Report reporting method and device
By measuring the first reference signal resource set at the terminal and using an AI model for beam prediction, the problem of how to effectively report resources containing the second reference signal resource set in the new air interface system is solved, improving communication performance and coverage, and simplifying signaling overhead.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2026-03-03
AI Technical Summary
In the new air interface system, how can we effectively determine and report a report containing a second reference signal resource set when network devices are configured with at least two reference signal resource sets, especially in situations where high-frequency channels attenuate rapidly, to ensure coverage and communication performance?
The terminal measures the first reference signal resource set but not the second reference signal resource set, performs beam prediction based on an AI model, and determines the report containing the second reference signal resource set through non-periodic reporting.
It improves communication performance, ensures communication quality and coverage in high-frequency channel attenuation environments, simplifies signaling overhead, and supports accurate scheduling in AI model-based beam prediction scenarios.
Smart Images

Figure CN121605693A_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of communication technology, and in particular to a reporting method and apparatus. Background Technology
[0002] In New Radio (NR) systems, optionally, when the communication frequency band is in frequency range (FR) 2, due to the rapid attenuation of high-frequency channels, communication devices (such as terminals and network devices) typically need to transmit and / or receive signals based on beams in order to ensure coverage. Summary of the Invention
[0003] The report reporting method and apparatus provided in this disclosure are used to solve the problem of how to report a first report that includes a report corresponding to the second reference signal resource set, determined by measuring the first reference signal resource without measuring the second reference signal resource, when the network device is configured with at least two reference signal resource sets, including a first reference signal resource set and a second reference signal resource set.
[0004] This disclosure presents a method and apparatus for reporting.
[0005] According to a first aspect of the present disclosure, a report reporting method is proposed, executed by a terminal, comprising: receiving first information sent by a network device, the first information 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 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 based on the at least two reference signal resource sets, wherein the first report is a non-periodic report, and the first report includes a report corresponding to the second reference signal resource set.
[0006] In the above embodiments, the terminal can determine the reporting method that triggers the first report based on the first information sent by the network device, which can improve communication performance.
[0007] According to a second aspect of the present disclosure, a report reporting method is proposed, executed by a network device, comprising: sending first information to a terminal, the first information 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 at least two reference signal resource sets being used by 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; the at least two reference signal resource sets being used by the terminal to determine a first report, the first report being a non-periodic report, the first report including a report corresponding to the second reference signal resource set.
[0008] In the above embodiments, the network device can send first information to the terminal to instruct the terminal to trigger the reporting method of the first report, thereby improving communication performance.
[0009] According to a third aspect of the present disclosure, a report reporting method is provided, comprising: a network device sending first information to a terminal, the first information 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 terminal receiving the first information sent by the network device; the terminal measuring reference signal resources in the first reference signal resource set, wherein the reference signal resources in the second reference signal resource set are not measured; the terminal determining a first report based on the at least two reference signal resource sets, wherein the first report is a non-periodic report, and the first report includes a report corresponding to the second reference signal resource set.
[0010] According to a fourth aspect of the present disclosure, a terminal is provided, comprising: a transceiver module, configured to receive first information sent by a network device, the first information being configured to determine at least one first configuration information, the first configuration information being configured 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; 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; 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 non-periodic reported report, and the first report includes a report corresponding to the second reference signal resource set.
[0011] According to a fifth aspect of the present disclosure, a network device is provided, comprising: a transceiver module, configured to send first information to a terminal, wherein the first information is configured to determine at least one first configuration information, the first configuration information is configured 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 at least two reference signal resource sets are configured for the terminal to measure reference signal resources of the first reference signal resource set and not measure reference signal resources of the second reference signal resource set, the at least two reference signal resource sets are configured for the terminal to determine a first report, the first report being an aperiodic report, the first report including a report corresponding to the second reference signal resource set.
[0012] According to a sixth aspect of the present disclosure, a communication device is provided, comprising: one or more processors; and a memory coupled to the processors, the memory storing instructions which, when executed by the processors, cause the communication device to perform the method described in the first aspect.
[0013] According to a seventh aspect of the present disclosure, a communication device is provided, comprising: one or more processors; and a memory coupled to the processors, the memory storing instructions which, when executed by the processors, cause the communication device to perform the method described in the second aspect.
[0014] According to an eighth aspect 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.
[0015] According to a ninth aspect of the present disclosure, a storage medium is provided that stores instructions which, when executed on a communication device, cause the communication device to perform the method described in the first or second aspect. Attached Figure Description
[0016] The above and / or additional aspects and advantages of this disclosure will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, in which:
[0017] Figure 1 This disclosure provides schematic diagrams of the architecture of some communication systems. Figure 2 This is a schematic flowchart illustrating a report reporting method provided in one embodiment of this disclosure; Figure 3 This is a flowchart illustrating a report submission method provided in yet another embodiment of the present disclosure; Figure 4 A schematic flowchart illustrating a report submission method provided in yet another embodiment of this disclosure; Figure 5 A schematic flowchart illustrating a report submission method provided in yet another embodiment of this disclosure; Figure 6A This is a schematic diagram of the structure of a terminal provided in one embodiment of the present disclosure; Figure 6B This is a schematic diagram of the structure of a network device provided in one embodiment of the present disclosure; Figure 7A This is a schematic diagram of the structure of a communication device provided in one embodiment of the present disclosure; Figure 7B This is a schematic diagram of the structure of a chip provided in one embodiment of the present disclosure. Detailed Implementation
[0018] This disclosure presents a reporting method and apparatus.
[0019] In a first aspect, embodiments of this disclosure propose a report reporting method, executed by a terminal, comprising: receiving first information sent by a network device, the first information 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 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 based on the at least two reference signal resource sets, wherein the first report is a non-periodic report, and the first report includes a report corresponding to the second reference signal resource set.
[0020] In the above embodiments, the terminal can determine at least two sets of reference signal resources, and can measure the reference signal resources of the first set of reference signal resources in the at least two sets of reference signal resources, and not measure the reference signal resources of the second set of reference signal resources in the at least two sets of reference signal resources. Furthermore, the terminal can determine a non-periodic first report based on the at least two sets of reference signal resources. Therefore, this disclosure provides a method for "determining a non-periodic first report based on a first set of reference signal resources and a second set of reference signal resources." Optionally, as the foregoing content indicates, the first set of reference signal resources is measured by the terminal, while the second set of reference signal resources is not measured by the terminal. Therefore, the first and second sets of reference signal resources can be used to implement "beam prediction based on an AI model." For example, the measurement data of the first set of reference signal resources can be input into an AI model to obtain the prediction data of the second set of reference signal resources. 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 AI model", this disclosure provides a method for "how to determine non-periodic beam reports" for the scenario of "beam prediction based on AI model". This facilitates the terminal to successfully perform non-periodic reporting for the scenario of "beam prediction based on AI model", and enables network devices to accurately schedule communication beams with better beam quality for the scenario of "beam prediction based on AI model" based on the terminal's reports, thus ensuring communication quality and performance.
[0021] In conjunction with some embodiments of the first aspect, in some embodiments, the first information includes Physical Uplink Shared Channel (PUSCH) resource configuration information, wherein the above method further includes: the terminal periodically sending a first report to the network device, wherein the first report is carried by the PUSCH.
[0022] In the above embodiments, the terminal can carry the first report in the PUSCH and send the first report to the network device non-periodically.
[0023] In conjunction with some embodiments of the first aspect, in some embodiments, the terminal determines a first report based on at least two sets of reference signal resources, including one or more of the following: measurement data of the first set of reference signal resources is used as input to an artificial intelligence (AI) model so that the AI model outputs predicted data of the second set of reference signal resources, and the first report is determined based on the predicted data of the second set of reference signal resources; measurement data of the first set of reference signal resources at at least one first moment is used as input to the AI model so that the AI model outputs predicted data of the second set of reference signal resources at at least one second moment, the first moment being earlier than the second moment, and the first report is determined based on the predicted data of the second set of reference signal resources.
[0024] In the above embodiments, the functions 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 realize "beam prediction based on AI model". Thus, when the first report is determined based on at least two reference signal resource sets in this disclosure, it is essentially equivalent to providing a method for "how to determine non-periodic beam reporting" for the scenario of "beam prediction based on AI model". This makes it easier for the terminal to successfully perform non-periodic reporting for the scenario of "beam prediction based on AI model", and thus makes it easier for the network device to accurately schedule communication beams with better beam quality for the scenario of "beam prediction based on AI model" based on the terminal's report, thereby ensuring communication quality and communication performance.
[0025] In conjunction with some embodiments of the first aspect, in some embodiments, the first configuration information is used to configure one or more of the following: a set identifier of a 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 status 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 a 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 status 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; and a first identifier, which is used to indicate a first attribute identifier, which is used to identify one or more of the following: 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.
[0026] In the above embodiments, the terminal can determine at least two sets of reference signal resources based on the first configuration information of the network device, so as to determine the first report based on the at least two sets of reference signal resources.
[0027] In conjunction with some embodiments of the first aspect, in some embodiments, the first attribute of the first reference signal resource set includes one or more of the following: the transmit beam angle corresponding to one or more reference signal resources in the first reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the first reference signal resource set; the arrangement order of the transmit beam angles of one or more reference signal resources in the first reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the first reference signal resource set; the total number of reference signal resources in the first reference signal resource set; and the number of first moments corresponding to the first reference signal resource set.
[0028] In conjunction with some embodiments of the first aspect, in some embodiments, the first attribute of the second reference signal resource set includes one or more of the following: the transmission beam angle corresponding to one or more reference signal resources in the second reference signal resource set; the transmission beam direction corresponding to one or more reference signal resources in the second reference signal resource set; the arrangement order of the transmission beam angles of one or more reference signal resources in the second reference signal resource set; the transmission beam angle difference between two adjacent reference signal resources in the second reference signal resource set; the total number of reference signal resources in the second reference signal resource set; and the number of second moments corresponding to the second reference signal resource set.
[0029] In the above embodiments, the specific content of the first configuration information configuration is described so that the terminal can successfully determine the first reference signal resource set and the second reference signal resource set based on the content included in the first configuration information, thereby facilitating the terminal to successfully determine the first report based on the first reference signal resource set and the second reference signal resource set.
[0030] In conjunction with some embodiments of the first aspect, in some embodiments, the first report includes prediction data of a second set of reference signal resources; the prediction data includes one or more of the following: resource identifiers of reference signal resources in the second set of reference signal resources; beam identifiers corresponding to reference signal resources in the second set of reference signal resources; transmission configuration indication status identifiers corresponding to reference signal resources in the second set of reference signal resources; and beam prediction results corresponding to reference signal resources in the second set of reference signal resources.
[0031] In the above embodiments, the contents of the first report are described so that the terminal can successfully report the first report to the network device, thereby enabling the network device to accurately schedule the communication beam with better beam quality based on the contents of the first report, ensuring communication quality and performance.
[0032] In conjunction with some embodiments of the first aspect, in some embodiments, the first information is also used to determine whether a first report is triggered.
[0033] In the above embodiments, the first information can also be used to determine whether at least one first report has been triggered. Then, based on the first information, the terminal can successfully determine the first report that needs to be reported non-periodically in the "beam prediction based on AI model" scenario. Thus, when the terminal performs beam prediction based on the AI model, it can successfully report the first report non-periodically to the network device.
[0034] In conjunction with some embodiments of the first aspect, in some embodiments, the terminal receives first information sent by the network device, including: receiving downlink control information (DCI) sent by the network device, wherein the DCI includes the first information.
[0035] In the above embodiments, the terminal can receive the first information sent by the network device using DCI multiplexing, without using new signaling or messages, thus saving signaling overhead.
[0036] In conjunction with 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, at least one code point of 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, and different first report identifiers 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 of the corresponding first report identifier is triggered.
[0037] In conjunction with some embodiments of the first aspect, in some embodiments, 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one set of reference signal resources to obtain a 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.
[0038] In conjunction with some embodiments of the first aspect, in some embodiments, the DCI includes a second indication field, the second indication field including 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 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, the second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one reference signal resource set to obtain a second report; at least one code point carried by the bit of the second indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0039] In conjunction with some embodiments of the first aspect, 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 the second report; wherein the second report corresponds to second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0040] In conjunction with some embodiments of the first aspect, in some embodiments, the Cyclic Redundancy Check (CRC) of the DCI is scrambled with the Cell Radio Network Temporary Identifier (C-RNTI).
[0041] In conjunction with some embodiments of the first aspect, in some embodiments, the DCI format is DCI format 0_1 or DCI format 0_2.
[0042] In the above embodiments, it is explained how the DCI specifically activates the first report of the first configuration information so that the terminal can successfully determine the first report that needs to be reported aperiodically in the "beam prediction based on AI model" scenario based on the DCI. Furthermore, in the above embodiments, the network device can also activate the terminal to report a second report. This second report is determined based on the measurement data of all reference signal resource sets in at least one reference signal resource set corresponding to the second configuration information. That is, the second report is the report that needs to be reported (e.g., aperiodically) in the "beam prediction not based on AI model" scenario. Also, in the above embodiments, the network device can use the same DCI to simultaneously activate the aperiod reporting of the first and second reports, or the network device can use the same DCI to activate the aperiod reporting of the first or second report at different times, or the network device can use different indication fields (e.g., the first indication field and the second indication field) of the same DCI to activate the aperiod reporting of the first and second reports respectively. Therefore, in this embodiment of the present disclosure, the network device can independently or simultaneously configure the non-periodic reporting of the first report in the "beam prediction based on AI model" scenario and the second report in the "beam prediction without AI model" scenario, which enriches the configuration method of the first report and makes the first report and the second report more compatible.
[0043] In conjunction with some embodiments of the first aspect, in some embodiments, the terminal receives a first media access control (MAC) control element (CE) sent by the network device, wherein the first MAC CE is used to activate a first number of trigger states in a first list, and at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the first MAC CE; the trigger states include a first trigger state corresponding to a first report and / or a second trigger state corresponding to a second report, and the first number is determined based on the number of bits contained in the first indication field.
[0044] In the above embodiments, the terminal can receive a first MAC CE sent by the network device, determine a first number of trigger states in the first list to be activated, and the first indication field of the DCI indicates at least one trigger state among the first number of trigger states activated by the first MAC CE. The terminal can determine the first trigger state corresponding to the first report and / or the second trigger state corresponding to the second report by jointly using the first MAC CE and the first indication field of the DCI. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario by using the DCI and the first MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0045] In conjunction with some embodiments of the first aspect, in some embodiments, a terminal receives a second MACCE sent by a network device, wherein the second MACCE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. The second MACCE includes a fourth indication field, which indicates that the second MACCE is used to activate the first number of first trigger states in the first list or to activate the second number of second trigger states in the second list. At least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the second MACCE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MACCE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MACCE. The first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in the first or second indication field of the DCI.
[0046] In the above embodiments, the terminal can jointly determine the first trigger state corresponding to the activation of the first report and / or the second trigger state corresponding to the second report through the fourth indication field in the second MAC CE and the first indication field in the DCI. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through the DCI and the second MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0047] In conjunction with some embodiments of the first aspect, in some embodiments, a terminal receives a third MACCE sent by a network device, wherein the third MACCE includes a first activation field and a second activation field, the first activation field is used to activate a first number of first trigger states in a first list, and the second activation field is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the third MACCE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MACCE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MACCE; the first number is determined based on the number of bits of the first indication field of the DCI, and the second number is determined based on the number of bits of the first indication field or the second indication field of the DCI.
[0048] In the above embodiments, the terminal can jointly determine the first trigger state corresponding to the first report and / or the second trigger state corresponding to the second report by using the first and second activation fields in the third MAC CE and the first indication field of the DCI. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario by using the DCI and the third MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0049] In conjunction with some embodiments of the first aspect, in some embodiments, the terminal receives a fourth MACCE and / or a fifth MACCE sent by the network device, wherein the fourth MACCE is used to activate a first number of first trigger states in a first list, and the fifth MACCE is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the fourth MACCE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MACCE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MACCE; the first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in the first indication field or the second indication field of the DCI.
[0050] In the above embodiments, the terminal can jointly determine the first trigger state corresponding to the activation of the first report and / or the second trigger state corresponding to the second report through the fourth MAC CE and / or the fifth MAC CE and the first indication field of the DCI. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through the DCI, the fourth MAC CE and / or the fifth MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0051] Secondly, embodiments of this disclosure propose a report reporting method executed by a network device, comprising: sending first information to a terminal, the first information 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 at least two reference signal resource sets being used by 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; the at least two reference signal resource sets being used by the terminal to determine a first report, the first report being a non-periodic report, the first report including a report corresponding to the second reference signal resource set.
[0052] In the above embodiments, the network device can send first information to the terminal to instruct the terminal to trigger the reporting method of the first report, thereby improving communication performance.
[0053] In conjunction with some embodiments of the second aspect, in some embodiments, the first information includes PUSCH resource configuration information, wherein the above method further includes: the network device receiving a first report sent aperiodically by the terminal, wherein the first report is carried by PUSCH.
[0054] In conjunction with some embodiments of the second aspect, in some embodiments, the first reference signal resource set and / or the second reference signal resource set are used for one or more of the following: measurement data of the first reference signal resource set is used as input to an artificial intelligence (AI) model so that the AI model outputs predicted data of the second reference signal resource set, and the terminal determines a first report 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 moment is used as input to an AI model so that the AI model outputs predicted data of the second reference signal resource set at at least one second moment, the first moment being earlier than the second moment, and the terminal determines a first report based on the predicted data of the second reference signal resource set.
[0055] In conjunction with some embodiments of the second aspect, in some embodiments, the first configuration information is used to configure one or more of the following: a set identifier of a 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 status 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 a 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 status 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; and a first identifier, which is used to indicate a first attribute identifier, which is used to identify one or more of the following: 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.
[0056] In conjunction with some embodiments of the second aspect, in some embodiments, the first attribute of the first reference signal resource set includes one or more of the following: the transmit beam angle corresponding to one or more reference signal resources in the first reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the first reference signal resource set; the arrangement order of the transmit beam angles of one or more reference signal resources in the first reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the first reference signal resource set; the total number of reference signal resources in the first reference signal resource set; and the number of first moments corresponding to the first reference signal resource set.
[0057] In conjunction with some embodiments of the second aspect, in some embodiments, the first attribute of the second reference signal resource set includes one or more of the following: the transmit beam angle corresponding to one or more reference signal resources in the second reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the second reference signal resource set; the arrangement order of the transmit beam angles of one or more reference signal resources in the second reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the second reference signal resource set; the total number of reference signal resources in the second reference signal resource set; and the number of second time moments corresponding to the second reference signal resource set.
[0058] In conjunction with some embodiments of the second aspect, in some embodiments, the first report includes prediction data of the second set of reference signal resources; the prediction data includes one or more of the following: resource identifiers of reference signal resources in the second set of reference signal resources; beam identifiers corresponding to reference signal resources in the second set of reference signal resources; transmission configuration indication status identifiers corresponding to reference signal resources in the second set of reference signal resources; and beam prediction results corresponding to reference signal resources in the second set of reference signal resources.
[0059] In conjunction with some embodiments of the second aspect, in some embodiments, DCI is also used to determine whether the first report has been triggered.
[0060] In conjunction with some embodiments of the second aspect, in some embodiments, the DCI includes a first indication field, the first indication field includes at least one bit, and at least one codepoint 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, and different first report identifiers correspond to different first configuration information; the at least one codepoint carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered.
[0061] In conjunction with some embodiments of the second aspect, in some embodiments, at least one codepoint 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one set of reference signal resources to obtain a 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.
[0062] In conjunction with some embodiments of the second aspect, in some embodiments, the DCI includes a second indication field, the second indication field including at least one bit, at least one code point of 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 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, the second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one reference signal resource set to obtain a second report; at least one code point carried by the bit of the second indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0063] In conjunction with some embodiments of the second aspect, 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 the second report; wherein the second report corresponds to second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0064] In conjunction with some embodiments of the second aspect, in some embodiments, the CRC of the DCI is scrambled with C-RNTI.
[0065] In conjunction with some embodiments of the second aspect, in some embodiments, the DCI format is DCI format 0_1 or DCI format 0_2.
[0066] In conjunction with some embodiments of the second aspect, in some embodiments, the network device sends a first MAC CE to the terminal, wherein the first MAC CE is used to activate a first number of trigger states in a first list, and at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the first MAC CE; the trigger states include a first trigger state corresponding to a first report and / or a second trigger state corresponding to a second report, and the first number is determined based on the number of bits contained in the first indication field.
[0067] In conjunction with some embodiments of the second aspect, in some embodiments, the network device sends a second MAC CE to the terminal, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. The second MAC CE includes a fourth indication field, which indicates that the second MAC CE is used to activate the first number of first trigger states in the first list or to activate the second number of second trigger states in the second list. At least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the second MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE. The first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0068] In conjunction with some embodiments of the second aspect, in some embodiments, the network device sends a third MAC CE to the terminal, wherein the third MAC CE includes a first activation field and a second activation field, the first activation field is used to activate a first number of first trigger states in a first list, and the second activation field is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the third MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; the first number is determined based on the number of bits of the first indication field of the DCI, and the second number is determined based on the number of bits of the first indication field or the second indication field of the DCI.
[0069] In conjunction with some embodiments of the second aspect, in some embodiments, the network device sends a fourth MAC CE and / or a fifth MAC CE to the terminal, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the fourth MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; the first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0070] Thirdly, this disclosure provides a report reporting method, comprising: a network device sending first information to a terminal, the first information 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 terminal receiving the first information sent by the network device; the terminal measuring reference signal resources in the first reference signal resource set, wherein the reference signal resources in the second reference signal resource set are not measured; the terminal determining a first report based on the at least two reference signal resource sets, wherein the first report is a non-periodic report, and the first report includes a report corresponding to the second reference signal resource set.
[0071] Fourthly, embodiments of this disclosure provide a terminal, which includes at least one of a transceiver module and a processing module; wherein the terminal is used to execute an optional implementation of the first aspect.
[0072] Fifthly, embodiments of this disclosure provide a network device, which includes at least one of a transceiver module and a processing module; wherein the network device is used to perform an optional implementation of the second aspect.
[0073] In a sixth aspect, embodiments of this disclosure provide a communication device, which includes: one or more processors; and a memory coupled to the processors, the memory storing instructions that, when executed by the processors, cause the communication device to perform the method described in the first aspect.
[0074] In a seventh aspect, embodiments of this disclosure provide a communication device, the communication device comprising: one or more processors; and a memory coupled to the processors, the memory storing instructions which, when executed by the processors, cause the communication device to perform the method described in the second aspect.
[0075] Eighthly, embodiments of this disclosure provide a communication system comprising: a terminal and a network device; wherein the terminal is configured to perform the method described in the optional implementation of the first aspect, and the network device is configured to perform the method described in the optional implementation of the second aspect.
[0076] Ninthly, embodiments of this disclosure provide a storage medium storing instructions that, when executed on a communication device, cause the communication device to perform the method described in the optional implementations of the first and second aspects.
[0077] In a tenth aspect, embodiments of this disclosure provide a program product that, when executed by a communication device, causes the communication device to perform the method as described in the optional implementations of the first and second aspects.
[0078] Eleventhly, embodiments of this disclosure provide a computer program that, when run on a computer, causes the computer to perform the methods described in the optional implementations of the first and second aspects.
[0079] In a twelfth aspect, embodiments of this disclosure provide a chip or chip system. The chip or chip system includes processing circuitry configured to perform the methods described according to optional implementations of the first and second aspects above.
[0080] It is understood that the aforementioned network devices, terminals, communication devices, communication systems, storage media, program products, computer programs, chips, or chip systems are all used to execute the methods proposed in the embodiments of this disclosure. Therefore, the beneficial effects they can achieve can be referred to the beneficial effects in the corresponding methods, and will not be repeated here.
[0081] This disclosure provides a report submission method and apparatus. In some embodiments, the terms "report submission method" and "information processing method," "information sending method," and "information receiving method" can be used interchangeably; the terms "communication apparatus" and "information processing apparatus," "information sending apparatus," and "information receiving apparatus" can be used interchangeably; and the terms "information processing system," "communication system," "information sending system," and "information receiving system" can be used interchangeably.
[0082] This disclosure is not exhaustive, but merely illustrative of some embodiments, and is not intended to limit the scope of protection of this disclosure. Unless otherwise specified, each step in a particular embodiment can be implemented as an independent embodiment, and the steps can be arbitrarily combined. For example, a solution after removing some steps in a particular embodiment can also be implemented as an independent embodiment, and the order of the steps in a particular embodiment can be arbitrarily interchanged. Furthermore, the optional implementation methods in a particular embodiment can be arbitrarily combined; moreover, the embodiments can be arbitrarily combined, for example, some or all steps of different embodiments can be arbitrarily combined, and a particular embodiment can be arbitrarily combined with the optional implementation methods of other embodiments.
[0083] In each of the disclosed embodiments, unless otherwise specified or in case of logical conflict, the terminology and / or descriptions of the embodiments are consistent and can be referenced by each other. Technical features in different embodiments can be combined to form new embodiments based on their inherent logical relationships.
[0084] The terminology used in the embodiments of this disclosure is for the purpose of describing particular embodiments only and is not intended to limit the scope of this disclosure.
[0085] In this disclosure, unless otherwise stated, elements expressed in the singular form, such as "a," "an," "the," "the," "the," "the," "the," "the," "this," etc., can mean "one and only one," or "one or more," "at least one," etc. For example, when using articles such as "a," "an," "the," etc. in translation, the noun following the article can be understood as either a singular or a plural expression.
[0086] In the embodiments disclosed herein, "multiple" refers to two or more.
[0087] In some embodiments, the terms “at least one of”, “at least one of”, “at least one of”, “one or more”, “a plurality of”, “multiple”, etc., may be used interchangeably.
[0088] The descriptions in this disclosure, such as "at least one of A, B, C..." or "A and / or B and / or C...", include the case where any one of A, B, C... exists alone, as well as the case where any combination of any of A, B, C... exists alone. Each case can exist alone. For example, "at least one of A, B, C" includes the cases of A alone, B alone, C alone, A and B combination, A and C combination, B and C combination, and A and B and C combination. For example, A and / or B includes the cases of A alone, B alone, and A and B combination.
[0089] In some embodiments, the notation "in one case A, in another case B" or "in response to one case A, in response to another case B" may include the following technical solutions depending on the situation: A is executed regardless of B, i.e., A is executed in some embodiments; B is executed regardless of A, i.e., B is executed in some embodiments; A and B are selectively executed, i.e., A and B are selected for execution in some embodiments; A and B are both executed, i.e., A and B are executed in some embodiments. The same applies when there are more branches such as A, B, and C.
[0090] The prefixes "first," "second," etc., used in the embodiments of this disclosure are merely for distinguishing different descriptive objects and do not impose restrictions on the position, order, priority, quantity, or content of the descriptive objects. The description of the descriptive objects is found in the claims or the context of the embodiments, and the use of prefixes should not constitute unnecessary restrictions. For example, if the descriptive object is a "field," the ordinal numbers preceding "field" in "first field" and "second field" do not restrict the position or order of the "fields." "First" and "second" do not restrict whether the "fields" they modify are in the same message, nor do they restrict the order of "first field" and "second field." Similarly, if the descriptive object is a "level," the ordinal numbers preceding "level" in "first level" and "second level" do not restrict the priority between "levels." Furthermore, the number of descriptive objects is not limited by ordinal numbers and can be one or more. For example, in "first device," the number of "devices" can be one or more. Furthermore, the objects modified by different prefixes can be the same or different. For example, if the object being described is "device", then "first device" and "second device" can be the same device or different devices, and their types can be the same or different. Similarly, if the object being described is "information", then "first information" and "second information" can be the same information or different information, and their content can be the same or different.
[0091] In some embodiments, “including A,” “containing A,” “for indicating A,” and “carrying A” can be interpreted as directly carrying A or indirectly indicating A.
[0092] In some embodiments, the terms “in response to…”, “in response to determining…”, “in the case of…”, “when…”, “if…”, “if…”, etc., can be used interchangeably.
[0093] In some embodiments, the terms “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,” and “above” can be used interchangeably, as can the terms “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,” and “below”.
[0094] In some embodiments, devices, etc., can be interpreted as physical or virtual, and their names are not limited to the names recorded in the embodiments. Terms such as “device”, “equipment”, “circuit”, “network element”, “node”, “function”, “unit”, “section”, “system”, “network”, “chip”, “chip system”, “entity”, and “subject” can be used interchangeably.
[0095] In some embodiments, "network" can be interpreted as devices included in a network (e.g., access network devices, core network devices, etc.).
[0096] 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," and "bandwidth part (BWP)" can be used interchangeably.
[0097] 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 subscriberstation, access terminal, mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, and client can be used interchangeably.
[0098] In some embodiments, access network devices, core network devices, or network devices can be replaced with terminals. For example, embodiments of this disclosure can also be applied to structures that replace communication between access network devices, core network devices, or network devices and terminals with communication between multiple terminals (e.g., also referred to as device-to-device (D2D), vehicle-to-everything (V2X), etc.). In this case, the structure can also be configured such that the terminal has all or part of the functions of the access network device. Furthermore, terms such as "uplink" and "downlink" can be replaced with terms corresponding to communication between terminals (e.g., "sidelink"). For example, uplink channel, downlink channel, etc., can be replaced with sidelink channel, uplink link, downlink link, etc., can be replaced with sidelink link.
[0099] In some embodiments, the terminal may be replaced by an access network device, a core network device, or a network device. In this case, the access network device, core network device, or network device may also be configured to have all or some of the functions of the terminal.
[0100] In some embodiments, the acquisition of data, information, etc., may comply with the laws and regulations of the country where the location is situated.
[0101] In some embodiments, data, information, etc., may be obtained with the user's consent.
[0102] Furthermore, each element, each row, or each column in the table of this 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.
[0103] The correspondences shown in the tables of this disclosure can be configured or predefined. The values of the information in each table are merely examples and can be configured to other values; this disclosure is not limiting. When configuring the correspondences between information and parameters, it is not necessarily required to configure all the correspondences shown in each table. For example, the correspondences shown in some rows of the tables in this disclosure may not be configured. Furthermore, appropriate modifications and adjustments can be made based on the above tables, such as splitting, merging, etc. The names of the parameters shown in the headers of the above tables can also use other names that the communication device can understand, and the values or representations of the parameters can also be other values or representations that the communication device can understand. In the implementation of the above tables, other data structures can also be used, such as arrays, queues, containers, stacks, linear lists, pointers, linked lists, trees, graphs, structures, classes, heaps, hash tables, or hash tables, etc.
[0104] The predefined terms in this disclosure can be understood as defined, predefined, stored, pre-stored, pre-negotiated, pre-configured, solidified, or pre-burned.
[0105] In this embodiment of the disclosure, "activation" can also be interchanged with "trigger," "indication," "request," "configuration," etc. For example, the indication field of DCI is used to trigger the trigger state, and the field of MAC CE is used to activate the trigger state.
[0106] Figure 1 This is a schematic diagram of the architecture of a communication system according to embodiments of this disclosure. Figure 1 As shown, the communication system includes a terminal and network equipment. In some embodiments, the network equipment may include at least one of an access network device and a core network device.
[0107] In some embodiments, the terminal includes, but is not limited to, at least one of the following: mobile phone, wearable device, Internet of Things (IoT) device, narrowband Internet of Things (NB-IoT) device, car with communication capabilities, smart car, tablet computer, computer with wireless transceiver capabilities, virtual reality (VR) terminal device, augmented reality (AR) terminal device, wireless terminal device in industrial control, wireless terminal device in self-driving, wireless terminal device in remote medical surgery, wireless terminal device in smart grid, wireless terminal device in transportation safety, wireless terminal device in smart city, and wireless terminal device in smart home.
[0108] In some embodiments, the access network device is, for example, a node or device that connects a terminal to a wireless network. The access network device may include, but is not limited to, at least one of the following in a 5G communication system: evolved Node B (eNB), next-generation eNB (ng-eNB), next-generation Node B (gNB), node B (NB), home node B (HNB), home evolved node B (HeNB), wireless backhaul device, radio network controller (RNC), base station controller (BSC), base transceiver station (BTS), base band unit (BBU), mobile switching center, base station in a 6G communication system, open RAN, cloud RAN, base station in other communication systems, and access node in a wireless fidelity (WiFi) system.
[0109] In some embodiments, the technical solutions of this disclosure can be applied to the Open RAN architecture. In this case, the interfaces between or within access network devices involved in the embodiments of this disclosure can be transformed into internal interfaces of Open RAN. The processes and information interactions between these internal interfaces can be implemented by software or programs.
[0110] In some embodiments, the access network device may be composed of a central unit (CU) and a distributed unit (DU). The CU may also be called a control unit. The CU-DU structure can separate the protocol layer of the access network device. Some of the protocol layer functions are centrally controlled by the CU, while the remaining part or all of the protocol layer functions are distributed in the DU and centrally controlled by the CU. However, this is not the only possibility.
[0111] In some embodiments, the core network device may be a single device comprising one or more network elements, or it may be multiple devices or a group of devices, each comprising all or part of one or more network elements. Network elements may be virtual or physical. The core network may include, for example, at least one of an Evolved Packet Core (EPC), a 5G Core Network (5GCN), and a Next Generation Core (NGC). Alternatively, the core network device may also be a location management function network element. Exemplarily, the location management function network element includes a location server, which may be implemented as any of the following: a Location Management Function (LMF), an Enhanced Serving Mobile Location Centre (E-SMLC), a Secure User Plane Location (SUPL), and a Secure User Plane Location Platform (SUPLLP).
[0112] It is understood that the communication system described in this disclosure is for the purpose of more clearly illustrating the technical solutions of this disclosure, and does not constitute a limitation on the technical solutions proposed in this disclosure. As those skilled in the art will know, with the evolution of system architecture and the emergence of new business scenarios, the technical solutions proposed in this disclosure are also applicable to similar technical problems.
[0113] The following embodiments of this disclosure can be applied to Figure 1 The communication system 100 shown, or a part thereof, but not limited to it. Figure 1 The entities shown are illustrative; a communication system may include... Figure 1 All or part of the main body, or may include Figure 1Other entities besides the main body, the number and form of each entity are arbitrary, the connection relationship between the entities is illustrative, the entities may not be connected or may be connected, and the connection can be in any way, it can be a direct connection or an indirect connection, it can be a wired connection or a wireless connection.
[0114] The embodiments disclosed herein 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), Futuregeneration radio access (FX), Global System for Mobile communications (GSM), CDMA2000, Ultra Mobile Broadband (UMB), IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), and IEEE 802.20, Ultra-Wideband (UWB), Bluetooth (a registered trademark), Public Land Mobile Network (PLMN) networks, Device-to-Device (D2D) systems, Machine-to-Machine (M2M) systems, Internet of Things (IoT) systems, Vehicle-to-Everything (V2X) systems, systems utilizing other deterministic methods, and next-generation systems built upon them, etc. Furthermore, multiple systems can be combined (e.g., a combination of LTE or LTE-A with 5G).
[0115] Optionally, when terminals and network devices transmit and receive signals based on beams, beam management is typically required. For example, beam quality needs to be determined to use beams with better quality for transmission and reception, thereby ensuring communication performance. Optionally, in some embodiments, artificial intelligence (AI) models can be used to determine predicted beam data when determining beam quality. In some embodiments, the method of using an AI model to determine predicted beam data may include: setting two sets of reference signal resources, such as set A and set B, where each set may include at least one reference signal resource. These reference signal resources may include, for example, a Channel State Information-Reference Signal (CSI-RS) and / or a Synchronization Signal Block (SSB), with each reference signal resource corresponding to one transmit beam. Optionally, the beam quality of the reference signal resources 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 prediction 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 prediction 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.
[0116] In some embodiments, the measurement data described above may include any one or a combination of the following: Layer 1 Reference Signal Received Power (L1-RSRP) of the reference signal resources in reference signal resource set B, Layer 1 Signal to Interference plus Noise Ratio (L1-SINR) of the reference signal resources in reference signal resource set B, resource identifier of the reference signal resources in reference signal resource set B, beam identifier corresponding to the reference signal resources in reference signal resource set B, beam pair identifier corresponding to the reference signal resources in reference signal resource set B, and Transmission Configuration Indicator stateIdentity (TCI state ID) corresponding to the reference signal resources in reference signal resource set B. Optionally, the prediction data described above may include any one or a combination of the following: resource identifier of the reference signal resources in reference signal resource set A, beam identifier corresponding to the reference signal resources in reference signal resource set A, TCI state ID corresponding to the reference signal resources in reference signal resource set A, and beam prediction result of reference signal resource set A. Optionally, the resource identifier of the reference signal resource in the reference signal resource set A included in the above prediction data can be the resource identifier of one or more reference signal resources with the best prediction result. Optionally, the beam identifier corresponding to the reference signal resource in the reference signal resource set A included in the above prediction data can be the beam identifier 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 above prediction data can be the TCI state ID corresponding to one or more reference signal resources with the best prediction result. Optionally, the beam prediction result can include, for example, any one or any combination of the following: L1-RSRP of the reference signal resource in the reference signal resource set A, L1-SINR of the reference signal resource in the reference signal resource set A, and the probability value that the reference signal resource is the best reference signal resource. Optionally, the best prediction result or the best reference signal resource can be understood, for example, as the reference signal resource with the highest L1-RSRP or L1-SINR.
[0117] Optionally, the relationship between the aforementioned reference signal resource set A and reference signal resource set B can include any of the following: The first type is that the reference signal resource set B is a subset of the reference signal resource set A.
[0118] For example, reference signal resource set A includes 32 reference signal resources, and reference signal resource set B may include N reference signal resources from these 32 reference signal resources, where N < 32, for example, N = 8.
[0119] Alternatively, if reference signal resource set A includes 32 reference signal resources, each corresponding to a transmit beam, and the terminal has 4 receive beam directions, then reference signal resource set A includes 32×4 beam pairs, while reference signal resource set B may include 32 beam pairs from the 32×4 beam pairs, or 16 beam pairs, etc.
[0120] The second type is where reference signal resource set B is a wide beam and reference signal resource set A is a narrow beam.
[0121] Optionally, the beam corresponding to reference signal resource set B and the beam corresponding to reference signal resource set A can cover the same beam direction and the same beam angle, and the number of reference signal resources in reference signal resource set B is less than the number of reference signal resources in reference signal resource set A.
[0122] For example, reference signal resource set A may include 32 reference signal resources, and the beams corresponding to these 32 resources cover a 120-degree direction. Reference signal resource set B may include N reference signal resources, where N < 32, for example, N = 8. The coverage direction and angle of the beams corresponding to the N reference signal resources are the same as those of the beams corresponding to the 32 reference signal resources. Optionally, the beam corresponding to one reference signal resource in reference signal resource set B can simultaneously cover the beams corresponding to multiple reference signal resources in reference signal resource set A. Optionally, multiple reference signal resources in reference signal resource set A can be in a quasi-co-location type (QCL Type D) relationship with one reference signal resource in reference signal resource set B that simultaneously covers the beams corresponding to those multiple reference signal resources.
[0123] The third type is where reference signal resource set A and reference signal resource set B satisfy any one of the following, or any combination of any number of the following: The reference signal resources in reference signal resource set B are the same as those in reference signal resource set A; The temporal location of the reference signal resources in reference signal resource set B is different from that in reference signal resource set A; The frequency domain position of the reference signal resources in reference signal resource set B is the same as the frequency domain position of the reference signal resources in reference signal resource set A; The transmit spatial domain filter (Tx spatial domain filter) corresponding to the reference signal resources in reference signal resource set B is the same as the transmit spatial domain filter corresponding to the reference signal resources in reference signal resource set A; The resource ID of the reference signal resource in reference signal resource set B is the same as the resource ID of the reference signal resource in reference signal resource set A.
[0124] 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 may include any one or any combination of the following: measurement data of at least one reference signal resource in the reference signal resource set B, and beam prediction results of at least one reference signal resource in the reference signal resource set A excluding the reference signal resources in the reference signal resource set B. Alternatively, the beam prediction result of the reference signal resource set A may include: beam prediction results of all reference signal resources in the reference signal resource set A.
[0125] In some embodiments, when the AI model is deployed on a terminal, the terminal typically needs to determine the measurement data of a reference signal resource set B, input the measurement data of reference signal resource set B into the AI model to obtain the predicted data of reference signal resource set A, and then report a beam report to the network device. This beam report may include the predicted data of reference signal resource set A. After receiving the beam report, the network device can determine the beam with better beam quality in reference signal resource set A based on the beam report, and schedule the terminal to use the beam with better beam quality for communication, ensuring communication performance.
[0126] Optionally, when reporting the aforementioned beam report, the terminal may report the beam report aperiodically. However, how the terminal should report the beam report aperiodically is a technical problem that urgently needs to be solved.
[0127] Figure 2 This is an interactive schematic diagram illustrating a report submission method according to an embodiment of this disclosure. For example... Figure 2 As shown, this disclosure relates to a report reporting method for a communication system 100, the method comprising: Step 2101: The network device sends the first information to the terminal.
[0128] Optionally, the first information can be used to determine at least one first configuration information. Optionally, the first configuration information can be used to determine at least two reference signal resource sets, which may include at least a first reference signal resource set and a second reference signal resource set. Optionally, the terminal measures reference signal resources in the first reference signal resource set, and the terminal does not measure reference signal resources in the second reference signal resource set. In some embodiments, the first reference signal resource set may be... Figure 2 The reference signal resource set B mentioned in the preceding description of the embodiments, the second reference signal resource set can be... Figure 2 The reference signal resource set A mentioned earlier in the embodiments, and detailed information about the first reference signal resource set and the second reference signal resource set can be found in [reference needed]. Figure 2 The description preceding the examples.
[0129] Optionally, in some embodiments, the first reference signal resource set and / or the second reference signal resource set can be used to implement beam prediction based on an AI model. For example, the first reference signal resource set and / or the second reference signal resource set can be used to implement spatial beam prediction based on an AI model. In this case, the measurement data of the first reference signal resource set can be used as input to the AI model so that the AI model outputs predicted 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 temporal beam prediction based on an AI model. In this case, the measurement data of the first reference signal resource set at at least one first time moment is used as input to the AI model so that the AI model outputs predicted data of the second reference signal resource set at at least one second time moment, wherein the first time moment may be earlier than the second time moment. A detailed description of "measurement data" and "prediction data" can be found in [reference needed]. Figure 2 The content described prior to the examples.
[0130] In some embodiments, when the first reference signal resource set and the second reference signal resource set are used to implement spatial beam prediction based on an AI model, the relationship between the first reference signal resource set and the second reference signal resource set may include... Figure 2 The first or second scenario described earlier in the embodiments. When the first reference signal resource set and the second reference signal resource set are used to implement time-domain beam prediction based on an AI model, the relationship between the first reference signal resource set and the second reference signal resource set may include... Figure 2 The first, second, or third method described in the preceding embodiments.
[0131] Optionally, the first configuration information is used to configure any one or any combination of the following: a set identifier of a 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 status 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 a 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 status 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; and a first identifier.
[0132] Optionally, the first configuration information is used to configure the set identifier of the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier corresponding to the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; the time domain position corresponding to the reference signal resource in the second reference signal resource set; the frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0133] Optionally, the first configuration information is used to configure the resource identifier of the reference signal resource in the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier corresponding to the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; the time domain position corresponding to the reference signal resource in the second reference signal resource set; the frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0134] Optionally, the first configuration information is used to configure the beam identifier corresponding to the reference signal resource in the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier corresponding to the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; the time domain position corresponding to the reference signal resource in the second reference signal resource set; the frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0135] Optionally, the first configuration information is used to configure the transmission configuration indication status identifier corresponding to the reference signal resource in the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier corresponding to the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; the time domain position corresponding to the reference signal resource in the second reference signal resource set; the frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0136] Optionally, the first configuration information is used to configure the time-domain position of the reference signal resource in the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier of the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier of the reference signal resource in the second reference signal resource set; the time-domain position of the reference signal resource in the second reference signal resource set; the frequency-domain position of the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0137] Optionally, the first configuration information is used to configure the frequency domain position corresponding to the reference signal resource in the first reference signal resource set; and the set identifier of the second reference signal resource set; the resource identifier of the reference signal resource in the second reference signal resource set; the beam identifier corresponding to the reference signal resource in the second reference signal resource set; the transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; the time domain position corresponding to the reference signal resource in the second reference signal resource set; the frequency domain position corresponding to the reference signal resource in the second reference signal resource set; and any one or more of the first identifiers.
[0138] Optionally, the first identifier can be used to indicate a first attribute identifier, which can be used to identify any one or any combination of the following: the first attribute of the first reference signal resource set corresponding to each first configuration information, and the first attribute of the second reference signal resource set corresponding to each first configuration information.
[0139] Optionally, the first attribute can be an attribute related to the transmitted spatial domain filter (Tx).
[0140] Optionally, the first attribute of the first reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the first reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the first reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the first reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the first reference signal resource set; the total number of reference signal resources in the first reference signal resource set; and the number of times corresponding to the first reference signal resource set at the first moment.
[0141] Optionally, the first attribute of the first reference signal resource set includes the transmission beam angle corresponding to one or more reference signal resources in the first reference signal resource set. Optionally, the first attribute of the first reference signal resource set includes the transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set. Optionally, the first attribute of the first reference signal resource set includes the arrangement order of the transmission beam angles of one or more reference signal resources in the first reference signal resource set. Optionally, the first attribute of the first reference signal resource set includes the transmission beam angle difference between two adjacent reference signal resources in the first reference signal resource set. Optionally, the first attribute of the first reference signal resource set includes the total number of reference signal resources in the first reference signal resource set. Optionally, the first attribute of the first reference signal resource set includes the number of first time points corresponding to the first reference signal resource set.
[0142] Optionally, the first attribute of the second reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the second reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the second reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the second reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the second reference signal resource set; the total number of reference signal resources in the second reference signal resource set; and the number of second time points corresponding to the second reference signal resource set.
[0143] Optionally, the first attribute of the second reference signal resource set includes the transmit beam angle corresponding to one or more reference signal resources in the second reference signal resource set. Optionally, the first attribute of the second reference signal resource set includes the transmit beam direction corresponding to one or more reference signal resources in the second reference signal resource set. Optionally, the first attribute of the second reference signal resource set includes the arrangement order of the transmit beam angles of one or more reference signal resources in the second reference signal resource set. Optionally, the first attribute of the second reference signal resource set includes the transmit beam angle difference between two adjacent reference signal resources in the second reference signal resource set. Optionally, the first attribute of the second reference signal resource set includes the total number of reference signal resources in the second reference signal resource set. Optionally, the first attribute of the second reference signal resource set includes the number of second time points corresponding to the second reference signal resource set.
[0144] Optionally, in some embodiments, the first configuration information described above may be used to determine a first set of reference signal resources, but not to determine a second set of reference signal resources, which may be determined by a first identifier; or, the first configuration information may be used to determine both the first and second sets of reference signal resources; or, the time-domain location corresponding to the first set of reference signal resources determined by the first configuration information may be specific to a symbol, while the time-domain location corresponding to the second set of reference signal resources determined by the first configuration information may be specific to a time instance, period, frame, subframe, or slot. Alternatively, the first configuration information may not be used to determine the frequency-domain location corresponding to the second set of reference signal resources.
[0145] In some embodiments, the first identifier or first attribute identifier mentioned above may be called associatedID or other names, and this disclosure does not specifically limit it. Optionally, the first attribute mentioned above may be called Additional condition of network-side device or other names, and this disclosure does not specifically limit it.
[0146] The following provides a detailed explanation of why the first configuration information must include the first identifier.
[0147] Optionally, in some embodiments, when the aforementioned AI model is deployed on a terminal, the terminal can train, apply, infer, and perform performance testing on the AI model. Optionally, the required input data differs for different AI models. For example, taking "the first reference signal resource set is a subset of the second reference signal resource set" as an example, where the first reference signal resource set is set B and the second reference signal resource set is set A. For AI model #1 on the terminal, the required input data might be: measurement data corresponding to the first reference signal resource set composed of reference signal resources with resource IDs 1, 5, 9, 13... in the second reference signal resource set; for AI model #2 on the terminal, the required input data might be: measurement data corresponding to the first reference signal resource set composed of reference signal resources with resource IDs 1, 2, 3, 4... in the second reference signal resource set. It is understandable that the first attribute corresponding to at least one reference signal resource with resource IDs of 1, 5, 9, 13... is different from the first attribute corresponding to at least one reference signal resource with resource IDs of 1, 2, 3, 4... Furthermore, in some embodiments, the first attributes corresponding to the first reference signal resource set and / or the second reference signal resource set of different network devices are 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 of 1, 5, 9, 13... in the second reference signal resource set; 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 of 1, 2, 3, 4... in the second reference signal resource set. Therefore, in some embodiments, given that the first attributes of the first reference signal resource set and / or the second reference signal resource set of different network devices are different, the AI models that the terminal can use when accessing different network devices will also be different. In some embodiments, the network device may typically include a first identifier in the first configuration information to indicate a first attribute of the network device’s first reference signal resource set and / or second reference signal resource set, so that the terminal can determine the most suitable AI model that the terminal can use based on the first attribute of the network device’s first reference signal resource set and / or second reference signal resource set.
[0148] For example, suppose there are AI model #1 and AI model #2 on the terminal. The input data required by AI model #1 is the measurement data of the first reference signal resource set consisting of the eight resource signal resources with resource IDs 1, 5, 9, 13, ... in the second reference signal resource set. The input data required by AI model #2 is the measurement data of the first reference signal resource set consisting of the eight resource signal resources with resource IDs 1, 2, 3, 4, ... in the second reference signal resource set. In this case, if the first attribute of the first reference signal resource set of the network device is: the first reference signal resource set includes the eight resource signal resources with resource IDs 1, 5, 9, 13, ... in the second reference signal resource set, then when the terminal accesses the network device, it can use AI model #1 to perform beam prediction.
[0149] Optionally, in some embodiments, the first configuration information may not include the first identifier. In this case, the terminal may choose to use the first AI model, or the terminal may choose to use any AI model from at least one second AI model. Optionally, the first AI model may be a hybrid model pre-trained by the terminal, which is trained based on multiple first reference signal resource sets and second reference signal resource sets corresponding to different first identifiers. Optionally, the at least one second AI model may all be trained based on the same first reference signal resource set and second reference signal resource set corresponding to the same first identifier.
[0150] Optionally, in some embodiments, the first information is further used to determine whether a first report is triggered. Optionally, the first report can be a non-periodic 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 for the second reference signal resource set. For a detailed explanation of "prediction data," please refer to... Figure 2 The preceding description of the embodiments. In some embodiments, the first report may be understood, for example, as a beam report in the scenario of "beam prediction based on AI model".
[0151] In some embodiments, the terminal receives a DCI sent by a network device, wherein the DCI includes first information.
[0152] In some embodiments, DCI includes a first indication field (e.g., CSI request, or CSIrequestforAI), the first indication field including at least one bit, at least one codepoint of 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; the at least one codepoint carried by the bit of the first indication field being used to indicate whether the first report of the corresponding first report identifier has been triggered.
[0153] Optionally, in some embodiments, the first list is a CSI-AperiodicTriggerStateList corresponding to the non-periodic reporting based on the physical uplink shared channel (PUSCH).
[0154] For example, at least one code point of at least one bit of the first indicator field is used to indicate a first trigger state in the first list. For example, code point "001" of the bit of the first indicator field corresponds to the first trigger state at the first position in the first list.
[0155] For example, at least one code point of at least one bit of the first indication field is not used to indicate a first trigger state in the first list. For example, code point "000" of the bit of the first indication field corresponds to not triggering Channel State Information (CSI) reporting.
[0156] It is understandable that the first trigger state can also correspond to the report identifier of other reports besides the first report identifier of the first report, such as the second report identifier of the second report. The second report is different from the first report. For example, the first report can be understood as the beam report in the scenario of "beam prediction based on AI model", while the second report is the report determined in the scenario of "beam prediction not based on AI model, that is, actual measurement of reference signal resources in the second reference signal resource set".
[0157] Optionally, at least one code point of at least one bit in 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 second configuration information, and 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report. At least one code point carried by the bit in 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.
[0158] For example, in the first indication field, "010" 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.
[0159] In other embodiments, the DCI includes a second indication field, which 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 identifier of at least one second report. The second report identifier corresponds to second configuration information, and 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 reference signal resource sets in the at least one set of reference signal resources to obtain a second report. 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 has been triggered. It is understood that the DCI can simultaneously activate the reporting of the first report and the reporting of the second report, wherein the reporting of the first report is activated by the first indication field, and the reporting of the second report is activated by the second indication field. Optionally, all code points in the first indicator field are used to activate the first report, or all code points in the first indicator field used for report activation are used to activate the first report. That is, the code points in the first indicator 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. Similarly, all code points in the second indicator field are used to activate the second report, or all code points in the second indicator field used for report activation are used to activate the second report. That is, the code points in the second indicator 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.
[0160] In other embodiments, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0161] For example, the DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. Alternatively, at least one code point carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been 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, and 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 reference signal resource sets in the at least one set of reference signal resources to obtain a second report. At least one code point carried by the bit of the first indication field is used to indicate whether the second report of the corresponding second report identifier has been triggered. The DCI also includes a third indication field, which indicates whether the first indication field is used to trigger a first report or a second report. The second report corresponds to second configuration information, which configures at least one set of reference signal resources. This second configuration information configures the terminal to measure all reference signal resource sets in at least one set of reference signal resources to obtain a second report. It is understood that the DCI includes a third indication field, which indicates whether the DCI is used to trigger either the first or second report. For example, if the third indication field indicates that the DCI is used to trigger the first report, the code point corresponding to the bit in the first indication field of the DCI corresponds to the first active state (trigger state) in the first list corresponding to the first report; otherwise, it corresponds to the second active state in the second list corresponding to the second report. The second configuration information corresponding to the second active state of the second report is different from the first configuration information; the configured set of reference signal resources needs to be measured by the terminal. That is, if even one code point corresponding to the bit in the first indication field is used to activate the first trigger state in the first list corresponding to the first report, then the other code points in the first indication field will not be used to activate the second trigger state in the second list corresponding to the second report. The reverse is also true.
[0162] In some embodiments, the cyclic redundancy check (CRC) of the DCI is scrambled with the Cell-radio network temporary identity (C-RNTI).
[0163] In some embodiments, the DCI format is DCI format 0_1 or DCI format 0_2.
[0164] In some embodiments, the terminal receives a first MAC CE sent by the network device. The first MAC CE is used to activate a first number of trigger states in a first list. At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the first MAC CE. The trigger states include a first trigger state corresponding to a first report. The first number is determined based on the number of bits contained in the first indication field.
[0165] Optionally, the DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The at least one code point carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered. The first indication field of the DCI contains N bits, meaning the maximum number of trigger states that the first indication field can indicate is 2^N - 1. Therefore, when the total number of trigger states in the first list configured by radio resource control (RRC) is greater than 2^N - 1, the terminal needs to receive a first MAC CE sent by the network device to activate a first number of trigger states in the first list. The value of the first number needs to be less than or equal to 2^N - 1 to ensure that the number of trigger states that the first indication field can indicate is greater than or equal to the first number. Thus, at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the first MAC CE. Optionally, the code points in the first indication field of the DCI used for indicating the report correspond one-to-one with a first number of trigger states activated by the first MAC CE, so as to achieve accurate activation of the first trigger state corresponding to the first report by the DCI. Optionally, the number of bits contained in the field used to activate the trigger state in the first MAC CE is the same as the total number of trigger states in the first list. Each bit in the field used to activate the trigger state in the first MAC CE corresponds to a trigger state in the first list. One bit in the field used to activate the trigger state in the first MAC CE is "1" to identify the trigger state corresponding to the activation of that bit; or one bit in the field used to activate the trigger state in the first MAC CE is "0" to identify the trigger state corresponding to the activation of that bit. There is no limitation here. In the above embodiment, the terminal determines the first trigger state corresponding to the triggering of the first report based on the DCI and the first MAC CE. It can be seen that the network device can configure the aperiodic reporting of the first report in the "beam prediction based on AI model" scenario through the joint configuration of the DCI and the first MAC CE, enriching the configuration method of the first report.
[0166] Optionally, at least one codepoint of at least one bit in 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 second configuration information, and 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 reference signal resource sets in the at least one set of reference signal resources to obtain a second report. At least one codepoint carried by the bit in the first indication field is used to indicate whether the second report of the corresponding second report identifier is triggered. The first indication field of the DCI contains N bits, and the maximum value of the first number is 2^N minus 1. Optionally, if the first number is less than the total number of trigger states in the first list configured by RRC, the first indication field of DCI may not be able to trigger all the trigger states in the first list, potentially causing the first indication field of DCI to fail to accurately trigger the first trigger state corresponding to the first report and / or the second trigger state corresponding to the second report. Based on this, the terminal receives a first MAC CE sent by the network device and activates a first number of trigger states in the first list using the first MAC CE. The first number of trigger states includes the first trigger state corresponding to the first report and / or the second trigger state corresponding to the second report. At least one code point in the first indication field of DCI is configured to indicate at least one of the first number of trigger states activated by the first MAC CE. Optionally, the code point in the first indication field of DCI used to trigger the report corresponds one-to-one with the first number of trigger states activated by the MAC CE, so as to achieve accurate activation of the first trigger state corresponding to the first report and / or the second trigger state corresponding to the second report by DCI. Optionally, the number of bits in the field used to activate the trigger state in the first MAC CE is the same as the total number of trigger states in the first list of the RRC configuration. Each bit in the field used to activate the trigger state in the first MAC CE corresponds to one trigger state in the first list. A bit in the field used to activate the trigger state in the first MAC CE is "1" to indicate the trigger state corresponding to that bit is activated; or a bit in the field used to activate the trigger state in the first MAC CE is "0" to indicate the trigger state corresponding to that bit is activated. No limitation is imposed here. In this case, some bits in the field used to activate the trigger state in the first MAC CE correspond to the first trigger state of the first report, and some bits correspond to the second trigger state of the second report. In the above embodiment, the terminal determines the first trigger state corresponding to the first report and / or the first trigger state corresponding to the first report based on the DCI and the first MAC CE.Therefore, network devices can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through DCI and the first MAC CE, which enriches the configuration methods of the first report and makes the first report and the second report more compatible.
[0167] In some embodiments, a terminal receives a second MAC CE sent by a network device, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. The second MAC CE includes a fourth indication field, which indicates that the second MAC CE is used to activate either the first number of first trigger states in the first list or the second number of second trigger states in the second list. At least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the second MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE. The first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0168] Optionally, the DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The at least one code point carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered. Optionally, the DCI includes a second indication field, which 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 identifier of at least one second report. The second report identifier corresponds to second configuration information, and 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 reference signal resource sets in at least one set of reference signal resources to obtain a 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 of the corresponding second report identifier has been triggered.
[0169] Optionally, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, different second reports correspond to different second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0170] In the above embodiments, the terminal jointly determines the first trigger state corresponding to the first report and / or the first trigger state corresponding to the first report based on the DCI and the second MAC CE. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through the DCI and the first MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0171] In some embodiments, a terminal receives a third MAC CE sent by a network device, wherein the third MAC CE includes a first activation field and a second activation field, the first activation field is used to activate a first number of first trigger states in a first list, and the second activation field is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the third MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; the first number is determined based on the number of bits of the first indication field of the DCI, and the second number is determined based on the number of bits of the first indication field or the second indication field of the DCI.
[0172] Optionally, the DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The at least one code point carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered. Optionally, the DCI includes a second indication field, which 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 identifier of at least one second report. The second report identifier corresponds to second configuration information, and 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 reference signal resource sets in at least one set of reference signal resources to obtain a 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 of the corresponding second report identifier has been triggered.
[0173] Optionally, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, different second reports correspond to different second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0174] In the above embodiments, the terminal jointly determines the first trigger state corresponding to the first report and / or the first trigger state corresponding to the first report based on the DCI and the third MAC CE. Therefore, the network device can jointly configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through the DCI and the first MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0175] In some embodiments, the terminal receives a fourth MAC CE and / or a fifth MAC CE sent by the network device, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the fourth MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; the first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI. The fourth MAC CE is a different MAC CE from the fifth MAC CE, that is, the two MAC CEs (the fourth MAC CE and the fifth MAC CE) have different LC (logical channel) identifiers (IDs), and the different LCIDs correspond to different codepoints or indices in the MAC subheader.
[0176] Optionally, the DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The at least one code point carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered. Optionally, the DCI includes a second indication field, which 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 identifier of at least one second report. The second report identifier corresponds to second configuration information, and 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 reference signal resource sets in at least one set of reference signal resources to obtain a 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 of the corresponding second report identifier has been triggered.
[0177] Optionally, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, different second reports correspond to different second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0178] In the above embodiments, the terminal determines the first trigger state corresponding to the first report and / or the first trigger state corresponding to the first report based on the DCI, the fourth MAC CE, and / or the fifth MAC CE. Therefore, the network device can configure the aperiodic reporting of the first report in the "AI model-based beam prediction" scenario and / or the aperiodic reporting of the second report in the "non-AI model-based beam prediction" scenario through the joint configuration of the DCI and the first MAC CE, enriching the configuration methods of the first report and enabling better compatibility between the first and second reports.
[0179] Optionally, the aforementioned first report identifier and second report identifier may be referred to as reportconfigID (such as CSIreportconfigID, CSIreportconfigID-AI). Optionally, the aforementioned first list and second list may be agreed upon by a protocol, and / or, the first list and second list may be configured by the network device.
[0180] Step 2102: The terminal measures the reference signal resources in the first reference signal resource set, but does not measure the reference signal resources in the second reference signal resource set.
[0181] Step 2103: The terminal determines the first report based on at least two sets of reference signal resources corresponding to the second configuration information.
[0182] Optionally, the terminal may first determine the activated first report based on the first information. Then, the terminal determines the first configuration information corresponding to the first report and, based on the first configuration information, determines at least two sets of reference signal resources. Further, the terminal may determine the report content of the activated first report based on the at least two sets of reference signal resources. For example, the terminal may determine the predicted data of a second set of reference signal resources based on an AI model and the measurement data of the first set of reference signal resources corresponding to the activated first report. Then, the terminal may determine the predicted data of the determined second set of reference signal resources as the report content of the activated first report.
[0183] Optionally, the terminal determines the first report based on at least two sets of reference signal resources, including any one or any combination of the following: measurement data of the first set of reference signal resources is used as input to an artificial intelligence (AI) model to cause the AI model to output predicted data of the second set of reference signal resources, and the first report is determined based on the predicted 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 moment is used as input to the AI model to cause the AI model to output predicted data of the second set of reference signal resources at at least one second time moment, wherein the first time moment is earlier than the second time moment, and the first report is determined based on the predicted data of the second set of reference signal resources.
[0184] Optionally, the terminal may determine at least one first configuration information based on first information sent by the network device. The first configuration information is used to determine at least two reference signal resource sets, which include a first reference signal resource set and a second reference signal resource set. The terminal measures the reference signal resources in the first reference signal resource set to obtain measurement data for the first reference signal resource set, wherein the terminal does not measure the reference signal resources in the second reference signal resource set. Based on the measurement data of the at least two reference signal resource sets and the first reference signal resource set, the terminal determines a first report, wherein the first report is a non-periodic report and includes a report corresponding to the second reference signal resource set.
[0185] Step 2104: The terminal reports the first report to the network device.
[0186] Optionally, the first information includes PUSCH resource configuration information, and the terminal sends a first report to the network device aperiodically, wherein the first report is carried by PUSCH.
[0187] Step 2105: The terminal measures the reference signal resources of all reference signal resource sets in at least one reference signal resource set corresponding to the second configuration information.
[0188] Step 2106: The terminal determines the second report based on at least one set of reference signal resources corresponding to the second configuration information.
[0189] Optionally, the terminal can first determine the activated second report based on the first or second information. Then, the terminal determines the second configuration information corresponding to the second report and, based on the second configuration information, determines at least one set of reference signal resources. Further, it can determine the report content of the activated second report based on the at least one set of reference signal resources 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 in all reference signal resource sets within the at least one set of reference signal resources corresponding to the activated second report. Optionally, the second report may include the measurement data of the reference signal resource with the best beam quality among all reference signal resource sets in the at least one set of reference signal resources; or, the second report may include the measurement data of the reference signal resources whose beam quality meets certain conditions among all reference signal resource sets in the at least one set of reference signal resources. In other words, the second report contains measurement data obtained through actual measurements.
[0190] Step 2107: The terminal reports a second report to the network device.
[0191] Optionally, the terminal may send a second report to the network device aperiodically, wherein the second report is carried by PUSCH.
[0192] In summary, in the above embodiments, based on the first configuration information, the terminal can determine at least two sets of reference signal resources, and can measure the reference signal resources of the first set of reference signal resources, but not measure the reference signal resources of the second set of reference signal resources. Furthermore, the terminal can determine a non-periodic first report based on the at least two sets of reference signal resources. Therefore, this disclosure provides a method for "determining a non-periodic first report based on a first set of reference signal resources and a second set of reference signal resources." Optionally, as the foregoing content indicates, the first set of reference signal resources is measured by the terminal, while the second set is not. Therefore, the first and second sets of reference signal resources can be used to implement "beam prediction based on an AI model." For example, the measurement data of the first set of reference signal resources can be input into an AI model to obtain the prediction data of the second set of reference signal resources. 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 AI model", this disclosure provides a method for "how to determine non-periodic beam reports" for the scenario of "beam prediction based on AI model". This facilitates the terminal to successfully perform non-periodic reporting for the scenario of "beam prediction based on AI model", and enables network devices to accurately schedule communication beams with better beam quality for the scenario of "beam prediction based on AI model" based on the terminal's reports, thus ensuring communication quality and performance.
[0193] The reporting method involved in the embodiments of this disclosure may 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, step 2101+2102 can be implemented as an independent embodiment, step 2101+2102+S2103 can be implemented as an independent embodiment, step 2101+2102+S2103+S2104 can be implemented as an independent embodiment, and step 2101+2102+S2103+S2104+S2105 can be implemented as an independent embodiment. Steps 2101+2102+S2103+S2104+S2105+S2106 can be implemented as independent embodiments, as can steps 2101+2102+S2103+S2104+S2105+S2106+S2107, as can steps 2102+S2103+S2104, and so on. Any combination of various steps or any combination after changing the order can be implemented, but is not limited thereto.
[0194] In this implementation or embodiment, each step can be implemented independently, in any combination, or in an alternating order, unless there is a contradiction. Optional methods or examples can be combined arbitrarily and can be arbitrarily combined with any steps of other implementations or embodiments.
[0195] Figure 3 This is an interactive schematic diagram illustrating a report submission method according to an embodiment of this disclosure. For example... Figure 3 As shown, this disclosure relates to a report reporting method for a terminal, and the method includes: Step 3101: Receive the first information sent by the network device.
[0196] Step 3102: Measure the reference signal resources in the first reference signal resource set, wherein the reference signal resources in the second reference signal resource set are not measured.
[0197] Step 3103: Determine the first report based on at least two sets of reference signal resources.
[0198] Optionally, the first information 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, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set.
[0199] Optionally, the first report is an aperiodic report, and the first report includes the report corresponding to the second set of reference signal resources.
[0200] Optionally, the first information includes PUSCH resource configuration information, and the terminal sends a first report to the network device aperiodically, wherein the first report is carried by PUSCH.
[0201] Optionally, the terminal determines the first report based on at least two sets of reference signal resources, including any one or any combination of the following: measurement data of the first set of reference signal resources is used as input to an artificial intelligence (AI) model to cause the AI model to output predicted data of the second set of reference signal resources, and the first report is determined based on the predicted 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 moment is used as input to the AI model to cause the AI model to output predicted data of the second set of reference signal resources at at least one second time moment, wherein the first time moment is earlier than the second time moment, and the first report is determined based on the predicted data of the second set of reference signal resources.
[0202] Optionally, the first configuration information is used to configure any one or any combination of the following: a set identifier of a 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 status 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 a 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 status 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; and a first identifier, which is used to indicate a first attribute identifier, which is used to identify any one or any combination of the following: 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.
[0203] Optionally, the first attribute of the first reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the first reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the first reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the first reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the first reference signal resource set; the total number of reference signal resources in the first reference signal resource set; and the number of times corresponding to the first reference signal resource set at the first moment.
[0204] Optionally, the first attribute of the second reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the second reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the second reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the second reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the second reference signal resource set; the total number of reference signal resources in the second reference signal resource set; and the number of second time points corresponding to the second reference signal resource set.
[0205] Optionally, the first report includes prediction data for the second set of reference signal resources; the prediction data includes any one or any combination of the following: resource identifiers of reference signal resources in the second set of reference signal resources; beam identifiers corresponding to reference signal resources in the second set of reference signal resources; transmission configuration indication status identifiers corresponding to reference signal resources in the second set of reference signal resources; and beam prediction results corresponding to reference signal resources in the second set of reference signal resources.
[0206] Optionally, the first information is also used to determine whether the first report has been triggered.
[0207] Optionally, the terminal receives first information sent by the network device, including: receiving downlink control information (DCI) sent by the network device, wherein the DCI includes the first information.
[0208] Optionally, the DCI includes a first indication field, which includes 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 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, and different first report identifiers correspond to different first configuration information. The at least one codepoint carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered.
[0209] Optionally, at least one codepoint of at least one bit in 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 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report. At least one codepoint carried by the bit in the first indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0210] Optionally, the DCI includes a second indication field, which 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one set of reference signal resources to obtain a second report. At least one code point carried by the bit of the second indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0211] Optionally, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0212] Optionally, the CRC of the DCI is scrambled with C-RNTI.
[0213] Optionally, the DCI format is either DCI format 0_1 or DCI format 0_2.
[0214] Optionally, the terminal receives a first MAC CE sent by the network device, wherein the first MAC CE is used to activate a first number of trigger states in a first list, and at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the first MAC CE; the trigger states include a first trigger state corresponding to a first report and / or a second trigger state corresponding to a second report, and the first number is determined based on the number of bits contained in the first indication field.
[0215] Optionally, the terminal receives a second MAC CE sent by the network device, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. The second MAC CE includes a fourth indication field, which indicates that the second MAC CE is used to activate either the first number of first trigger states in the first list or the second number of second trigger states in the second list. At least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the second MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE. The first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0216] Optionally, the terminal receives a third MAC CE sent by the network device, wherein the third MAC CE includes a first activation field and a second activation field, the first activation field is used to activate a first number of first trigger states in a first list, and the second activation field is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the third MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; the first number is determined based on the number of bits of the first indication field of the DCI, and the second number is determined based on the number of bits of the first indication field or the second indication field of the DCI.
[0217] Optionally, the terminal receives a fourth MAC CE and / or a fifth MAC CE sent by the network device, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the fourth MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; the first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0218] The reporting method involved in the embodiments of this disclosure may include at least one of steps 3101 to 3103. For example, step 3101 may be implemented as an independent embodiment, step 3102 may be implemented as an independent embodiment, step 3103 may be implemented as an independent embodiment, and step 3101+S3102 may be implemented as an independent embodiment, but is not limited thereto.
[0219] In this implementation or embodiment, unless there is contradiction, each step can be independent, arbitrarily combined or exchanged in order, optional methods or optional examples can be arbitrarily combined, and can be arbitrarily combined with any steps of other implementations or other embodiments.
[0220] Figure 4 This is an interactive schematic diagram illustrating a report submission method according to an embodiment of this disclosure. For example... Figure 4 As shown, this disclosure relates to a report reporting method for network devices, the method comprising: Step 4101: Send the first information to the terminal.
[0221] Optionally, the first information 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, the at least two reference signal resource sets including a first reference signal resource set and a second reference signal resource set.
[0222] Optionally, the first report is an aperiodic report, and the first report includes the report corresponding to the second set of reference signal resources.
[0223] Optionally, the first information includes PUSCH resource configuration information and a first report sent aperiodically by the network device receiving the terminal, wherein the first report is carried by the PUSCH.
[0224] Optionally, at least two reference signal resource sets are used by the terminal to determine that the first report includes any one or any combination of the following: measurement data of the first reference signal resource set is used as input to an artificial intelligence (AI) model so that the AI model outputs 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 point is used as input to the AI model so that the AI model outputs predicted data of the second reference signal resource set at at least one second time point, the first time point being earlier than the second time point, and the first report is determined based on the predicted data of the second reference signal resource set.
[0225] Optionally, the first configuration information is used to configure any one or any combination of the following: a set identifier of a 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 status 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 a 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 status 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; and a first identifier, which is used to indicate a first attribute identifier, which is used to identify any one or any combination of the following: 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.
[0226] Optionally, the first attribute can be an attribute related to the transmitted spatial domain filter (Tx).
[0227] Optionally, the first attribute of the first reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the first reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the first reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the first reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the first reference signal resource set; the total number of reference signal resources in the first reference signal resource set; and the number of times corresponding to the first reference signal resource set at the first moment.
[0228] Optionally, the first attribute of the second reference signal resource set includes any one or a combination of the following: the transmit beam angle corresponding to one or more reference signal resources in the second reference signal resource set; the transmit beam direction corresponding to one or more reference signal resources in the second reference signal resource set; the order of the transmit beam angles of one or more reference signal resources in the second reference signal resource set; the transmit beam angle difference between two adjacent reference signal resources in the second reference signal resource set; the total number of reference signal resources in the second reference signal resource set; and the number of second time points corresponding to the second reference signal resource set.
[0229] Optionally, the first report includes prediction data for the second set of reference signal resources; the prediction data includes any one or any combination of the following: resource identifiers of reference signal resources in the second set of reference signal resources; beam identifiers corresponding to reference signal resources in the second set of reference signal resources; transmission configuration indication status identifiers corresponding to reference signal resources in the second set of reference signal resources; and beam prediction results corresponding to reference signal resources in the second set of reference signal resources.
[0230] Optionally, DCI is also used to determine whether the first report has been triggered.
[0231] Optionally, the DCI includes a first indication field, which includes 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 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, and different first report identifiers correspond to different first configuration information. The at least one codepoint carried by the bit of the first indication field is used to indicate whether the first report of the corresponding first report identifier has been triggered.
[0232] Optionally, at least one codepoint of at least one bit in 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 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report. At least one codepoint carried by the bit in the first indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0233] Optionally, the DCI includes a second indication field, which 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in at least one set of reference signal resources to obtain a second report. At least one code point carried by the bit of the second indication field is used to indicate whether the second report of the corresponding second report identifier is triggered.
[0234] Optionally, the DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger the first report or the second report; wherein the second report corresponds to second configuration information, 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 reference signal resource sets in at least one set of reference signal resources to obtain a second report.
[0235] Optionally, the CRC of the DCI is scrambled with C-RNTI.
[0236] Optionally, the DCI format is either DCI format 0_1 or DCI format 0_2.
[0237] Optionally, the network device sends a first MAC CE to the terminal, wherein the first MAC CE is used to activate a first number of trigger states in a first list, and at least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the first MAC CE; the trigger states include a first trigger state corresponding to a first report and / or a second trigger state corresponding to a second report, and the first number is determined based on the number of bits contained in the first indication field.
[0238] Optionally, the network device sends a second MAC CE to the terminal, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. The second MAC CE includes a fourth indication field, which indicates that the second MAC CE is used to activate either the first number of first trigger states in the first list or the second number of second trigger states in the second list. At least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the second MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the second MAC CE. The first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0239] Optionally, the network device sends a third MAC CE to the terminal, wherein the third MAC CE includes a first activation field and a second activation field, the first activation field is used to activate a first number of first trigger states in a first list, and the second activation field is used to activate a second number of second trigger states in a second list; at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the third MAC CE, and / or at least one code point of the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; and / or at least one code point of the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the third MAC CE; the first number is determined based on the number of bits of the first indication field of the DCI, and the second number is determined based on the number of bits of the first indication field or the second indication field of the DCI.
[0240] Optionally, the network device sends a fourth MAC CE and / or a fifth MAC CE to the terminal, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the first number of trigger states activated by the fourth MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one trigger state among the second number of trigger states activated by the fifth MAC CE; the first number is determined based on the number of bits in the first indication field of the DCI, and the second number is determined based on the number of bits in either the first or second indication field of the DCI.
[0241] In this implementation or embodiment, unless there is contradiction, each step can be independent, arbitrarily combined or exchanged in order, optional methods or optional examples can be arbitrarily combined, and can be arbitrarily combined with any steps of other implementations or other embodiments.
[0242] Figure 5 This is an interactive schematic diagram illustrating a report submission method according to an embodiment of this disclosure. For example... Figure 5 As shown, this disclosure relates to a report reporting method for a communication system, which includes a terminal and network equipment. The method includes: Step 5101: The network device sends the first information to the terminal.
[0243] Step 5102: The terminal receives the first information sent by the network device.
[0244] Step 5103: The terminal measures 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.
[0245] Step 5104: The terminal determines the first report based on at least two sets of reference signal resources.
[0246] The optional implementation methods of steps 5101-5104 can be found in the above embodiments.
[0247] In some embodiments, the above methods may include the methods described in the embodiments of the communication system side, terminal side, network device side, etc., which will not be repeated here.
[0248] The reporting method involved in the embodiments of this disclosure may include at least one of steps 5101 to 5104. For example, step 5101 may be implemented as a separate embodiment, and step 5102 may be implemented as a separate embodiment, but are not limited thereto.
[0249] In this implementation or embodiment, unless there is contradiction, each step can be independent, arbitrarily combined or exchanged in order, optional methods or optional examples can be arbitrarily combined, and can be arbitrarily combined with any steps of other implementations or other embodiments.
[0250] The following is an exemplary description of the above method.
[0251] 1. The terminal receives first information from the network device, determines a first report that needs to be reported by Aperodic 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 the first reference signal resource set in the at least two reference signal resource sets, and the terminal does not measure the second reference signal resource set in the at least two reference signal resource sets.
[0252] 1. The first report is submitted on PUSCH, and the first information also includes PUSCH resource allocation information.
[0253] 2. The first report corresponds to the beam prediction results obtained based on the AI model, which is based on two sets of reference signal resources, one that needs to be measured and one that does not. Here, the first set of reference signal resources that needs to be measured is set B, and the second set of reference signal resources that does not need to be measured is set A. However, in time-domain beam prediction, if set B and set A are the same, it should be explained that the time-domain locations of the reference signal resources corresponding to the first and second sets of reference signal resources are different. Other aspects, such as frequency-domain location, beam transmission spatial domain filter / parameter (Tx spatialdomain filter / parameter), and even resource ID, can be the same.
[0254] II. Based on I, the first report consists of the measurement results based on the first reference signal resource set and the prediction results corresponding to the second reference signal resource set obtained by the AI model.
[0255] III. Based on I, the first configuration information includes any one of the following, or any combination of the following: 1. Information on at least two sets of reference signal resources; • The first configuration information directly displays the configurations set B and set A; • In this case, the following first ID can also be included; 2. The first configuration information includes information about the first reference signal resource set from at least two reference signal resource sets. • The first configuration information only displays configuration set B, while set A is obtained based on the first ID below; 3. The first configuration information includes a first ID; The first ID, also known as the associated ID, is used by the terminal to determine additional conditions on the network side. These additional conditions include, for example, the angle of the beam transmitted by the network device (e.g., a base station), the order of the beam angles corresponding to multiple reference signal resource IDs in set B / set A (e.g., whether the beam angle relative to a reference direction increases with the larger the resource ID), the difference in beam angles between adjacent reference signal resource IDs, the number of reference signal resources included in set B / set A, and the number of historical measurement times corresponding to the model input or the number of future prediction times corresponding to the model output during time-domain beamforming. The consistency of these additional conditions is primarily for the terminal to select the most suitable model. For example, in spatial beam prediction, suppose set B is a subset of set A. The terminal trains multiple models. One model, A, uses the measurement results of the eight corresponding beams with resource IDs 1, 5, 9, 13... from set A (a total of 32 resources) as input to train model B. Another model, B, uses the measurement results of the eight corresponding beams with resource IDs 1, 2, 3, 4... from set A as input to train model B. When the terminal needs to perform inference based on these models, if it doesn't know whether the set B transmitted by the base station uses the eight corresponding beams with resource IDs 1, 5, 9, 13... or 1, 2, 3, 4... from set A, the terminal doesn't know which model, A or B, is more suitable for inference. Therefore, associated IDs are used to indicate to the terminal; identical associated IDs indicate that the corresponding beams in set B are the same. When the terminal obtains the measurement results for set B and set A corresponding to model training, the base station also sends an associated ID when sending the configuration information for set B and set A. The terminal can train different models based on the measurement results corresponding to different associated IDs. Therefore, when the network device sends the first configuration information mentioned in the first point above, which also includes an associated ID, the terminal can determine the most suitable model for model derivation based on that associated ID.Of course, the first configuration information may not include associated IDs. In this case, the terminal can take several approaches: First, the terminal pre-trains a hybrid model based on the measurement results of set B and set A corresponding to multiple associated IDs. In this case, the terminal can select this hybrid model to derive the beam prediction result of set A in the first configuration information. Second, the terminal trains models corresponding to different associated IDs based only on the measurement results of set B and set A corresponding to a single associated ID. In this case, the terminal can only randomly select one model to derive the beam prediction result of set A in the first configuration information.
[0256] IV. Based on any one of the points in I to III, the first information is DCI. 1. The DCI contains a first indication field (e.g., CSI request, or CSIrequestforAI). This first indication field contains N bits, which are used to indicate a trigger state in the CSI-AperiodicTriggerStateList. For example, codepoint "0" corresponds to no CSI reporting, the first codepoint corresponds to the first trigger state, or codepoint "1" corresponds to the first trigger state, and so on, without any restrictions. Each trigger state corresponds to a maximum of 16 reportconfiginfos, and each reportconfiginfo corresponds to a reportconfigID.
[0257] 2. And the CSI report config corresponding to at least one CSI report config ID here is the first configuration information.
[0258] If a trigger state can correspond to multiple CSI report config IDs, some CSI report config IDs may correspond to the first configuration information, while others may correspond to different configuration information than the first configuration information, i.e., the second configuration information corresponding to the second report as described below.
[0259] Fifth, based on fourth, the CSIreportconfigID corresponding to the first and second reports corresponds to a triggerstate.
[0260] 1. In other words, one trigger state corresponds to multiple reportconfiginfos. Some reportconfiginfos correspond to the CSIreportconfigID of the first report, and some reportconfiginfos correspond to the CSIreportconfigID of the second report.
[0261] 2. The first report here is based on AI-generated predictions, while the second report is based on actual measurements, meaning the second report is based on beam measurement results not obtained from AI.
[0262] • Beam measurement results and beam prediction results include any one of the following, or any combination thereof: •RS ID: SSB index, CSI-RS ID; • L1-RSRP: The actual measured L1-RSRP; • Beam prediction results include any one of the following, or any combination thereof: •RS ID: SSB index, CSI-RS ID; • Beam ID, TCI state ID; • L1-RSRP: The actual measured L1-RSRP (because if set B is a subset of set A, some beams in set A have been measured), or the predicted L1-RSRP.
[0263] VI. The CSIreportconfigID corresponding to the first and second reports is in a triggerstatelist.
[0264] 1. In other words, the CSIreportconfigIDs corresponding to the first and second reports correspond to different trigger states. However, within a single trigger state list, a DCI's first indicator field can trigger either the first or the second report. This is because different trigger states correspond to different codepoints of the N-bits described in section four.
[0265] 7. Based on point 4, the CSIreportconfigIDs corresponding to the first and second reports are in different triggerstatelists.
[0266] 1. In other words, the CSI report config IDs of the first and second reports are in different trigger lists. In this case, the DCI triggers for the first and second reports can be handled in the following two ways: 8. Based on 7, the trigger indication field of the first report and the trigger indication field of the second report appear simultaneously in a DCI.
[0267] 1. For example, in a DCI, there is a first indication field (e.g., CSIrequestforAI) and a second indication field (e.g., CSIrequest). The first indication field is used to indicate the trigger state of the first report, and the second indication field is used to indicate the trigger state of the second report.
[0268] 9. Based on 7, the triggering of the first report and the triggering of the second report correspond to the same indication field of the DCI, and the DCI contains another third indication field to indicate whether the DCI is used to indicate the triggering of the first report or the triggering of the second report.
[0269] 1. The DCI described in section four includes a third indication field, which indicates whether the DCI is used to trigger the first report or 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 bits of the DCI described in section four corresponds to the trigger state corresponding to the first report; otherwise, it corresponds to the trigger state corresponding to the second report. The CSI reportconfig corresponding to the trigger state of the second report is different from the first configuration information, and the set of reference signal resources configured in it needs to be measured by the terminal.
[0270] 10. Based on the fourth point, the CRC of the first DCI is scrambled using C-RNTI.
[0271] 1. The first DCI format is DCI format 0_1 / 0_2.
[0272] XI. Based on point four, when the number of bits in the first indicator field of the DCI is N, and the number of 2^N - 1 bits is less than the total number of trigger states contained in the CSI-AperiodicTriggerStateList configured by RRC, MAC CE activates trigger states in the CSI-AperiodicTriggerStateList with a number less than or equal to 2^N - 1. The codepoint of the first indicator field in the DCI corresponds one-to-one with the 2^N - 1 trigger states that do not trigger CSI reports and are activated by MAC CE.
[0273] 12. Based on 11, if the reportconfigID corresponding to the first report and the second report corresponds to the same triggerstate, then a MAC CE can simultaneously activate the triggerstate corresponding to both the first report and the second report.
[0274] 1. For example, the number of bits contained in MAC CE is the same as the number of trigger states in the CSI-AperiodicTriggerStateList configured by RRC. Each bit corresponds to a trigger state, and the bit is displayed as 1 to indicate that the trigger state is activated.
[0275] Thirteen, based on eleven, if the different trigger states corresponding to the reportconfigIDs of the first and second reports are in the same triggerstatelist, then a MAC CE will activate the trigger state corresponding to the reportconfigID of the first and / or second reports. 1. For example, the number of bits in the MAC CE is the same as the number of trigger states in the CSI-AperiodicTriggerStateList configured by RRC. Each bit corresponds to one trigger state, and the bit is displayed as 1 to indicate that the trigger state is activated. In this case, some bits correspond to the trigger state corresponding to the reportconfigID of the first report, and some bits correspond to the trigger state corresponding to the reportconfigID of the second report.
[0276] XIV. Based on XI, if the different trigger states corresponding to the reportconfigIDs of the first and second reports are in different triggerstatelists, then MAC CE for activating the trigger state corresponding to the reportconfigID of the first and / or second reports includes the following two methods. 1. The first type contains two different MAC CEs. That is, the LCID (logical channel) of the MAC CE that activates the trigger state corresponding to the reportconfigID of the first report is different from the LCID (logical channel) of the MAC CE that activates the trigger state corresponding to the reportconfigID of the second report. The codepoints or indices of the MAC subheaders corresponding to the different LCIDs are different.
[0277] The second type includes a MAC CE, namely an LCID and a MAC subhead (codepoint or index). However, the MAC CE contains an indicator field that indicates whether the MAC CE is suitable for activating the trigger state corresponding to the reportconfigID of the first report or for activating the trigger state corresponding to the reportconfigID of the second report.
[0278] This disclosure proposes a method for triggering beam reports for aperodic predictions based on AI models, which facilitates the terminal in determining which beam report to trigger and improves the communication performance based on AI models.
[0279] This disclosure also provides an apparatus for implementing any of the above methods. For example, an apparatus is provided that includes units or modules for implementing the steps performed by the terminal in any of the above methods. Alternatively, another apparatus is provided that includes units or modules for implementing the steps performed by a network device (e.g., an access network device, a core network functional node, a core network device, etc.) in any of the above methods.
[0280] It should be understood that the division of units or modules in the above device is only a logical functional division. In actual implementation, they can be fully or partially integrated into a single physical entity, or they can be physically separated. Furthermore, the units or modules in the device can be implemented by a processor calling software: for example, the device includes a processor connected to a memory containing instructions. The processor calls the instructions stored in the memory to implement any of the above methods or to implement the functions of the units or modules in the above device. The processor can be, for example, a general-purpose processor, such as a Central Processing Unit (CPU) or a microprocessor, and the memory can be internal or external to the device. Alternatively, the units or modules in the device can be implemented in the form of hardware circuits. The functionality of some or all of the units or modules can be achieved through the design of these hardware circuits, which 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 functionality of some or all of the units or modules is achieved through the design of the logical relationships between the components within the circuit. In another implementation, the hardware circuit can be implemented using a programmable logic device (PLD), such as a field-programmable gate array (FPGA), which can include a large number of logic gates. The connection relationships between the logic gates are configured through configuration files, thereby achieving the functionality of some or all of the units or modules. All units or modules of the above device can be implemented entirely through processor-called software, entirely through hardware circuits, or partially through processor-called software with the remaining parts implemented through hardware circuits.
[0281] In this embodiment, the processor is a circuit with signal processing capabilities. In one implementation, the processor can be a circuit with instruction read and execute capabilities, such as a Central Processing Unit (CPU), a microprocessor, a graphics processing unit (GPU) (which can be understood as a microprocessor), or a digital signal processor (DSP). In another implementation, the processor can implement certain functions through the logical relationships of hardware circuits. The logical relationships of the aforementioned hardware circuits are fixed or reconfigurable. For example, the processor is a hardware circuit implemented using an application-specific integrated circuit (ASIC) or a programmable logic device (PLD), such as an FPGA. In a reconfigurable hardware circuit, the process of the processor loading a configuration document and configuring the hardware circuit can be understood as the process of the processor loading instructions to implement the functions of some or all of the above units or modules. Furthermore, 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), or a Deep Learning Processing Unit (DPU).
[0282] Figure 6A This is a schematic diagram of the terminal structure proposed in an embodiment of this disclosure. For example... Figure 6A As shown, it includes: The transceiver module is configured to receive first information sent by a network device, the first information 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 reference signal resources in the first reference signal resource set, wherein reference signal resources in the second reference signal resource set are not measured; 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 non-periodic report, the first report including the report corresponding to the second reference signal resource set.
[0283] Optionally, the upper transceiver module is used to execute the "transmission and reception" related steps performed by the terminal in any of the above methods. The above processing module is used to execute the "processing" related steps performed by the terminal in any of the above methods.
[0284] Figure 6B This is a schematic diagram of the network device proposed in an embodiment of this disclosure. Figure 6B As shown, it includes: The transceiver module is used to send first information to the terminal, wherein the first information 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 by the terminal to measure the reference signal resources of the first reference signal resource set and not to measure the reference signal resources of the second reference signal resource set, the at least two reference signal resource sets are used by the terminal to determine a first report, the first report is a non-periodic report, the first report includes the report corresponding to the second reference signal resource set.
[0285] Optionally, the transceiver module is used to perform the "transmit / receive" related steps performed by the network device in any of the above methods. The network device may also include a processing module, which is used to perform the "processing" related steps performed by the network device in any of the above methods.
[0286] Figure 7A This is a schematic diagram of the structure of the communication device 7100 proposed in this embodiment. The communication device 7100 can be a network device (e.g., access network device, core network device, etc.), a terminal (e.g., user equipment or the first device mentioned above), a chip, chip system, or processor that supports the network device in implementing any of the above methods, or a chip, chip system, or processor that supports the terminal in implementing any of the above methods. The communication device 7100 can be used to implement the methods described in the above method embodiments; for details, please refer to the descriptions in the above method embodiments.
[0287] like Figure 7A As shown, the communication device 7100 includes one or more processors 7101. The processor 7101 can be a general-purpose processor or a dedicated processor, such as a baseband processor or a central processing unit (CPU). The baseband processor can be used to process communication protocols and communication data, while the CPU can be used to control communication devices (e.g., base stations, baseband chips, terminal devices, terminal device chips, DUs or CUs, etc.), execute programs, and process program data. The processor 7101 is used to invoke instructions to cause the communication device 7100 to execute any of the above methods.
[0288] In some embodiments, the communication device 7100 further includes one or more memories 7102 for storing instructions. Optionally, all or part of the memories 7102 may also be located outside the communication device 7100.
[0289] 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 such as sending and receiving in the above method are performed by the transceivers 7103, and other steps are performed by the processor 7101.
[0290] In some embodiments, a transceiver may include a receiver and a transmitter, which may be separate or integrated. Optionally, the terms transceiver, transceiver unit, transceiver, transceiver circuit, etc., may be used interchangeably; the terms transmitter, transmitting unit, transmitter, transmitting circuit, etc., may be used interchangeably; and the terms receiver, receiving unit, sensing signal receiving end, receiving circuit, etc., may be used interchangeably.
[0291] Optionally, the communication device 7100 further includes one or more interface circuits 7104, which are connected to the memory 7102. The interface circuits 7104 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 circuits 7104 can read instructions stored in the memory 7102 and send the instructions to the processor 7101.
[0292] The communication device 7100 described in the above embodiments may be a network device or a terminal, but the scope of the communication device 7100 described in this disclosure is not limited thereto, and the structure of the communication device 7100 may vary. Figure 7A The limitations. The communication device can be a standalone device or part of a larger device. For example, the communication device can be: (1) a standalone integrated circuit IC, or chip, or chip system or subsystem; (2) a collection of one or more ICs, optionally including storage components for storing data and programs; (3) an ASIC, such as a modem; (4) a module that can be embedded in other devices; (5) a sensing signal receiver, terminal device, smart terminal device, cellular phone, wireless device, handheld device, mobile unit, vehicle device, network device, cloud device, artificial intelligence device, etc.; (6) others, etc.
[0293] Figure 7B This is a schematic diagram of the structure of chip 7200 according to an embodiment of this disclosure. For cases where the communication device 7100 can be a chip or a chip system, please refer to... Figure 7B The diagram shown is a schematic representation of the structure of chip 7200, but it is not limited to this.
[0294] Chip 7200 includes one or more processors 7201, which are used to invoke instructions to cause chip 7200 to perform any of the above methods.
[0295] In some embodiments, chip 7200 further includes one or more interface circuits 7202 connected to memory 7203. Interface circuits 7202 can be used to receive signals from memory 7203 or other devices, and can also be used to send signals to memory 7203 or other devices. For example, interface circuit 7202 can read instructions stored in memory 7203 and send those instructions to processor 7201. Optionally, terms such as interface circuit, interface, transceiver pin, and transceiver can be used interchangeably.
[0296] In some embodiments, chip 7200 further includes one or more memories 7203 for storing instructions. Optionally, all or part of the memories 7203 may be located outside of chip 7200.
[0297] This disclosure also proposes a storage medium storing instructions that, when executed on the communication device 7100, cause the communication device 7100 to perform any of the above methods. Optionally, the storage medium is an electronic storage medium. Optionally, the storage medium is a computer-readable storage medium, but not limited thereto; it may also be a storage medium readable by other devices. Optionally, the storage medium may be a non-transitory storage medium, but not limited thereto; it may also be a temporary storage medium.
[0298] This disclosure also provides a program product that, when executed by the communication device 7100, causes the communication device 7100 to perform any of the above methods. Optionally, the program product is a computer program product.
[0299] This disclosure also proposes a computer program that, when run on a computer, causes the computer to perform any of the above methods.
[0300] In the above embodiments, implementation can be achieved, in whole or in part, through software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented, in whole or in part, as a computer program product. The computer program product includes one or more computer programs. When the computer program is loaded and executed on a computer, all or part of the processes or functions described in the embodiments of this disclosure are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer program can be stored in a computer-readable storage medium or transferred from one computer-readable storage medium to another. For example, the computer program can be transferred from one website, computer, server, or data center to another via wired (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium accessible to a computer or a data storage device such as a server or data center that integrates one or more available media. The available media may be magnetic media (e.g., floppy disks, hard disks, magnetic tapes), optical media (e.g., high-density digital video discs (DVDs)), or semiconductor media (e.g., solid-state disks (SSDs)).
[0301] Those skilled in the art will recognize that the units and algorithm steps of the various 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 these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this disclosure.
[0302] Those skilled in the art will understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here.
[0303] The above description is merely a specific embodiment of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A method for submitting a report, characterized in that, The method is executed by a terminal and includes: Based on the first information sent by the network device, at least one first configuration information is determined. The first configuration information is used to determine 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. The reference signal resources in the first set of reference signal resources are measured, while the reference signal resources in the second set of reference signal resources are not measured. Based on the at least two reference signal resource sets, a first report is determined, wherein the first report is a non-periodic report and includes the report corresponding to the second reference signal resource set.
2. The method as described in claim 1, characterized in that, The first information includes Physical Uplink Shared Channel (PUSCH) resource configuration information, wherein the method further includes: A first report is sent to the network device aperiodically, wherein the first report is carried by the PUSCH.
3. The method as described in claim 1 or 2, characterized in that, The determination of the first report based on the at least two sets of reference signal resources includes one or more of the following: The first report is determined based on the predicted data of the second reference signal resource set, wherein the predicted data of the second reference signal resource set is predicted by an artificial intelligence (AI) model based on the measurement data of the input first reference signal resource set; The first report is determined based on the predicted data of the second reference signal resource set at at least one second time point, wherein the predicted data of the second reference signal resource set at at least one second time point is predicted by an AI model based on the measurement data of the first reference signal resource set at at least one first time point, the first time point being earlier than the second time point.
4. The method according to any one of claims 1 to 3, characterized in that, The first configuration information is used to configure one or more of the following: The set identifier of the first reference signal resource set; The resource identifier of the reference signal resource in the first reference signal resource set; The beam identifier corresponding to the reference signal resource in the first reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the first reference signal resource set; The time-domain location of the reference signal resource in the first reference signal resource set; The frequency domain position of the reference signal resource in the first reference signal resource set; The set identifier of the second reference signal resource set; Resource identifiers of reference signal resources in the second set of reference signal resources; The beam identifier corresponding to the reference signal resource in the second reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; The time-domain location of the reference signal resource in the second set of reference signal resources; The frequency domain position of the reference signal resource in the second set of reference signal resources; A first identifier, the first identifier being used to indicate a first attribute identifier, the first attribute identifier being used to identify one or more of the following: a first attribute of a first reference signal resource set configured by each first configuration information, and a first attribute of a second reference signal resource set configured by each first configuration information.
5. The method as described in claim 4, characterized in that, The first attribute of the first set of reference signal resources includes one or more of the following: The transmit beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; The transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set; The order of the transmission beam angles of one or more reference signal resources in the first reference signal resource set; The difference in transmit beam angle between two adjacent reference signal resources in the first set of reference signal resources; The total number of reference signal resources in the first reference signal resource set; The number of times corresponding to the first reference signal resource set at the first moment; The first attribute of the second set of reference signal resources includes one or more of the following: The transmit beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; The transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; The order of the transmission beam angles of one or more reference signal resources in the second set of reference signal resources; The difference in transmit beam angle between two adjacent reference signal resources in the second set of reference signal resources; The total number of reference signal resources in the second set of reference signal resources; The number of second time points corresponding to the second set of reference signal resources.
6. The method according to any one of claims 1 to 5, characterized in that, The first report includes prediction data for the second reference signal resource set; The predicted data includes one or more of the following: Resource identifiers of reference signal resources in the second set of reference signal resources; The beam identifier corresponding to the reference signal resource in the second reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; The beam prediction results corresponding to the reference signal resources in the second set of reference signal resources.
7. The method according to any one of claims 1 to 6, characterized in that, The first information is also used to determine whether at least one first report has been triggered.
8. The method according to any one of claims 1 to 7, characterized in that, The first information sent by the receiving network device includes: Receive downlink control information (DCI) sent by the network device, wherein the DCI includes the first information.
9. The method as described in claim 8, characterized in that, The DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The bit of the first indication field carries at least one code point to indicate whether the first report corresponding to the first report identifier has been triggered.
10. The method as described in claim 9, characterized in that, 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one set of reference signal resources to obtain a second report. At least one code point carried by the bits of the first indication field is used to indicate whether the second report corresponding to the second report identifier has been triggered.
11. The method as described in claim 8 or 9, characterized in that, The DCI includes a second indication field, which 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one set of reference signal resources to obtain a second report. The bit of the second indication field carries at least one code point to indicate whether the second report corresponding to the second report identifier has been triggered.
12. The method as described in claim 9, characterized in that, The DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger a first report or a second report; The second report corresponds to the second configuration information, and different second reports correspond to different second configuration information. 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 reference signal resource sets in the at least one set of reference signal resources to obtain the second report.
13. The method according to any one of claims 8 to 12, characterized in that, The Cyclic Redundancy Check (CRC) of the DCI is scrambled using the Cell Radio Network Temporary Identifier (C-RNTI).
14. The method according to any one of claims 8 to 13, characterized in that, The DCI format is either DCI format 0_1 or DCI format 0_2.
15. The method as described in claim 9 or 10, characterized in that, The method further includes: The network device sends a first MAC CE, wherein the first MAC CE is used to activate a first number of trigger states in the first list, and at least one code point of the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the first MAC CE. The triggering state includes a first triggering state corresponding to a first report and / or a second triggering state corresponding to a second report, and the first quantity is determined based on the number of bits contained in the first indication field.
16. The method as described in claim 11 or 12, characterized in that, The method further includes: The network device receives a second MAC CE, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or the second MAC CE is used to activate a second number of second trigger states in a second list. The second MAC CE includes a fourth indication field, which is used to indicate that the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list. At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the second MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the second MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the second MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
17. The method as described in claim 11 or 12, characterized in that, The method further includes: The network device receives a third MAC CE, wherein the third MAC CE includes a first activation domain and a second activation domain, the first activation domain is used to activate a first number of first trigger states in a first list, and the second activation domain is used to activate a second number of second trigger states in a second list. At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the third MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the third MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the third MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
18. The method as described in claim 11 or 12, characterized in that, The method further includes: Receive a fourth MAC CE and / or a fifth MAC CE sent by the network device, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the fourth MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the fifth MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the fifth MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
19. A method for submitting a report, characterized in that, The method is executed by a network device and includes: The terminal sends first information, which 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, which include a first reference signal resource set and a second reference signal resource set. The at least two reference signal resource sets are used by the terminal to measure the reference signal resources of the first reference signal resource set and not to measure the reference signal resources of the second reference signal resource set. The at least two reference signal resource sets are used by the terminal to determine a first report, which is a non-periodic report and includes a report corresponding to the second reference signal resource set.
20. The method as described in claim 19, characterized in that, The first information includes PUSCH resource configuration information, wherein the method further includes: The terminal receives a first report sent aperiodically, wherein the first report is carried by the PUSCH.
21. The method as described in claim 19 or 20, characterized in that, The first reference signal resource set and / or the second reference signal resource set are used for one or more of the following: The measurement data of the first reference signal resource set is used to input the artificial intelligence (AI) model so that the AI model outputs the prediction data of the second reference signal resource set, and the terminal determines the first report 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 moment is input into an AI model so that the AI model outputs prediction data of the second reference signal resource set at at least one second moment, the first moment being earlier than the second moment, and the terminal determines the first report based on the prediction data of the second reference signal resource set.
22. The method according to any one of claims 19 to 21, characterized in that, The first configuration information is used to configure one or more of the following: The set identifier of the first reference signal resource set; The resource identifier of the reference signal resource in the first reference signal resource set; The beam identifier corresponding to the reference signal resource in the first reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the first reference signal resource set; The time-domain location of the reference signal resource in the first reference signal resource set; The frequency domain position of the reference signal resource in the first reference signal resource set; The set identifier of the second reference signal resource set; Resource identifiers of reference signal resources in the second set of reference signal resources; The beam identifier corresponding to the reference signal resource in the second reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; The time-domain location of the reference signal resource in the second set of reference signal resources; The frequency domain position of the reference signal resource in the second set of reference signal resources; A first identifier, the first identifier being used to indicate a first attribute identifier, the first attribute identifier being used to identify one or more of the following: a first attribute of a first reference signal resource set configured by each first configuration information, and a first attribute of a second reference signal resource set configured by each first configuration information.
23. The method as described in claim 21, characterized in that, The first attribute of the first set of reference signal resources includes one or more of the following: The transmit beam angle corresponding to one or more reference signal resources in the first set of reference signal resources; The transmission beam direction corresponding to one or more reference signal resources in the first reference signal resource set; The order of the transmission beam angles of one or more reference signal resources in the first reference signal resource set; The difference in transmit beam angle between two adjacent reference signal resources in the first set of reference signal resources; The total number of reference signal resources in the first reference signal resource set; The number of times corresponding to the first reference signal resource set at the first moment; The first attribute of the second set of reference signal resources includes one or more of the following: The transmit beam angle corresponding to one or more reference signal resources in the second set of reference signal resources; The transmission beam direction corresponding to one or more reference signal resources in the second set of reference signal resources; The order of the transmission beam angles of one or more reference signal resources in the second set of reference signal resources; The difference in transmit beam angle between two adjacent reference signal resources in the second set of reference signal resources; The total number of reference signal resources in the second set of reference signal resources; The number of second time points corresponding to the second set of reference signal resources.
24. The method according to any one of claims 19 to 23, characterized in that, The first report includes prediction data for the second reference signal resource set; The predicted data includes one or more of the following: Resource identifiers of reference signal resources in the second set of reference signal resources; The beam identifier corresponding to the reference signal resource in the second reference signal resource set; The transmission configuration indication status identifier corresponding to the reference signal resource in the second reference signal resource set; The beam prediction results corresponding to the reference signal resources in the second set of reference signal resources.
25. The method according to any one of claims 19 to 24, characterized in that, The first information is also used to determine whether at least one first report has been triggered.
26. The method according to any one of claims 19 to 25, characterized in that, Sending the first information to the terminal includes: A DCI is sent to the terminal, wherein the DCI includes the first information.
27. The method as described in claim 26, characterized in that, The DCI includes a first indication field, which 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, and different first report identifiers correspond to different first configuration information. The bit of the first indication field carries at least one code point to indicate whether the first report corresponding to the first report identifier has been triggered.
28. The method as described in claim 27, characterized in that, At least one codepoint of at least one bit in 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 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 reference signal resource sets in the at least one set of reference signal resources to obtain a second report. At least one code point carried by the bits of the first indication field is used to indicate whether the second report corresponding to the second report identifier has been triggered.
29. The method as described in claim 26 or 27, characterized in that, The DCI includes a second indication field, which 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 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 set of reference signal resources. The second configuration information is used to configure the terminal to measure all reference signal resource sets in the at least one set of reference signal resources to obtain a second report. The bit of the second indication field carries at least one code point to indicate whether the second report corresponding to the second report identifier has been triggered.
30. The method as described in claim 27, characterized in that, The DCI further includes a third indication field, wherein the third indication field is used to indicate whether the first indication field is used to trigger a first report or a second report; The second report corresponds to the second configuration information, and different second reports correspond to different second configuration information. 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 reference signal resource sets in the at least one set of reference signal resources to obtain the second report.
31. The method according to any one of claims 26 to 30, characterized in that, The Cyclic Redundancy Check (CRC) of the DCI is scrambled using the Cell Radio Network Temporary Identifier (C-RNTI).
32. The method according to any one of claims 26 to 31, characterized in that, The DCI format is either DCI format 0_1 or DCI format 0_2.
33. The method as described in claim 27 or 28, characterized in that, The method further includes: Send a first MAC CE to the terminal, wherein the first MAC CE is used to activate a first number of trigger states in the first list, and at least one code point of the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the first MAC CE. The triggering state includes a first triggering state corresponding to a first report and / or a second triggering state corresponding to a second report, and the first quantity is determined based on the number of bits contained in the first indication field.
34. The method as described in claim 29 or 30, characterized in that, The method further includes: Send a second MAC CE to the terminal, wherein the second MAC CE is used to activate a first number of first trigger states in a first list or the second MAC CE is used to activate a second number of second trigger states in a second list, the second MAC CE includes a fourth indication field, the fourth indication field of the second MAC CE is used to indicate that the second MAC CE is used to activate a first number of first trigger states in a first list or to activate a second number of second trigger states in a second list; At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the second MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the second MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the second MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
35. The method as described in claim 29 or 30, characterized in that, The method further includes: Send a third MAC CE to the terminal, wherein the third MAC CE includes a first activation domain and a second activation domain, the first activation domain is used to activate a first number of first trigger states in a first list, and the second activation domain is used to activate a second number of second trigger states in a second list; At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the third MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the third MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the third MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
36. The method as described in claim 29 or 30, characterized in that, The method further includes: Send a fourth MAC CE and / or a fifth MAC CE to the terminal, wherein the fourth MAC CE is used to activate a first number of first trigger states in a first list, and the fifth MAC CE is used to activate a second number of second trigger states in a second list; At least one code point in the first indication field of the DCI is used to indicate at least one of the first number of trigger states activated by the fourth MAC CE, and / or at least one code point in the first indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the fifth MAC CE; and / or at least one code point in the second indication field of the DCI is used to indicate at least one of the second number of trigger states activated by the fifth MAC CE. The first quantity is determined based on the number of bits in the first indicator field of the DCI, and the second quantity is determined based on the number of bits in either the first indicator field or the second indicator field of the DCI.
37. A method for submitting a report, characterized in that, include: The network device sends first information to the terminal. The first information 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 first information sent by the network device; The terminal measures the reference signal resources in the first reference signal resource set, but does not measure the reference signal resources 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 non-periodic report and includes a report corresponding to the second reference signal resource set.
38. A terminal, characterized in that, include: A transceiver module is used to receive first information sent by a network device. The first information 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 processing module is used to measure the reference signal resources in the first reference signal resource set, wherein the reference signal resources in the second reference signal resource set are not measured; 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 non-periodic report and the first report includes a report corresponding to the second reference signal resource set.
39. A network device, characterized in that, include: The transceiver module is configured to send first information to the terminal, wherein the first information 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 by 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, the at least two reference signal resource sets are used by the terminal to determine a first report, the first report is an aperiodic report, the first report includes a report corresponding to the second reference signal resource set.
40. A communication device, characterized in that, include: One or more processors; A memory coupled to the processor, the memory storing instructions that, when executed by the processor, cause the communication device to perform the method of any one of claims 1 to 18; or, when executed by the processor, cause the communication device to perform the method of any one of claims 19 to 36.
41. A communication system, characterized in that, The device includes a terminal and a network device, wherein the terminal is configured to implement the method of any one of claims 1 to 18, and the network device is configured to implement the method of any one of claims 19 to 36.
42. A storage medium storing instructions, characterized in that, When the instruction is executed on the communication device, it causes the communication device to perform the method as described in any one of claims 1 to 18, or when the instruction is executed on the communication device, it causes the communication device to perform the method as described in any one of claims 19 to 36.