associated with the first measurement resource, 3) the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, 4) the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0216] The third time delay includes at least one of the following: 1) the model inference time, 2) the model prediction result processing time, 3) the time from when the terminal receives the model input information to when it sends the beam report, 4) the time for the network side to process the beam report, 5) the time for the network side to configure the first measurement resource, 6) the processing time agreed upon by the protocol, 7) the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0217] The first time slot offset includes at least one of the following: 1) the offset of the normal time slot, 2) the offset of the valid time slot, where the normal time slot includes a downlink time slot, an uplink time slot, and a special time slot, and the valid time slot only includes a downlink time slot, or a downlink time slot and a special time slot.
[0218] Optionally, the first time slot offset can be obtained in one of the following ways:
[0219] 1) The network side configures it associated with the beam report configuration;
[0220] 2) When the terminal reports the beam report, it is carried in the beam report.
[0221] 3) The network side configures it associated with multiple beam report configurations, and when the terminal reports the beam report, it selects one first time slot offset to carry.
[0222] In an implementation manner of the present application, the method further includes:
[0223] The terminal determines the number of receptions or reception period of the terminal receiving the first measurement resource, or determines the number of transmissions or transmission period of the network side device sending the first measurement resource according to at least one of the number of the first time slot offsets, the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
[0224] In an implementation manner of the present application, the beam verification process includes:
[0225] The terminal receives the second measurement resource according to the sixth time;
[0226] Among them, the sixth time is determined according to one of the following:
[0227] 1) The seventh time and the fourth time delay;
[0228] Optionally, the sixth time is equal to the sum of the seventh time and the fourth time delay.
[0229] 2) The seventh time and the second time slot offset;
[0230] Optionally, the sixth time is equal to the sum of the seventh time and the second time slot offset.
[0231] 3) The seventh time, the fourth time delay, and the second time slot offset;
[0232] Optionally, the sixth time is equal to the seventh time, the fourth time delay, and the second time slot offset.
[0233] Wherein, the seventh time includes at least one of the following: 1) The time agreed upon by the protocol, 2) The reporting time of the beam report associated with the first measurement resource, 3) The sending time of the acknowledgment signaling corresponding to the reporting of the beam report, 4) The measurement time of the model input information, wherein the model input information is used to obtain the beam report;
[0234] The fourth time delay includes at least one of the following: 1) The model inference time, 2) The model prediction result processing time, 3) The time from when the terminal receives the model input information to when it sends the beam report, 4) The time for the network side to process the beam report, 5) The time for the network side to configure the first measurement resource, 6) The processing time agreed upon by the protocol, 7) The time delay reported by the terminal, 8) The time delay indicated or configured by the network side;
[0235] The second time slot offset includes at least one of the following: 1) The normal time slot offset, 2) The valid time slot offset, wherein the normal time slot includes a downlink time slot, an uplink time slot, and a special time slot, and the valid time slot only includes a downlink time slot, or a downlink time slot and a special time slot.
[0236] Optionally, the second time slot offset can be obtained in one of the following ways:
[0237] 1) The network side configures an association to the beam report configuration;
[0238] 2) When the terminal reports the beam report, it is carried in the beam report.
[0239] 3) The network side configures an association to multiple beam report configurations, and when the terminal reports the beam report, it selects one second time slot offset to carry.
[0240] In an implementation manner of the present application, before the terminal sends the beam report, the method further includes:
[0241] The terminal receives the beam report configuration, and the beam report configuration includes one or more first time slot offsets or second time slot offsets;
[0242] Among them, the beam report includes the first time slot offset or the second time slot offset selected by the terminal.
[0243] In an implementation manner of this application, the number of beam information associated with the beam report is equal to the number of the first measurement resources or the number of the second measurement resources triggered by the beam report. That is, the number of beam information associated with the beam report corresponds one-to-one with the number of the first measurement resources or the number of the second measurement resources triggered by the beam report.
[0244] In an implementation manner of this application,
[0245] If the number of beam information associated with the beam report is less than the number of the first measurement resources or the number of the second measurement resources configured, then the number of the first measurement resources or the number of the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report.
[0246] Optionally, a part of the first measurement resources or the second measurement resources triggered by the beam report is determined according to a first condition;
[0247] Among them, the first condition includes at least one of the following: 1) the order of resource set indexes, 2) the order of resource set identifiers, 3) the order of resource indexes, 4) the order of resource identifiers, 5) the transmission time order corresponding to the time domain position of the resource, 6) the transmission time order corresponding to the frequency domain position of the resource, 7) the transmission time order corresponding to pre-configured resources, 8) the transmission time order corresponding to resources configured by the network side, 9) the transmission time order corresponding to the resources reported by the terminal.
[0248] Optionally, the above order includes from small to large or from large to small.
[0249] Optionally, the above transmission time order includes from early to late or from late to early.
[0250] In an implementation manner of this application, if the number of beam information associated with the beam report is equal to the number of the first measurement resources or the number of the second measurement resources configured, then the number of the first measurement resources or the number of the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report.
[0251] In an implementation manner of this application, if the number of beam information associated with the beam report is greater than the number of the first measurement resources or the number of the second measurement resources configured, then the beam report triggers all the first measurement resources or the second measurement resources configured.
[0252] In an embodiment of the present application, the number of resources associated with the first measurement resource or the second measurement resource triggered by the beam report is the same as the number of beam information associated with the beam report.
[0253] In an embodiment of the present application, the first measurement resource or the second measurement resource triggered by the beam report is determined according to the triggering indication signaling associated with the beam report.
[0254] Optionally, the number of resources associated with the first measurement resource or the second measurement resource triggered by the triggering indication signaling is the same as the number of beam information associated with the beam report.
[0255] In an embodiment of the present application, when the number of resources associated with the first measurement resource or the second measurement resource triggered by the triggering indication signaling is different from the number of beam information associated with the beam report,
[0256] part of the resources associated with the first measurement resource or the second measurement resource triggered by the triggering indication signaling are determined according to a second condition;
[0257] wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to the pre-configured resources, the transmission time order corresponding to the resources configured by the network side, the transmission time order corresponding to the resources reported by the terminal.
[0258] Optionally, the above order includes from small to large or from large to small.
[0259] Optionally, the above transmission time order includes from early to late or from late to early.
[0260] In this embodiment, after the terminal reports a beam report related to beam prediction or beam verification function to the network side, the terminal does not need to wait for the network side to configure beam measurement resources based on this beam report, and the terminal can receive the first measurement resource or the second measurement resource based on this beam report, so as to realize the beam verification process by triggering the downlink reference signal through the beam report related to beam prediction or beam verification function, thereby accelerating the enabling of the beam and improving the reliability of the beam.
[0261] See Figure 7 , this application provides a communication processing method, and the specific steps include: step 701 and step 702.
[0262] Step 701: The network side device receives a beam report;
[0263] Step 702: The network-side device performs a beam verification process according to the beam report. The beam verification process includes at least one of the following: first measurement resource transmission, second measurement resource transmission;
[0264] Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0265] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement. The additional measurement refers to a measurement other than beam measurement.
[0266] Optionally, the above-mentioned beam prediction includes at least one of: spatial domain beam prediction, time domain beam prediction.
[0267] Optionally, the model includes but is not limited to an AI model.
[0268] Optionally, the beam verification function includes a fast beam verification function.
[0269] In an embodiment of the present application, the beam report is also used to trigger a fast beam verification process. The fast beam verification process includes at least one of the following: predicted beam resource verification process, additional measurement resource verification process. Among them, the predicted beam resource verification process corresponds to the first measurement resource transmission, and the first measurement resource transmission is triggered by the beam report. The additional measurement resource verification process corresponds to the second measurement resource transmission.
[0270] In an embodiment of the present application, the first measurement resource or the quasi-co-located signal corresponding to the first measurement resource is associated with the second measurement resource.
[0271] In an embodiment of the present application, the second measurement resource is quasi-co-located with the first measurement resource, and the second measurement resource is at least one of type A, type B, or type C as the quasi-co-located type of the first measurement resource.
[0272] In an embodiment of the present application, the second measurement resource includes a synchronization signal block resource or a tracking reference signal resource.
[0273] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first use, and the first use is used to indicate that the transmission condition of the first measurement resource includes that the first measurement resource is configured or activated and the beam report triggers the first measurement resource transmission.
[0274] In an implementation manner of the present application, the first use is associated in the first measurement resource through explicit signaling, or,
[0275] the first measurement resource is associated with the beam report, and the first measurement resource enables the first use.
[0276] In an implementation manner of the present application, when the first measurement resource is a periodic or semi-persistent resource, a beam verification process is performed, including:
[0277] The network-side device sends the first measurement resource according to the first time, or according to the first time and the first time delay;
[0278] Wherein, the first time includes at least one of the following:
[0279] 1) The time agreed upon by the protocol;
[0280] 2) The reporting time of the beam report associated with the first measurement resource;
[0281] 3) The sending time of the acknowledgment signaling corresponding to the reporting of the beam report;
[0282] 4) The measurement time of the model input information used to obtain the beam report;
[0283] Wherein, the first time delay includes at least one of the following:
[0284] 1) The model inference time;
[0285] 2) The model prediction result processing time;
[0286] 3) The time from when the terminal receives the model input information to when it sends the beam report;
[0287] 4) The time for the network side to process the beam report;
[0288] 5) The time for the network side to configure the first measurement resource;
[0289] 6) The processing time agreed upon by the protocol;
[0290] 7) The time delay reported by the terminal;
[0291] 8) The time delay indicated or configured by the network side.
[0292] In an implementation manner of the present application, when the first measurement resource is a periodic or semi-persistent resource, the method further includes:
[0293] The network device determines the number of transmissions or transmission period for the terminal to receive the first measurement resource, or determines the number of transmissions or transmission period for the network device to transmit the first measurement resource, based on at least one of the future time of the predicted beam in the beam report, the terminal's ability to support the future time, and the future time of the predicted beam associated with the beam report configuration.
[0294] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the transmission of the beam information or quasi co-location signal associated with the first measurement resource, or the beam information or quasi co-location signal associated with the first measurement resource is determined according to the most recent beam reporting information in the beam report.
[0295] In an embodiment of the present application, the method further includes:
[0296] The network device transmits the beam information or quasi co-location signal associated with the first measurement resource according to the second time or the third time;
[0297] Wherein, the second time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgement signaling corresponding to the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0298] The second time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it transmits the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0299] The third time is determined according to the second time and the second time delay. For example, the third time is equal to the sum of the second time and the second time delay.
[0300] In an embodiment of the present application, if the second time or the third time is within a partial resource of the first measurement resource in the nth period, the beam information or quasi co-location signal of the first measurement resource in the (n + 1)th period is triggered to be transmitted by the beam report, where n is an integer greater than or equal to 1.
[0301] In an embodiment of the present application, in the case where the first measurement resource is an aperiodic resource, a beam verification process is performed, including:
[0302] The network device transmits the first measurement resource according to the fourth time;
[0303] Wherein, the fourth time is determined according to one of the following:
[0304] 1) The fifth time and the third time delay;
[0305] 2) The fifth time and the first time slot offset;
[0306] 3) The fifth time, the third time delay and the first time slot offset;
[0307] Wherein, the fifth time includes at least one of the following: the time agreed by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the confirmation signaling corresponding to the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report;
[0308] The third time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0309] The first time slot offset includes at least one of the following: the offset of the normal time slot, the offset of the valid time slot, wherein the normal time slot includes a downlink time slot, an uplink time slot and a special time slot, and the valid time slot includes a downlink time slot, or a downlink time slot and a special time slot.
[0310] In an implementation manner of the present application, when the first measurement resource is an aperiodic resource, the method further includes:
[0311] The network side device determines the number of transmissions or the transmission period of the network side device for sending the first measurement resource, or determines the number of receptions or the reception period of the terminal for receiving the first measurement resource according to at least one of the number of the first time slot offsets, the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
[0312] In an implementation manner of the present application, the beam verification process includes:
[0313] The network side device sends the second measurement resource according to the sixth time;
[0314] Wherein, the sixth time is determined according to one of the following:
[0315] 1) The seventh time and the fourth time delay;
[0316] 2) The seventh time and the second time slot offset;
[0317] 3) The seventh time, the fourth time delay, and the second time slot offset;
[0318] Wherein, the seventh time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report;
[0319] The fourth time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0320] The second time slot offset includes at least one of the following: the normal time slot offset, the effective time slot offset, wherein the normal time slot includes a downlink time slot, an uplink time slot, and a special time slot, and the effective time slot includes a downlink time slot, or a downlink time slot and a special time slot.
[0321] In an implementation manner of the present application, before the network side device receives the beam report, the method further includes:
[0322] The network side device sends a beam report configuration, and the beam report configuration includes one or more first time slot offsets or second time slot offsets;
[0323] Wherein, the beam report includes the first time slot offset or the second time slot offset selected by the terminal.
[0324] In an implementation manner of the present application, the number of beam information associated with the beam report is equal to the number of the first measurement resources or the number of the second measurement resources triggered by the beam report.
[0325] In an implementation manner of the present application, if the number of beam information associated with the beam report is less than the number of the first measurement resources or the number of the second measurement resources configured, then the number of some of the first measurement resources or the number of the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report;
[0326] Or,
[0327] If the number of beam information associated in the beam report is equal to the number of the configured first measurement resources or the number of the second measurement resources, the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated in the beam report;
[0328] Or,
[0329] If the number of beam information associated in the beam report is greater than the number of the configured first measurement resources or the number of the second measurement resources, the beam report triggers all of the configured first measurement resources or second measurement resources.
[0330] In an implementation manner of the present application, some of the first measurement resources or the second measurement resources triggered by the beam report are determined according to a first condition;
[0331] Wherein, the first condition includes at least one of the following: 1) the order of resource set indexes, 2) the order of resource set identifiers, 3) the order of resource indexes, 4) the order of resource identifiers, 5) the transmission time order corresponding to the resource time domain position, 6) the transmission time order corresponding to the resource frequency domain position, 7) the transmission time order corresponding to pre-configured resources, 8) the transmission time order corresponding to resources configured by the network side, 9) the transmission time order corresponding to the resources reported by the terminal.
[0332] In an implementation manner of the present application, the number of resources associated in the first measurement resources or the second measurement resources triggered by the beam report is the same as the number of beam information associated in the beam report.
[0333] In an implementation manner of the present application, the first measurement resources or the second measurement resources triggered by the beam report are determined according to the trigger indication signaling associated in the beam report.
[0334] In an implementation manner of the present application, when the number of resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling is different from the number of beam information associated in the beam report,
[0335] Some of the resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling are determined according to a second condition;
[0336] Wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to pre-configured resources, the transmission time order corresponding to resources configured by the network side, and the transmission time order corresponding to the resources reported by the terminal.
[0337] In an implementation manner of this application, the method further includes:
[0338] When the m-th beam report triggers at least one cycle of first measurement resources or at least one transmission of first measurement resources, and a beam report for triggering the same predicted beam resource verification process is received between the eighth time and the ninth time, then perform a first action;
[0339] The first action includes one of the following: transmitting the first measurement resources triggered by the (m + 1)-th beam report, aborting the first measurement resources triggered by the m-th beam report, and QCL of the first measurement resources to the beam information determined by the (m + 1)-th beam report;
[0340] Wherein, the eighth time includes one of the following: the reporting time of the m-th beam report, x1 moments before the reporting time of the m-th beam report, x2 moments after the reporting time of the m-th beam report, the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, x3 moments before the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, and x4 moments after the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report;
[0341] The ninth time includes one of the following: the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, x5 moments before the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, and x6 moments after the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report;
[0342] The m, x1, x2, x3, x4, x5, and x6 are integers greater than or equal to 1.
[0343] In this embodiment, after the network-side device receives the beam report related to the beam prediction or beam verification function reported by the terminal, the network-side device does not need to configure beam measurement resources based on this beam report. The network-side device can send the first measurement resource or the second measurement resource according to the beam report, so as to realize triggering the downlink reference signal through the beam report related to the beam prediction or beam verification function to perform the beam verification process, thereby accelerating the enabling of the beam and improving the reliability of the beam.
[0344] See Figure 8 , this application also provides a communication processing device, which is applied to a terminal. The device 800 includes:
[0345] A first sending module 801, configured to send a beam report;
[0346] A first receiving module 802, configured to perform a beam verification process based on the beam report. The beam verification process includes at least one of the following: receiving the first measurement resource, receiving the second measurement resource;
[0347] Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0348] The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurement. The additional measurement refers to a measurement other than beam measurement.
[0349] In an implementation manner of this application, the beam report is also used to trigger a fast beam verification process. The fast beam verification process includes at least one of the following: a predicted beam resource verification process, an additional measurement resource verification process. Among them, the predicted beam resource verification process corresponds to the first measurement resource sending, and the first measurement resource sending is triggered by the beam report. The additional measurement resource verification process corresponds to the second measurement resource sending.
[0350] In an implementation manner of this application, the first measurement resource or the QCL signal corresponding to the first measurement resource is associated with the second measurement resource.
[0351] In an implementation manner of this application, the second measurement resource is quasi-co-located with the first measurement resource, and the quasi-co-location type of the second measurement resource as the first measurement resource is at least one of type A, type B, or type C.
[0352] In an implementation manner of the present application, the second measurement resource includes a synchronization signal block resource or a tracking reference signal resource.
[0353] In an implementation manner of the present application, when the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first use, and the first use is used to indicate that the transmission conditions of the first measurement resource include that the first measurement resource is configured or activated and the beam report triggers the transmission of the first measurement resource.
[0354] In an implementation manner of the present application, the first use is associated in the first measurement resource through explicit signaling, or the first measurement resource is associated with the beam report, and the first measurement resource enables the first use.
[0355] Optionally, the first use includes a periodic configuration function, and the periodic configuration function is used to indicate that after the first measurement resource corresponding to periodic transmission or semi-persistent transmission is configured or activated, it still will not transmit the first measurement resource, and only the corresponding beam report trigger resource can be used to trigger the transmission.
[0356] In an implementation manner of the present application,
[0357] The first receiving module is further configured to receive the first measurement resource according to the first time, or according to the first time and the first time delay;
[0358] Wherein, the first time includes at least one of the following:
[0359] 1) The time agreed upon by the protocol;
[0360] 2) The reporting time of the beam report associated with the first measurement resource;
[0361] 3) The sending time of the confirmation signaling corresponding to the beam report;
[0362] 4) The measurement time of the model input information, and the model input information is used to obtain the beam report;
[0363] Optionally, the measurement time of the model input information includes the measurement moment of the model input parameters used for obtaining the beam report.
[0364] Wherein, the first time delay includes at least one of the following:
[0365] 1) The model inference time;
[0366] 2) The model prediction result processing time;
[0367] 3) The time from when the terminal receives the model input information to when it sends the beam report;
[0368] 4) The time for the network side to process the beam report;
[0369] 5) The time for the network side to configure the first measurement resource;
[0370] 6) The processing time agreed upon by the protocol;
[0371] 7) The latency reported by the terminal;
[0372] 8) The latency indicated or configured by the network side.
[0373] Optionally, the unit of time can be seconds, milliseconds, time slots (slots), or symbols, etc., but is not limited thereto.
[0374] Optionally, the time includes: start time, or end time.
[0375] In an embodiment of the present application, the device further includes:
[0376] A first processing module, configured to determine the number of receptions or reception period for the terminal to receive the first measurement resource, or determine the number of transmissions or transmission period for the network side device to send the first measurement resource according to at least one of the future time of the predicted beam in the beam report, the ability of the terminal to support future time, and the future time of the predicted beam associated with the beam report configuration.
[0377] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the transmission of the beam information or quasi co-location signal associated with the first measurement resource, or the beam information or quasi co-location signal associated with the first measurement resource is determined according to the most recent beam reporting information of the beam report.
[0378] In an embodiment of the present application, the device further includes:
[0379] A second receiving module, configured to receive the beam information or quasi co-location signal associated with the first measurement resource according to a second time or a third time;
[0380] Wherein, the second time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0381] The second time delay includes at least one of the following: model inference time, model prediction result processing time, the time from when the terminal receives model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time stipulated by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0382] The third time is determined based on the second time and the second time delay. For example, the third time is equal to the sum of the second time and the second time delay.
[0383] In an embodiment of the present application, if the second time or the third time is within a partial resource of the first measurement resource in the nth cycle, the beam information or quasi - co - location signal of the first measurement resource in the (n + 1)th cycle is triggered to be sent by the beam report, where n is an integer greater than or equal to 1.
[0384] In an embodiment of the present application,
[0385] The first receiving module is further configured to receive the first measurement resource according to the fourth time;
[0386] Wherein, the fourth time is determined according to one of the following:
[0387] 1) The fifth time and the third time delay;
[0388] 2) The fifth time and the first time slot offset;
[0389] 3) The fifth time, the third time delay and the first time slot offset;
[0390] Wherein, the fifth time includes at least one of the following: the time stipulated by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0391] The third time delay includes at least one of the following: model inference time, model prediction result processing time, the time from when the terminal receives model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time stipulated by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0392] The first time slot offset includes at least one of the following: the offset of a normal time slot, the offset of a valid time slot, where the normal time slot includes a downlink time slot, an uplink time slot and a special time slot, and the valid time slot only includes a downlink time slot, or a downlink time slot and a special time slot.
[0393] Optionally, the fourth time is equal to the sum of the fifth time and the third time delay, or the fourth time is equal to the sum of the fifth time and the first time slot offset, or the fourth time is equal to the fifth time, the third time delay, and the first time slot offset.
[0394] Optionally, the first time slot offset can be obtained in one of the following ways:
[0395] 1) The network side configures an association with the beam report configuration;
[0396] 2) When the terminal reports a beam report, it is carried in the beam report.
[0397] 3) The network side configures an association with multiple beam report configurations. When the terminal reports a beam report, it selects a first time slot offset to carry.
[0398] In an embodiment of the present application, the device further includes:
[0399] A second processing module, configured to determine the number of receptions or reception period for the terminal to receive the first measurement resource, or determine the number of transmissions or transmission period for the network side device to send the first measurement resource, according to at least one of the number of the first time slot offsets, the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
[0400] In an embodiment of the present application,
[0401] The first receiving module is further configured to receive the second measurement resource according to the sixth time;
[0402] Wherein, the sixth time is determined according to one of the following:
[0403] 1) The seventh time and the fourth time delay;
[0404] 2) The seventh time and the second time slot offset;
[0405] 3) The seventh time, the fourth time delay, and the second time slot offset;
[0406] Wherein, the seventh time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the beam report reporting, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0407] The fourth time delay includes at least one of the following: model inference time, model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time stipulated by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0408] The second time slot offset includes at least one of the following: normal time slot offset, valid time slot offset, where the normal time slot includes a downlink time slot, an uplink time slot, and a special time slot, and the valid time slot only includes a downlink time slot, or a downlink time slot and a special time slot.
[0409] Optionally, the sixth time is equal to the sum of the seventh time and the fourth time delay, or the sixth time is equal to the sum of the seventh time and the second time slot offset, or the sixth time is equal to the seventh time, the fourth time delay, and the second time slot offset.
[0410] Optionally, the second time slot offset can be obtained in one of the following ways:
[0411] 1) The network side configures it to be associated with the beam report configuration;
[0412] 2) When the terminal reports the beam report, it carries it in the beam report.
[0413] 3) The network side configures it to be associated with multiple beam report configurations, and when the terminal reports the beam report, it selects one second time slot offset to carry.
[0414] In an implementation manner of the present application, the device further includes:
[0415] A third receiving module, configured to receive a beam report configuration, where the beam report configuration includes one or more first time slot offsets or second time slot offsets;
[0416] Wherein, the beam report includes the first time slot offset or the second time slot offset selected by the terminal.
[0417] In an implementation manner of the present application, the number of beam information associated with the beam report is equal to the number of the first measurement resources or the second measurement resources triggered by the beam report. That is, the number of beam information associated with the beam report corresponds one-to-one to the number of the first measurement resources or the second measurement resources triggered by the beam report.
[0418] In an implementation manner of the present application, if the number of beam information associated with the beam report is less than the number of the configured first measurement resources or the number of the second measurement resources, the number of the first measurement resources or the number of the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report.
[0419] Optionally, the partial first measurement resources or the second measurement resources triggered by the beam report are determined according to a first condition;
[0420] Wherein, the first condition includes at least one of the following: 1) the order of resource set indexes, 2) the order of resource set identifiers, 3) the order of resource indexes, 4) the order of resource identifiers, 5) the transmission time order corresponding to the resource time domain position, 6) the transmission time order corresponding to the resource frequency domain position, 7) the transmission time order corresponding to pre-configured resources, 8) the transmission time order corresponding to resources configured by the network side, 9) the transmission time order corresponding to the resources reported by the terminal.
[0421] In an implementation manner of the present application, if the number of beam information associated with the beam report is equal to the number of the configured first measurement resources or the number of the second measurement resources, the number of the first measurement resources or the number of the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report.
[0422] In an implementation manner of the present application, if the number of beam information associated with the beam report is greater than the number of the configured first measurement resources or the number of the second measurement resources, the beam report triggers all of the configured first measurement resources or second measurement resources.
[0423] In an implementation manner of the present application, the number of resources associated with the first measurement resources or the second measurement resources triggered by the beam report is the same as the number of beam information associated with the beam report.
[0424] In an implementation manner of the present application, the first measurement resources or the second measurement resources triggered by the beam report are determined according to the trigger indication signaling associated with the beam report.
[0425] Optionally, the number of resources associated with the first measurement resources or the second measurement resources triggered by the trigger indication signaling is the same as the number of beam information associated with the beam report.
[0426] In an implementation manner of the present application, in the case where the number of resources associated with the first measurement resources or the second measurement resources triggered by the trigger indication signaling is different from the number of beam information associated with the beam report,
[0427] The associated partial resources in the first measurement resource or the second measurement resource triggered by the trigger indication signaling are determined according to a second condition;
[0428] Wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to pre-configured resources, the transmission time order corresponding to resources configured by the network side, the transmission time order corresponding to the resources reported by the terminal.
[0429] The apparatus provided by the embodiments of the present application can implement Figure 6 the various processes implemented by the method embodiments, and achieve the same technical effects. To avoid repetition, details are not described herein again.
[0430] Refer to Figure 9 , the embodiments of the present application provide a communication processing apparatus, which is applied to a network side device. The apparatus 900 includes:
[0431] A fourth receiving module 901, configured to receive a beam report;
[0432] A second sending module 902, configured to perform a beam verification process according to the beam report. The beam verification process includes at least one of the following: first measurement resource sending, second measurement resource sending;
[0433] Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled;
[0434] The first measurement resource includes a resource or a resource set for predicting a beam, and the second measurement resource includes a resource or a resource set for additional measurement. The additional measurement refers to a measurement other than beam measurement.
[0435] In an implementation manner of the present application, the beam report is further used to trigger a fast beam verification process. The fast beam verification process includes at least one of the following: a predicted beam resource verification process, an additional measurement resource verification process. Among them, the predicted beam resource verification process corresponds to the first measurement resource sending, and the first measurement resource sending is triggered by the beam report. The additional measurement resource verification process corresponds to the second measurement resource sending.
[0436] In an implementation manner of the present application, the first measurement resource or the quasi-co-location signal corresponding to the first measurement resource is associated with the second measurement resource.
[0437] In one embodiment of the present application, the second measurement resource is quasi co-located with the first measurement resource.
[0438] In one embodiment of the present application, the second measurement resource includes a synchronization signal block resource or a tracking reference signal resource.
[0439] In one embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first use, and the first use is used to indicate that the transmission conditions of the first measurement resource include that the first measurement resource is configured or activated and the beam report triggers the transmission of the first measurement resource.
[0440] In one embodiment of the present application, the first use is associated with the first measurement resource through explicit signaling, or the first measurement resource is associated with the beam report, and the first measurement resource enables the first use.
[0441] In one embodiment of the present application, the second transmission module 902 is further configured to: perform the transmission of the first measurement resource according to the first time, or according to the first time and the first time delay, and the beam report;
[0442] Wherein, the first time includes at least one of the following:
[0443] 1) The time agreed upon by the protocol;
[0444] 2) The reporting time of the beam report associated with the first measurement resource;
[0445] 3) The transmission time of the acknowledgment signaling corresponding to the beam report;
[0446] 4) The measurement time of the model input information used to obtain the beam report;
[0447] Wherein, the first time delay includes at least one of the following:
[0448] 1) The model inference time;
[0449] 2) The model prediction result processing time;
[0450] 3) The time from when the terminal receives the model input information to when it sends the beam report;
[0451] 4) The time for the network side to process the beam report;
[0452] 5) The time for the network side to configure the first measurement resource;
[0453] 6) The processing time agreed upon by the protocol;
[0454] 7) The latency reported by the terminal;
[0455] 8) The latency indicated or configured by the network side.
[0456] In an embodiment of the present application, the device further includes:
[0457] A first determination module, configured to determine the number of transmission times or transmission period of the network side device for sending the first measurement resource, or determine the number of reception times or reception period of the terminal for receiving the first measurement resource, according to at least one of the number of future times of the predicted beam reported in the beam report, the ability of the terminal to report the supported number of future times, and the number of future times of the predicted beam associated with the beam report configuration configured by the network side.
[0458] In an embodiment of the present application, when the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the transmission of the beam information or quasi co-location signal associated with the first measurement resource, or the beam information or quasi co-location signal associated with the first measurement resource is determined according to the most recent beam reporting information of the beam report.
[0459] In an embodiment of the present application, the device further includes: a third transmission module for: sending the beam information or quasi co-location signal associated with the first measurement resource according to a second time or a third time;
[0460] Wherein, the second time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0461] The second latency includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the latency reported by the terminal, the latency indicated or configured by the network side;
[0462] The third time is determined according to the second time and the second latency. For example, the third time is equal to the sum of the second time and the second latency.
[0463] In an embodiment of the present application, if the second time or the third time is within a partial resource of the first measurement resource in the nth cycle, the beam information or quasi co-location signal of the first measurement resource in the (n + 1)th cycle is triggered to be sent by the beam report, where n is an integer greater than or equal to 1.
[0464] In an embodiment of the present application, the second sending module 902 is further configured to:
[0465] Send the first measurement resource according to the fourth time and the beam report;
[0466] Wherein, the fourth time is determined according to one of the following:
[0467] 1) The fifth time and the third time delay;
[0468] 2) The fifth time and the first time slot offset;
[0469] 3) The fifth time, the third time delay and the first time slot offset;
[0470] Wherein, the fifth time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report;
[0471] The third time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0472] The first time slot offset includes at least one of the following: the offset of a normal time slot, the offset of a valid time slot, where the normal time slot includes a downlink time slot, an uplink time slot, and a special time slot, and the valid time slot includes a downlink time slot, or a downlink time slot and a special time slot.
[0473] In an embodiment of the present application, the device further includes:
[0474] A second determination module, configured to determine the number of times or the sending period for the network side device to send the first measurement resource, or determine the number of times or the receiving period for the terminal to receive the first measurement resource according to at least one of the number of first time slot offsets, the number of future times of the predicted beams reported in the beam report, the ability of the terminal to report support for the number of future times, and the number of future times of the predicted beams configured by the network side and associated with the beam report configuration.
[0475] In an embodiment of the present application, the second sending module 902 is further configured to:
[0476] Send the second measurement resource according to the sixth time and the beam report;
[0477] Wherein, the sixth time is determined according to one of the following:
[0478] 1) The seventh time and the fourth time delay;
[0479] 2) The seventh time and the second time slot offset;
[0480] 3) The seventh time, the fourth time delay and the second time slot offset;
[0481] Wherein, the seventh time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report;
[0482] The fourth time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side;
[0483] The second time slot offset includes at least one of the following: the normal time slot offset, the effective time slot offset, wherein the normal time slot includes a downlink time slot, an uplink time slot and a special time slot, and the effective time slot includes a downlink time slot, or a downlink time slot and a special time slot.
[0484] In an implementation manner of the present application, the device further includes:
[0485] A fourth sending module, configured to send a beam report configuration, where the beam report configuration includes one or more first time slot offsets or second time slot offsets;
[0486] Wherein, the beam report includes the first time slot offset or the second time slot offset selected by the terminal.
[0487] In an implementation manner of the present application, the number of beam information associated with the beam report is equal to the number of the first measurement resources or the second measurement resources triggered by the beam report.
[0488] In an implementation manner of the present application, if the number of beam information associated with the beam report is less than the number of the first measurement resources or the second measurement resources configured, then the number of some of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report;
[0489] Or,
[0490] If the number of beam information associated in the beam report is equal to the number of the configured first measurement resources or the number of the second measurement resources, the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated in the beam report;
[0491] Or,
[0492] If the number of beam information associated in the beam report is greater than the number of the configured first measurement resources or the number of the second measurement resources, the beam report triggers all of the configured first measurement resources or second measurement resources.
[0493] In an implementation manner of the present application, some of the first measurement resources or the second measurement resources triggered by the beam report are determined according to a first condition;
[0494] Wherein, the first condition includes at least one of the following: 1) the order of resource set indexes, 2) the order of resource set identifiers, 3) the order of resource indexes, 4) the order of resource identifiers, 5) the transmission time order corresponding to the resource time domain position, 6) the transmission time order corresponding to the resource frequency domain position, 7) the transmission time order corresponding to pre-configured resources, 8) the transmission time order corresponding to resources configured by the network side, 9) the transmission time order corresponding to the resources reported by the terminal.
[0495] In an implementation manner of the present application, the number of resources associated in the first measurement resources or the second measurement resources triggered by the beam report is the same as the number of beam information associated in the beam report.
[0496] In an implementation manner of the present application, the first measurement resources or the second measurement resources triggered by the beam report are determined according to the trigger indication signaling associated in the beam report.
[0497] In an implementation manner of the present application, when the number of resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling is different from the number of beam information associated in the beam report,
[0498] Some of the resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling are determined according to a second condition;
[0499] Wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to pre-configured resources, the transmission time order corresponding to resources configured by the network side, the transmission time order corresponding to resources reported by the terminal.
[0500] In an embodiment of the present application, the apparatus further includes:
[0501] A third processing module, configured to, when the m-th beam report triggers at least one period of first measurement resources or at least one transmission of first measurement resources, and when receiving the (m + 1)-th beam report for triggering the same predicted beam resource verification process between the eighth time and the ninth time, perform a first action;
[0502] The first action includes one of the following: transmitting the first measurement resources triggered by the (m + 1)-th beam report, aborting the first measurement resources triggered by the m-th beam report, and QCL of the first measurement resources to the beam information determined by the (m + 1)-th beam report;
[0503] Wherein, the eighth time includes one of the following: the reporting time of the m-th beam report, x1 moments before the reporting time of the m-th beam report, x2 moments after the reporting time of the m-th beam report, the time of the first period of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, x3 moments before the time of the first period of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, x4 moments after the time of the first period of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report;
[0504] The ninth time includes one of the following: the time of the last period of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, x5 moments before the time of the last period of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, x6 moments after the time of the last period of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report;
[0505] The m, x1, x2, x3, x4, x5, and x6 are integers greater than or equal to 1.
[0506] The apparatus provided by the embodiments of the present application can implement Figure 7 the various processes implemented by the method embodiments and achieve the same technical effects. To avoid repetition, details are not described herein again.
[0507] Figure 10 FIG. 1 is a schematic diagram of the hardware structure of a terminal according to an embodiment of the present application. The terminal 1000 includes, but is not limited to, at least some components such as a radio frequency unit 1001, a network module 1002, an audio output unit 1003, an input unit 1004, a sensor 1005, a display unit 1006, a user input unit 1007, an interface unit 1008, a memory 1009, and a processor 1010.
[0508] Those skilled in the art can understand that the terminal 1000 may further include a power supply (such as a battery) for supplying power to each component. The power supply may be logically connected to the processor 1100 through a power management system, so as to implement functions such as management of charging, discharging, and power consumption management through the power management system. Figure 10 The terminal structure shown in FIG. 1 does not limit the terminal. The terminal may include more or fewer components than shown in the figure, or combine some components, or have different component arrangements, which will not be elaborated herein.
[0509] It should be understood that in the embodiment of the present application, the input unit 1004 may include a graphics processing unit (GPU) 10041 and a microphone 10042. The graphics processor 10041 processes the image data of a static picture or video obtained by an image capturing device (such as a camera) in a video capture mode or an image capture mode. The display unit 1006 may include a display panel 10061, and the display panel 10061 may be configured in the form of a liquid crystal display, an organic light emitting diode, etc. The user input unit 1007 includes at least one of a touch panel 10071 and other input devices 10072. The touch panel 10071 is also called a touch screen. The touch panel 10071 may include two parts: a touch detection device and a touch controller. The other input devices 10072 may include, but are not limited to, a physical keyboard, function keys (such as volume control keys, switch keys, etc.), a trackball, a mouse, and a joystick, which will not be elaborated herein.
[0510] In the embodiment of the present application, after the radio frequency unit 1001 receives downlink data from a network side device, it can be transmitted to the processor 1100 for processing; in addition, the radio frequency unit 1001 can send uplink data to the network side device. Generally, the radio frequency unit 1001 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.
[0511] The memory 1009 can be used to store software programs or instructions as well as various data. The memory 1009 may mainly include a first storage area for storing programs or instructions and a second storage area for storing data. Among them, the first storage area may store an operating system, application programs or instructions required for at least one function (such as a sound playback function, an image playback function, etc.). In addition, the memory 1009 may include a volatile memory or a non-volatile memory, or alternatively, the memory 1009 may include a non-transitory memory. Among them, the non-volatile memory or the non-transitory memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM), a static random access memory (SRAM), a dynamic random access memory (DRAM), a synchronous dynamic random access memory (SDRAM), a double data rate synchronous dynamic random access memory (DDR SDRAM), an enhanced synchronous dynamic random access memory (ESDRAM), a synchronous link dynamic random access memory (SLDRAM), and a direct rambus random access memory (DRRAM). The memory 1009 in the embodiments of the present application includes but is not limited to these and any other suitable types of memories.
[0512] The processor 1100 may include one or more processing units; optionally, the processor 1100 integrates an application processor and a modem processor. Among them, the application processor mainly processes operations related to the operating system, user interface, and application programs, etc., and the modem processor mainly processes wireless communication signals, such as a baseband processor. It can be understood that the above-mentioned modem processor may not be integrated into the processor 1100 either.
[0513] The terminal provided by the embodiments of the present application can implement Figure 6 each process implemented by the method embodiments and achieve the same technical effects. To avoid repetition, it will not be elaborated here.
[0514] Please refer to Figure 11 , Figure 11 which is a structural diagram of a network-side device applied in the embodiments of the present application. For example, Figure 11As shown, communication device 1100 includes: a processor 1101, a transceiver 1102, a memory 1103, and a bus interface. Among them, the processor 1101 can be responsible for managing the bus architecture and general processing. The memory 1103 can store the data used by the processor 1101 when performing operations.
[0515] In an embodiment of the present application, the network-side device 1100 further includes: a program stored in the memory 1103 and executable on the processor 1101. When the program is executed by the processor 1101, it implements the above Figure 9 steps in the method shown.
[0516] In Figure 11 it, the bus architecture can include any number of interconnected buses and bridges, specifically linking together various circuits of one or more processors represented by the processor 1101 and the memory represented by the memory 1103. The bus architecture can also link together various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art. Therefore, they will not be further described herein. The bus interface provides an interface. The transceiver 1202 can be multiple components, that is, including a transmitter and a receiver, providing a unit for communicating with various other devices on the transmission medium.
[0517] As Figure 12 shown, an embodiment of the present application further provides a communication device 1200, including a processor 1201 and a memory 1202. A program or instruction executable on the processor 1201 is stored on the memory 1202. For example, when the communication device 1200 is a terminal, when the program or instruction is executed by the processor 1201, it implements the above Figure 6 steps of the method embodiment. When the communication device 1200 is a network-side device, when the program or instruction is executed by the processor 1201, it implements the above Figure 7 steps of the method embodiment and can achieve the same technical effect. To avoid repetition, it will not be elaborated here.
[0518] An embodiment of the present application further provides a readable storage medium. A program or instruction is stored on the readable storage medium. When the program or instruction is executed by a processor, it implements Figure 6 or Figure 7 the method and the various processes of the above-mentioned embodiments, and can achieve the same technical effect. To avoid repetition, it will not be elaborated here.
[0519] Among them, the processor is the processor in the terminal described in the above embodiment. The readable storage medium includes computer-readable storage media such as computer read-only memory ROM, random access memory RAM, magnetic disks, or optical discs. In some examples, the readable storage medium can be a non-transitory readable storage medium.
[0520] Another embodiment of the present application further provides a chip, which includes a processor and a communication interface. The communication interface is coupled to the processor. The processor is configured to run programs or instructions to implement Figure 6 or Figure 7 each process of the above-mentioned method embodiments shown and described above, and can achieve the same technical effects. To avoid repetition, it will not be elaborated here.
[0521] It should be understood that the chip mentioned in the embodiments of the present application may also be referred to as a system-on-chip, system chip, chip system, or system-on-chip.
[0522] Another embodiment of the present application further provides a computer program / program product. The computer program / program product is stored in a storage medium and is executed by at least one processor to implement Figure 6 or Figure 7 each process of the above-mentioned method embodiments shown and described above, and can achieve the same technical effects. To avoid repetition, it will not be elaborated here.
[0523] The embodiments of the present application further provide a communication system, which includes a terminal and a network-side device. The terminal is configured to execute as Figure 6 and each process of the above-mentioned method embodiments, and the network-side device is configured to execute as Figure 7 and each process of the above-mentioned method embodiments, and can achieve the same technical effects. To avoid repetition, it will not be elaborated here.
[0524] It should be noted that in this document, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device including a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "including a..." does not exclude the presence of additional identical elements in the process, method, article or device including such element. In addition, it should be pointed out that the methods and devices in the embodiments of the present application are not limited to performing functions in the order shown or discussed. They may also include performing functions in a substantially simultaneous manner or in a reverse order according to the functions involved. For example, the described methods may be performed in an order different from that described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.
[0525] Through the description of the above embodiments, those skilled in the art can clearly understand that the above embodiment methods can be implemented by means of computer software products plus the necessary general hardware platforms, and of course, they can also be implemented by hardware. The computer software products are stored in storage media (such as ROM, RAM, magnetic disks, optical disks, etc.), including several instructions for enabling a terminal or a network-side device to execute the methods described in various embodiments of the present application.
[0526] The embodiments of the present application have been described above in conjunction with the accompanying drawings. However, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms of embodiments without departing from the purpose of the present application and the scope protected by the claims. These embodiments are all within the protection scope of the present application.
Claims
1. A communication processing method, characterized in that, Including: The terminal sends a beam report. Based on the beam report, the terminal performs a beam verification process, which includes at least one of the following: receiving a first measurement resource and receiving a second measurement resource. Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with a beam verification function, and the beam verification function associated with the beam report is enabled. The first measurement resource includes a resource or a set of resources for predicting a beam, and the second measurement resource includes a resource or a set of resources for additional measurements, where the additional measurements refer to measurements other than beam measurements.
2. The method according to claim 1, wherein The first measurement resource or the quasi-co-located signal corresponding to the first measurement resource is associated with the second measurement resource. Alternatively, the second measurement resource is quasi-co-located with the first measurement resource.
3. The method according to claim 1, characterized in that When the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first use, and the first use is used to indicate that the transmission conditions of the first measurement resource include that the first measurement resource is configured or activated and the beam report triggers the transmission of the first measurement resource.
4. The method according to claim 1, wherein When the first measurement resource is a periodic or semi-persistent resource, performing the beam verification process includes: The terminal receives the first measurement resource according to a first time, or according to a first time and a first time delay. Wherein, the first time includes at least one of the following: The time agreed upon by the protocol; The reporting time of the beam report associated with the first measurement resource; The sending time of the acknowledgment signaling corresponding to the reporting of the beam report; The measurement time of the model input information used to obtain the beam report; The first time delay includes at least one of the following: The model inference time; The model prediction result processing time; The time from when the terminal receives the model input information to when it sends the beam report; The time for the network side to process the beam report; The time for the network side to configure the first measurement resource; The processing time agreed upon by the protocol; The time delay reported by the terminal; The time delay indicated or configured by the network side.
5. The method according to claim 1, wherein When the first measurement resource is a periodic or semi-persistent resource, the method further includes: The terminal determines the number of receptions or the reception period for the terminal to receive the first measurement resource, or determines the number of transmissions or the transmission period for the network side device to send the first measurement resource according to at least one of the future time of the predicted beam in the beam report, the ability of the terminal to support future time, and the future time of the predicted beam associated with the beam report configuration.
6. The method according to claim 1, wherein When the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the transmission of the beam information or the quasi-co-located signal associated with the first measurement resource, or the beam information or the quasi-co-located signal associated with the first measurement resource is determined according to the most recent beam reporting information of the beam report.
7. The method according to claim 6, wherein The method further includes: The terminal receives beam information or quasi - co - location signals associated with the first measurement resource according to the second time or the third time; Wherein, the second time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report; The second time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side; The third time is determined according to the second time and the second time delay.
8. The method according to claim 1, characterized in that In the case where the first measurement resource is an aperiodic resource, the beam verification process includes: The terminal receives the first measurement resource according to the fourth time; Wherein, the fourth time is determined according to one of the following: The fifth time and the third time delay; The fifth time and the first time slot offset; The fifth time, the third time delay and the first time slot offset; Wherein, the fifth time includes at least one of the following: the time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report; The third time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side; The first time slot offset includes at least one of the following: the offset of a normal time slot, the offset of a valid time slot, where the normal time slot includes a downlink time slot, an uplink time slot and a special time slot, and the valid time slot includes a downlink time slot, or a downlink time slot and a special time slot.
9. The method according to claim 8, characterized in that, The method further includes: The terminal determines the number of receptions or the reception period for the terminal to receive the first measurement resource, or determines the number of transmissions or the transmission period for the network - side device to send the first measurement resource according to at least one of the number of the first time slot offsets, the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
10. The method according to claim 1, characterized in that, The beam verification process includes: The terminal receives the second measurement resource according to the sixth time; Wherein, the sixth time is determined according to one of the following: The seventh time and the fourth time delay; The seventh time and the second time slot offset; The seventh time, the fourth time delay and the second time slot offset; The seventh time includes at least one of the following: the time agreed upon in the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the reporting of the beam report, the measurement time of the model input information, where the model input information is used to obtain the beam report. The fourth time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon in the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side. The second time slot offset includes at least one of the following: the normal time slot offset, the effective time slot offset, where the normal time slot includes the downlink time slot, the uplink time slot, and the special time slot, and the effective time slot includes the downlink time slot, or the downlink time slot and the special time slot.
11. The method according to claim 8 or 10, characterized in that, Before the terminal sends the beam report, the method further includes: The terminal receives a beam report configuration, and the beam report configuration includes one or more first time slot offsets or second time slot offsets. Wherein, the beam report includes the first time slot offset or the second time slot offset selected by the terminal.
12. The method according to claim 1, wherein If the number of beam information associated with the beam report is less than the number of the first measurement resources or the second measurement resources configured, then the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report. Or, If the number of beam information associated with the beam report is equal to the number of the first measurement resources or the second measurement resources configured, then the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report. Or, If the number of beam information associated with the beam report is greater than the number of the first measurement resources or the second measurement resources configured, then the beam report triggers all of the configured first measurement resources or second measurement resources.
13. The method according to claim 12, wherein The partial first measurement resources or second measurement resources triggered by the beam report are determined according to a first condition. Wherein, the first condition includes at least one of the following: the order of the resource set index, the order of the resource set identifier, the order of the resource index, the order of the resource identifier, the sending time order corresponding to the time domain position of the resource, the sending time order corresponding to the frequency domain position of the resource, the sending time order corresponding to the pre-configured resource, the sending time order corresponding to the resource configured by the network side, the sending time order corresponding to the resource reported by the terminal.
14. The method according to claim 1, characterized in that, The first measurement resources or second measurement resources triggered by the beam report are determined according to the trigger indication signaling associated in the beam report. Wherein, in the case where the number of resources associated in the first measurement resources or second measurement resources triggered by the trigger indication signaling is different from the number of beam information associated in the beam report The associated partial resources in the first measurement resource or the second measurement resource triggered by the trigger indication signaling are determined according to a second condition; Wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to pre-configured resources, the transmission time order corresponding to resources configured by the network side, the transmission time order corresponding to the resources reported by the terminal.
15. A communication processing method, characterized in that, Including: The network side device receives a beam report; The network side device performs a beam verification process according to the beam report, and the beam verification process includes at least one of the following: first measurement resource transmission, second measurement resource transmission; Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled; The first measurement resource includes a resource or a resource set for predicting a beam, and the second measurement resource includes a resource or a resource set for additional measurement, and the additional measurement refers to a measurement other than beam measurement.
16. The method according to claim 15, characterized in that, When the first measurement resource is a periodic or semi-persistent resource, the first measurement resource is associated with a first use, and the first use is used to indicate that the transmission conditions of the first measurement resource include that the first measurement resource is configured or activated and the beam report triggers the transmission of the first measurement resource.
17. The method according to claim 15, characterized in that, When the first measurement resource is a periodic or semi-persistent resource, performing a beam verification process includes: The network side device performs first measurement resource transmission according to a first time, or according to a first time and a first time delay; Wherein, the first time includes at least one of the following: The time agreed upon by the protocol; The reporting time of the beam report associated with the first measurement resource; The transmission time of the acknowledgment signaling corresponding to the beam report reporting; The measurement time of the model input information used to obtain the beam report; The first time delay includes at least one of the following: Model inference time; Model prediction result processing time; The time from when the terminal receives the model input information to when it sends the beam report; The time for the network side to process the beam report; The time for the network side to configure the first measurement resource; The processing time agreed upon by the protocol; The time delay reported by the terminal; The time delay indicated or configured by the network side.
18. The method according to claim 15, wherein When the first measurement resource is a periodic or semi-persistent resource, the method further includes: The network side device determines the number of transmissions or the transmission period of the network side device to send the first measurement resource, or determines the number of receptions or the reception period of the terminal to receive the first measurement resource according to at least one of the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
19. The method according to claim 15, wherein When the first measurement resource is a periodic or semi-persistent resource, the beam report is further used to trigger the transmission of beam information or quasi co-location signals associated with the first measurement resource, or the beam information or quasi co-location signals associated with the first measurement resource are determined according to the most recent beam reporting information of the beam report.
20. The method according to claim 19, characterized in that The method further includes: The network side device sends the beam information or quasi co-location signals associated with the first measurement resource according to a second time or a third time; Wherein, the second time includes at least one of the following: a time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report; The second time delay includes at least one of the following: model inference time, model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side; The third time is determined according to the second time and the second time delay.
21. The method according to claim 15, characterized in that, In the case where the first measurement resource is an aperiodic resource, a beam verification process is performed, including: The network side device sends the first measurement resource according to a fourth time; Wherein, the fourth time is determined according to one of the following: A fifth time and a third time delay; A fifth time and a first time slot offset; A fifth time, a third time delay and a first time slot offset; Wherein, the fifth time includes at least one of the following: a time agreed upon by the protocol, the reporting time of the beam report associated with the first measurement resource, the transmission time of the acknowledgment signaling corresponding to the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report; The third time delay includes at least one of the following: model inference time, model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the processing time agreed upon by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side; The first time slot offset includes at least one of the following: the offset of a normal time slot, the offset of a valid time slot, wherein the normal time slot includes a downlink time slot, an uplink time slot and a special time slot, and the valid time slot includes a downlink time slot, or a downlink time slot and a special time slot.
22. The method according to claim 21, wherein In the case where the first measurement resource is an aperiodic resource, the method further includes: The network side device determines the number of transmissions or the transmission period of the network side device to send the first measurement resource, or determines the number of receptions or the reception period of the terminal to receive the first measurement resource according to at least one of the number of the first time slot offsets, the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
23. The method according to claim 15, wherein Perform a beam verification process, including: The network - side device sends the second measurement resource according to the sixth time; Wherein, the sixth time is determined according to one of the following: The seventh time and the fourth time delay; The seventh time and the second time - slot offset; The seventh time, the fourth time delay and the second time - slot offset; Wherein, the seventh time includes at least one of the following: the time agreed by the protocol, the reporting time of the beam report associated with the first measurement resource, the sending time of the acknowledgment signaling corresponding to the beam report, the measurement time of the model input information, wherein the model input information is used to obtain the beam report; The fourth time delay includes at least one of the following: the model inference time, the model prediction result processing time, the time from when the terminal receives the model input information to when it sends the beam report, the time for the network side to process the beam report, the time for the network side to configure the first measurement resource, the time agreed by the protocol, the time delay reported by the terminal, the time delay indicated or configured by the network side; The second time - slot offset includes at least one of the following: the normal time - slot offset, the effective time - slot offset, wherein the normal time - slot includes the downlink time - slot, the uplink time - slot and the special time - slot, and the effective time - slot includes the downlink time - slot, or the downlink time - slot and the special time - slot.
24. The method according to claim 21 or 23, characterized in that Before the network - side device receives the beam report, the method further includes: The network - side device sends a beam report configuration, and the beam report configuration includes one or more first time - slot offsets or second time - slot offsets; Wherein, the beam report includes the first time - slot offset or the second time - slot offset selected by the terminal.
25. According to the method of claim 15, wherein, If the number of beam information associated with the beam report is less than the number of the configured first measurement resources or the second measurement resources, then the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report; Or, If the number of beam information associated with the beam report is equal to the number of the configured first measurement resources or the second measurement resources, then the number of the first measurement resources or the second measurement resources triggered by the beam report is equal to the number of beam information associated with the beam report; Or, If the number of beam information associated with the beam report is greater than the number of the configured first measurement resources or the second measurement resources, then the beam report triggers all of the configured first measurement resources or second measurement resources.
26. The method according to claim 15, wherein The first measurement resources or the second measurement resources triggered by the beam report are determined according to the trigger indication signaling associated in the beam report; Wherein, when the number of resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling is different from the number of beam information associated in the beam report, Some of the resources associated in the first measurement resources or the second measurement resources triggered by the trigger indication signaling are determined according to the second condition; Wherein, the second condition includes at least one of the following: the order of resource set indexes, the order of resource set identifiers, the order of resource indexes, the order of resource identifiers, the transmission time order corresponding to the time domain position of the resource, the transmission time order corresponding to the frequency domain position of the resource, the transmission time order corresponding to pre-configured resources, the transmission time order corresponding to resources configured by the network side, the transmission time order corresponding to the resources reported by the terminal.
27. The method according to claim 15, characterized in that, The method further includes: When the m-th beam report triggers at least one cycle of first measurement resources or at least one transmission of first measurement resources, and a beam report for triggering the same predicted beam resource verification process is received between the eighth time and the ninth time, then perform a first action; The first action includes one of the following: transmitting the first measurement resources triggered by the (m + 1)-th beam report, aborting the first measurement resources triggered by the m-th beam report, and QCL of the first measurement resources to the beam information determined by the (m + 1)-th beam report; Wherein, the eighth time includes one of the following: the reporting time of the m-th beam report, x1 moments before the reporting time of the m-th beam report, x2 moments after the reporting time of the m-th beam report, the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, x3 moments before the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report, x4 moments after the time of the first cycle of first measurement resources or the first transmission of first measurement resources triggered by the m-th beam report; The ninth time includes one of the following: the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, x5 moments before the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report, x6 moments after the time of the last cycle of first measurement resources or the last transmission of first measurement resources triggered by the m-th beam report; The m, x1, x2, x3, x4, x5, and x6 are integers greater than or equal to 1.
28. A communication processing device, characterized in that, Including: A first transmission module, configured to transmit a beam report; A first reception module, configured to perform a beam verification process based on the beam report, where the beam verification process includes at least one of the following: first measurement resource reception, second measurement resource reception; Wherein, the beam report satisfies at least one of the following: the beam report is for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled; The first measurement resources include resources or resource sets for predicting beams, and the second measurement resources include resources or resource sets for additional measurements, where the additional measurements refer to measurements other than beam measurements.
29. The apparatus according to claim 28, wherein The first receiving module is further configured to receive the first measurement resource according to the first time, or according to the first time and the first time delay. Wherein, the first time includes at least one of the following: The time agreed upon by the protocol; The reporting time of the beam report associated with the first measurement resource; The sending time of the acknowledgment signaling corresponding to the reporting of the beam report; The measurement time of the model input information used to obtain the beam report; Wherein, the first time delay includes at least one of the following: The model inference time; The model prediction result processing time; The time from when the terminal receives the model input information to when it sends the beam report; The time for the network side to process the beam report; The time for the network side to configure the first measurement resource; The processing time agreed upon by the protocol; The time delay reported by the terminal; The time delay indicated or configured by the network side.
30. The device according to claim 28, wherein The device further includes: A first processing module, configured to determine the number of times or the receiving period for the terminal to receive the first measurement resource, or determine the number of times or the sending period for the network side device to send the first measurement resource according to at least one of the future time of the predicted beam in the beam report, the ability of the terminal to support the future time, and the future time of the predicted beam associated with the beam report configuration.
31. A communication processing device, characterized in that, Including: A fourth receiving module, configured to receive the beam report; A second sending module, configured to perform a beam verification process according to the beam report, and the beam verification process includes at least one of the following: sending the first measurement resource, sending the second measurement resource; Wherein, the beam report satisfies at least one of the following: the beam report is used for beam prediction, the beam report is obtained based on the model inference result of the terminal, the beam report is associated with the model of the terminal, the beam report is associated with the beam verification function, and the beam verification function associated with the beam report is enabled; The first measurement resource includes a resource or a resource set for predicting the beam, and the second measurement resource includes a resource or a resource set for additional measurement, and the additional measurement refers to a measurement other than beam measurement.
32. The device according to claim 31, characterized in that, The second sending module is further configured to: send the first measurement resource according to the first time, or according to the first time and the first time delay, and the beam report. Wherein, the first time includes at least one of the following: The time agreed upon by the protocol; The reporting time of the beam report associated with the first measurement resource; The sending time of the acknowledgment signaling corresponding to the reporting of the beam report; The measurement time of the model input information used to obtain the beam report; Wherein, the first time delay includes at least one of the following: The model inference time; The model prediction result processing time; The time from when the terminal receives the model input information to when it sends the beam report; The time for the network side to process the beam report; The time for the network side to configure the first measurement resource; The processing time agreed upon by the protocol; The time delay reported by the terminal; The time delay indicated or configured by the network side.
33. A terminal, characterized in that, It includes a processor, a memory, and a program or instructions stored on the memory and executable on the processor. When the program or instructions are executed by the processor, the steps of the method according to any one of claims 1 to 14 are implemented.
34. A network-side device, characterized in that, It includes a processor, a memory, and a program or instructions stored on the memory and executable on the processor. When the program or instructions are executed by the processor, the steps of the method according to any one of claims 15 to 27 are implemented.
35. A readable storage medium, characterized in that, A program or instructions are stored on the readable storage medium. When the program or instructions are executed by the processor of the terminal, the steps of the method according to any one of claims 1 to 27 are implemented.