Beam measurement method, user equipment, and base station
By transmitting beam recommendation and reporting instructions, the method addresses the dual-transparent issue in AI-based beam management, reducing overhead and improving measurement accuracy through targeted beam configuration and prediction.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- ZTE CORP
- Filing Date
- 2023-08-01
- Publication Date
- 2026-04-27
AI Technical Summary
In beam management using AI, the base station and user equipment operate in dual-transparent mode, leading to inaccurate beam measurements due to unknown beam transmission, which hinders the effectiveness of AI models in predicting optimal beam pairs.
A method involving beam recommendation and reporting instructions is implemented, where communication devices determine and transmit target test beams based on instruction information, allowing for stable and reliable beam model measurements to improve accuracy.
This approach reduces beam training overhead and enhances measurement accuracy by configuring reference signal resources only for desired target test beams, ensuring stable transmission and reliable prediction of optimal beam results.
Smart Images

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Abstract
Description
Technical Field
[0001] [Cross - Reference to Related Applications] This application is based on a Chinese patent application with an application number of 202210961436.1 and a filing date of August 11, 2022, and claims its priority, the entire content of which is incorporated herein by reference. [Technical Field] This application relates to the field of communication technologies, and in particular, to a beam measurement method, a user equipment, a base station, a computer storage medium, and a computer program product.
Background Art
[0002] Currently, in beam management means based on Artificial Intelligence (AI), the base station only needs to transmit reference signals in some beam spaces, and also uses an AI model to predict full beam space information and optimal beam pairs. Specifically, the deployed AI model uses the measurement results of some sampled beams as model inputs to infer the desired beam measurement results. However, in the conventional protocol, the beams on both the base station and user equipment (UE) sides are both realized based on dual transparency, that is, the beams transmitted from the base station are unknown to the UE side. That is, it is not known whether the base station is transmitting the beams that require measurement by the UE side. Therefore, the UE side cannot ensure that it can perform good predictions of the AI model according to the corresponding beams, which is disadvantageous for improving the beam measurement accuracy of the UE - side AI model.
Summary of the Invention
Problems to be Solved by the Invention
[0003] The following is a summary of the subject matter detailed in this specification. This summary is not intended to limit the scope of protection of the claims.
[0004] Embodiments of the present invention provide a beam measurement method, user equipment, base station, computer storage medium, and computer program product that can reduce beam training overhead and improve beam measurement accuracy. [Means for solving the problem]
[0005] In the first aspect, the embodiment of the present application is The steps include transmitting beam recommendation instruction information to a first communication device so that the first communication device determines a target test beam that constitutes a target reference signal resource in accordance with the beam recommendation instruction information, The steps include receiving the target test beam transmitted from the first communication device, The present invention provides a beam measurement method that includes the steps of predicting an optimal beam result according to the target reference signal resource and transmitting optimal beam report instruction information corresponding to the optimal beam result to the first communication device.
[0006] In a second aspect, the embodiment of the present application is: The steps include receiving beam recommendation instruction information transmitted from a second communication device, The steps include determining a target test beam that constitutes a target reference signal resource according to the beam recommendation instruction information, The steps include transmitting the target test beam to the second communication device so that the second communication device predicts the optimal beam result according to the target reference signal resource, A step of receiving optimal beam report instruction information transmitted from the second communication device, wherein the optimal beam report instruction information corresponds to the optimal beam result, Further, a beam measurement method including this is provided.
[0007] In a third aspect, the embodiments of the present application are as follows: A step of determining a target test beam including beam indication information, wherein the beam indication information is used to indicate the position information of the target test beam in beam space; The steps include transmitting the target test beam to a second communication device so that the second communication device predicts the optimal beam result according to the beam instruction information, A step of receiving optimal beam report instruction information transmitted from the second communication device, wherein the optimal beam report instruction information corresponds to the optimal beam result, Further, a beam measurement method including this is provided.
[0008] In the fourth aspect, the embodiment of the present application is: A step of receiving a target test beam transmitted from a first communication device, wherein the target test beam is determined by the first communication device, the target test beam includes beam indication information, and the beam indication information is used to indicate the position information of the target test beam in beamspace. The present invention further provides a beam measurement method that includes the steps of predicting an optimal beam result according to the beam instruction information and transmitting optimal beam report instruction information corresponding to the optimal beam result to the first communication device.
[0009] In a fifth aspect, an embodiment of the present invention further provides a user device comprising at least one processor and at least one memory for storing at least one program, wherein at least one program is executed by at least one processor to realize the beam measurement method described in the first and fourth aspects.
[0010] In a sixth aspect, an embodiment of the present invention further provides a base station comprising at least one processor and at least one memory for storing at least one program, wherein at least one program is executed by at least one processor to realize the beam measurement method described in the second and third aspects.
[0011] In a seventh aspect, the embodiment of the present application further provides a computer-readable storage medium storing a processor-executable program for realizing the beam measurement method described above, when executed by a processor.
[0012] In an eighth aspect, embodiments of the present application further provide a computer program product comprising a computer program or computer instruction stored in a computer-readable storage medium, wherein a processor of a computer device reads the computer program or computer instruction from the computer-readable storage medium, and the processor executes the computer program or computer instruction so that the computer device performs the beam measurement method described above. [Effects of the Invention]
[0013] In the embodiment of the present invention, by transmitting beam recommendation instruction information to the first communication device, the first communication device only needs to configure a reference signal resource for the recommended transmission beam corresponding to the beam recommendation instruction information, that is, it only needs to configure a reference signal resource for the desired target test beam and transmit the target test beam. This is advantageous in reducing the beam training overhead on the first communication device side, and in such a situation, the desired target test beam transmitted from the first communication device can be received stably and reliably. Therefore, beam model measurements can be performed according to the target test beam to obtain the optimal beam result, which is advantageous in improving beam measurement accuracy and can bridge the technical gap in related methods. [Brief explanation of the drawing]
[0014] [Figure 1] It is a schematic diagram of an implementation environment for executing a beam measurement method according to an embodiment of the present application. [Figure 2] It is a flowchart of a beam measurement method according to an embodiment of the present application. [Figure 3] It is a schematic diagram of a scene for transmitting beam recommendation instruction information in a beam measurement method according to an embodiment of the present application. [Figure 4] It is a schematic diagram of a scene for transmitting report instruction information of a first beam in a beam measurement method according to an embodiment of the present application. [Figure 5] It is a schematic diagram of a scene for transmitting report instruction information of a first beam in a beam measurement method according to another embodiment of the present application. [Figure 6] It is a flowchart of a scene for transmitting optimal beam report instruction information in a beam measurement method according to an embodiment of the present application. [Figure 7] It is a flowchart of a beam measurement method according to another embodiment of the present application. [Figure 8] It is a flowchart of a scene for determining a target test beam according to beam recommendation instruction information in a beam measurement method according to an embodiment of the present application. [Figure 9] It is a flowchart of a scene for determining a target test beam according to beam recommendation instruction information in a beam measurement method according to another embodiment of the present application. [Figure 10] It is a schematic diagram of an application scenario of beam instruction information in a beam measurement method according to an embodiment of the present application. [Figure 11] It is a flowchart of a beam measurement method according to another embodiment of the present application. [Figure 12] It is a flowchart of a scene for determining a target test beam in a beam measurement method according to an embodiment of the present application. [Figure 13] It is a flowchart of a beam measurement method according to another embodiment of the present application. [Figure 14]This is a flowchart of a beam measurement method according to one embodiment of the present invention, showing the steps taken before transmitting beam recommendation instruction information to the first communication device. [Figure 15] This is a schematic diagram of a user device according to one embodiment of the present invention. [Figure 16] This is a schematic diagram of a base station according to one embodiment of the present invention. [Modes for carrying out the invention]
[0015] To further clarify the purpose, technical aspects, and advantages of this application, the application will be described in more detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are for interpretive purposes only and do not limit the application.
[0016] Although the flowchart shows a logical order, the steps shown or described may, in some cases, be performed in a different order than that shown in the flowchart. The terms "first," "second," etc., in the specification, claims, and the drawings above are for distinguishing similar subjects and are not intended to describe a specific order or priority.
[0017] Currently, advanced artificial intelligence algorithms such as deep learning can be used to extract spatial correlations of radio channels, and furthermore, they can significantly reduce beam training and measurement overhead by directly inferring all beam quality information from limited beam quality information and predicting the optimal beam. However, both the base station beam and terminal beam in existing standard protocols are based on a dual-transparent design, and when artificial intelligence models are deployed on the terminal side, issues such as how the base station can perform resource configuration and beam scanning with low overhead, and how the terminal can perform beam measurement and reporting, all need to be resolved urgently.
[0018] Based on this, the present application provides a beam measurement method, a user device, a base station, a computer storage medium, and a computer program product. One embodiment of the beam measurement method includes the steps of: transmitting beam recommendation instruction information to a first communication device so that the first communication device determines a target test beam constituting a target reference signal resource in accordance with the beam recommendation instruction information; receiving the target test beam transmitted from the first communication device; predicting an optimal beam result in accordance with the target reference signal resource and transmitting optimal beam report instruction information corresponding to the optimal beam result to the first communication device. In this embodiment, by transmitting beam recommendation instruction information to the first communication device, the first communication device only needs to configure a reference signal resource for the recommended transmission beam corresponding to the beam recommendation instruction information. In other words, it only needs to configure a reference signal resource for the desired target test beam and transmit the target test beam. This is advantageous in reducing the beam training overhead on the first communication device side. Furthermore, in this situation, the desired target test beam transmitted from the first communication device can be received stably and reliably. Therefore, beam model measurements can be performed according to the target test beam to obtain the optimal beam result, which is advantageous in improving beam measurement accuracy and bridging the technical gap in related methods.
[0019] The embodiments of this application will be further described below with reference to the drawings. As shown in Figure 1, Figure 1 is a schematic diagram of an implementation environment for carrying out a beam measurement method according to one embodiment of the present invention.
[0020] In the example shown in Figure 1, this implementation environment includes a user device 110 and a base station 120, and wireless signals can be transmitted and received between the base station 120 and the user device 110.
[0021] The relative positions of the base station 120 and the user device 110 can be set according to the specific application scenario. For example, the user device 110 can move along the radiating sphere formed when the base station 120 radiates a signal to the outside. In other words, if there are multiple user devices 110 and different user devices 110 are set up as described above, the radio signal transmitted from the base station 120 can be received at different spatial locations. Note that these spatial locations may be in different geographical areas.
[0022] In one embodiment, the user equipment 110 may be called an access terminal, user equipment (UE), subscriber unit, subscriber station, mobile station, mobile unit, remote station, remote terminal, mobile device, user terminal, wireless communication device, user agent, or user device. For example, the user equipment 110 may be a cellular telephone, cordless telephone, Session Initiation Protocol (SIP) telephone, Wireless Local Loop (WLL) station, Personal Digital Assistant (PDA), handheld device with wireless communication capabilities, computing device or other processing device connected to a wireless modem, in-vehicle device, wearable device, terminal device in a 5G network or a future 5G or higher network, etc., but this embodiment is not specifically limited thereto.
[0023] In one embodiment, the implementation environment for carrying out the beam measurement method can be applied to the organizational architecture of the 3rd Generation Partnership Project (3GPP®), which has developed a series of beam management procedures for adjusting high-frequency beam directions and maintaining appropriate transmit / receive beam pairs, including beam scanning, beam measurement, beam reporting, and beam indication. For example, during the transmitting beam scanning process, the base station 120 transmits the beam at a predetermined set of intervals and directions, the user equipment 110 measures the reference signal resources carried by the transmitting beam and reports beam quality information to the base station 120, and finally, the base station 120 determines the optimal beam and establishes a directional communication link. Specifically, the base station configures one or more reference signal resource settings for each user equipment 110 in the channel state information instance CSI-ResourceConfig, and configures one or more CSI reporting settings for each user equipment 110 in the upper layer parameter CSI-ReportConfig. CSI-ResourceConfig configures reference signal resources used for channel measurements or interference measurements, including channel state information reference signal (CSI-RS) resources used for channel measurements, synchronization signal and PBCH block (SSB) resources, and CSI-IM resources used for interference measurements. CSI-ReportConfig configures parameters related to CSI reporting, including codebook type, frequency domain reporting granularity, measurement limit configuration, and CSI-related feedback amounts, such as layer indicators, CSI-RS resource index (CRI), SSB resource index (SSBRI), physical layer reference signal receiving power (L1-RSRP), and physical layer signal to interference plus noise ratio (L1-SINR).NR completes the reporting of beam-related information within the CSI feedback framework, using L1-RSRP as the reporting parameter for beam measurement. In beam measurement, the CSI feedback quantity parameter reportQuantity in the CSI reporting settings is configured as "CRI-RSRP" or "SSB-Index-RSRP". In this case, the user device 110 must report the reference signal resource index CRI / SSBRI and the reference signal received power RSRP. CRI / SSBRI represents the index in the resource set of CSI-RS resources selected by the user device 110, and RSRP represents the quality information of the beam being measured. The number of measurement reference signal resources and RSRPs that can be reported in a single reporting setting depends specifically on the capabilities of the user device 110, or may be selectively adjusted and set according to the actual application scene.
[0024] Furthermore, the term "beam" in this application is merely for explanatory purposes and should not be considered an arbitrary limitation.
[0025] The transmitting beam in this application is used to illustrate the transmission method, and its transmission method parameters are: The transmission beam and Transmitting antenna and Transmit sector and, Precoding on the transmitting side, Antenna port and, Antenna weight vector and, Antenna weight matrix and A transmission method that supports spatial division multiplexing, A transmission method that supports frequency domain diversity transmission, A transmission method that supports time-domain diversity transmission, Transmission sequence and The number of layers being sent, Transmission mode and Modulation coding scheme, Reference signal and, Includes at least one of the following: transmit filtering.
[0026] The receiving beam in this patent is used to illustrate the receiving method, and the receiving method parameters are: The received beam and, Receiving antenna and Receiving antenna panel and Received sector and, Includes at least one of the following: receiving filtering.
[0027] The user device 110 has functions such as transmitting beam recommendation instruction information to the base station 120 so that the base station 120 determines a target test beam according to the beam recommendation instruction information, receiving the target test beam transmitted from the base station 120, predicting the optimal beam result according to the target reference signal resource, and transmitting optimal beam report instruction information to the base station 120. The target test beam is composed of the target reference signal resource, and the optimal beam report instruction information corresponds to the optimal beam result.
[0028] The user device 110 further has functions such as receiving a target test beam transmitted from the base station 120, predicting the optimal beam result according to the beam indication information contained in the target test beam, and transmitting optimal beam report indication information to the base station 120. The target test beam is determined by the base station 120, the beam indication information is used to indicate the position information of the target test beam in beam space, and the optimal beam report indication information corresponds to the optimal beam result.
[0029] The base station 120 has functions such as performing beam management based on a preset operating logic or based on operator control. For example, the base station 120 has functions such as predicting and managing the optimal beam result, that is, it can determine a target test beam based on a preset operating logic or based on operator control, transmit the target test beam to the user device 110 so that the user device 110 predicts the optimal beam result according to the beam instruction information contained in the target test beam, and can also receive optimal beam report instruction information transmitted from the user device 110. Alternatively, the base station 120 can receive beam recommendation instruction information transmitted from the user device 110 based on a preset operating logic or based on operator control, determine a target test beam according to the beam recommendation instruction information, transmit the target test beam to the user device 110 so that the user device 110 predicts the optimal beam result according to the target reference signal resource, and can also receive optimal beam report instruction information transmitted from the user device 110. The target test beam consists of a target reference signal resource, beam indication information is used to indicate the position of the target test beam in beam space, and optimal beam report indication information corresponds to the optimal beam result. The base station 120 may be a general mobile communication base station or a millimeter-wave AAS base station, but is not specifically limited here.
[0030] The above-mentioned functions of the base station 120 and user equipment 110 can be applied to different application scenarios, but are not limited to them here.
[0031] Those skilled in the art will understand that this implementation environment can be applied to 5G, 6G communication network systems and subsequent advanced mobile communication network systems, but this embodiment does not specifically limit it.
[0032] Those skilled in the art will understand that the implementation environment shown in Figure 1 is not limiting to the embodiments of the present application and may include more or fewer assemblies than those shown, or may be constructed using a combination of some assemblies or different assemblies.
[0033] Below, we propose various embodiments of the beam measurement method of this application, based on the above-described implementation environment. As shown in Figure 2, Figure 2 is a flowchart of a beam measurement method according to one embodiment of the present invention. This beam measurement method can be applied to a second communication device such as the user device 110 in the embodiment shown in Figure 1, but is not limited thereto. This beam measurement method may include steps S110 to S130, but is not limited thereto.
[0034] In step S110, beam recommendation instruction information is sent to the first communication device so that the first communication device determines the target test beam that constitutes the target reference signal resource according to the beam recommendation instruction information.
[0035] In this embodiment, the second communication device may be the user device 110 in the embodiment shown in Figure 1, but is not limited thereto, and the first communication device in this embodiment may be the base station 120 in the embodiment shown in Figure 1, but is not limited thereto. Alternatively, those skilled in the art can select and configure the corresponding first or second communication device depending on the actual application scenario, but this embodiment does not limit this. In order to more easily explain the application scenarios and principles of the present application, in the following related embodiments, the user device will be described as the second communication device and the base station as the first communication device, but this should not be interpreted as limiting the embodiments of the present application.
[0036] In this step, compared to the approach in which all beams in the codebook are comprehensively scanned, transmitting beam recommendation instruction information to the base station means that the base station only needs to configure a reference signal resource for the recommended transmit beam corresponding to the beam recommendation instruction information, that is, it only needs to configure a reference signal resource for the desired target test beam and transmit the target test beam, which is advantageous in reducing the beam training overhead on the base station side.
[0037] In one embodiment, beam recommendation information is: Instructional information for recommending the reference signal resource index for the target test beam, Instructional information for recommending the sampling interval of the target test beam, Instructional information for recommending the number of target test beams, Instructional information for indicating the index of at least one first test beam group containing multiple target test beams, Instructional information for recommending the beam angle of the target test beam, Instructional information for recommending the beam direction of the target test beam, Instructional information for recommending the beam width of the target test beam, Instructional information for recommending the beam type of the target test beam, Instructional information for recommending the arrival or reception angle of the transmission channel where the target test beam is located, The first communication device provides instructional information to recommend the transmission of the relative angle of the target test beam, Includes at least one of the following: instructional information for recommending the relative angle of the target test beam.
[0038] The reference signal resource corresponding to the reference signal resource index of the target test beam may be, but is not limited to, a channel state information reference signal resource or a synchronization signal resource. The specific number of target test beams in the first test beam group can be set according to the specific application scene, but is not limited here. Different target test beams may be located in different transmission channels, meaning that the arrival angle or reception angle of the transmission channel in which the target test beam is located needs to be specifically analyzed, but the specific numerical value is not limited here. Furthermore, specific application scenes for each beam recommendation instruction information will be explained step by step in each of the following embodiments, but such explanations are omitted here.
[0039] In one embodiment, the specific method by which the base station determines the target test beam in accordance with beam recommendation instruction information can be selected and set according to the actual scenario, but is not limited thereto.
[0040] To better explain the operating principles of each of the above embodiments, several specific examples will be given below.
[0041] (Example 1) Taking the example of a UE reporting instructional information for recommending reference signal resource indices for a target test beam, depending on the specific features of the deployed AI model, if the UE reports multiple reference signal resource indices representing the sampling beam or wide beam locations recommended by the UE, the base station then only needs to configure the reference signal resources at these beam locations. Taking Figure 3 as an example, one circle corresponds to one reference signal resource index or one measurement beam, blank circles represent transmitted beams, and textured circles represent untransmitted beams. Terminal A, using beam measurement results corresponding to reference signal resource indices 1, 6, 11, and 16 as model input to infer beam quality information at other beam locations, reports reference signal resource indices 1, 6, 11, and 16, instructing the base station to then transmit beams only at these locations. Similarly, Terminal B reports reference signal resource indices 1, 3, 6, 8, 9, 11, 14, and 16.
[0042] (Example 2) For example, if the UE reports beam sampling intervals that fit the deployed AI model, the base station then only needs to transmit beams at these sampling intervals and configure the reference signal resources. For instance, in Figure 3, the beam sampling interval reported by terminal A is 4, and the beam sampling interval reported by terminal B is 2.
[0043] (Example 3) Depending on the specific characteristics of the deployed AI model, the UE reports the number of suitable input and / or output beams, i.e., provides instructional information to recommend the number of target test beams. The base station then only needs to configure the corresponding number of reference signal resources. For example, in Figure 3, terminal A reports 4 model input beams and 16 model output beams, while terminal B reports 8 model input beams and 16 model output beams.
[0044] (Example 4) If the base station configures or pre-defines multiple beamgroups, the UE may, depending on the training and inference results of the deployed AI model, report instructional information to indicate one or more beamgroups or beamgroup indices, i.e., the index of at least one first test beamgroup, and each beamgroup may be used as input to the AI model. If the UE reports multiple beamgroups or beamgroup indices, the base station may, depending on the scheduling situation, choose to transmit one or more beamgroups to make the corresponding resource configuration.
[0045] As can be seen from Examples 1-4, based on the recommended transmit beam instruction information reported by the UE, the base station can choose to configure reference signal resources only for the recommended transmit beam, thereby effectively reducing beam training overhead. Furthermore, because the AI model is deployed on the UE side, even when the AI model has just come online or its inference performance is poor, the UE can proactively trigger or deactivate the transmission of the relevant reference signal resource set to provide the data necessary for fine-tuning or performance monitoring of the AI model when it comes online.
[0046] In step S120, the target test beam transmitted from the first communication device is received.
[0047] In this step, since the base station determines the target test beam in step S110, in step S120, the user equipment can receive the target test beam from the base station. This makes it easier to predict the optimal beam result according to the target test beam in subsequent steps and to feed back relevant information about the optimal beam result to the base station.
[0048] In step S130, the optimal beam result is predicted according to the target reference signal resource, and optimal beam report instruction information corresponding to the optimal beam result is transmitted to the first communication device.
[0049] In this step, the user equipment can reliably and steadily receive the desired target test beam transmitted from the base station, allowing it to perform beam model measurements according to the target test beam to obtain optimal beam results. This is advantageous for improving beam measurement accuracy and can bridge technical gaps in related methods.
[0050] In one embodiment, there are multiple methods by which the user device predicts the target reference signal resource, and these methods are not limited here. For example, the device measures according to a pre-configured predictive measurement program, and when this program detects that the target reference signal resource has been received, it measures the target reference signal resource according to the pre-configured predictive measurement program to obtain the optimal beam result. Alternatively, for example, the operator can provide a sensing device that detects the received target reference signal resource, and when this sensing device indicates that the reception of the target reference signal resource has been detected, it can measure the target reference signal resource of the target test beam to indicate that the target test beam corresponding to the target reference signal resource has been received, thereby obtaining the optimal beam result. Alternatively, for example, the target reference signal resource can be input into a pre-trained AI model, and the output result of the AI model can be obtained to obtain the optimal beam result.
[0051] In one embodiment, the optimal beam result can be determined according to the specific scene, but this is not limited to that; for example, At least one optimal beam, At least one optimal beam pair, This may include, but is not limited to, at least one beam pair adjacent to at least one optimal beam pair, and at least one of the following.
[0052] In one embodiment, the target test beam includes beam indication information, which is used to indicate the position of the target test beam in beamspace. The beamspace may be one or more, and is determined according to the actual application scenario; that is, if the actual application scenario is different, the position of the target test beam in the corresponding beamspace may also be different.
[0053] In one embodiment, the beam indication information is, Index information for at least one second test beam group containing multiple target test beams, Index information for at least one first target virtual resource in an omni-resource set corresponding to a target test beam, wherein the first target virtual resource is not used for transmission by the first communication device, and the index information is... A control signaling for indicating the active state of at least one reference signal resource in a pre-configured omni-resource set, the control signaling includes a signaling field corresponding to the reference signal resource, and if the value of the signaling field is target data, it indicates that the reference signal resource is in an active state, and includes at least one of the following:
[0054] The specific number of target test beams in the second test beam group can be set according to the specific application scenario, but is not limited here. The beam corresponding to the first target virtual resource is a beam that the base station has not transmitted to the user equipment, but is a useful predictive beam for the user equipment. Therefore, by transmitting index information for at least one first target virtual resource in the omni-resource set corresponding to the target test beam to the base station, the base station can transmit the test beam configured on the first target virtual resource to the user equipment. The specific values of the signaling fields in the control signaling are not limited and are used only to represent an active or inactive state. Specific application scenarios for each beam indication information will be explained step-by-step in each of the following embodiments, but such explanations are omitted here.
[0055] In one embodiment, if the beam indication information includes control signaling to indicate the active state of at least one reference signal resource in a pre-configured omni-resource set, the control signaling is: Media access control layer control unit signaling, Includes at least one of the following: downlink control signaling.
[0056] The control signaling configured above can better represent the active state of the reference signal resource and has a good indicating effect.
[0057] In one embodiment of the present invention, the steps prior to "transmitting optimal beam reporting instruction information to the first communication device" in step S130 are further described, and step S140 may be further included, but is not limited thereto.
[0058] In step S140, reporting method instruction information is transmitted to the first communication device to indicate the method for transmitting the optimal beam reporting instruction information.
[0059] In this step, the determined reporting method instruction information is used to indicate the method for transmitting the optimal beam reporting instruction information. By transmitting the reporting method instruction information to the base station, the user equipment can show the base station the specific form in which it will transmit the optimal beam reporting instruction information. This allows the base station to identify the specific form of the optimal beam reporting instruction information and accurately understand the actual situation of the optimal beam results.
[0060] In one embodiment, the specific form of the optimal beam reporting instruction information may differ depending on the application scene, but each embodiment will be described in detail step by step below.
[0061] In omni-beam scanning methods in related technologies, the base station configures reference signal resources in all beam directions, i.e., constitutes an omni-resource set, and the terminal measures the omni-resource set and then selects and reports one or more optimal beams from it. On the other hand, in AI-based beam scanning methods, the terminal can only receive and measure a portion of the sampling beam or wide beam, and predicts full beam spatial information based on the AI's inference results and reports the optimal beam. Here, there is a problem that the optimal beam inferred by the AI may be a beam that the base station has not transmitted, so the UE needs to indicate this optimal beam in the beam report to inform the base station of the contents of this optimal beam. Based on this, the UE transmits a first beam reporting instruction information to the base station that corresponds to this situation. If the optimal beam reporting instruction information includes the first beam reporting instruction information, the first beam reporting instruction information is: Index information of the optimal beam result, Offset information for the optimal beam result for at least one first beam, wherein the first beam is a beam not received by the first communication device, meaning the base station does not know the relevant information for the first beam and therefore needs to report this offset information. Pre-configured prediction model prediction-related parameter information, where the prediction model is used by the user's device to predict the optimal beam result, and the prediction model can be set according to the specific scene, such as an AI model or a deep network model, but is not limited to these, prediction-related parameter information. The beam feature information of the optimal beam result includes at least one of the following.
[0062] In one embodiment, the index information for the optimal beam result is: Index information for at least one second target virtual resource in the omni-resource set corresponding to the optimal beam result, wherein the second target virtual resource is not used for transmission by the first communication device, and the index information is... The optimal beam result includes at least one of the following: channel state information reference signal resource set, reference signal received power, and
[0063] The beam corresponding to the second target virtual resource is a beam that the base station has not transmitted to the user equipment, but since it is the predicted optimal beam result, the base station can know the optimal beam result corresponding to the second target virtual resource by transmitting index information of at least one second target virtual resource in the omni-resource set corresponding to the optimal beam result to the base station.
[0064] In one embodiment, the offset information of the optimal beam result for at least one first beam is: Index offset information of the optimal beam result for at least one first beam, Directional offset information of the optimal beam result for at least one first beam, Angular offset information of the optimal beam result for at least one first beam, The system includes at least one of the following: position offset information of the optimal beam result for at least one first beam.
[0065] By reporting the offset amount of the optimal beam result for at least one first beam, the base station can know the relative relationship between the optimal beam result and the first beam.
[0066] In one embodiment, the prediction-related parameter information is as follows: Output vector information and, It includes matrix index information and at least one of the following.
[0067] The output vector information or matrix index information may be parameter information corresponding to the prediction model used by the user's device, and in specific application scenarios, the output vector information or matrix index information may be other corresponding parameter information, but this is not limited to that here.
[0068] In one embodiment, the beam feature information of the optimal beam result is: Beam direction information of the optimal beam result, Beam angle information of the optimal beam result, Beam angle range information of the optimal beam result, Beam width information of the optimal beam result, Beam type information of the optimal beam result, The optimal beam result includes at least one of the following: position information of adjacent transmitted beams.
[0069] To better explain the operating principles of each of the above embodiments, several specific examples will be given below.
[0070] (Example 5) Taking the example of a UE reporting a virtual resource set index or virtual resource index corresponding to the optimal beam result, since the base station configures reference signal resources for only a portion of the sampling beam or wide beam, an AI-based beam reporting method allows the UE to measure the transmitted beam, infer the optimal beam result using an deployed AI model, and then establish a mapping relationship between the configured resource set and the omni-resource set using the virtual resource set index or virtual resource index, thereby enabling reporting instructions to the base station. Specifically, the UE can employ two reporting methods: 1) a reporting method based on a conventional reporting method, i.e., a reporting method that reports the reference signal resource index and beam measurement results, and 2) an AI model-based reporting method, i.e., a reporting method that reports the virtual resource set index or virtual resource index and predicted beam quality information. The UE can also use additional bits to indicate whether the adopted reporting method is based on a conventional reporting method or an AI model-based reporting method. A virtual resource set index or virtual resource index is used to indicate the index or location of a reported resource / beam index within an omni-resource set, and "virtual" indicates that the omni-resource set or resource has not actually been transmitted.
[0071] For example, referring to Figure 4, each circle corresponds to one reference signal resource index or one measured beam, a blank circle represents a transmitted beam, and a textured circle represents a non-transmitted beam. The base station has set the reference signal resource index to 1-4, but the UE predicts that the virtual reference signal resource index corresponding to the optimal beam is 8 based on the AI model, so the UE reports reference signal resource index 8 and the corresponding beam quality information.
[0072] (Example 6)
[0073]
number
[0074] As shown in Figure 5, each circle corresponds to one reference signal resource index or one measurement beam, blank circles represent transmitted beams, and textured circles represent untransmitted beams. The reference signal resource indices carried by the wide beam configured by the base station are 1 to 4, respectively. Assuming that one wide beam can be subdivided into four narrow beams, i.e., that the reference signal resources carried by one wide beam and four narrow beams are configured as QCL type D, the base station only needs to configure and transmit wide beam set A. The UE infers beam quality information for the narrow beam (i.e., omni-resource set B) based on the deployed AI model and reports the wide beam index corresponding to the optimal narrow beam, the beam quality information predicted by the AI, and the offset amount. This offset amount can take values of 00, 01, 10, or 11, representing the specific location of the narrow beam that satisfies the quasi-collocation relationship for the reported wide beam.
[0075] (Example 7) Taking the example of the UE reporting the output vector and / or matrix index of the AI model, if the AI model deployed on the UE side is opaque to the base station, and the base station has some understanding of the AI model inputs, model outputs, or model parameters, for example, the UE can directly report relevant information about the AI model output, such as numerical values or indices corresponding to certain elements in the model output vector or model output matrix. Based on the relevant information about the AI model output reported by the UE, the base station can determine the specific location of the reported optimal beam result.
[0076] (Example 8) Taking the example of a UE reporting additional beam description information, if the base station configures or transmits reference signal resources for only some sampling beams or wide beams, and the optimal beam inferred by the UE's AI model is a beam not transmitted by the base station, the UE cannot report the corresponding reference signal resource index and beam measurement results using conventional reporting methods. In this case, an AI-based beam reporting method would have the UE report additional beam description information and corresponding beam quality information to indicate the location and beam quality of the optimal beam result reported by the base station. This beam description information would include at least one of the following: beam direction, beam angle, beam angle range, beam width, beam type, and position information between two already transmitted beams.
[0077] As can be seen from Examples 5-8, based on the first beam reporting instruction information reported by the UE, the base station can reliably determine the specific location of the optimal beam reported by the UE.
[0078] In one embodiment, considering that the reference signal resource index (CRI) / synchronization signal block index (SSBRI) reported by the user device is bound to its beam quality information, that is, each CRI / SSBRI in the reported parameters corresponds to one beam quality information, the binding relationship between CRI / SSBRI and beam quality information in the beam report is relaxed to conform to the AI-based beam reporting scheme. That is, the number of reference signal resource indices and beam quality information that need to be reported from the user device is flexibly indicated according to the UE's capabilities and system load, and the reference signal resource index and corresponding beam quality information are reported sequentially according to the mapping rules of the Channel State Information (CSI) domain. In addition, for each beam that needs to be reported, the user device can report the corresponding time information. That is, if the optimal beam reporting instruction information includes reporting instruction information for a second beam, the reporting instruction information for the second beam is: Index information of the reference signal resource corresponding to the optimal beam result, beam quality information, Index information of the reference signal resource corresponding to the optimal beam result, Index information of reference signal resources corresponding to some of the optimal beams in the optimal beam result, beam quality information, and index information of reference signal resources corresponding to other of the optimal beams in the optimal beam result, It includes at least one of the following: index information of a reference signal resource corresponding to the optimal beam result, beam quality information, and slot information.
[0079] In one embodiment, the index information of the reference signal resource corresponding to the optimal beam result is: Index information of the reference signal resource corresponding to the measured optimal beam result, Index information of reference signal resources corresponding to the optimal beam result obtained based on a pre-configured prediction model, Index information of a reference signal resource corresponding to the input beam of a pre-configured prediction model, wherein the prediction model includes at least one of the following: index information used to predict the optimal beam result.
[0080] In other words, the specific form of the reference signal resource index information corresponding to the optimal beam result transmitted from the user device can be determined according to different application scenarios. For example, it may be measured by the user, obtained based on a prediction model, or be reference signal resource index information corresponding to the input beam of the prediction model.
[0081] In one embodiment, the slot information is Slot offset information and, Slot order information, Slot application information and, Slot position information and, Includes at least one of the following: slot continuation information.
[0082] The user device transmits slot information to the base station, notifying it of the optimal beam result transmission timing status. This allows the base station to then arrange or process the optimal beam results more effectively, which is advantageous in improving the overall control effect.
[0083] As shown in Figure 6, in one embodiment of the present invention, if the optimal beam result includes multiple optimal beams, the "transmitting optimal beam report instruction information to the first communication device" in step S130 may be further described, and steps S1301 to S1302 may also be included, but are not limited to these.
[0084] In step S1301, multiple optimal beams are sorted in order from earliest to latest according to a predetermined time to obtain a target reporting instruction information sequence.
[0085] In step S1302, optimal beam report instruction information corresponding to multiple optimal beams is sequentially transmitted to the first communication device, starting with the first optimal beam in the target report instruction information sequence.
[0086] In this step, by arranging multiple optimal beams in order according to their respective transmission times to obtain a target report instruction information sequence, the transmission timing status of each optimal beam can be determined. Therefore, by sequentially transmitting the optimal beam report instruction information corresponding to each optimal beam according to the target report instruction information sequence, it is possible to achieve staggered transmission in terms of timing. As a result, the base station can receive each optimal beam report instruction information more intuitively and reliably, avoiding situations such as inaccurate or difficult reception by the base station, and at the same time, marking the timing makes it easier to correct errors that may occur later.
[0087] In one embodiment, the application scenarios for the optimal beam can vary and can be determined according to the specific application situation, but are not limited here. For example, one optimal beam may be, but is not limited to, the optimal beam to be transmitted in the current situation. Also, for example, the optimal beam may be the optimal beam at multiple future times predicted by the user equipment, i.e., the optimal beam is a beam that has not been transmitted.
[0088] The following explanation will provide specific examples to better illustrate the operating principles of each of the above embodiments. (Example 9) In a single reporting flow, the UE reports one or more CRIs and corresponding beam quality information. The reported CRI includes at least one of the following: the CRI corresponding to the optimal beam measured by the UE, the CRI corresponding to the optimal beam inferred by the AI model, and the CRI corresponding to the input beam used for AI inference.
[0089] In an alternative reporting flow, the UE reports only the CRI corresponding to the selected beam. For example, if the AI model deployed on the UE side can predict only the optimal beam index, the UE can report only the CRI corresponding to the optimal beam and does not need to report the corresponding beam quality information.
[0090] In an alternative reporting flow, the UE reports the corresponding CRI and beam quality information for some of the beams that need to be reported, and only the corresponding CRI for other parts of the beams that need to be reported. For example, the UE reports beam groups containing multiple beams for each of one or more different beam areas, and within each beam group, it only needs to report one beam quality information that indicates the general beam quality of that beam group, and only the corresponding CRI for the other beams.
[0091] In a separate reporting flow, the UE reports one or more reference signal resource index (CRI), beam quality information, and corresponding time information. For example, to directly predict the optimal transmit beam at multiple future time points depending on the deployed AI model, the UE may report the CRI, beam quality information, and corresponding time information for one or more optimal beams at multiple future time points. The time information here may, but is not limited to, slot offset, priority, application time, location slot, and duration.
[0092] As can be seen from Example 9, by transmitting reporting instruction information for the second beam, the problem of insufficient flexibility in resource configuration and beam reporting in existing protocols can be effectively solved.
[0093] As shown in Figure 7, Figure 7 is a flowchart of a beam measurement method according to another embodiment of the present application, which may be applied to a first communication device such as the base station 120 in the embodiment shown in Figure 1, but is not limited thereto. This beam measurement method may include, but is not limited to, steps S210 to S240.
[0094] In step S210, beam recommendation instruction information transmitted from the second communication device is received.
[0095] In step S220, the target test beams that constitute the target reference signal resources are determined according to the beam recommendation instruction information.
[0096] In step S230, a target test beam is transmitted to a second communication device so that the second communication device can predict the optimal beam result based on the target reference signal resource.
[0097] In step S240, the optimal beam report instruction information transmitted from the second communication device is received, and the optimal beam report instruction information corresponds to the optimal beam result.
[0098] In this embodiment, the first communication device may be the base station 120 shown in the embodiment in Figure 1, but is not limited thereto, and the second communication device may be the user device 110 shown in the embodiment in Figure 1, but is not limited thereto. Alternatively, those skilled in the art can select and configure the corresponding first or second communication device depending on the actual application scenario, but this embodiment does not limit this. In order to more easily explain the application scenarios and principles of this application, in the following related embodiments, the base station will be described as the first communication device and the user device as the second communication device, but this should not be interpreted as limiting the embodiments of this application.
[0099] In this step, by receiving beam recommendation instruction information transmitted from the user equipment, it is only necessary to configure a reference signal resource for the recommended transmission beam corresponding to the beam recommendation instruction information. In other words, a reference signal resource is configured only for the desired target test beam, and the target test beam is transmitted. This is advantageous in reducing the beam training overhead on the base station side, and in such a situation, the user equipment can reliably and stably receive the desired target test beam. Furthermore, beam model measurements can be performed according to the target test beam to obtain the optimal beam result, which is advantageous in improving beam measurement accuracy and bridging the technical gap in related methods.
[0100] As shown in Figure 8, step S220 will be further described in one embodiment of the present application. Step S220 may include, but is not limited to, steps S2201 to S2202.
[0101] In Step S2201, the recommended beam is determined based on the beam recommendation instruction information. In step S2202, a reference signal resource configuration is performed for the recommended beam to obtain the target test beam.
[0102] In this step, the recommended beam corresponding to the beam recommendation instruction information is determined based on the beam recommendation instruction information, and then a reference signal resource configuration is performed for the recommended beam to accurately obtain the desired target test beam.
[0103] In one embodiment of the present application, step S2202 will be further described. Step S2202 is, The steps include configuring a target reference signal resource for the recommendation beam, A step of searching for and activating a target reference signal resource for a recommended beam from a pre-configured omni-resource set, wherein the omni-resource set includes reference signal resources configured for all beams in beam space, and the step of , which may include, but is not limited to, any one of these steps.
[0104] In other words, the target reference signal resource may be configured directly for the recommendation beam, or it may be configured by indirectly activating the target reference signal resource from a pre-configured omni-resource set, or it may be specifically selected depending on the actual scene, but this is not limited to that here.
[0105] As shown in Figure 9, step S220 is further described in one embodiment of the present application. Step S220 may include, but is not limited to, step S2203.
[0106] In step S2203, a target test beam containing beam indication information is determined according to the beam recommendation information, and the beam indication information is used to indicate the position information of the target test beam in beam space.
[0107] In this step, a target test beam containing beam indication information is determined. By transmitting the target test beam to the user equipment, the user equipment obtains the beam indication information, which allows the user equipment to determine the specific position of the target test beam transmitted from the base station in beamspace. This facilitates inputting the corresponding beam into the prediction model, which is advantageous for improving the prediction accuracy of the prediction model.
[0108] Steps S210-S240, S2201-S2202, and S2203 in the above embodiment are based on the same inventive concept as the related embodiment of the previous beam measurement method, with only the implementing body differing. That is, the implementing body of the previous beam measurement method is the second communication device, while the implementing body of steps S210-S240, S2201-S2202, and S2203 in the above embodiment is the first communication device. Therefore, for other specific embodiments and related embodiments of steps S210-S240, S2201-S2202, and S2203 in the above embodiment, such as beam recommendation instruction information, beam instruction information, first beam report instruction information, and second beam report instruction information, specific embodiments can refer to the specific embodiment of the beam measurement method in the previous embodiment. To avoid redundancy, the description of this part of the embodiment is omitted here.
[0109] To better explain the operating principles of each of the above embodiments, several specific examples will be given below. (Example 10) Taking the inclusion of beamgroup indices as an example, if a base station constitutes multiple beamgroups, or if a UE reports or pre-defines multiple beamgroups, the base station may include the corresponding beamgroup index when configuring a reference signal resource to indicate the specific location of the corresponding transmit beam in beamspace. (Example 11) Taking the inclusion of a virtual resource set index or virtual resource index as an example, in the omni-beam scanning method of the related technology, the base station needs to configure reference signal resources in all beam directions, i.e., configure an omni-resource set, whereas in the AI-based beam scanning method, the base station only needs to configure reference signal resources in some beam directions, and at the same time, it includes a virtual resource set index or virtual resource index to indicate the index or position of the configured reference signal resources in the omni-resource set. Virtual indicates that this omni-resource set or resource is not actually transmitted. For example, referring to Figure 10, one circle corresponds to one reference signal resource index or one measurement beam, a blank circle represents a transmitted beam, and a textured circle represents a non-transmitted beam. For different terminals A and B, the additional information that the base station needs to include when configuring reference signal resources for terminal A is 1, 6, 11, and 16, and the additional information that the base station needs to include when configuring reference signal resources for terminal B is 1, 3, 10, and 12. (Example 12) Taking the example of including media access control layer control unit signaling or downlink control signaling for resource activation, in an AI-based beam scanning method, the base station only needs to transmit a portion of the beam. Therefore, after configuring the omni-resource set, the base station simultaneously uses additional media access control layer control unit signaling or downlink control signaling to indicate the active / inactive state of each reference signal resource in this resource set. That is, the activation / deactivation operation is defined to be performed at the resource level. Specifically, the included media access control layer control unit signaling or downlink control signaling contains the index IDs of all or some of the reference signal resources in the omni-beamset and their corresponding active / inactive states. For example, a value of 1 in the relevant signaling field indicates that the corresponding reference signal resource is activated, and otherwise indicates that it is deactivated.
[0110] As can be seen from Examples 10-12, the UE can clarify the index or specific position of the beam transmitted from the base station in beamspace based on the beam indication information transmitted from the base station. Therefore, the measurement results of the corresponding beam can be input into the AI model for measurement, which is advantageous for improving the accuracy of model inference.
[0111] As shown in Figure 11, Figure 11 is a flowchart of a beam measurement method according to another embodiment of the present application, which may be applied to a first communication device such as the base station 120 in the embodiment shown in Figure 1, but is not limited thereto. This beam measurement method may include, but is not limited to, steps S310 to S330.
[0112] In step S310, a target test beam is determined, which includes beam indication information. This beam indication information is used to indicate the position of the target test beam in beamspace.
[0113] In step S320, the target test beam is transmitted to the second communication device so that the second communication device predicts the optimal beam result according to the beam indication information.
[0114] In step S330, the optimal beam report instruction information transmitted from the second communication device is received, and the optimal beam report instruction information corresponds to the optimal beam result.
[0115] In this embodiment, the first communication device may be the base station 120 shown in the embodiment in Figure 1, but is not limited thereto, and the second communication device may be the user device 110 shown in the embodiment in Figure 1, but is not limited thereto. Alternatively, those skilled in the art can select and configure the corresponding first or second communication device depending on the actual application scenario, but this embodiment does not limit this. In order to more easily explain the application scenarios and principles of this application, in the following related embodiments, the base station will be described as the first communication device and the user device as the second communication device, but this should not be interpreted as limiting the embodiments of this application.
[0116] In this step, a target test beam containing beam indication information is determined and transmitted to the user equipment. This allows the user equipment to reliably and stably receive the desired target test beam, thereby clarifying the specific position of the target test beam in beamspace transmitted from the base station. The measurement results of the corresponding target test beam can then be input into a predictive model to predict the optimal beam result, which is advantageous for improving model inference accuracy and bridging technical gaps in related methods.
[0117] As shown in Figure 12, step S310 will be further described in one embodiment of the present invention. Step S310 may include, but is not limited to, steps S3101 to S3102.
[0118] In step S3101, beam recommendation instruction information transmitted from the second communication device is received.
[0119] In step S3102, the target test beams that constitute the target reference signal resources are determined according to the beam recommendation instruction information.
[0120] In this step, compared to the approach in the related method of comprehensively scanning all beams in the codebook, it is advantageous in reducing the beam training overhead on the base station side because, by receiving beam recommendation instruction information transmitted from the user equipment, a reference signal resource only needs to be configured for the recommended transmission beam corresponding to the beam recommendation instruction information, that is, a reference signal resource only needs to be configured for the desired target test beam.
[0121] In one embodiment, step S3102 may include, but is not limited to, the steps of determining a recommended beam according to beam recommendation instruction information and configuring a reference signal resource for the recommended beam to obtain a target test beam. In other words, a recommended beam corresponding to the beam recommendation instruction information can be determined by the beam recommendation instruction information, and a desired target test beam can be accurately obtained by further configuring a reference signal resource for the recommended beam.
[0122] Configuring a reference signal resource for a recommended beam may involve configuring a target reference signal resource for the recommended beam, or retrieving and activating a target reference signal resource from a pre-configured omni-resource set for the recommended beam, but is not limited to these two methods. The omni-resource set includes reference signal resources configured for all beams in the beam space.
[0123] Furthermore, steps S310 to S330 and steps S3101 to S3102 in the above embodiment are based on the same inventive concept as the related embodiment of the previous beam measurement method. Therefore, for other specific embodiments and related embodiments of steps S310 to S330 and steps S3101 to S3102 in the above embodiment, such as beam recommendation instruction information, beam instruction information, first beam report instruction information, second beam report instruction information, etc., specific embodiments can be found by referring to the specific embodiment of the beam measurement method in the previous embodiment. To avoid redundancy, the description of these embodiments is omitted here.
[0124] As shown in Figure 13, Figure 13 is a flowchart of a beam measurement method according to another embodiment of the present application, which may be applied to a second communication device such as the user device 110 in the embodiment shown in Figure 1, but is not limited thereto. This beam measurement method may include, but is not limited to, steps S410 to S420.
[0125] In step S410, the target test beam transmitted from the first communication device is received. The target test beam is determined by the first communication device and contains beam indication information, which is used to indicate the position of the target test beam in beam space.
[0126] In step S420, the optimal beam result is predicted according to the beam instruction information, and optimal beam report instruction information corresponding to the optimal beam result is transmitted to the first communication device.
[0127] In this embodiment, the second communication device may be the user device 110 in the embodiment shown in Figure 1, but is not limited thereto, and the first communication device in this embodiment may be the base station 120 in the embodiment shown in Figure 1, but is not limited thereto. Alternatively, those skilled in the art can select and configure the corresponding first or second communication device depending on the actual application scenario, but this embodiment does not limit this. In order to more easily explain the application scenarios and principles of the present application, in the following related embodiments, the user device will be described as the second communication device and the base station as the first communication device, but this should not be interpreted as limiting the embodiments of the present application.
[0128] In this step, by receiving the desired target test beam transmitted from the first communication device, the specific position of the target test beam transmitted from the base station in beamspace can be determined. This facilitates inputting the measurement results of the corresponding target test beam into a predictive model to measure and predict the optimal beam result, which is advantageous for improving the accuracy of model inference and can bridge the technical gap in related methods.
[0129] As shown in Figure 14, in one embodiment of the present application, the steps preceding step S410 are further described. Step S430 may be included before step S410, but is not limited thereto.
[0130] In step S430, beam recommendation instruction information is sent to the first communication device so that the first communication device determines the target test beam that constitutes the target reference signal resource according to the beam recommendation instruction information.
[0131] In this step, compared to the approach in which all beams in the codebook are comprehensively scanned, transmitting beam recommendation instruction information to the base station means that the base station only needs to configure reference signal resources for the recommended transmit beams corresponding to the beam recommendation instruction information, i.e., only for the desired target test beams, which is advantageous in reducing beam training overhead on the base station side.
[0132] Furthermore, steps S410 to S420 and S430 in the above embodiment are based on the same inventive concept as the related embodiment of the previous beam measurement method. Therefore, for other specific embodiments and related embodiments of steps S410 to S420 and S430 in the above embodiment, such as beam recommendation instruction information, beam instruction information, first beam report instruction information, second beam report instruction information, etc., specific embodiments can be found by referring to the specific embodiment of the beam measurement method in the previous embodiment. To avoid redundancy, the description of this part of the embodiment is omitted here.
[0133] Furthermore, as shown in Figure 15, one embodiment of the present invention further discloses a user device 200 comprising at least one processor 210 and at least one memory 220 for storing at least one program, wherein when at least one program is executed by the at least one processor 210, steps S110 to S130, step S140, step S1301 to S1302, step S410 to S420, or step S430 of the beam measurement method in the above embodiment.
[0134] Furthermore, as shown in Figure 16, one embodiment of the present invention further discloses a base station 300 comprising at least one processor 310 and at least one memory 320 for storing at least one program, wherein when at least one program is executed by the at least one processor 310, steps S210 to S240, steps S2201 to S2202, step S2203, steps S310 to S330, or steps S3101 to S3102 of the beam measurement method in any of the embodiments described above.
[0135] Furthermore, one embodiment of the present invention discloses a computer-readable storage medium that stores computer-executable instructions for performing the beam measurement method described in any of the above embodiments.
[0136] Furthermore, one embodiment of the present application further discloses a computer program product comprising a computer program or computer instruction stored in a computer-readable storage medium, wherein a processor of a computer device reads the computer program or computer instruction from the computer-readable storage medium, and the processor executes the computer program or computer instruction so that the computer device performs the beam measurement method described in any of the above embodiments.
[0137] Those skilled in the art will understand that all or part of the steps of the methods disclosed herein, or the system, can be implemented as software, firmware, hardware, or appropriate combinations thereof. Some or all of the physical components can be implemented as software or hardware, or as integrated circuits, such as application-specific integrated circuits, which may be executed by a processor such as a central processing unit, a digital signal processor, or a microprocessor. Such software can be distributed on computer-readable media, which may include computer storage media (or non-temporary media) and communication media (or temporary media). As is known to those skilled in the art, the term “computer storage media” includes volatile and non-volatile, removable and non-removable media, which are implemented in any method or technique for storing information (such as computer-readable instructions, data structures, program modules, or other data). Computer storage media include, but are not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disk (DVD) or other optical disk storage devices, magnetic cartridges, magnetic tapes, magnetic disk storage devices or other magnetic storage devices, or any other media that can be used to store desired information and can be accessed by a computer. Furthermore, as is known to those skilled in the art, communication media typically include computer-readable instructions, data structures, program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms, and may also include any information distribution medium.
[0138] Although several embodiments of the present application have been described in detail above, the present application is not limited to the above embodiments, and a person skilled in the art can make various equivalent modifications or substitutions without departing from the scope of the present application, and all such equivalent modifications or substitutions are included within the scope of the claims of the present application.
Claims
1. A beam measurement method performed by a second communication device, The steps include transmitting beam recommendation instruction information to a first communication device so that the first communication device determines a target test beam that constitutes a target reference signal resource in accordance with the beam recommendation instruction information, The steps include receiving the target test beam transmitted from the first communication device, The steps include predicting the optimal beam result according to the target reference signal resource and transmitting optimal beam report instruction information corresponding to the optimal beam result to the first communication device, Includes, The aforementioned beam recommendation information is, Instructional information for recommending the reference signal resource index of the target test beam, Instructional information for recommending the sampling interval of the target test beam, Instructional information for recommending the number of target test beams, Instructional information for indicating an index of at least one first test beam group including multiple target test beams, Instructional information for recommending the beam angle of the target test beam, Instructional information for recommending the beam direction of the target test beam, Instructional information for recommending the beam width of the target test beam, Instructional information for recommending the beam type of the target test beam, Instructional information for recommending the arrival angle or reception angle of the transmission channel where the target test beam is located, The first communication device provides instruction information for recommending the transmission of the relative angle of the target test beam, A beam measurement method comprising at least one of the following: instruction information for recommending the relative angle of the target test beam.
2. The beam measurement method according to claim 1, wherein the target test beam includes beam indication information, and the beam indication information is used to indicate the position information of the target test beam in beam space.
3. The beam indication information is, Index information of at least one second test beam group including multiple target test beams, Index information for at least one first target virtual resource in the omni-resource set corresponding to the target test beam, wherein the first target virtual resource is not used for transmission by the first communication device, and the index information is... A beam measurement method according to claim 2, comprising at least one of the following: a control signaling for indicating the active state of at least one reference signal resource in a pre-configured omni-resource set, wherein the control signaling includes a signaling field corresponding to the reference signal resource, and if the value of the signaling field is target data, it indicates that the reference signal resource is in an active state.
4. If the beam instruction information includes control signaling to indicate the active state of at least one reference signal resource in a pre-configured omni-resource set, the control signaling includes: Media access control layer control unit signaling, The beam measurement method according to claim 3, comprising at least one of the following: downlink control signaling.
5. If the optimal beam reporting instruction information includes the reporting instruction information for the first beam, the reporting instruction information for the first beam is: The index information of the aforementioned optimal beam result, Offset information of the optimal beam result for at least one of the first beams which is a beam not received from the first communication device, Pre-configured prediction model prediction-related parameter information, wherein the prediction model is used to predict the optimal beam result, and the prediction-related parameter information is: The beam characteristic information of the aforementioned optimal beam result includes at least one of the following, or If the aforementioned optimal beam reporting instruction information includes reporting instruction information for a second beam, the reporting instruction information for the second beam is: The index information and beam quality information of the reference signal resource corresponding to the aforementioned optimal beam result, The index information of the reference signal resource corresponding to the aforementioned optimal beam result, Index information and beam quality information of reference signal resources corresponding to some of the optimal beams in the aforementioned optimal beam results, and index information of reference signal resources corresponding to other of the optimal beams in the aforementioned optimal beam results, The beam measurement method according to claim 1, comprising at least one of the following: index information, beam quality information, and slot information of a reference signal resource corresponding to the optimal beam result.
6. If the reporting instruction information for the first beam includes the index information for the optimal beam result, the index information for the optimal beam result is: Index information for at least one second target virtual resource in the omni-resource set corresponding to the optimal beam result, wherein the second target virtual resource is not used for transmission by the first communication device, and the index information is... The optimal beam result includes at least one of the following: a channel state information reference signal resource set, a reference signal received power, or If the reporting instruction information for the first beam includes offset information for the optimal beam result for at least one of the first beams, then the offset information for the optimal beam result for at least one of the first beams is: Index offset information of the optimal beam result for at least one of the first beams, Directional offset information of the optimal beam result for at least one of the first beams, Angular offset information of the optimal beam result for at least one of the first beams, The system includes at least one of the following: position offset information of the optimal beam result for at least one of the first beams, or If the reporting instruction information for the first beam includes prediction-related parameter information for the pre-configured prediction model, then the prediction-related parameter information is: Output vector information and, It includes matrix index information and at least one of the following, or If the first beam reporting instruction information includes the beam feature information of the optimal beam result, the beam feature information of the optimal beam result is: The beam direction information of the aforementioned optimal beam result, The beam angle information of the aforementioned optimal beam result, The beam angle range information of the aforementioned optimal beam result, The beam width information of the aforementioned optimal beam result, The beam type information of the aforementioned optimal beam result, The beam measurement method according to claim 5, comprising at least one of the following: the position information of adjacent transmitted beams of the optimal beam result.
7. Before transmitting the optimal beam report instruction information to the first communication device, The beam measurement method according to claim 1, further comprising the step of transmitting reporting method instruction information to the first communication device for indicating a method for transmitting the optimal beam reporting instruction information.
8. If the second beam reporting instruction information includes index information for a reference signal resource corresponding to the optimal beam result, the index information for the reference signal resource corresponding to the optimal beam result is: Index information of the reference signal resource corresponding to the measured optimal beam result, Index information of a reference signal resource corresponding to the optimal beam result obtained based on a pre-configured prediction model, Index information of a reference signal resource corresponding to the input beam of a pre-configured prediction model, wherein the prediction model includes at least one of the following: index information used to predict the optimal beam result, or If the second beam reporting instruction information includes index information, beam quality information, and slot information of a reference signal resource corresponding to the optimal beam result, the slot information is: Slot offset information and, Slot order information, Slot application information and, Slot position information and, The beam measurement method according to claim 5, comprising at least one of the following: slot continuation information.
9. If the optimal beam result includes multiple optimal beams, the step of transmitting optimal beam report instruction information to the first communication device is: The steps include: sorting the plurality of optimal beams in order from earliest to latest according to a predetermined time to obtain a target reporting instruction information sequence; The beam measurement method according to claim 1, comprising the step of sequentially transmitting optimal beam report instruction information corresponding to a plurality of optimal beams to a first communication device, starting from the first optimal beam in the target report instruction information sequence.
10. A beam measurement method performed by a first communication device, The steps include receiving beam recommendation instruction information transmitted from a second communication device, The steps include determining a target test beam that constitutes a target reference signal resource according to the beam recommendation instruction information, The steps include transmitting the target test beam to the second communication device so that the second communication device predicts the optimal beam result according to the target reference signal resource, A step of receiving optimal beam report instruction information transmitted from the second communication device, wherein the optimal beam report instruction information corresponds to the optimal beam result, Includes, The aforementioned beam recommendation information is, Instructional information for recommending the reference signal resource index of the target test beam, Instructional information for recommending the sampling interval of the target test beam, Instructional information for recommending the number of target test beams, Instructional information for indicating an index of at least one first test beam group including multiple target test beams, Instructional information for recommending the beam angle of the target test beam, Instructional information for recommending the beam direction of the target test beam, Instructional information for recommending the beam width of the target test beam, Instructional information for recommending the beam type of the target test beam, Instructional information for recommending the arrival angle or reception angle of the transmission channel where the target test beam is located, The first communication device provides instruction information for recommending the transmission of the relative angle of the target test beam, A beam measurement method comprising at least one of the following: instruction information for recommending the relative angle of the target test beam.
11. The step of determining a target test beam according to the aforementioned beam recommendation information is: The steps include determining a recommended beam according to the aforementioned beam recommendation instruction information, The steps include: configuring a reference signal resource for the recommended beam to obtain a target test beam; A step of determining a target test beam including beam indication information in accordance with the beam recommendation indication information, wherein the beam indication information is used to indicate the position information of the target test beam in beam space. Before receiving the optimal beam report instruction information transmitted from the second communication device, The beam measurement method according to claim 10, comprising the step of receiving reporting method instruction information transmitted from the second communication device, wherein the reporting method instruction information is used to indicate a method by which the second communication device transmits the optimal beam reporting instruction information.
12. The step of configuring a reference signal resource for the recommended beam is: The steps include configuring the target reference signal resource for the recommendation beam, The beam measurement method according to claim 11, comprising any one of the following steps: searching for and activating the target reference signal resource from a pre-configured omni-resource set for the recommended beam, wherein the omni-resource set includes reference signal resources configured for all beams in the beam space.
13. At least one processor, A device comprising at least one memory for storing at least one program, When at least one of the programs is executed by at least one of the processors, the beam measurement method according to any one of claims 1 to 9 is realized. User device.
14. At least one processor, A device comprising at least one memory for storing at least one program, When at least one of the programs is executed by at least one of the processors, the beam measurement method according to any one of claims 10 to 12 is realized. Base station.
Citation Information
Patent Citations
Method and apparatus for beam management using ai / ml
WO2024035419A1