Report submission method and apparatus

By receiving DCI data at the terminal and generating semi-continuously reported reports, the problem of reporting unmeasured sets under multiple reference signal resource sets in the new air interface system was solved, thereby improving the beam prediction and communication performance of communication equipment.

WO2026065075A1PCT designated stage Publication Date: 2026-04-02BEIJING XIAOMI MOBILE SOFTWARE CO LTD
View PDF 5 Cites 0 Cited by

Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

In a new air interface system, how can we effectively identify and report a set of unmeasured signal resources when network devices are configured with multiple sets of reference signal resources, in order to improve communication performance?

Method used

The terminal receives the DCI sent by the network device, determines at least two sets of reference signal resources based on the DCI, and measures the signal resources of only one set. Based on the measurement results, it generates a semi-continuous reporting report, which includes predicted data for the unmeasured set.

Benefits of technology

By using a semi-continuous reporting method, the accuracy of beam prediction and communication performance of communication equipment are improved, ensuring that network equipment can accurately schedule high-quality communication beams.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN2024121588_02042026_PF_FP_ABST
    Figure CN2024121588_02042026_PF_FP_ABST
Patent Text Reader

Abstract

The present disclosure provides a report submission method and apparatus. The method comprises: receiving downlink control information (DCI) sent by a network device, wherein the DCI is used for determining at least one piece of first configuration information, the first configuration information is used for determining at least two reference signal resource sets, and the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set; measuring reference signal resources in the first reference signal resource set, wherein reference signal resources in the second reference signal resource set are not measured; and determining a first report on the basis of the at least two reference signal resource sets, wherein the first report is a semi-persistent report, and the first report includes a report corresponding to the second reference signal resource set. The present disclosure provides, for an AI model-based beam prediction scenario, a method for determining a semi-persistent beam report.
Need to check novelty before this filing date? Find Prior Art

Description

Reporting method and device TECHNICAL FIELD

[0001] The present disclosure relates to the technical field of communication, and particularly relates to a reporting method and device. BACKGROUND

[0002] In a new radio (NR) system, optionally, when the communication frequency band is in frequency range (FR) 2, due to fast high-frequency channel attenuation, in order to ensure coverage, communication devices (such as terminals and network devices) usually need to transmit and / or receive signals based on beams.

[0003] SUMMARY

[0004] The reporting method and device provided by the embodiments of the present disclosure are used to solve the problem of how to report the first report including the report corresponding to the second reference signal resource set when the network device configures at least two reference signal resource sets including the first reference signal resource set and the second reference signal resource set, and the first reference signal resource is measured based on the at least two reference signal resource sets without measuring the second reference signal resource.

[0005] The present disclosure provides a reporting method and device.

[0006] According to a first aspect of the embodiments of the present disclosure, a reporting method is provided, which is executed by a terminal and includes: receiving downlink control information (DCI) sent by a network device, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set; measuring a reference signal resource in the first reference signal resource set, wherein a reference signal resource in the second reference signal resource set is not measured; determining a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0007] In the above embodiment, the terminal can determine the reporting mode of the first report according to the DCI sent by the network device, and the communication performance can be improved.

[0008] According to a second aspect of the embodiments of the present disclosure, a reporting method is provided, which is performed by a network device and includes: sending, by the network device, DCI to a terminal, wherein the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set, the at least two reference signal resource sets are used for the terminal to measure reference signal resources of the first reference signal resource set and not to measure reference signal resources of the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, the first report contains a report corresponding to the second reference signal resource set.

[0009] In the above embodiments, the network device can send DCI to the terminal to indicate the reporting manner of the terminal triggering the first report, thereby improving the communication performance.

[0010] According to a third aspect of the embodiments of the present disclosure, a reporting method is provided, which includes: sending, by a network device, DCI to a terminal, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set; receiving, by the terminal, the DCI sent by the network device; measuring, by the terminal, reference signal resources in the first reference signal resource set, wherein reference signal resources in the second reference signal resource set are not measured; and determining, by the terminal, a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0011] According to a fourth aspect of the embodiments of the present disclosure, a terminal is provided, which includes: a transceiver module, configured to receive DCI sent by a network device, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set; and a processing module, configured to measure reference signal resources in the first reference signal resource set, wherein reference signal resources in the second reference signal resource set are not measured, and the processing module is further configured to determine a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0012] According to a fifth aspect of the embodiments of the present disclosure, a network device is provided, including: a transceiver configured to transmit DCI to a terminal, wherein the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set, the at least two reference signal resource sets are used for the terminal to measure reference signal resources of the first reference signal resource set and not to measure reference signal resources of the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, the first report contains a report corresponding to the second reference signal resource set.

[0013] According to a sixth aspect of the embodiments of the present disclosure, a communication device is provided, including: one or more processors; and a memory coupled to the processors and storing instructions thereon that, when executed by the processors, cause the communication device to perform the method of the first aspect.

[0014] According to a seventh aspect of the embodiments of the present disclosure, a communication device is provided, including: one or more processors; and a memory coupled to the processors and storing instructions thereon that, when executed by the processors, cause the communication device to perform the method of the second aspect.

[0015] According to an eighth aspect of the embodiments of the present disclosure, a communication system is provided, including a terminal and a network device, wherein the terminal is configured to implement the method of the first aspect, and the network device is configured to implement the method of the second aspect.

[0016] According to a ninth aspect of the embodiments of the present disclosure, a storage medium is provided, the storage medium stores instructions, when the instructions run on a communication device, the communication device performs the method of the first aspect or the second aspect. BRIEF DESCRIPTION OF DRAWINGS

[0017] The above and / or additional aspects and advantages of the present disclosure will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings, in which:

[0018] FIG. 1 is a schematic diagram of the architecture of some communication systems according to an embodiment of the present disclosure;

[0019] FIG. 2 is a schematic diagram of a reporting method according to an embodiment of the present disclosure;

[0020] FIG. 3 is a schematic diagram of a reporting method according to another embodiment of the present disclosure;

[0021] FIG. 4 is a schematic diagram of a reporting method according to yet another embodiment of the present disclosure;

[0022] FIG. 5 is a schematic diagram of a reporting method according to still another embodiment of the present disclosure;

[0023] FIG. 6A is a schematic diagram of a structure of a terminal according to an embodiment of the present disclosure;

[0024] FIG. 6B is a schematic diagram of a structure of a network device according to an embodiment of the present disclosure;

[0025] FIG. 7A is a schematic diagram of a structure of a communication device according to an embodiment of the present disclosure;

[0026] FIG. 7B is a schematic diagram of a structure of a chip according to an embodiment of the present disclosure. DETAILED DESCRIPTION

[0027] Embodiments of the present disclosure provide a reporting method and device.

[0028] In a first aspect, embodiments of the present disclosure provide a reporting method, performed by a terminal, comprising: receiving a downlink control information (DCI) sent by a network device, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets comprising a first reference signal resource set and a second reference signal resource set; measuring a reference signal resource in the first reference signal resource set, wherein a reference signal resource in the second reference signal resource set is not measured; determining a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0029] In the above embodiments, the terminal can determine at least two reference signal resource sets, can measure reference signal resources of a first reference signal resource set in the at least two reference signal resource sets, and can not measure reference signal resources of a second reference signal resource set in the at least two reference signal resource sets, and the terminal can further determine the first report of the semi-persistent reporting based on the at least two reference signal resource sets. It can be known that the present disclosure provides a method of "how to determine the first report of the semi-persistent reporting based on the first reference signal resource set and the second reference signal resource set". Optionally, it can be known from the foregoing that the first reference signal resource set is measured by the terminal, and the second reference signal resource set is not measured by the terminal, and the first reference signal resource set and the second reference signal resource set can be used to implement "beam prediction based on an AI model", for example, measurement data of the first reference signal resource set can be input into an AI model to obtain prediction data of the second reference signal resource set. Based on this, when the first reference signal resource set and the second reference signal resource set are used to implement "beam prediction based on an AI model", the present disclosure provides a method of "how to determine a semi-persistent reporting beam report" for the scenario of "beam prediction based on an AI model", so that the terminal can successfully perform semi-persistent reporting for the scenario of "beam prediction based on an AI model", and then the network device can accurately schedule a communication beam with good beam quality for the scenario of "beam prediction based on an AI model" based on the reporting of the terminal, thereby ensuring communication quality and communication performance.

[0030] In combination with some embodiments of the first aspect, in some embodiments, the DCI includes physical uplink shared channel (PUSCH) resource configuration information, and the method further includes: the terminal semi-persistently sending the first report to the network device, where the first report is carried by the PUSCH.

[0031] In the above embodiments, the terminal can semi-persistently send the first report to the network device by carrying the first report in the PUSCH.

[0032] In combination with some embodiments of the first aspect, in some embodiments, the terminal determining the first report based on the at least two reference signal resource sets includes at least one of the following: measurement data of the first reference signal resource set is input into an artificial intelligence (AI) model to make the AI model output prediction data of the second reference signal resource set, and the first report is determined based on the prediction data of the second reference signal resource set; measurement data of the first reference signal resource set at at least one first time is input into the AI model to make the AI model output prediction data of the second reference signal resource set at at least one second time, the first time is earlier than the second time, and the first report is determined based on the prediction data of the second reference signal resource set.

[0033] In the above embodiments, the roles of the first reference signal resource and the second reference signal resource are explained, that is, the first reference signal resource set and the second reference signal resource set are used to implement "AI model-based beam prediction", so that when the first report is determined based on the at least two reference signal resource sets in the present disclosure, it is equivalent to providing a method for "how to determine a semi-persistent reporting beam report" for the "AI model-based beam prediction" scenario, so that the terminal can successfully perform semi-persistent reporting for the "AI model-based beam prediction" scenario, and then the network device can accurately schedule a communication beam with better beam quality for the "AI model-based beam prediction" scenario based on the reporting of the terminal, thereby ensuring communication quality and communication performance.

[0034] In some embodiments in combination with the first aspect, in some embodiments, the first configuration information is used to configure at least one of: a set identifier of the first reference signal resource set; a resource identifier of the reference signal resource in the first reference signal resource set; a beam identifier corresponding to the reference signal resource in the first reference signal resource set; a transmission configuration indication state identifier corresponding to the reference signal resource in the first reference signal resource set; a time domain position corresponding to the reference signal resource in the first reference signal resource set; a frequency domain position corresponding to the reference signal resource in the first reference signal resource set; a set identifier of the second reference signal resource set; a resource identifier of the reference signal resource in the second reference signal resource set; a beam identifier corresponding to the reference signal resource in the second reference signal resource set; a transmission configuration indication state identifier corresponding to the reference signal resource in the second reference signal resource set; a time domain position corresponding to the reference signal resource in the second reference signal resource set; a frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and the first identifier, the first identifier being used to indicate the first attribute identifier, the first attribute identifier being used to identify at least one of: a first attribute of the first reference signal resource set configured by each first configuration information, and a first attribute of the second reference signal resource set configured by each first configuration information.

[0035] In the above embodiments, the terminal can determine at least two reference signal resource sets according to the first configuration information of the network device, to determine the first report based on the at least two reference signal resource sets.

[0036] In some embodiments of the first aspect, in some embodiments, the first property of the first set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the first set of reference signal resources; an arrangement order of transmission beam angles of one or more reference signal resources in the first set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the first set of reference signal resources; a total number of reference signal resources in the first set of reference signal resources; a number of first time instants corresponding to the first set of reference signal resources.

[0037] In some embodiments of the first aspect, in some embodiments, the first property of the second set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; an arrangement order of transmission beam angles of one or more reference signal resources in the second set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the second set of reference signal resources; a total number of reference signal resources in the second set of reference signal resources; a number of second time instants corresponding to the second set of reference signal resources.

[0038] In the above embodiments, the specific content configured by the first configuration information is explained, so that the terminal can successfully determine the first set of reference signal resources and the second set of reference signal resources based on the content included in the first configuration information, and then the terminal can successfully determine the first report based on the first set of reference signal resources and the second set of reference signal resources.

[0039] In some embodiments of the first aspect, in some embodiments, the first report comprises predicted data of the second set of reference signal resources; the predicted data comprises at least one of: a resource identifier of a reference signal resource in the second set of reference signal resources; a beam identifier corresponding to a reference signal resource in the second set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the second set of reference signal resources; a beam prediction result corresponding to a reference signal resource in the second set of reference signal resources.

[0040] In the above embodiments, the content included in the first report is explained, so that the terminal can successfully report the first report to the network device, and then the network device can accurately schedule a communication beam with better beam quality based on the content included in the first report, ensuring the communication quality and communication performance.

[0041] In some embodiments of the first aspect, in some embodiments, the DCI is further used to determine whether the first report is triggered.

[0042] In the above embodiments, the DCI can also be used to determine whether the first report of the first configuration information is triggered, and the terminal can successfully determine the first report that needs to be semi-persistently reported in the AI model-based beam prediction scenario based on the DCI, so that the terminal can successfully semi-persistently report the first report to the network device when performing beam prediction based on the AI model.

[0043] In some embodiments of the first aspect, in some embodiments, the DCI includes a first indication field, the first indication field includes at least one bit, and at least one code point of the at least one bit of the first indication field is used to indicate a first trigger state in the first list, the first trigger state corresponds to a first report identifier of the at least one first report, the first report identifier corresponds to the first configuration information, and different first report identifiers correspond to different first configuration information; and at least one code point carried by the bit of the first indication field is used to indicate whether the first report corresponding to the first report identifier is triggered.

[0044] In some embodiments of the first aspect, in some embodiments, at least one code point of the at least one bit of the first indication field is used to indicate a second trigger state in the second list, the second trigger state corresponds to a second report identifier of the at least one second report, the second report identifier corresponds to the second configuration information, different second report identifiers correspond to different second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report; and at least one code point carried by the bit of the first indication field is used to indicate whether the second report corresponding to the second report identifier is triggered.

[0045] In some embodiments of the first aspect, in some embodiments, the DCI includes a second indication field, the second indication field includes at least one bit, and at least one code point of the at least one bit of the second indication field is used to indicate a second trigger state in the second list, the second trigger state corresponds to a second report identifier of the at least one second report, the second report identifier corresponds to the second configuration information, different second report identifiers correspond to different second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report; and at least one code point carried by the bit of the second indication field is used to indicate whether the second report corresponding to the second report identifier is triggered.

[0046] In some embodiments of the first aspect, in some embodiments, the DCI further comprises a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering the first report or triggering the second report; wherein the second report corresponds to second configuration information, and the second configuration information is used to configure at least one set of reference signal resources, and the second configuration information is used to configure the terminal to measure all the sets of reference signal resources in the at least one set of reference signal resources to obtain the second report.

[0047] In some embodiments of the first aspect, in some embodiments, a cyclic redundancy check (CRC) of the DCI is scrambled with a semi-persistent channel state information radio network temporary identifier (SP-CSI-RNTI).

[0048] In some embodiments of the first aspect, in some embodiments, if the DCI is used to trigger the activation of the first report, a hybrid automatic repeat request (HARQ) process number of the DCI corresponds to all 0 bits, and a redundancy version of the DCI corresponds to all 0 bits.

[0049] In some embodiments of the first aspect, in some embodiments, if the DCI is used to trigger the deactivation of the first report, the bit corresponding to the HARQ process number of the DCI is all 0, the bit corresponding to the redundancy version is all 0, the bit corresponding to the Modulation and coding scheme is all 1, wherein if the resource allocate type is type 0, the bit corresponding to the Resource block assignment is all 0, if the resource allocate type is type 1, the bit corresponding to the Resource block assignment is all 1, if the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is 0, the bit corresponding to the Resource block assignment is all 0, if the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is not 0, the bit corresponding to the Resource block assignment is all 1, if the resource allocate type is type 2 and the subcarrier spacing μ is 0, the bit corresponding to the Resource block assignment is all 1, if the resource allocate type is type 2 and the subcarrier spacing μ is 1, the bit corresponding to the Resource block assignment is all 0.

[0050] In some embodiments of the first aspect, in some embodiments, the format of the DCI is DCI format 0_1 or DCI format 0_2.

[0051] In the above embodiments, it is explained how the DCI specifically triggers the first report of the first configuration information, so that the terminal can successfully determine the first report that needs to be semi-persistently reported in the "AI model-based beam prediction" scenario based on the DCI. In the above embodiments, the network device can also trigger the terminal to report the second report, which is determined based on the measurement data of all reference signal resource sets in the at least one reference signal resource set corresponding to the second configuration information, that is, the second report is a report that needs to be reported (such as semi-persistent reporting) in the "non-AI model-based beam prediction" scenario. In the above embodiments, the network device can trigger the semi-persistent reporting of the first report and the second report at the same time by using the same DCI, or the network device can trigger the semi-persistent reporting of the first report or the second report at different times by using the same DCI, or the network device can trigger the semi-persistent reporting of the first report and the second report by using different indication fields (such as the first indication field and the second indication field) of the same DCI. Therefore, in the embodiments of the present disclosure, the network device can independently configure or simultaneously configure the semi-persistent reporting of the first report in the "AI model-based beam prediction" scenario and the semi-persistent reporting of the second report in the "non-AI model-based beam prediction" scenario, thereby enriching the configuration mode of the first report and enabling the first report and the second report to be better compatible.

[0052] In a second aspect, the embodiments of the present disclosure provide a reporting reporting method, performed by a network device, comprising: sending a DCI to a terminal, wherein the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set, the at least two reference signal resource sets are used for the terminal to measure reference signal resources of the first reference signal resource set and not to measure reference signal resources of the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, the first report contains a report corresponding to the second reference signal resource set.

[0053] In the above embodiments, the network device can send the DCI to the terminal to indicate the reporting mode of the first report triggered by the terminal, thereby improving the communication performance.

[0054] In combination with some embodiments of the second aspect, in some embodiments, the DCI includes PUSCH resource configuration information, and the above method further includes: the network device receives the first report semi-persistently sent by the terminal, wherein the first report is carried by the PUSCH.

[0055] In some embodiments of the second aspect, in some embodiments, the at least two sets of reference signal resources for the terminal to determine the first report comprise at least one of: measurement data of the first set of reference signal resources for inputting into an artificial intelligence (AI) model to make the AI model output prediction data of the second set of reference signal resources, and the first report is determined based on the prediction data of the second set of reference signal resources; measurement data of the first set of reference signal resources at at least one first time for inputting into the AI model to make the AI model output prediction data of the second set of reference signal resources at at least one second time, the first time being earlier than the second time, and the first report is determined based on the prediction data of the second set of reference signal resources.

[0056] In some embodiments of the second aspect, in some embodiments, the first configuration information is used to configure at least one of: a set identifier of the first set of reference signal resources; a resource identifier of a reference signal resource in the first set of reference signal resources; a beam identifier corresponding to a reference signal resource in the first set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the first set of reference signal resources; a time domain location corresponding to a reference signal resource in the first set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the first set of reference signal resources; a set identifier of the second set of reference signal resources; a resource identifier of a reference signal resource in the second set of reference signal resources; a beam identifier corresponding to a reference signal resource in the second set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the second set of reference signal resources; a time domain location corresponding to a reference signal resource in the second set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the second set of reference signal resources; and a first identifier, the first identifier being used to indicate a first attribute identifier, the first attribute identifier being used to identify at least one of: a first attribute of the first set of reference signal resources configured by each first configuration information, and a first attribute of the second set of reference signal resources configured by each first configuration information.

[0057] In some embodiments of the second aspect, in some embodiments, the first attribute of the first set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam angle arrangement order of one or more reference signal resources in the first set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the first set of reference signal resources; a total number of reference signal resources in the first set of reference signal resources; and a number of first times corresponding to the first set of reference signal resources.

[0058] In some embodiments of the second aspect, in some embodiments, the first property of the second set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; an order of transmission beam angles of one or more reference signal resources in the second set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the second set of reference signal resources; a total number of reference signal resources in the second set of reference signal resources; a number of second time instances corresponding to the second set of reference signal resources.

[0059] In some embodiments of the second aspect, in some embodiments, the first report comprises predicted data of the second set of reference signal resources; the predicted data comprises at least one of: a resource identifier of a reference signal resource in the second set of reference signal resources; a beam identifier corresponding to a reference signal resource in the second set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the second set of reference signal resources; a beam prediction result corresponding to a reference signal resource in the second set of reference signal resources.

[0060] In some embodiments of the second aspect, in some embodiments, the DCI is further used to determine whether the first report is triggered.

[0061] In some embodiments of the second aspect, in some embodiments, the DCI comprises a first indication field, the first indication field comprises at least one bit, at least one codepoint of the at least one bit of the first indication field is used to indicate a first trigger state in the first list, the first trigger state corresponds to a first report identifier of at least one first report, the first report identifier corresponds to the first configuration information, different first report identifiers correspond to different first configuration information; at least one codepoint carried by the bit of the first indication field is used to indicate whether the first report corresponding to the first report identifier is triggered.

[0062] In some embodiments of the second aspect, in some embodiments, at least one codepoint of the at least one bit of the first indication field is used to indicate a second trigger state in the first list, the second trigger state corresponds to a second report identifier of at least one second report, the second report identifier corresponds to the second configuration information, different second report identifiers correspond to different second configuration information, the second configuration information is used to configure at least one set of reference signal resources, the second configuration information is used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; at least one codepoint carried by the bit of the first indication field is used to indicate whether the second report corresponding to the second report identifier is triggered.

[0063] In some embodiments of the second aspect, in some embodiments, the DCI comprises a second indication field, the second indication field comprises at least one bit, at least one code point of the at least one bit of the second indication field is used to indicate a second trigger state in the second list, the second trigger state corresponds to a second report identity of the at least one second report, the second report identity corresponds to the second configuration information, different second report identities correspond to different second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report; the at least one code point carried by the bit of the second indication field is used to indicate whether the second report corresponding to the second report identity is triggered.

[0064] In some embodiments of the second aspect, in some embodiments, the DCI further comprises a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering of the first report or triggering of the second report; wherein the second report corresponds to the second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report.

[0065] In some embodiments of the second aspect, in some embodiments, the CRC of the DCI is scrambled by the SP-CSI-RNTI.

[0066] In some embodiments of the second aspect, in some embodiments, if the DCI is used to trigger activation of the first report, the bit corresponding to the HARQ process number of the DCI is all 0, and the bit corresponding to the redundancy version is all 0.

[0067] In some embodiments of the second aspect, in some embodiments, the CRC of the DCI is scrambled with a SP-CSI-RNTI, if the DCI is used to trigger the deactivation of the first report, the HARQ process number of the DCI corresponds to all 0 bits, the redundancy version of the DCI corresponds to all 0 bits, the Modulation and coding scheme of the DCI corresponds to all 1 bits, wherein, if the resource allocate type is type 0, the Resource block assignment of the DCI corresponds to all 0 bits, if the resource allocate type is type 1, the Resource block assignment of the DCI corresponds to all 1 bits, if the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is 0, the Resource block assignment of the DCI corresponds to all 0 bits, if the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is not 0, the Resource block assignment of the DCI corresponds to all 1 bits, if the resource allocate type is type 2 and the subcarrier spacing μ is 0, the Resource block assignment of the DCI corresponds to all 1 bits, if the resource allocate type is type 2 and the subcarrier spacing μ is 1, the Resource block assignment of the DCI corresponds to all 0 bits.

[0068] In some embodiments of the second aspect, in some embodiments, the format of the DCI is DCI format 0_1 or DCI format 0_2.

[0069] In a third aspect, the embodiments of the present disclosure provide a reporting reporting method, comprising: a network device sending a DCI to a terminal, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets comprising a first reference signal resource set and a second reference signal resource set; the terminal receiving the DCI sent by the network device; the terminal measuring the reference signal resources in the first reference signal resource set, wherein the terminal does not measure the reference signal resources in the second reference signal resource set; the terminal determining a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0070] In a fourth aspect, the embodiments of the present disclosure provide a terminal, the terminal comprising at least one of a transceiver module and a processing module; wherein the terminal is configured to perform the optional implementation manners of the first aspect.

[0071] In a fifth aspect, the embodiments of the present disclosure provide a network device, the network device comprising at least one of a transceiver module and a processing module; wherein the network device is configured to perform the optional implementation manners of the second aspect.

[0072] In a sixth aspect, the embodiments of the present disclosure provide a communication device, the communication device comprising: one or more processors; and a memory coupled to the processors and storing instructions that, when executed by the processors, cause the communication device to perform the method of the first aspect.

[0073] In a seventh aspect, the embodiments of the present disclosure provide a communication device, the communication device comprising: one or more processors; and a memory coupled to the processors and storing instructions that, when executed by the processors, cause the communication device to perform the method of the second aspect.

[0074] In an eighth aspect, the embodiments of the present disclosure provide a communication system, the communication system comprising: a terminal and a network device; wherein the terminal is configured to perform the method described in the optional implementation manners of the first aspect, and the network device is configured to perform the method described in the optional implementation manners of the second aspect.

[0075] In a ninth aspect, the embodiments of the present disclosure provide a storage medium, the storage medium storing instructions that, when executed on a communication device, cause the communication device to perform the method described in the optional implementation manners of the first aspect and the second aspect.

[0076] In a tenth aspect, the embodiments of the present disclosure provide a program product, the program product, when executed by a communication device, causing the communication device to perform the method described in the optional implementation manners of the first aspect and the second aspect.

[0077] In an eleventh aspect, the embodiments of the present disclosure provide a computer program, when executed on a computer, causing the computer to perform the method described in the optional implementation manners of the first aspect and the second aspect.

[0078] In a twelfth aspect, the embodiments of the present disclosure provide a chip or chip system. The chip or chip system comprises processing circuitry configured to perform the method described in the optional implementation manners of the first aspect and the second aspect.

[0079] It can be understood that the network device, the terminal, the communication apparatus, the communication system, the storage medium, the program product, the computer program, the chip or the chip system are used to execute the method proposed in the embodiments of the present disclosure. Therefore, the beneficial effects achieved by the network device, the terminal, the communication apparatus, the communication system, the storage medium, the program product, the computer program, the chip or the chip system can refer to the beneficial effects in the corresponding method, which will not be described here.

[0080] The embodiments of the present disclosure propose a reporting method and device. In some embodiments, the reporting method, the information processing method, the information sending method, the information receiving method and the like can be replaced with each other, the communication apparatus, the information processing apparatus, the information sending apparatus, the information receiving apparatus and the like can be replaced with each other, and the information processing system, the communication system, the information sending system, the information receiving system and the like can be replaced with each other.

[0081] The embodiments of the present disclosure are not exhaustive, but are only a part of the embodiments, and are not specific limitations on the protection scope of the present disclosure. In the case of no contradiction, each step in an embodiment can be implemented as an independent embodiment, and the steps can be combined arbitrarily, for example, the scheme after removing some steps in an embodiment can also be implemented as an independent embodiment, and the order of the steps in an embodiment can be exchanged arbitrarily, in addition, the optional implementation manners in an embodiment can be combined arbitrarily; in addition, the embodiments can be combined arbitrarily, for example, the steps of different embodiments or part or all of the steps of different embodiments can be combined arbitrarily, and an embodiment can be combined with the optional implementation manners of other embodiments.

[0082] In the embodiments of the present disclosure, the terms and / or descriptions between the embodiments are consistent if there is no special description and logical conflict, and can be referred to each other, and the technical features in different embodiments can be combined to form a new embodiment according to the logical relationship between them.

[0083] The terms used in the embodiments of the present disclosure are only for the purpose of describing specific embodiments, and not as a limitation on the present disclosure.

[0084] In the embodiments of the present disclosure, unless otherwise stated, the elements expressed in singular form, such as "one", "a", "the", "above", "said", "preceding", "this" and the like, can represent "one and only one", or "one or more", "at least one" and the like. For example, in the case of using articles such as "a", "an", "the" and the like in English, the noun after the article can be understood as singular expression, or as plural expression.

[0085] In the embodiments of the present disclosure, "a plurality of" means two or more.

[0086] In some embodiments, the terms “at least one of,” “at least one of,” “at least one of,” “one or more,” “a plurality of,” “multiple,” and the like can be replaced with each other.

[0087] In the description of the embodiments of the present disclosure, the description modes such as “at least one of A, B, and C”, “A and / or B and / or C”, and the like include any one of A, B, and C existing alone, and also include any combination of any number of A, B, and C, and each case can exist alone; for example, “at least one of A, B, and C” includes a case of A alone, a case of B alone, a case of C alone, a case of a combination of A and B, a case of a combination of A and C, a case of a combination of B and C, and a case of a combination of A and B and C; for example, A and / or B includes a case of A alone, a case of B alone, and a case of a combination of A and B.

[0088] In some embodiments, the description modes such as “A in a case, B in another case”, “in response to a case A, in response to another case B”, and the like can include the following technical solutions according to the cases: A is executed regardless of B, that is, A in some embodiments; B is executed regardless of A, that is, B in some embodiments; A and B are selectively executed, that is, A and B are selected from A and B to be executed in some embodiments; A and B are both executed, that is, A and B in some embodiments. When there are more branches of A, B, C, and the like, it is similar to the above.

[0089] The prefix words of "first", "second" and the like in the embodiments of the present disclosure are merely used to distinguish different description objects, and do not constitute limitation on the position, order, priority, quantity or content of the description objects. The description objects are described in the claims or embodiments, and should not be construed as redundant limitation because of the use of the prefix words. For example, the description object is "field", and the ordinal words before "field" in "first field" and "second field" do not limit the position or order between "fields", and "first" and "second" do not limit whether the "fields" modified thereby are in the same message or not, nor limit the order of "first field" and "second field". For another example, the description object is "level", and the ordinal words before "level" in "first level" and "second level" do not limit the priority between "levels". For another example, the quantity of the description object is not limited by the ordinal words, and can be one or more. For example, "first device", wherein the quantity of "device" can be one or more. In addition, the objects modified by different prefix words can be the same or different, for example, the description object is "device", and "first device" and "second device" can be the same device or different devices, and the types thereof can be the same or different. For another example, the description object is "information", and "first information" and "second information" can be the same information or different information, and the contents thereof can be the same or different.

[0090] In some embodiments, "including A", "containing A", "for indicating A", "carrying A" can be interpreted as directly carrying A, or indirectly indicating A.

[0091] In some embodiments, the terms of "in response to", "in response to determining", "in the case of", "when", "when", "if", "if" and the like can be replaced with each other.

[0092] In some embodiments, the terms of "greater than", "greater than or equal to", "not less than", "more than", "more than or equal to", "not less than", "higher than", "higher than or equal to", "not lower than", "above" and the like can be replaced with each other, and the terms of "less than", "less than or equal to", "not greater than", "less than", "less than or equal to", "not more than", "lower than", "lower than or equal to", "not higher than", "below" and the like can be replaced with each other.

[0093] In some embodiments, an apparatus or the like can be interpreted as an entity, and can also be interpreted as virtual, and the name thereof is not limited to the name described in the embodiments, and the terms "apparatus", "equipment", "device", "circuit", "network element", "node", "function", "unit", "section", "system", "network", "chip", "chip system", "entity", "subject" and the like can be replaced with each other.

[0094] In some embodiments, a "network" can be interpreted as an apparatus (for example, an access network device, a core network device, and the like) included in the network.

[0095] In some embodiments, the terms "access network device (AN device)", "radio access network device (RAN device)", "base station (BS)", "radio base station", "fixed station", "node", "access point", "transmission point (TP)", "reception point (RP)", "transmission / reception point (TRP)", "panel", "antenna panel", "antenna array", "cell", "macro cell", "small cell", "femto cell", "pico cell", "sector", "cell group", "carrier", "component carrier", "bandwidth part (BWP)" and the like can be replaced with each other.

[0096] In some embodiments, the terms "terminal," "terminal device," "user equipment (UE)," "user terminal," "mobile station (MS)," "mobile terminal (MT)," "subscriber station," "mobile unit," "subscriber unit," "wireless unit," "remote unit," "mobile device," "wireless device," "wireless communication device," "remote device," "mobile subscriber station," "access terminal," "mobile terminal," "wireless terminal," "remote terminal," "handset," "user agent," "mobile client," "client," and so on can be replaced with each other.

[0097] In some embodiments, the access network device, the core network device, or the network device can be replaced with a terminal. For example, the embodiments of the present disclosure can also be applied to a structure in which communication between the access network device, the core network device, or the network device and the terminal is replaced with communication between a plurality of terminals (for example, also referred to as device-to-device (D2D), vehicle-to-everything (V2X), and so on). In this case, the terminal can also be configured to have all or part of the functions of the access network device. In addition, the language of "uplink," "downlink," and so on can also be replaced with language corresponding to the inter-terminal communication (for example, "side"). For example, the uplink channel, the downlink channel, and so on can be replaced with the side channel, and the uplink, the downlink, and so on can be replaced with the side link.

[0098] In some embodiments, the terminal can be replaced with the access network device, the core network device, or the network device. In this case, the access network device, the core network device, or the network device can also be configured to have all or part of the functions of the terminal.

[0099] In some embodiments, the data, information, etc. can be obtained in compliance with the laws and regulations of the country where the location is situated.

[0100] In some embodiments, the data, information, etc. can be obtained after obtaining the consent of the user.

[0101] In addition, each element, each row, or each column in the table of the embodiments of the present disclosure can be implemented as an independent embodiment, and any combination of any element, any row, or any column can also be implemented as an independent embodiment.

[0102] The correspondence shown in each table in the present disclosure can be configured or predefined. The values of the information in each table are merely examples, and other values can be configured, and the present disclosure is not limited thereto. When configuring the correspondence between the information and each parameter, it is not necessarily required to configure all the correspondences shown in each table. For example, the correspondences shown in some rows in the table in the present disclosure can also not be configured. For another example, the above table can be appropriately deformed, adjusted, etc., for example, split, merged, etc. The names of the parameters shown in the titles of the above tables can also use other names understandable by the communication device, and the values or representations of the parameters can also use other values or representations understandable by the communication device. When implementing the above tables, other data structures can also be used, for example, arrays, queues, containers, stacks, linear tables, pointers, linked lists, trees, graphs, structures, classes, heaps, hash tables, etc.

[0103] The predefinition in the present disclosure can be understood as defining, predefining, storing, pre-storing, pre-negotiating, pre-configuring, solidifying, or pre-burning.

[0104] FIG. 1 is a schematic diagram of an architecture of a communication system according to an embodiment of the present disclosure. As shown in FIG. 1, the communication system includes a terminal, a network device. In some embodiments, the network device can include at least one of an access network device and a core network device.

[0105] In some embodiments, the terminal includes at least one of a mobile phone, a wearable device, an Internet of Things (IoT) device, a Narrow Band Internet of Things (NB-IOT) device, a communication-capable automobile, a smart automobile, a tablet (Pad), a wireless transceiver-equipped computer, a virtual reality (VR) terminal device, an augmented reality (AR) terminal device, a wireless terminal device in industrial control, a wireless terminal device in self-driving, a wireless terminal device in remote medical surgery, a wireless terminal device in a smart grid, a wireless terminal device in transportation safety, a wireless terminal device in a smart city, a wireless terminal device in a smart home, and the like, but is not limited thereto.

[0106] In some embodiments, the access network device is at least one of a node or a device that accesses a terminal to a wireless network, and can include an evolved NodeB (eNB) in a 5G communication system, a next generation eNB (ng-eNB), a next generation NodeB (gNB), a node B (NB), a home node B (HNB), a home evolved node B (HeNB), a wireless backhaul device, a radio network controller (RNC), a base station controller (BSC), a base transceiver station (BTS), a base band unit (BBU), a mobile switching center, a base station in a 6G communication system, an Open RAN, a Cloud RAN, a base station in other communication systems, an access node in a wireless fidelity (WiFi) system, and the like, but is not limited thereto.

[0107] In some embodiments, the technical solutions of the present disclosure can be applied to an Open RAN architecture, in which case, the interfaces between or within the access network devices involved in the embodiments of the present disclosure can become internal interfaces of the Open RAN, and the processes and information interactions between these internal interfaces can be implemented through software or programs.

[0108] In some embodiments, the access network device can be composed of a central unit (CU) and a distributed unit (DU), wherein the CU can also be referred to as a control unit. The CU-DU structure can split the protocol layers of the access network device, and the functions of part of the protocol layers are controlled by the CU, and the functions of the remaining part or all of the protocol layers are distributed in the DU, and the CU controls the DU.

[0109] In some embodiments, the core network device can be one device including one or more network elements, or can be multiple devices or device groups including all or part of the one or more network elements. The network element can be virtual or physical. The core network includes at least one of an evolved packet core (EPC), a 5G core network (5GCN), and a next-generation core (NGC), for example. Alternatively, the core network device can also be a location management function network element. The location management function network element includes a location server, which can be implemented as any one of the following: a location management function (LMF), an enhanced serving mobile location center (E-SMLC), a secure user plane location (SUPL), and a SUPL location platform (SUPLLP).

[0110] It can be understood that the communication system described in the embodiments of the present disclosure is for more clearly illustrating the technical solutions of the present disclosure, and does not constitute a limitation on the technical solutions proposed in the present disclosure. Those skilled in the art can know that, as the system architecture evolves and new business scenarios appear, the technical solutions proposed in the present disclosure are also applicable to similar technical problems.

[0111] The following embodiments of the present disclosure can be applied to the communication system 100 shown in FIG. 1, or part of the main bodies, but are not limited thereto. The main bodies shown in FIG. 1 are illustrative, and the communication system can include all or part of the main bodies in FIG. 1, or other main bodies other than those in FIG. 1. The number and form of each main body is arbitrary, and the connection relationship between the main bodies is illustrative. The main bodies can be connected or not connected, and the connection can be in any manner, can be direct or indirect, and can be wired or wireless.

[0112] Embodiments of the present disclosure can be applied to Long Term Evolution (LTE), LTE-Advanced (LTE-A), LTE-Beyond (LTE-B), SUPER 3G, IMT-Advanced, 4th generation mobile communication system (4G), 5th generation mobile communication system (5G), 5G new radio (NR), Future Radio Access (FRA), New-Radio Access Technology (RAT), New Radio (NR), New radio access (NX), Future generation radio access (FX), Global System for Mobile communications (GSM (registered trademark)), CDMA2000, Ultra Mobile Broadband (UMB), IEEE 802.11 (Wi-Fi (registered trademark)), IEEE 802.16 (WiMAX (registered trademark)), IEEE 802.20, Ultra-WideBand (UWB), Bluetooth (Bluetooth (registered trademark)), Public Land Mobile Network (PLMN) network, Device-to-Device (D2D) system, Machine to Machine (M2M) system, Internet of Things (IoT) system, Vehicle-to-Everything (V2X), system using other determination methods, next-generation system expanded based thereon, and the like. Further, a plurality of systems can be applied in combination (for example, combination of LTE or LTE-A and 5G, and the like).

[0113] Optionally, when a terminal and a network device transmit and receive signals based on beams, it is usually necessary to manage the beams, for example, it is usually necessary to determine the beam quality so as to transmit and receive signals by using a beam with better beam quality, thereby ensuring the communication performance. Optionally, in some embodiments, when determining the beam quality, an artificial intelligence (AI) model can be used to determine the predicted data of the beam. In some embodiments, the method of determining the predicted data of the beam by using the AI model can include: setting two reference signal resource sets, for example, a reference signal resource set A (set A) and a reference signal resource set B (set B), the reference signal resource set B and the reference signal resource set A can respectively include at least one reference signal resource, for example, the reference signal resource can include a Channel State Information-Reference Signal (CSI-RS) and / or a Synchronization Signal Block (SSB), and one reference signal resource can correspond to one transmission beam. Optionally, the beam quality of the reference signal resource in the reference signal resource set B can be measured, and the measurement data of the reference signal resource set B can be input into the AI model so that the AI model outputs the predicted data of the reference signal resource set A; and / or, the measurement data of the reference signal resource set B at at least one first time point can be input into the AI model so that the AI model outputs the predicted data of the reference signal resource set A at at least one second time point, wherein the first time point is earlier than the second time point.

[0114] In some embodiments, the measurement data can include at least one of: a Layer 1 Reference Signal Received Power (L1-RSRP) of a reference signal resource in the reference signal resource set B, a Layer 1 Signal to Interference plus Noise Ratio (L1-SINR) of the reference signal resource in the reference signal resource set B, a resource identity of the reference signal resource in the reference signal resource set B, a beam identity corresponding to the reference signal resource in the reference signal resource set B, a beam pair identity corresponding to the reference signal resource in the reference signal resource set B, a Transmission Configuration Indicator state Identity (TCI state ID) corresponding to the reference signal resource in the reference signal resource set B. Optionally, the prediction data can include at least one of: a resource identity of a reference signal resource in the reference signal resource set A, a beam identity corresponding to the reference signal resource in the reference signal resource set A, a TCI state ID corresponding to the reference signal resource in the reference signal resource set A, a beam prediction result of the reference signal resource set A. Optionally, the resource identity of the reference signal resource in the reference signal resource set A included in the prediction data can be a resource identity of one or more reference signal resources with the best prediction result. Optionally, the beam identity corresponding to the reference signal resource in the reference signal resource set A included in the prediction data can be a beam identity corresponding to one or more reference signal resources with the best prediction result. Optionally, the TCI state ID corresponding to the reference signal resource in the reference signal resource set A included in the prediction data can be a TCI state ID corresponding to one or more reference signal resources with the best prediction result. Optionally, the beam prediction result can include at least one of: a L1-RSRP of a reference signal resource in the reference signal resource set A, a L1-SINR of the reference signal resource in the reference signal resource set A, a probability value of the reference signal resource being the best reference signal resource. Optionally, the best or the best reference signal resource in the prediction result can be understood as the reference signal resource with the highest L1-RSRP or L1-SINR.

[0115] Optionally, the relationship between the reference signal resource set A and the reference signal resource set B can include any one of:

[0116] Firstly, the reference signal resource set B is a subset of the reference signal resource set A.

[0117] For example, the reference signal resource set A includes 32 reference signal resources, and the reference signal resource set B can include N reference signal resources in the 32 reference signal resources, N < 32, for example, N = 8.

[0118] Alternatively, the reference signal resource set A includes 32 reference signal resources, each of which corresponds to a transmission beam, and the terminal corresponds to 4 reception beam directions, so that the reference signal resource set A includes 32*4 beam pairs, and the reference signal resource set B can include 32 beam pairs in the 32*4 beam pairs, or 16 beam pairs, etc.

[0119] Secondly, the reference signal resource set B is a wide beam, and the reference signal resource set A is a narrow beam.

[0120] Optionally, the beams corresponding to the reference signal resource set B and the beams corresponding to the reference signal resource set A can cover the same beam direction and the same beam angle, and the number of reference signal resources in the reference signal resource set B is less than the number of reference signal resources in the reference signal resource set A.

[0121] For example, the reference signal resource set A can include 32 reference signal resources, and the beams corresponding to the 32 reference signal resources cover a direction of 120 degrees, the reference signal resource set B can include N reference signal resources, N < 32, for example, N = 8, the coverage direction and coverage angle of the beams corresponding to the N reference signal resources are the same as the coverage direction and coverage angle of the beams corresponding to the 32 reference signal resources, and optionally, the beam corresponding to one reference signal resource in the reference signal resource set B can simultaneously cover the beams corresponding to multiple reference signal resources in the reference signal resource set A. Optionally, the multiple reference signal resources in the reference signal resource set A can be in a quasi co location Type D (QCL Type D) relationship with one reference signal resource in the reference signal resource set B which simultaneously covers the beams corresponding to the multiple reference signal resources.

[0122] Thirdly, the reference signal resource set A and the reference signal resource set B satisfy at least one of the following:

[0123] The reference signal resources in the reference signal resource set B are the same as the reference signal resources in the reference signal resource set A;

[0124] The time domain positions of the reference signal resources in the reference signal resource set B are different from the time domain positions of the reference signal resources in the reference signal resource set A;

[0125] The frequency domain positions of the reference signal resources in the reference signal resource set B are the same as the frequency domain positions of the reference signal resources in the reference signal resource set A;

[0126] The transmission spatial domain filter corresponding to the reference signal resource in the reference signal resource set B is the same as the transmission spatial domain filter corresponding to the reference signal resource in the reference signal resource set A.

[0127] The resource ID of the reference signal resource in the reference signal resource set B is the same as the resource ID of the reference signal resource in the reference signal resource set A.

[0128] It should be noted that in some embodiments, when the reference signal resource set B is a subset of the reference signal resource set A, the beam prediction result of the reference signal resource set A can include at least one of the following: the measurement data of at least one reference signal resource in the reference signal resource set B, and the beam prediction result of at least one reference signal resource in the reference signal resource set A except the reference signal resource set B. Alternatively, the beam prediction result of the reference signal resource set A can include the beam prediction result of all reference signal resources in the reference signal resource set A.

[0129] In some embodiments, when the AI model is deployed on the terminal, the terminal usually needs to determine the measurement data of the reference signal resource set B, input the measurement data of the reference signal resource set B into the AI model to obtain the prediction data of the reference signal resource set A, and then report a beam report to the network device. The beam report can include the prediction data of the reference signal resource set A. After receiving the beam report, the network device can determine a beam with better beam quality in the reference signal resource set A based on the beam report, and schedule the terminal to use the beam with better beam quality for communication to ensure communication performance.

[0130] Optionally, the terminal can semi-persistently report the beam report when reporting the beam report, but how the terminal semi-persistently reports the beam report is a technical problem to be solved at present.

[0131] FIG. 2 is an interaction diagram of a reporting method according to an embodiment of the present disclosure. As shown in FIG. 2, the present disclosure relates to a reporting method for the communication system 100, and the method includes:

[0132] In step 2101, the network device sends DCI to the terminal.

[0133] [Rule 91 correction 06.11.2024] Optionally, the DCI can be used to determine at least one first configuration information, which can be used to determine at least two reference signal resource sets, including a first reference signal resource set and a second reference signal resource set. Optionally, the terminal measures the reference signal resources in the first reference signal resource set, and does not measure the reference signal resources in the second reference signal resource set. In some embodiments, the first reference signal resource set can be the reference signal resource set B described before the embodiment of FIG. 2, and the second reference signal resource set can be the reference signal resource set A described before the embodiment of FIG. 2. For details of the first reference signal resource set and the second reference signal resource set, refer to the description before the embodiment of FIG. 2.

[0134] Optionally, in some embodiments, the first reference signal resource set and / or the second reference signal resource set can be used to implement AI model-based beam prediction. For example, the first reference signal resource set and / or the second reference signal resource set can be used to implement AI model-based spatial domain beam prediction, in which case the measurement data of the first reference signal resource set can be input into the AI model to make the AI model output the prediction data of the second reference signal resource set. Alternatively, the first reference signal resource set and / or the second reference signal resource set can be used to implement AI model-based time domain beam prediction, in which case the measurement data of the first reference signal resource set at at least one first time is input into the AI model to make the AI model output the prediction data of the second reference signal resource set at at least one second time, where the first time can be earlier than the second time. For details of the “measurement data” and “prediction data” herein, refer to the description before the embodiment of FIG. 2.

[0135] In some embodiments, when the first reference signal resource set and the second reference signal resource set are used to implement AI model-based spatial domain beam prediction, the relationship between the first reference signal resource set and the second reference signal resource set can include the first or second described before the embodiment of FIG. 2. When the first reference signal resource set and the second reference signal resource set are used to implement AI model-based time domain beam prediction, the relationship between the first reference signal resource set and the second reference signal resource set can include the first, second or third described before the embodiment of FIG. 2.

[0136] Optionally, the first configuration information is used for configuring at least one of: a set identifier of the first set of reference signal resources; a resource identifier of a reference signal resource in the first set of reference signal resources; a beam identifier corresponding to a reference signal resource in the first set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the first set of reference signal resources; a time domain location corresponding to a reference signal resource in the first set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the first set of reference signal resources; a set identifier of the second set of reference signal resources; a resource identifier of a reference signal resource in the second set of reference signal resources; a beam identifier corresponding to a reference signal resource in the second set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the second set of reference signal resources; a time domain location corresponding to a reference signal resource in the second set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the second set of reference signal resources; the first identifier.

[0137] Optionally, the first identifier can be used for indicating a first attribute identifier, and the first attribute identifier can be used for identifying at least one of: a first attribute of the first set of reference signal resources corresponding to each first configuration information, a first attribute of the second set of reference signal resources corresponding to each first configuration information.

[0138] Optionally, the first attribute can be a transmission spatial domain filter related attribute.

[0139] Optionally, the first attribute of the first set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam angle arrangement order of one or more reference signal resources in the first set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the first set of reference signal resources; a total number of reference signal resources in the first set of reference signal resources; a number of first time instants corresponding to the first set of reference signal resources.

[0140] Optionally, the first attribute of the second set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam angle arrangement order of one or more reference signal resources in the second set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the second set of reference signal resources; a total number of reference signal resources in the second set of reference signal resources; a number of second time instants corresponding to the second set of reference signal resources.

[0141] Optionally, in some embodiments, the first configuration information can be used to determine the first reference signal resource set, but not the second reference signal resource set, which can be determined by the first identity; or the first configuration information can be used to determine the first reference signal resource set and the second reference signal resource set, or the time domain position corresponding to the first reference signal resource set determined by the first configuration information can be specific to a symbol, while the time domain position corresponding to the second reference signal resource set determined by the first configuration information can be specific to a time instance, a period, a frame, a subframe, or a slot. Alternatively, the first configuration information can not be used to determine the frequency domain position corresponding to the second reference signal resource set.

[0142] In some embodiments, the first identity or the first attribute identity described above may, for example, be referred to as an associated ID, or other names, which are not specifically limited by the present disclosure. Optionally, the first attribute described above may, for example, be referred to as an Additional condition of the network side device, or other names, which are not specifically limited by the present disclosure.

[0143] The reasons why the first configuration information carries the first identity are described in detail below.

[0144] Optionally, in some embodiments, when the AI model is deployed on the terminal, the terminal can train, apply, infer, performance test, etc. the AI model. Optionally, the input data required by different AI models is different, for example, taking "the first reference signal resource set is a subset of the second reference signal resource set" as an example, wherein the first reference signal resource set is setB and the second reference signal resource set is setA. For AI model #1 on the terminal, the input data required by the AI model #1 can be: measurement data corresponding to the first reference signal resource set composed of reference signal resources with resource IDs 1, 5, 9, 13, etc. 8 resource IDs in the second reference signal resource set; for AI model #2 on the terminal, the input data required by the AI model #2 is: measurement data corresponding to the first reference signal resource set composed of reference signal resources with resource IDs 1, 2, 3, 4, etc. 8 resource IDs. It can be understood that the first attribute corresponding to at least one reference signal resource with resource IDs 1, 5, 9, 13, etc. 8 resource IDs is different from the first attribute corresponding to at least one reference signal resource with resource IDs 1, 2, 3, 4, etc. 8 resource IDs. And in some embodiments, the first attribute corresponding to the first reference signal resource set and / or the second reference signal resource set of different network devices is also different. For example, the first attribute corresponding to the first reference signal resource set of network device #1 is: the first reference signal resource set includes reference signal resources with resource IDs 1, 5, 9, 13, etc. 8 resource IDs in the second reference signal resource set, and the first attribute corresponding to the first reference signal resource set of network device #2 is: the first reference signal resource set includes reference signal resources with resource IDs 1, 2, 3, 4, etc. 8 resource IDs in the second reference signal resource set. Therefore, in some embodiments, due to the different first attributes of the first reference signal resource set and / or the second reference signal resource set of different network devices, the AI model that can be used by the terminal when accessing different network devices will also be different. Therefore, in some embodiments, the network device can generally include a first identifier in the first configuration information to indicate the first attribute of the first reference signal resource set and / or the second reference signal resource set of the network device, so that the terminal can determine the most suitable AI model that can be used by the terminal based on the first attribute of the first reference signal resource set and / or the second reference signal resource set of the network device.

[0145] For example, it is assumed that there are AI model #1 and AI model #2 on the terminal, where the input data required by the AI model #1 is the measurement data of the first reference signal resource set composed of the reference signal resources with resource IDs 1, 5, 9, 13, and the like in the second reference signal resource set; the input data required by the AI model #2 is the measurement data of the first reference signal resource set composed of the reference signal resources corresponding to the resource IDs 1, 2, 3, 4, and the like in the second reference signal resource set. At this time, if the first attribute of the first reference signal resource set of the network device is that the first reference signal resource set includes the reference signal resources with the resource IDs 1, 5, 9, 13, and the like in the second reference signal resource set, the terminal can use the AI model 1 to perform beam prediction when accessing the network device.

[0146] Optionally, in some embodiments, the first identification can also not be included in the first configuration information, at this time, the terminal can select to use the first AI model, or the terminal can select to use any AI model in the at least one second AI model. Optionally, the first AI model can be a hybrid model trained in advance by the terminal, which is trained based on the first reference signal resource set and the second reference signal resource set corresponding to multiple different first identifications. Optionally, the at least one second AI model can be trained based on the first reference signal resource set and the second reference signal resource set corresponding to the same first identification.

[0147] Optionally, in some embodiments, the DCI is also used to determine whether the first report is triggered. Optionally, the first report can be a semi-persistent report, and the first report can include a report corresponding to the second reference signal resource set. Optionally, the first report can include prediction data of the second reference signal resource set. For detailed description of “prediction data”, reference can be made to the description before the embodiment of FIG. 2. In some embodiments, the first report can be understood as a beam report in the scenario of “AI model-based beam prediction”.

[0148] In some embodiments, the DCI includes a first indication field (for example, CSI request, or CSI request for AI), the first indication field includes at least one bit, and at least one code point of the at least one bit of the first indication field is used to indicate a first trigger state in the first list, the first trigger state corresponds to a first report identification of at least one first report, the first report identification corresponds to the first configuration information, and different first report identifications correspond to different first configuration information; at least one code point carried by the bit of the first indication field is used to indicate whether the first report corresponding to the first report identification is triggered.

[0149] Optionally, in some embodiments, the first list is a list of trigger states corresponding to semi-persistent reporting based on a physical uplink shared channel (PUSCH) (SemiPersistentOnPUSCH-TriggerStateList).

[0150] For example, at least one code point of at least one bit of the first indication field is used to indicate one first trigger state in the first list, for example, the code point “000” of the bit of the first indication field corresponds to the first trigger state in the first position of the first list.

[0151] It can be understood that the first trigger state can also correspond to the report identifier of other reports in addition to the first report identifier of the first report, for example, the second report identifier of the second report, the second report being different from the first report, for example, the first report can be understood as a beam report in the “beam prediction based on AI model” scenario, and the second report is a report determined by measuring the reference signal resources in the second reference signal resource set.

[0152] Optionally, at least one code point of at least one bit of the first indication field is used to indicate a second trigger state in the first list, the second trigger state corresponding to a second report identifier of at least one second report, the second report identifier corresponding to second configuration information, different second report identifiers corresponding to different second configuration information, the second configuration information being used to configure at least one reference signal resource set, and the second configuration information being used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report; at least one code point carried by the bit of the first indication field is used to indicate whether the second report corresponding to the second report identifier is triggered. Optionally, the first report identifier corresponding to the first report and the second report identifier corresponding to the second report are both in the first list; or the first trigger state corresponding to the first report and the second trigger state corresponding to the second report are both in the first list. Optionally, the first indication field of the DCI triggers the reporting of the first report or triggers the reporting of the second report.

[0153] For example, 3 bits of the first indication field, “000” is used to indicate the first trigger state corresponding to the first report in the first list, and “001” is used to indicate the second trigger state corresponding to the second report in the first list.

[0154] In some embodiments, the DCI includes a second indication field, the second indication field includes at least one bit, at least one code point of the at least one bit of the second indication field is used to indicate a second trigger state in a second list, the second trigger state corresponds to a second report identification of the at least one second report, the second report identification corresponds to second configuration information, different second report identification corresponds to different second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report. It can be understood that the DCI can trigger the reporting of the first report and the reporting of the second report at the same time, wherein the reporting of the first report is triggered by the first indication field, and the reporting of the second report is triggered by the second indication field. Optionally, all code points of the first indication field are used for triggering the first report, or all code points of the first indication field used for triggering the report are used for triggering the first report, that is, the code points of the first indication field can only correspond to the trigger states in the first list corresponding to the first report, and cannot correspond to the trigger states in the second list corresponding to the second report; all code points of the second indication field are used for triggering the second report, or all code points of the second indication field used for triggering the report are used for triggering the second report, that is, the code points of the second indication field can only correspond to the trigger states in the second list corresponding to the second report, and cannot correspond to the trigger states in the first list corresponding to the first report.

[0155] In some embodiments, the DCI further includes a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering the first report or triggering the second report; wherein the second report corresponds to second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report.

[0156] Exemplarily, the DCI includes a first indication field, the first indication field includes at least one bit, at least one code point of the at least one bit of the first indication field is used to indicate a first trigger state in a first list, the first trigger state corresponds to a first report identifier of at least one first report, the first report identifier corresponds to first configuration information, different first report identifiers correspond to different first configuration information; or, at least one code point carried by the bit of the first indication field is used to indicate whether a first report corresponding to the first report identifier is triggered; at least one code point of the at least one bit of the first indication field is used to indicate a second trigger state in a second list, the second trigger state corresponds to a second report identifier of at least one second report, the second report identifier corresponds to second configuration information, different second report identifiers correspond to different second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report; at least one code point carried by the bit of the first indication field is used to indicate whether a second report corresponding to the second report identifier is triggered. The DCI further includes a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering of the first report or triggering of the second report; wherein the second report corresponds to the second configuration information, the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report. It can be understood that the DCI includes the third indication field, the third indication field is used to indicate whether the DCI is used to indicate triggering of the first report or triggering of the second report. For example, the third indication field indicates that the DCI is used to trigger the first report, and the code point corresponding to the bit of the first indication field of the DCI corresponds to the first trigger state in the first list corresponding to the first report; otherwise, it corresponds to the second trigger state in the second list corresponding to the second report. And the second configuration information corresponding to the second trigger state corresponding to the second report is different from the first configuration information, and the reference signal resource sets configured by the second configuration information are all required to be measured by the terminal. That is, as long as one of the code points corresponding to the bit of the first indication field is used to trigger the first trigger state in the first list corresponding to the first report, the other code points of the bit of the first indication field will not be used to trigger the second trigger state in the second list corresponding to the second report. Conversely, the same is true.

[0157] In some embodiments, a cyclic redundancy check (CRC) of the DCI is scrambled with a semi-persistent channel state information radio network temporary identity (SP-CSI-RNTI).

[0158] In some embodiments, if the DCI is used to trigger activation of the first report, a hybrid automatic repeat request (HARQ) process number indicated by the DCI corresponds to all 0 bits, and a redundancy version indicated by the DCI corresponds to all 0 bits.

[0159] In some embodiments, if the DCI is used to trigger deactivation of the first report, a HARQ process number of the DCI corresponds to all 0 bits, a redundancy version of the DCI corresponds to all 0 bits, a modulation and coding scheme (MCS) of the DCI corresponds to all 1 bits, a resource block assignment (Resource block assignment) of the DCI corresponds to all 0 bits if a resource allocation type (resource allocate type) is type 0, the Resource block assignment of the DCI corresponds to all 1 bits if the resource allocate type is type 1, the Resource block assignment of the DCI corresponds to all 0 bits if the resource allocate type is dynamically switched between type 0 and type 1 and a most significant bit (MSB) is 0, the Resource block assignment of the DCI corresponds to all 1 bits if the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is not 0, the Resource block assignment of the DCI corresponds to all 1 bits if the resource allocate type is type 2 and a subcarrier spacing μ is 0, and the Resource block assignment of the DCI corresponds to all 0 bits if the resource allocate type is type 2 and the subcarrier spacing μ is 1.

[0160] In some embodiments, the format of the DCI is DCI format 0_1 or DCI format 0_2.

[0161] Optionally, the first report identifier and the second report identifier described above can be referred to as reportconfigID (such as CSIreportconfigID, CSIreportconfigID-AI). Optionally, the first list and the second list described above can be agreed by a protocol, and / or the first list and the second list can be configured by a network device.

[0162] Step 2102, the terminal measures the reference signal resources in the first set of reference signal resources, and does not measure the reference signal resources in the second set of reference signal resources.

[0163] Step 2103, the terminal determines the first report based on the at least two sets of reference signal resources corresponding to the second configuration information.

[0164] Optionally, the terminal can first determine the triggered first report based on the first information, then determine the first configuration information corresponding to the first report, and determine the at least two sets of reference signal resources based on the first configuration information, and further can determine the report content of the triggered first report based on the at least two sets of reference signal resources. For example, the terminal can determine the prediction data of the second set of reference signal resources based on the AI model and the measurement data of the first set of reference signal resources corresponding to the triggered first report, and then the terminal can determine the determined prediction data of the second set of reference signal resources as the report content of the triggered first report.

[0165] Optionally, the terminal determining the first report based on the at least two sets of reference signal resources includes at least one of the following: the measurement data of the first set of reference signal resources is used as input to an artificial intelligence AI model to make the AI model output prediction data of the second set of reference signal resources, and the first report is determined based on the prediction data of the second set of reference signal resources; the measurement data of the first set of reference signal resources at at least one first time is used as input to the AI model to make the AI model output prediction data of the second set of reference signal resources at at least one second time, the first time is earlier than the second time, and the first report is determined based on the prediction data of the second set of reference signal resources.

[0166] Step 2104, the terminal reports the first report to the network device.

[0167] Optionally, the DCI includes PUSCH resource configuration information, and the terminal semi-persistently sends the first report to the network device, wherein the first report is carried by the PUSCH.

[0168] In step 2105, the terminal measures the reference signal resources of all reference signal resource sets in the at least one reference signal resource set corresponding to the second configuration information.

[0169] In step 2106, the terminal determines the second report based on the at least one reference signal resource set corresponding to the second configuration information.

[0170] Optionally, the terminal can first determine the triggered second report based on the first information or the second information, then determine the second configuration information corresponding to the second report, determine the at least one reference signal resource set based on the second configuration information, and further determine the report content of the triggered second report based on the at least one reference signal resource set corresponding to the second configuration information. For example, the terminal can determine the report content of the second report based on the measurement data of the reference signal resources of all reference signal resource sets in the at least one reference signal resource set corresponding to the triggered second report. Optionally, the second report can include the measurement data of the reference signal resource with the best beam quality in all reference signal resource sets of the at least one reference signal resource set, or the second report can include the measurement data of the reference signal resource with the beam quality satisfying a certain condition in all reference signal resource sets of the at least one reference signal resource set. That is, the second report contains all the measurement data actually obtained by measurement.

[0171] In step 2107, the terminal reports the second report to the network device.

[0172] Optionally, the terminal can semi-persistently send the second report to the network device, where the second report is carried by the PUSCH.

[0173] In the above embodiments, based on the first configuration information, the terminal can determine at least two reference signal resource sets, measure reference signal resources of a first reference signal resource set in the at least two reference signal resource sets, and not measure reference signal resources of a second reference signal resource set in the at least two reference signal resource sets, and the terminal can further determine a first report of semi-persistent reporting based on the at least two reference signal resource sets. Therefore, the present disclosure provides a method of "how to determine a first report of semi-persistent reporting based on a first reference signal resource set and a second reference signal resource set". Optionally, as known from the foregoing, the first reference signal resource set is measured by the terminal, and the second reference signal resource set is not measured by the terminal, and the first reference signal resource set and the second reference signal resource set can be used to implement "beam prediction based on an AI model", for example, measurement data of the first reference signal resource set can be input into an AI model to obtain prediction data of the second reference signal resource set. Based on this, when the first reference signal resource set and the second reference signal resource set are used to implement "beam prediction based on an AI model", the present disclosure provides a method of "how to determine a semi-persistent reporting beam report" for the scenario of "beam prediction based on an AI model", so that the terminal can successfully perform semi-persistent reporting for the scenario of "beam prediction based on an AI model", and then the network device can accurately schedule a communication beam with good beam quality for the scenario of "beam prediction based on an AI model" based on the reporting of the terminal, thereby ensuring communication quality and communication performance.

[0174] The reporting reporting method related to the embodiments of the present disclosure can include at least one of steps 2101 to 2107. For example, step 2101 can be implemented as an independent embodiment, step 2102 can be implemented as an independent embodiment, step 2103 can be implemented as an independent embodiment, steps 2101+2102 can be implemented as an independent embodiment, steps 2101+2102+S2103 can be implemented as an independent embodiment, but are not limited thereto.

[0175] In the present embodiment or example, each step can be independent, arbitrarily combined or exchanged in order, the optional mode or optional example can be arbitrarily combined, and can be arbitrarily combined with any step of other embodiments or other examples.

[0176] FIG. 3 is an interaction diagram of a reporting reporting method according to an embodiment of the present disclosure. As shown in FIG. 3, the embodiments of the present disclosure relate to a reporting reporting method for a terminal, and the above method includes:

[0177] Step 3101, receiving DCI sent by a network device.

[0178] Step 3102, measuring a reference signal resource in the first reference signal resource set, wherein the reference signal resource in the second reference signal resource set is not measured.

[0179] Step 3103, determining the first report based on the at least two reference signal resource sets.

[0180] Optionally, the DCI is used to determine at least one first configuration information, and the first configuration information is used to determine the at least two reference signal resource sets, and the at least two reference signal resource sets include the first reference signal resource set and the second reference signal resource set.

[0181] Optionally, the first report is a semi-persistent report, and the first report includes a report corresponding to the second reference signal resource set.

[0182] Optionally, the DCI includes PUSCH resource configuration information, and the terminal semi-persistently sends the first report to the network device, wherein the first report is carried by the PUSCH.

[0183] Optionally, the terminal determines the first report based on the at least two reference signal resource sets includes at least one of the following: measurement data of the first reference signal resource set is used as input to an artificial intelligence (AI) model to cause the AI model to output predicted data of the second reference signal resource set, and the first report is determined based on the predicted data of the second reference signal resource set; measurement data of the first reference signal resource set at at least one first time is used as input to the AI model to cause the AI model to output predicted data of the second reference signal resource set at at least one second time, the first time is earlier than the second time, and the first report is determined based on the predicted data of the second reference signal resource set.

[0184] Optionally, the first configuration information is used for configuring at least one of: a set identifier of the set of first reference signal resource sets; a resource identifier of a reference signal resource in the first reference signal resource set; a beam identifier corresponding to the reference signal resource in the first reference signal resource set; a transmission configuration indication state identifier corresponding to the reference signal resource in the first reference signal resource set; a time domain location corresponding to the reference signal resource in the first reference signal resource set; a frequency domain location corresponding to the reference signal resource in the first reference signal resource set; a set identifier of the second reference signal resource set; a resource identifier of a reference signal resource in the second reference signal resource set; a beam identifier corresponding to the reference signal resource in the second reference signal resource set; a transmission configuration indication state identifier corresponding to the reference signal resource in the second reference signal resource set; a time domain location corresponding to the reference signal resource in the second reference signal resource set; a frequency domain location corresponding to the reference signal resource in the second reference signal resource set; and the first identifier, the first identifier being used for indicating the first attribute identifier, the first attribute identifier being used for identifying at least one of: a first attribute of the first reference signal resource set configured by each first configuration information, and a first attribute of the second reference signal resource set configured by each first configuration information.

[0185] Optionally, the first attribute of the first reference signal resource set comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set; a transmission beam angle arrangement order of one or more reference signal resources in the first reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the first reference signal resource set; a total number of reference signal resources in the first reference signal resource set; and a number of first time instants corresponding to the first reference signal resource set.

[0186] Optionally, the first attribute of the second reference signal resource set comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the second reference signal resource set; a transmission beam angle arrangement order of one or more reference signal resources in the second reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the second reference signal resource set; a total number of reference signal resources in the second reference signal resource set; and a number of second time instants corresponding to the second reference signal resource set.

[0187] Optionally, the first report comprises prediction data of the second set of reference signal resources; the prediction data comprises at least one of: a resource identity of a reference signal resource in the second set of reference signal resources; a beam identity corresponding to the reference signal resource in the second set of reference signal resources; a transmission configuration indication state identity corresponding to the reference signal resource in the second set of reference signal resources; and a beam prediction result corresponding to the reference signal resource in the second set of reference signal resources.

[0188] Optionally, the DCI is further used to determine whether the first report is triggered.

[0189] Optionally, the DCI comprises a first indication field, the first indication field comprising at least one bit, at least one codepoint of the at least one bit of the first indication field being used to indicate a first trigger state in the first list, the first trigger state corresponding to a first report identity of at least one first report, the first report identity corresponding to the first configuration information, different first report identities corresponding to different first configuration information; the at least one codepoint carried by the bit of the first indication field being used to indicate whether the first report corresponding to the first report identity is triggered.

[0190] Optionally, at least one codepoint of the at least one bit of the first indication field is used to indicate a second trigger state in the first list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to the second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; the at least one codepoint carried by the bit of the first indication field being used to indicate whether the second report corresponding to the second report identity is triggered.

[0191] Optionally, the DCI comprises a second indication field, the second indication field comprising at least one bit, at least one codepoint of the at least one bit of the second indication field being used to indicate a second trigger state in the second list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to the second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; the at least one codepoint carried by the bit of the second indication field being used to indicate whether the second report corresponding to the second report identity is triggered.

[0192] Optionally, the DCI further comprises a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering the first report or triggering the second report; wherein the second report corresponds to second configuration information, and the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report.

[0193] Optionally, the CRC of the DCI is scrambled by a SP-CSI-RNTI.

[0194] Optionally, if the DCI is used to trigger the activation of the first report, the bit of the HARQ process number of the DCI is all 0, and the bit of the redundancy version is all 0.

[0195] Optionally, the CRC of the DCI is scrambled by a SP-CSI-RNTI, if the DCI is used to trigger the deactivation of the first report, the bit of the HARQ process number of the DCI is all 0, the bit of the redundancy version is all 0, and the bit of the modulation and coding scheme is all 1, wherein, if the resource allocation type is type 0, the bit of the resource block assignment is all 0, if the resource allocation type is type 1, the bit of the resource block assignment is all 1, if the resource allocation type is dynamically switched between type 0 and type 1 and the MSB is 0, the bit of the resource block assignment is all 0, if the resource allocation type is dynamically switched between type 0 and type 1 and the MSB is not 0, the bit of the resource block assignment is all 1, if the resource allocation type is type 2 and the subcarrier spacing μ is 0, the bit of the resource block assignment is all 1, if the resource allocation type is type 2 and the subcarrier spacing μ is 1, the bit of the resource block assignment is all 0.

[0196] Optionally, the format of the DCI is DCI format 0_1 or DCI format 0_2.

[0197] The reporting method according to the embodiments of the present disclosure can include at least one of steps 3101-3103. For example, step 3101 can be implemented as an independent embodiment, step 3102 can be implemented as an independent embodiment, step 3103 can be implemented as an independent embodiment, step 3101+S3102 can be implemented as an independent embodiment, but not limited thereto.

[0198] In the present embodiment or example, each step can be independent, arbitrarily combined or exchanged in order, the optional mode or optional example can be arbitrarily combined, and can be arbitrarily combined with any step of other embodiments or other examples.

[0199] FIG. 4 is an interaction diagram of a reporting method according to an embodiment of the present disclosure. As shown in FIG. 4, the present embodiment relates to a reporting method for a network device, and the method comprises:

[0200] Step 4101, sending DCI to the terminal.

[0201] Optionally, the DCI is used to determine at least one first configuration information, and the first configuration information is used to determine at least two reference signal resource sets, including a first reference signal resource set and a second reference signal resource set.

[0202] Optionally, the first report is a semi-persistent reporting report, and the first report contains a report corresponding to the second reference signal resource set.

[0203] Optionally, the DCI includes PUSCH resource configuration information, and the network device receives the first report sent by the terminal semi-persistently, wherein the first report is carried by the PUSCH.

[0204] Optionally, the at least two reference signal resource sets are used by the terminal to determine that the first report includes at least one of the following: the measurement data of the first reference signal resource set is used to input into an artificial intelligence (AI) model to make the AI model output predicted data of the second reference signal resource set, and the first report is determined based on the predicted data of the second reference signal resource set; the measurement data of the first reference signal resource set at at least one first time is used to input into the AI model to make the AI model output predicted data of the second reference signal resource set at at least one second time, the first time is earlier than the second time, and the first report is determined based on the predicted data of the second reference signal resource set.

[0205] Optionally, the first configuration information is used for configuring at least one of: a set identifier of the first set of reference signal resources; a resource identifier of a reference signal resource in the first set of reference signal resources; a beam identifier corresponding to a reference signal resource in the first set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the first set of reference signal resources; a time domain location corresponding to a reference signal resource in the first set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the first set of reference signal resources; a set identifier of the second set of reference signal resources; a resource identifier of a reference signal resource in the second set of reference signal resources; a beam identifier corresponding to a reference signal resource in the second set of reference signal resources; a transmission configuration indication state identifier corresponding to a reference signal resource in the second set of reference signal resources; a time domain location corresponding to a reference signal resource in the second set of reference signal resources; a frequency domain location corresponding to a reference signal resource in the second set of reference signal resources; a first identifier, the first identifier being used for indicating a first attribute identifier, the first attribute identifier being used for identifying at least one of: a first attribute of the first set of reference signal resources configured by each first configuration information, a first attribute of the second set of reference signal resources configured by each first configuration information.

[0206] Optionally, the first attribute can be an attribute related to a transmission spatial domain filter.

[0207] Optionally, the first attribute of the first set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the first set of reference signal resources; a transmission beam angle arrangement order of one or more reference signal resources in the first set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the first set of reference signal resources; a total number of reference signal resources in the first set of reference signal resources; a number of first time instants corresponding to the first set of reference signal resources.

[0208] Optionally, the first attribute of the second set of reference signal resources comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; a transmission beam angle arrangement order of one or more reference signal resources in the second set of reference signal resources; a transmission beam angle difference between two adjacent reference signal resources in the second set of reference signal resources; a total number of reference signal resources in the second set of reference signal resources; a number of second time instants corresponding to the second set of reference signal resources.

[0209] Optionally, the first report comprises prediction data of the second set of reference signal resources; the prediction data comprises at least one of: a resource identity of a reference signal resource in the second set of reference signal resources; a beam identity corresponding to the reference signal resource in the second set of reference signal resources; a transmission configuration indication state identity corresponding to the reference signal resource in the second set of reference signal resources; and a beam prediction result corresponding to the reference signal resource in the second set of reference signal resources.

[0210] Optionally, the DCI is further used to determine whether the first report is triggered.

[0211] Optionally, the DCI comprises a first indication field, the first indication field comprising at least one bit, at least one codepoint of the at least one bit of the first indication field being used to indicate a first trigger state in the first list, the first trigger state corresponding to a first report identity of at least one first report, the first report identity corresponding to the first configuration information, different first report identities corresponding to different first configuration information; at least one codepoint carried by the bit of the first indication field being used to indicate whether the first report corresponding to the first report identity is triggered.

[0212] Optionally, at least one codepoint of the at least one bit of the first indication field is used to indicate a second trigger state in the first list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to the second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; at least one codepoint carried by the bit of the first indication field being used to indicate whether the second report corresponding to the second report identity is triggered.

[0213] Optionally, the DCI comprises a second indication field, the second indication field comprising at least one bit, at least one codepoint of the at least one bit of the second indication field being used to indicate a second trigger state in the second list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to the second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; at least one codepoint carried by the bit of the second indication field being used to indicate whether the second report corresponding to the second report identity is triggered.

[0214] Optionally, the DCI further comprises a third indication field, wherein the third indication field is used to indicate that the first indication field is used for triggering the first report or triggering the second report; wherein the second report corresponds to second configuration information, and the second configuration information is used to configure at least one reference signal resource set, and the second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report.

[0215] Optionally, the CRC of the DCI is scrambled by a SP-CSI-RNTI.

[0216] Optionally, if the DCI is used to trigger the activation of the first report, the HARQ process number of the DCI corresponds to all 0 bits, the redundancy version corresponds to all 0 bits.

[0217] Optionally, the CRC of the DCI is scrambled by a SP-CSI-RNTI, if the DCI is used to trigger the deactivation of the first report, the HARQ process number of the DCI corresponds to all 0 bits, the redundancy version corresponds to all 0 bits, the modulation and coding scheme corresponds to all 1 bits, wherein, if the resource allocation type is type 0, the resource block assignment corresponds to all 0 bits, if the resource allocation type is type 1, the resource block assignment corresponds to all 1 bits, if the resource allocation type is dynamically switched between type 0 and type 1 and the MSB is 0, the resource block assignment corresponds to all 0 bits, if the resource allocation type is dynamically switched between type 0 and type 1 and the MSB is not 0, the resource block assignment corresponds to all 1 bits, if the resource allocation type is type 2 and the subcarrier spacing μ is 0, the resource block assignment corresponds to all 1 bits, if the resource allocation type is type 2 and the subcarrier spacing μ is 1, the resource block assignment corresponds to all 0 bits.

[0218] Optionally, the format of the DCI is DCI format 0_1 or DCI format 0_2.

[0219] In the embodiments or examples, each step can be independent, arbitrarily combined or the order exchanged, the optional mode or optional example can be arbitrarily combined, and can be arbitrarily combined with any step of other embodiments or other examples without contradiction.

[0220] FIG. 5 is an interaction diagram of a reporting method according to an embodiment of the present disclosure. As shown in FIG. 5, the embodiment of the present disclosure relates to a reporting method, which is used in a communication system including a terminal, a network device, and the method includes at least one of the following:

[0221] Step 5101, the network device sends DCI to the terminal.

[0222] Step 5102, the terminal receives the DCI sent by the network device.

[0223] Step 5103, the terminal measures the reference signal resource in the first reference signal resource set, wherein the terminal does not measure the reference signal resource in the second reference signal resource set.

[0224] Step 5104, the terminal determines the first report based on the at least two reference signal resource sets.

[0225] The optional implementation of steps 5101-5104 can refer to the above-mentioned embodiment introduction.

[0226] In some embodiments, the above method can include the method described in the above-mentioned communication system side, terminal side, network device side, etc. embodiments, which are not described here.

[0227] The reporting method related by the embodiments of the present disclosure can include at least one of steps 5101-5104. For example, step 5101 can be implemented as an independent embodiment, and step 5102 can be implemented as an independent embodiment, but not limited thereto.

[0228] In the embodiments or examples, each step can be independent, arbitrarily combined or the order exchanged, the optional mode or optional example can be arbitrarily combined, and can be arbitrarily combined with any step of other embodiments or other examples without contradiction.

[0229] The following is an exemplary introduction to the above method.

[0230] I. The terminal receives first information of the network device (see the DCI in the above embodiment, the same below), determines a first report based on the first information, the first report corresponds to first configuration information, the terminal determines at least two reference signal resource sets based on the first configuration information, the terminal measures a first reference signal resource set in the at least two reference signal resource sets, and the terminal does not measure a second reference signal resource set in the at least two reference signal resource sets.

[0231] 1. The first report is reported on PUSCH, and the first information further includes PUSCH resource allocation information.

[0232] 2. The first report is a beam prediction result obtained based on an AI model, and is defined based on one of the two reference signal resource sets that needs to be measured and one that does not need to be measured. Here, the first reference signal resource set that needs to be measured is set B, and the second reference signal resource set that does not need to be measured is set A. However, in the case of time domain beam prediction, set B and set A are the same, and it is stated that the time domain positions of the reference signal resources corresponding to the first reference signal resource set and the second reference signal resource set are different, and other information such as the frequency domain position, the beam transmission spatial domain filter / parameter (Tx spatial domain filter / parameter) or even the resource ID can be the same.

[0233] II. Based on I, the first report is based on the measurement result of the first reference signal resource set and the prediction result of the second reference signal resource set obtained based on the AI model.

[0234] III. Based on I, the first configuration information includes at least one of the following:

[0235] 1. Information of the at least two reference signal resource sets;

[0236] · The first configuration information directly displays the configuration of set B and set A;

[0237] · In this case, the first ID below can also be included;

[0238] 2. The first configuration information includes information of the first reference signal resource set in the at least two reference signal resource sets;

[0239] · The first configuration information only displays the configuration of set B, and set A is obtained based on the first ID below;

[0240] 3. The first configuration information includes the first ID;

[0241] The first ID can also be referred to as an associated ID. The associated ID is an additional condition for the terminal to determine the network side. The additional condition includes, for example, the angle corresponding to the transmission beam of the network device (e.g., base station) side, the order of the angle size of the beams corresponding to multiple reference signal resource IDs in set B / set A, whether the beam angle relative to a certain reference direction becomes larger as the resource ID becomes larger, the difference between the beam angles corresponding to adjacent reference signal resource IDs, the number of reference signal resources included in set B / set A, the number of historical measurement times corresponding to the model input in the time domain beam prediction model, or the number of future prediction times corresponding to the model output, and the like. The consistency of the additional condition is mainly for the terminal side to select the most suitable model. For example, for spatial beam prediction, assuming that set B is a subset of set A, the terminal side trains multiple models, one of which is model A, which uses the beam measurement results corresponding to resource IDs 1, 5, 9, 13, and the like in set A (a total of 32 resources) as the input of the model. Another is model B, which uses the beam measurement results corresponding to resource IDs 1, 2, 3, 4, and the like in set A as the input of the model. When the terminal side needs to perform inference based on the model, if it does not know whether the set B transmitted by the base station corresponds to resource IDs 1, 5, 9, 13, or 1, 2, 3, 4, and the like in set A, the terminal does not know whether to select model A or model B for model inference. Therefore, the associated ID is used to indicate the terminal that the corresponding set B corresponds to the same beam. When the terminal obtains the measurement results of set B and set A corresponding to model training, at this time, the base station also transmits the associated ID when transmitting the configuration information of set B and set A. The terminal can train different models based on the measurement results corresponding to different associated IDs. When the network device (e.g., base station) transmits the first configuration information described in the first item above, the terminal can determine a most suitable model based on the associated ID to perform model inference.Of course, the first configuration information can also not contain the associated ID, and the terminal can have multiple ways to deal with it: the first is that the terminal has trained a mixed model in advance, which is based on the measurement results of set B and set A corresponding to multiple associated IDs, and the terminal can select this mixed model to derive the beam prediction result of set A in the first configuration information; the second is that the terminal has trained a model corresponding to different associated IDs based on the measurement results of set B and set A corresponding to a single associated ID, and the terminal can only randomly select a model to derive the beam prediction result of set A in the first configuration information.

[0242] Four, based on any one of the first to third, the first information is DCI.

[0243] 1. The first indication field (such as CSI request, or CSI request for AI) in the DCI contains N bits, which are used to indicate one trigger state in the trigger state list SemiPersistentOnPUSCH-TriggerStateList corresponding to the PUSCH-based semi-persistent reporting, such as codepoint "0" corresponding to the first position trigger state. Each trigger state corresponds to at least one CSI report config ID.

[0244] 2. The at least one CSI report config ID here corresponds to the CSI report config, i.e. the first configuration information.

[0245] If a trigger state can correspond to multiple CSI report config IDs, some CSI report config IDs can correspond to the first configuration information, and some can correspond to the second configuration information which is different from the first configuration information, i.e. the second report described below.

[0246] Five, based on four, the CSI report config IDs corresponding to the first report and the second report are in one trigger state list.

[0247] 1. That is, the first indication field of one DCI triggers either the first report or the second report.

[0248] 2. The first report is based on AI to obtain the prediction result, and the second report is based on actual measurement to obtain the measurement result, that is, the second report is not based on AI to obtain the beam measurement result.

[0249] • Beam measurement result, beam prediction result includes at least one of the following:

[0250] • RS ID: SSB index, CSI-RS ID;

[0251] • L1-RSRP: actually measured L1-RSRP;

[0252] • Beam prediction result includes at least one of the following:

[0253] • RS ID: SSB index, CSI-RS ID;

[0254] • Beam ID, TCI state ID;

[0255] • L1-RSRP: actually measured L1-RSRP (because set B is a subset of set A, some beams in set A have measurement results obtained by measurement), or predicted L1-RSRP.

[0256] Six, based on four, the CSIreportconfigID corresponding to the first report and the second report is in different triggerstatelist.

[0257] 1. That is, the CSI report config ID of the first report and the second report is in different list. In this case, the trigger corresponding to the first report and the second report of DCI has the following two methods:

[0258] Seven, based on six, the trigger indication field of the first report and the trigger indication field of the second report appear in a DCI at the same time.

[0259] 1. For example, in a DCI, it includes a first indication field (such as CSIrequestforAI) and a second indication field (such as CSIrequest). The first indication field is used to indicate the trigger of the trigger state of the first report, and the second indication field is used to indicate the trigger of the trigger state of the second report.

[0260] Eight, based on six, the trigger of the first report and the trigger of the second report correspond to the same indication field of the DCI, and the DCI contains another third indication field for indicating whether the DCI is used to indicate the trigger of the first report or the trigger of the second report.

[0261] 1. The DCI as claimed in four contains a third indication field, which is used to indicate whether the DCI is used to indicate the trigger of the first report or the trigger of the second report. For example, if the third indication field indicates that the DCI is used to trigger the first report, then the codepoint corresponding to the N bit of the DCI as claimed in four is one-to-one corresponding to the trigger state corresponding to the first report; otherwise, it is one-to-one corresponding to the trigger state corresponding to the second report. The CSI report config corresponding to the trigger state corresponding to the second report is different from the first configuration information, and the configured reference signal resource set is all needed to be measured by the terminal.

[0262] Nine, based on four, the CRC of the first DCI is scrambled with SP-CSI-RNTI. When the first DCI is used to trigger the activation of the first report, the bit corresponding to the HARQ process number in the first DCI is all set to 0, and the bit corresponding to the redundancy version is all set to 0.

[0263] Ten, based on four, the CRC of the first DCI is scrambled with SP-CSI-RNTI. When the first DCI is used to trigger the deactivation of the first report, the bit corresponding to the HARQ process number in the first DCI is all set to 0, the bit corresponding to the redundancy version is all set to 0, the bit corresponding to the modulation and coding scheme is all set to 1, and the bit corresponding to the resource block assignment:

[0264] 1. All set to 0 (when the resource allocation type resource allocate type configured by the higher layer is type 0);

[0265] 2. All set to 1 (when the resource allocate type configured by the higher layer is type 1);

[0266] 3. If the resource allocate type configured by the higher layer is dynamically switched between type 0 and type 1, when the MSB is 0, all set to 0; otherwise, all set to 1;

[0267] 4. If the resource allocate type configured by the higher layer is type 2, when μ = 0 (subcarrier spacing parameter), all set to 1, and when μ = 1, all set to 0

[0268] Based on four, the first DCI format is DCI format 0_1 / 0_2.

[0269] The disclosure provides a method for triggering semi-persistent beam reporting based on AI model prediction, which facilitates the terminal to determine which beam reporting to trigger and improves the communication performance based on the AI model.

[0270] The disclosure also provides a device for implementing any of the above methods, for example, a device including units or modules for implementing the steps performed by the terminal in any of the above methods. For another example, another device is provided, including units or modules for implementing the steps performed by the network equipment (such as access network equipment, core network function node, core network equipment, etc.) in any of the above methods.

[0271] It should be understood that the division of each unit or module in the above device is only a logical function division, and all or part of them can be integrated into one physical entity or physically separated in actual implementation. In addition, the units or modules in the device can be implemented in the form of processor calling software: for example, the device includes a processor connected with a memory, the memory stores instructions, and the processor calls the instructions stored in the memory to implement any of the above methods or to implement the functions of each unit or module of the device, wherein the processor is a general processor, such as a central processing unit (CPU) or a microprocessor, and the memory is a memory within the device or a memory outside the device. Alternatively, the units or modules in the device can be implemented in the form of hardware circuit, and the functions of part or all of the units or modules can be implemented by designing the hardware circuit, and the hardware circuit can be understood as one or more processors; for example, in one implementation, the hardware circuit is an application-specific integrated circuit (ASIC), and the functions of part or all of the units or modules are implemented by designing the logical relationship of elements in the circuit; for another example, in another implementation, the hardware circuit is a programmable logic device (PLD), and a field programmable gate array (FPGA) is taken as an example, which can include a large number of logic gate circuits, and the connection relationship between the logic gate circuits is configured by a configuration file, so as to implement the functions of part or all of the units or modules. All units or modules of the above device can be implemented in the form of processor calling software, or all units or modules can be implemented in the form of hardware circuit, or part of the units or modules can be implemented in the form of processor calling software, and the remaining part can be implemented in the form of hardware circuit.

[0272] In embodiments of the present disclosure, the processor is a circuit with signal processing capability. In one implementation, the processor can be a circuit with instruction reading and running capability, such as a central processing unit (CPU), a microprocessor, a graphics processing unit (GPU) (which can be understood as a microprocessor), a digital signal processor (DSP), or the like. In another implementation, the processor can implement certain functions through a logical relationship of hardware circuits, and the logical relationship of the hardware circuits is fixed or reconfigurable. For example, the processor is a hardware circuit implemented by an application-specific integrated circuit (ASIC) or a programmable logic device (PLD), such as an FPGA. In a reconfigurable hardware circuit, the processor loads a configuration document to implement the configuration of the hardware circuit. It can be understood that the processor loads instructions to implement the functions of some or all of the units or modules described above. In addition, it can also be a hardware circuit designed for artificial intelligence, which can be understood as an ASIC, such as a neural network processing unit (NPU), a tensor processing unit (TPU), a deep learning processing unit (DPU), and the like.

[0273] FIG. 6A is a structural schematic diagram of a terminal according to an embodiment of the present disclosure. As shown in FIG. 6A, the terminal includes:

[0274] The transceiver module is configured to receive downlink control information (DCI) sent by the network device, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set. The processing module is configured to measure a reference signal resource in the first reference signal resource set, and not to measure a reference signal resource in the second reference signal resource set. The processing module is further configured to determine a first report based on the at least two reference signal resource sets, the first report being a semi-persistent report, and the first report including a report corresponding to the second reference signal resource set.

[0275] Optionally, the transceiver module is configured to perform steps related to “transceiving” performed by the terminal in any of the methods described above. The processing module is configured to perform steps related to “processing” performed by the terminal in any of the methods described above.

[0276] FIG. 6B is a structural schematic diagram of a network device according to an embodiment of the present disclosure. As shown in FIG. 6B, the network device includes:

[0277] The transceiver is configured to send the DCI to the terminal, where the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set, the at least two reference signal resource sets are used for the terminal to measure reference signal resources of the first reference signal resource set and not to measure reference signal resources of the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, the first report contains a report corresponding to the second reference signal resource set.

[0278] Optionally, the transceiver is configured to perform the steps related to "transceiving" performed by the network device in any of the above methods. The network device described above can further include a processing module configured to perform the steps related to "processing" performed by the network device in any of the above methods.

[0279] FIG. 7A is a structural schematic diagram of a communication device 7100 according to an embodiment of the present disclosure. The communication device 7100 can be a network device (such as an access network device, a core network device, etc.), a terminal (such as a user equipment or the first device described above, etc.), a chip, a chip system, or a processor supporting the network device to implement any of the above methods, or a chip, a chip system, or a processor supporting the terminal to implement any of the above methods. The communication device 7100 can be used to implement the methods described in the above method embodiments, and details can be referred to the descriptions in the above method embodiments.

[0280] As shown in FIG. 7A, the communication device 7100 includes one or more processors 7101. The processor 7101 can be a general-purpose processor or a special-purpose processor, for example, a baseband processor or a central processing unit. The baseband processor can be configured to process communication protocols and communication data, and the central processing unit can be configured to control the communication device (such as a base station, a baseband chip, a terminal device, a terminal device chip, a DU or a CU, etc.), execute programs, and process data of the programs. The processor 7101 is configured to invoke instructions to enable the communication device 7100 to perform any of the above methods.

[0281] In some embodiments, the communication device 7100 further includes one or more memories 7102 configured to store instructions. Optionally, all or part of the memory 7102 can also be outside the communication device 7100.

[0282] In some embodiments, the communication device 7100 further includes one or more transceivers 7103. When the communication device 7100 includes one or more transceivers 7103, the communication steps in the above methods, such as sending and receiving, are performed by the transceiver 7103, and other steps are performed by the processor 7101.

[0283] In some embodiments, the transceiver can include a receiver and a transmitter, which can be separate or integrated together. Optionally, the terms transceiver, transceiving unit, transceiver, transceiving circuit, etc. can be replaced by each other, the terms transmitter, transmitting unit, transmitter, transmitting circuit, etc. can be replaced by each other, and the terms receiver, receiving unit, sensing signal receiving end, receiving circuit, etc. can be replaced by each other.

[0284] Optionally, the communication device 7100 further includes one or more interface circuits 7104, which are connected to the memory 7102, and can be used to receive signals from the memory 7102 or other devices, and can be used to send signals to the memory 7102 or other devices. For example, the interface circuit 7104 can read the instructions stored in the memory 7102 and send them to the processor 7101.

[0285] The communication device 7100 described in the above embodiments can be a network device or a terminal, but the scope of the communication device 7100 described in the present disclosure is not limited thereto, and the structure of the communication device 7100 can not be limited by Figure 7A. The communication device can be a standalone device or can be part of a larger device. For example, the communication device can be: 1) a standalone integrated circuit (IC), or a chip, or a chip system or subsystem; (2) a set of one or more ICs, which can optionally also include storage components for storing data, programs; (3) an ASIC, such as a Modem; (4) a module that can be embedded in other devices; (5) a sensing signal receiving end, a terminal device, a smart terminal device, a cellular phone, a wireless device, a handset, a mobile unit, a vehicle-mounted device, a network device, a cloud device, an artificial intelligence device, etc.; (6) others, etc.

[0286] Figure 7B is a structural schematic diagram of a chip 7200 according to an embodiment of the present disclosure. For the case where the communication device 7100 is a chip or a chip system, the structural schematic diagram of the chip 7200 shown in Figure 7B can be referred to, but is not limited thereto.

[0287] The chip 7200 includes one or more processors 7201, which are used to invoke instructions to cause the chip 7200 to perform any of the above methods.

[0288] In some embodiments, chip 7200 further includes one or more interface circuits 7202 that are connected to memory 7203, which can be used to receive signals from or send signals to memory 7203 or other devices. For example, interface circuit 7202 can read instructions stored in memory 7203 and send the instructions to processor 7201. Alternatively, the terms interface circuit, interface, transceiver pin, transceiver, etc. can be replaced by each other.

[0289] In some embodiments, chip 7200 further includes one or more memories 7203 for storing instructions. Alternatively, all or part of memory 7203 can be outside chip 7200.

[0290] The disclosure also proposes a storage medium, which has instructions stored thereon, and when the instructions are run on communication device 7100, communication device 7100 performs any of the above methods. Alternatively, the storage medium is an electronic storage medium. Alternatively, the storage medium is a computer readable storage medium, but is not limited to this, and it can also be a storage medium readable by other devices. Alternatively, the storage medium can be a non-transitory storage medium, but is not limited to this, and it can also be a transitory storage medium.

[0291] The disclosure also proposes a program product, which is executed by communication device 7100, so that communication device 7100 performs any of the above methods. Alternatively, the program product is a computer program product.

[0292] The disclosure also proposes a computer program, which, when run on a computer, causes the computer to perform any of the above methods.

[0293] In the embodiments described above, all or part of the embodiments can be implemented by software, hardware, firmware or any combination thereof. When implemented by software, all or part of the embodiments can be implemented in the form of a computer program product. The computer program product includes one or more computer programs. When the computer programs are loaded on a computer and executed, all or part of the processes or functions described in the embodiments of the present disclosure are produced. The computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable devices. The computer programs can be stored in a computer readable storage medium or transferred from one computer readable storage medium to another computer readable storage medium, for example, the computer programs can be transferred from one website, computer, server or data center to another website, computer, server or data center through wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) mode. The computer readable storage medium can be any available medium accessible by a computer or a data storage device such as a server, data center, etc. integrated with one or more available media. The available media can be magnetic media (such as floppy disk, hard disk, magnetic tape), optical media (such as high-density digital video disc (digital video disc, DVD)), or semiconductor media (such as solid state disk (solid state disk, SSD)) and the like.

[0294] Those skilled in the art can appreciate that the units and algorithm steps of the examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware or a combination of computer software and electronic hardware. Whether the functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. A skilled person can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of the present disclosure.

[0295] Those skilled in the art can clearly understand that, for the convenience and brevity of the description, the specific working processes of the systems, devices and units described above can refer to the corresponding processes in the foregoing method embodiments, which will not be described here.

[0296] The above is only a specific implementation of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present disclosure, which should be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

A reporting method, characterized in that, The method is performed by a terminal and includes: receiving a downlink control information (DCI) sent by a network device, the DCI being used to determine at least one first configuration information, the first configuration information being used to determine at least two reference signal resource sets, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set; measuring a reference signal resource in the first reference signal resource set, wherein a reference signal resource in the second reference signal resource set is not measured; determining a first report based on the at least two reference signal resource sets, wherein a reporting manner of the first report includes semi-persistent reporting, and the first report contains a report corresponding to the second reference signal resource set. The method of claim 1, wherein The DCI includes physical uplink shared channel (PUSCH) resource configuration information, and the method further includes: semi-persistently sending the first report to the network device, wherein the first report is carried by the PUSCH. The method of claim 1 or 2, wherein The determination of the first report based on the at least two reference signal resource sets includes at least one of the following: measurement data of the first reference signal resource set is input into an artificial intelligence (AI) model to make the AI model output predicted data of the second reference signal resource set, and the first report is determined based on the predicted data of the second reference signal resource set; measurement data of the first reference signal resource set at at least one first time is input into an AI model to make the AI model output predicted data of the second reference signal resource set at at least one second time, the first time being earlier than the second time, and the first report is determined based on the predicted data of the second reference signal resource set. The method according to any one of claims 1 to 3, characterized in that The first configuration information is used to configure at least one of the following: a set identifier of the first reference signal resource set; a resource identifier of a reference signal resource in the first reference signal resource set; a beam identifier corresponding to a reference signal resource in the first reference signal resource set; a transmission configuration indication state identifier corresponding to a reference signal resource in the first reference signal resource set; a time domain position corresponding to a reference signal resource in the first reference signal resource set; a frequency domain position corresponding to a reference signal resource in the first reference signal resource set; a set identifier of the second reference signal resource set; a resource identifier of a reference signal resource in the second reference signal resource set; a beam identifier corresponding to a reference signal resource in the second reference signal resource set; a transmission configuration indication state identifier corresponding to a reference signal resource in the second reference signal resource set; a time domain position corresponding to a reference signal resource in the second reference signal resource set; a frequency domain position corresponding to a reference signal resource in the second reference signal resource set; a first identifier, the first identifier being used to indicate a first attribute identifier, the first attribute identifier being used to identify at least one of the following: a first attribute of the first reference signal resource set and a first attribute of the second reference signal resource set. The method of claim 4, wherein the first attribute of the first reference signal resource set includes at least one of the following: a transmission beam angle corresponding to one or more reference signal resources in the first reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set; an arrangement order of transmission beam angles of one or more reference signal resources in the first reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the first reference signal resource set; a total number of reference signal resources in the first reference signal resource set; a number of first time instants corresponding to the first reference signal resource set; the first attribute of the second reference signal resource set comprises at least one of the following: a transmission beam angle corresponding to one or more reference signal resources in the second reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the second reference signal resource set; an arrangement order of transmission beam angles of one or more reference signal resources in the second reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the second reference signal resource set; a total number of reference signal resources in the second reference signal resource set; a number of second time instants corresponding to the second reference signal resource set. The method of any one of claims 1 to 5, wherein the first report comprises predicted data of the second reference signal resource set; the predicted data comprises at least one of the following: a resource identifier of a reference signal resource in the second reference signal resource set; a beam identifier corresponding to a reference signal resource in the second reference signal resource set; a transmission configuration indication state identifier corresponding to a reference signal resource in the second reference signal resource set; a beam prediction result corresponding to a reference signal resource in the second reference signal resource set. The method of any one of claims 1 to 6, wherein the DCI is further used to determine whether the first report is triggered. The method of any one of claims 1-7, wherein the DCI comprises a first indication field, the first indication field comprising at least one bit, at least one codepoint of the at least one bit of the first indication field being used to indicate a first trigger state in a first list, the first trigger state corresponding to a first report identifier of at least one first report, the first report identifier corresponding to first configuration information, different first report identifiers corresponding to different first configuration information; at least one codepoint carried by a bit of the first indication field is used to indicate whether the first report corresponding to the first report identifier is triggered. The method of claim 8, wherein at least one codepoint of the at least one bit of the first indication field is used to indicate a second trigger state in a first list, the second trigger state corresponding to a second report identifier of at least one second report, the second report identifier corresponding to second configuration information, different second report identifiers corresponding to different second configuration information, the second configuration information being used to configure at least one reference signal resource set, the second configuration information being used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain a second report; The at least one code point carried by the bit of the first indication field is used to indicate whether the second report corresponding to the second report identifier is triggered. The method of any of claims 1-8, wherein, The DCI comprises a second indication field, the second indication field comprising at least one bit, at least one code point of the at least one bit of the second indication field being used to indicate a second trigger state in a second list, the second trigger state corresponding to a second report identifier of at least one second report, the second report identifier corresponding to second configuration information, different second report identifiers corresponding to different second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report; The at least one code point carried by the bit of the second indication field is used to indicate whether the second report corresponding to the second report identifier is triggered. The method of claim 8, wherein, The DCI further comprises a third indication field, wherein the third indication field is used to indicate whether the first indication field is used for triggering the first report or triggering the second report; The second report corresponds to second configuration information, the second configuration information being used to configure at least one set of reference signal resources, the second configuration information being used to configure the terminal to measure all sets of reference signal resources in the at least one set of reference signal resources to obtain the second report. The method of any of claims 1-11, wherein, A cyclic redundancy check (CRC) of the DCI is scrambled with a semi-persistent channel state information radio network temporary identifier (SP-CSI-RNTI). The method of claim 12, wherein, If the DCI is used to trigger activation of the first report, bits corresponding to a hybrid automatic repeat request (HARQ) process number of the DCI are all 0, and bits corresponding to a redundancy version are all 0. The method of claim 12, wherein, If the DCI is used to trigger deactivation of the first report, bits corresponding to a HARQ process number of the DCI are all 0, bits corresponding to a redundancy version are all 0, and bits corresponding to a modulation and coding scheme (MCS) are all 1, If a resource allocation type (resource allocate type) is type 0, bits corresponding to a resource block assignment (Resource block assignment) are all 0, If the resource allocate type is type 1, bits corresponding to the Resource block assignment are all 1, ​ If the resource allocate type is type 0 and type 1 dynamic switching and the most significant bit MSB is 0, the bit of the resource block assignment corresponding to all 0, If the resource allocate type is type 0 and type 1 dynamic switching and the MSB is not 0, the bit of the resource block assignment corresponding to all 1, If the resource allocate type is type 2 and the subcarrier spacing μ is 0, the bit of the resource block assignment corresponding to all 1, If the resource allocate type is type 2 and the subcarrier spacing μ is 1, the bit of the resource block assignment corresponding to all 0. The method of any one of claims 1-14, wherein: The format of the DCI is DCI format 0_1 or DCI format 0_2. A reporting method, characterized in that, The method is performed by a network device, comprising: sending, to the terminal, DCI, wherein the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set, the at least two reference signal resource sets are used for the terminal to measure reference signal resources of the first reference signal resource set and not to measure reference signal resources of the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, the first report containing a report corresponding to the second reference signal resource set. The method of claim 16, wherein The DCI includes PUSCH resource configuration information, and the method further comprises: receiving the first report sent by the terminal semi-persistently, wherein the first report is carried by the PUSCH. The method of claim 16 or 17, wherein The at least two reference signal resource sets are used for the terminal to determine the first report, including at least one of the following: measurement data of the first reference signal resource set is used as input to an artificial intelligence AI model to make the AI model output predicted data of the second reference signal resource set, and the first report is determined based on the predicted data of the second reference signal resource set; measurement data of the first reference signal resource set at at least one first time is used as input to an AI model to make the AI model output predicted data of the second reference signal resource set at at least one second time, the first time being earlier than the second time, and the first report is determined based on the predicted data of the second reference signal resource set. The method of any one of claims 16 to 18, wherein The first configuration information is used to configure at least one of the following: a set identifier of the first reference signal resource set; a resource identifier of a reference signal resource in the first reference signal resource set; a beam identifier corresponding to a reference signal resource in the first reference signal resource set; a transmission configuration indicator state identifier corresponding to a reference signal resource in the first reference signal resource set; a time domain location corresponding to a reference signal resource in the first reference signal resource set; a frequency domain location corresponding to a reference signal resource in the first reference signal resource set; a set identifier of the second reference signal resource set; a resource identifier of a reference signal resource in the second reference signal resource set; a beam identifier corresponding to a reference signal resource in the second reference signal resource set; a transmission configuration indicator state identifier corresponding to a reference signal resource in the second reference signal resource set; a time domain location corresponding to a reference signal resource in the second reference signal resource set; a frequency domain location corresponding to a reference signal resource in the second reference signal resource set; a first identifier, the first identifier being used for indicating a first attribute identifier, the first attribute identifier being used for identifying at least one of: a first attribute of a first reference signal resource set configured by each first configuration information, a first attribute of a second reference signal resource set configured by each first configuration information. The method of claim 19, wherein, the first attribute of the first reference signal resource set comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the first reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set; an arrangement order of transmission beam angles of one or more reference signal resources in the first reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the first reference signal resource set; a total number of reference signal resources in the first reference signal resource set; a number of first time instants corresponding to the first reference signal resource set; the first attribute of the second reference signal resource set comprises at least one of: a transmission beam angle corresponding to one or more reference signal resources in the second reference signal resource set; a transmission beam direction corresponding to one or more reference signal resources in the second reference signal resource set; an arrangement order of transmission beam angles of one or more reference signal resources in the second reference signal resource set; a transmission beam angle difference between two adjacent reference signal resources in the second reference signal resource set; a total number of reference signal resources in the second reference signal resource set; a number of second time instants corresponding to the second reference signal resource set. The method of any one of claims 16 to 20, wherein the first report comprises prediction data of the second reference signal resource set; the prediction data comprises at least one of: a resource identifier of a reference signal resource in the second reference signal resource set; a beam identifier corresponding to a reference signal resource in the second reference signal resource set; a transmission configuration indicator state identifier corresponding to a reference signal resource in the second reference signal resource set; a beam prediction result corresponding to a reference signal resource in the second reference signal resource set. The method of any one of claims 16 to 21, wherein the DCI is further used for determining whether the first report is triggered. The method of any of claims 16-22, wherein The DCI comprises a first indication field, the first indication field comprising at least one bit, at least one codepoint of the at least one bit of the first indication field being used to indicate a first trigger state in a first list, the first trigger state corresponding to a first report identity of at least one first report, the first report identity corresponding to first configuration information, different first report identities corresponding to different first configuration information. At least one codepoint carried by the bit of the first indication field is used to indicate whether the second report corresponding to the first report identity is triggered. The method of claim 23, wherein At least one codepoint of the at least one bit of the first indication field is used to indicate a second trigger state in a first list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one reference signal resource set, the second configuration information being used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report. At least one codepoint carried by the bit of the first indication field is used to indicate whether the second report corresponding to the second report identity is triggered. The method of any of claims 16-23, wherein The DCI comprises a second indication field, the second indication field comprising at least one bit, at least one codepoint of the at least one bit of the second indication field being used to indicate a second trigger state in a second list, the second trigger state corresponding to a second report identity of at least one second report, the second report identity corresponding to second configuration information, different second report identities corresponding to different second configuration information, the second configuration information being used to configure at least one reference signal resource set, the second configuration information being used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report. At least one codepoint carried by the bit of the second indication field is used to indicate whether the second report corresponding to the second report identity is triggered. The method of claim 23, wherein The DCI further comprises a third indication field, wherein the third indication field is used to indicate whether the first indication field is used for triggering of the first report or triggering of the second report. The second report corresponds to second configuration information, the second configuration information being used to configure at least one reference signal resource set, the second configuration information being used to configure the terminal to measure all reference signal resource sets in the at least one reference signal resource set to obtain the second report. The method of any of claims 16-26, wherein The CRC of the DCI is scrambled with an SP-CSI-RNTI. The method of claim 27, wherein If the DCI is used to trigger the activation of the first report, all bit positions corresponding to HARQ process number of the DCI are 0, all bit positions corresponding to redundancy version of the DCI are 0. The method of claim 27, wherein The CRC of the DCI is scrambled with SP-CSI-RNTI, if the DCI is used to trigger the deactivation of the first report, all bit positions corresponding to HARQ process number of the DCI are 0, all bit positions corresponding to redundancy version of the DCI are 0, and all bit positions corresponding to Modulation and coding scheme of the DCI are 1, If the resource allocate type is type 0, all bit positions corresponding to Resource block assignment of the DCI are 0, If the resource allocate type is type 1, all bit positions corresponding to Resource block assignment of the DCI are 1, If the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is 0, all bit positions corresponding to Resource block assignment of the DCI are 0, If the resource allocate type is dynamically switched between type 0 and type 1 and the MSB is not 0, all bit positions corresponding to Resource block assignment of the DCI are 1, If the resource allocate type is type 2 and the subcarrier spacing μ is 0, all bit positions corresponding to Resource block assignment of the DCI are 1, If the resource allocate type is type 2 and the subcarrier spacing μ is 1, all bit positions corresponding to Resource block assignment of the DCI are 0. The method of any of claims 16-29, wherein The format of the DCI is DCI format 0_1 or DCI format 0_2. A reporting method, characterized in that, The method comprises: a network device sends a DCI to a terminal, the DCI is used to determine at least one first configuration information, the first configuration information is used to determine at least two reference signal resource sets, the at least two reference signal resource sets include a first reference signal resource set and a second reference signal resource set; the terminal receives the DCI sent by the network device; the terminal measures the reference signal resource in the first reference signal resource set, wherein the terminal does not measure the reference signal resource in the second reference signal resource set; The terminal determines a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent report, and the first report contains a report corresponding to the second reference signal resource set. A terminal, characterized by comprising: The method comprises: The transceiver module is configured to receive a DCI (Downlink Control Information) sent by the network device, wherein the DCI is used to determine at least one first configuration information, and the first configuration information is used to determine at least two reference signal resource sets, wherein the at least two reference signal resource sets comprise a first reference signal resource set and a second reference signal resource set; The processing module is configured to measure a reference signal resource in the first reference signal resource set, and not to measure a reference signal resource in the second reference signal resource set. The processing module is further configured to determine a first report based on the at least two reference signal resource sets, wherein the first report is a semi-persistent report, and the first report contains a report corresponding to the second reference signal resource set. A network device, characterized in that The method comprises: The transceiver module is configured to send a DCI to the terminal, wherein the DCI is used to determine at least one first configuration information, and the first configuration information is used to determine at least two reference signal resource sets, wherein the at least two reference signal resource sets comprise a first reference signal resource set and a second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to measure a reference signal resource in the first reference signal resource set and not to measure a reference signal resource in the second reference signal resource set, and the at least two reference signal resource sets are used for the terminal to determine a first report, wherein the first report contains a report corresponding to the second reference signal resource set. The method comprises: A communication device characterized by comprising: One or more processors; A memory coupled to the processors, the memory having instructions stored thereon that, when executed by the processors, cause the communication device to perform the method of any one of claims 1-15, or when executed by the processors, cause the communication device to perform the method of any one of claims 16-30. The method comprises a terminal and a network device, wherein the terminal is configured to implement the method of any one of claims 1-15, and the network device is configured to implement the method of any one of claims 16-30. A communication system characterized by The instructions, when executed on a communication device, cause the communication device to perform the method of any one of claims 1-15, or the instructions, when executed on a communication device, cause the communication device to perform the method of any one of claims 16-30. A storage medium storing instructions, the instructions comprising: ​

Citation Information

Patent Citations

  • Communication method, terminal, network device and communication system

    CN117546512A

  • Reporting of measured and prediction-based beam management

    CN118648338A

  • Measurement method and apparatus

    WO2023164852A1

  • Methods for wireless device sided spatial beam predictions

    WO2024035325A1

  • Channel characteristic predictions based at least in part on subset of downlink reference signal resources

    WO2024065251A1