WO2024017239A1 - 数据采集方法及装置、通信设备 - Google Patents
数据采集方法及装置、通信设备 Download PDFInfo
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- WO2024017239A1 WO2024017239A1 PCT/CN2023/107887 CN2023107887W WO2024017239A1 WO 2024017239 A1 WO2024017239 A1 WO 2024017239A1 CN 2023107887 W CN2023107887 W CN 2023107887W WO 2024017239 A1 WO2024017239 A1 WO 2024017239A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0408—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas using two or more beams, i.e. beam diversity
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/08—Testing, supervising or monitoring using real traffic
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/046—Wireless resource allocation based on the type of the allocated resource the resource being in the space domain, e.g. beams
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/231—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the layers above the physical layer, e.g. RRC or MAC-CE signalling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/232—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
Definitions
- This application belongs to the field of communication technology, and specifically relates to a data collection method and device, and communication equipment.
- communication transceivers such as base stations and terminals
- communication transceivers are configured with multiple analog beams.
- the channel quality measured in different transmitting and receiving simulated beams changes. How to quickly and accurately find the transceiver beam group with the highest channel quality from all possible transceiver simulation beam combinations is the key to affecting transmission quality.
- the terminal After introducing the Artificial Intelligence (AI) neural network model, the terminal can effectively predict the transceiver simulation beam with the highest channel quality based on historical channel quality information, and report it to the network side.
- AI Artificial Intelligence
- the deployed AI model is trained based on simulation data, there is a risk that it may not be able to adapt to the community environment.
- Embodiments of the present application provide a data collection method, device, and communication equipment to enable AI-based beam prediction.
- the first aspect provides a data collection method, including:
- the first communication device sends first information to the second communication device, the first information indicates first auxiliary information and/or capability information of the first communication device, and the first auxiliary information is used to indicate auxiliary requirements for data collection,
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- the first communication device receives second information sent by the second communication device, where the second information is used to indicate the beam configuration of the second communication device;
- the first communication device obtains data samples based on the second information.
- a data collection device including:
- the first sending module is configured to send first information to the second communication device, where the first information indicates the first auxiliary information and/or the capability information of the first communication device, and the first auxiliary information is used to indicate the method of data collection. Auxiliary requirements, the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- a first receiving module configured to receive second information sent by the second communication device, where the second information is used to indicate the beam configuration of the second communication device;
- a processing module configured to obtain data samples based on the second information.
- the third aspect provides a data collection method, including:
- the second communication device receives the first information sent by the first communication device.
- the first information indicates the first auxiliary information and/or the capability information of the first communication device.
- the first auxiliary information is used to indicate the auxiliary requirements for data collection.
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- the second communication device sends second information to the first communication device, where the second information is used to indicate the beam configuration of the second communication device.
- a data collection device including:
- the second receiving module is used to receive the first information sent by the first communication device.
- the first information indicates the first auxiliary information and/or the capability information of the first communication device.
- the first auxiliary information is used to indicate data collection.
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- the second sending module is configured to send second information to the first communication device, where the second information is used to indicate the beam configuration of the second communication device.
- a first communication device in a fifth aspect, includes a processor and a memory.
- the memory stores a program or instructions executable on the processor.
- the program or instructions are processed by the processor.
- the processor When the processor is executed, the steps of the method described in the first aspect are implemented.
- a first communication device including a processor and a communication interface, wherein the communication interface is used to send first information to a second communication device, where the first information indicates first auxiliary information and/or Or the capability information of the first communication device, the first auxiliary information is used to indicate the auxiliary requirements for data collection, the capability information of the first communication device is used to indicate the data collection capability of the first communication device; receiving the second Second information sent by the communication device, the second information is used to indicate the beam configuration of the second communication device; the processor is used to obtain data samples based on the second information.
- a second communication device in a seventh aspect, includes a processor and a memory.
- the memory stores programs or instructions executable on the processor. The programs or instructions are processed by the processor. When the processor is executed, the steps of the method as described in the third aspect are implemented.
- a second communication device including a processor and a communication interface, wherein the communication interface is used to receive first information sent by the first communication device, where the first information indicates first auxiliary information and /or capability information of the first communication device, the first auxiliary information is used to indicate the auxiliary requirements for data collection, the capability information of the first communication device is used to indicate the data collection capability of the first communication device; to the third communication device A communication device sends second information, where the second information is used to indicate the beam configuration of the second communication device.
- a ninth aspect provides a communication system, including: a first communication device and a second communication device.
- the first communication device can be used to perform the steps of the data collection method as described in the first aspect.
- the second communication device The device may be used to perform the steps of the data collection method as described in the third aspect.
- a readable storage medium is provided. Programs or instructions are stored on the readable storage medium. When the programs or instructions are executed by a processor, the steps of the method described in the first aspect are implemented, or the steps of the method are implemented as described in the first aspect. mentioned in the third aspect Method steps.
- a chip in an eleventh aspect, includes a processor and a communication interface.
- the communication interface is coupled to the processor.
- the processor is used to run programs or instructions to implement the method described in the first aspect. method, or implement a method as described in the third aspect.
- a computer program/program product is provided, the computer program/program product is stored in a storage medium, and the computer program/program product is executed by at least one processor to implement as described in the first aspect
- the first communication device can instruct the second communication device to configure the desired beam through the first information, and learn whether the second communication device is configured to the desired beam through the second information, and then determine whether the second communication device can be configured as the desired beam.
- Multiple measurement results are combined together as a beam prediction training sample, inference sample, or performance monitoring sample. It is enabled that the terminal is configured as the desired beam, and the network side predicts the best transmit beam based on historical transmit beam information, or the network side is configured as the desired beam, and the terminal side predicts the best receive beam based on historical receive beam information.
- the training samples are online. Collect, or inference samples are collected online, or performance monitoring samples are collected online, thereby enabling AI-based beam prediction.
- Figure 1 is a block diagram of a wireless communication system applicable to the embodiment of the present application.
- Figure 2 is a schematic flow chart of the first communication device side data collection method according to the embodiment of the present application.
- Figures 3a and 3b are schematic diagrams of data collection by a terminal according to a specific embodiment of the present application.
- Figure 4, Figure 5, Figure 6 and Figure 7 are schematic diagrams of determining samples according to the first cycle and the second cycle according to the embodiment of the present application;
- FIG. 8a and Figure 8b are schematic diagrams of data collection by the base station according to the embodiment of the present application.
- Figure 9 is a schematic flow chart of the second communication device side data collection method according to the embodiment of the present application.
- Figure 10 is a schematic structural diagram of a communication device according to an embodiment of the present application.
- Figure 11 is a schematic structural diagram of a terminal according to an embodiment of the present application.
- Figure 12 is a schematic structural diagram of a network side device according to an embodiment of the present application.
- first, second, etc. in the description and claims of this application are used to distinguish similar objects and are not used to describe a specific order or sequence. It is to be understood that the terms so used are interchangeable under appropriate circumstances so that the embodiments of the present application can be practiced in sequences other than those illustrated or described herein, and that "first" and “second” are distinguished objects It is usually a category, and the number of objects is not limited.
- the first object can be one, or Can be multiple.
- “and/or” in the description and claims indicates at least one of the connected objects, and the character “/" generally indicates that the related objects are in an "or” relationship.
- LTE Long Term Evolution
- LTE-Advanced, LTE-A Long Term Evolution
- CDMA Code Division Multiple Access
- TDMA Time Division Multiple Access
- FDMA Frequency Division Multiple Access
- OFDMA Orthogonal Frequency Division Multiple Access
- SC-FDMA Single-carrier Frequency Division Multiple Access
- system and “network” in the embodiments of this application are often used interchangeably, and the described technology can be used not only for the above-mentioned systems and radio technologies, but also for other systems and radio technologies.
- NR New Radio
- the following description describes a New Radio (NR) system for example purposes, and uses NR terminology in much of the following description, but these techniques can also be applied to applications other than NR system applications, such as 6th Generation , 6G) communication system.
- NR New Radio
- FIG. 1 shows a block diagram of a wireless communication system to which embodiments of the present application are applicable.
- the wireless communication system includes a terminal 11 and a first communication device 12 .
- the terminal 11 can be a mobile phone, a tablet computer (Tablet Personal Computer), a laptop computer (Laptop Computer), or a notebook computer, a personal digital assistant (Personal Digital Assistant, PDA), a handheld computer, a netbook, or a super mobile personal computer.
- Tablet Personal Computer Tablet Personal Computer
- laptop computer laptop computer
- PDA Personal Digital Assistant
- PDA Personal Digital Assistant
- UMPC ultra-mobile personal computer
- UMPC mobile Internet device
- MID mobile Internet device
- augmented reality augmented reality, AR
- VR virtual reality
- robots wearable devices
- Vehicle user equipment VUE
- pedestrian terminal pedestrian terminal
- PUE pedestrian terminal
- smart home home equipment with wireless communication functions, such as refrigerators, TVs, washing machines or furniture, etc.
- game consoles personal computers (personal computer, PC), teller machine or self-service machine and other terminal-side devices.
- Wearable devices include: smart watches, smart bracelets, smart headphones, smart glasses, smart jewelry (smart bracelets, smart bracelets, smart rings, smart necklaces, smart anklets) bracelets, smart anklets, etc.), smart wristbands, smart clothing, etc.
- the first communication device 12 may include an access network device or a core network device, where the access network device may also be called a radio access network device, a radio access network (Radio Access Network, RAN), a radio access network function or a Wireless access network unit.
- Access network equipment can include base stations, Wireless Local Area Network (WLAN) access points or Wireless Fidelity (WiFi) nodes, etc.
- the base station can be called Node B, Evolved Node B (Evolved Node B).
- the base station is not limited to specific technical terms. It needs to be explained that , in the embodiment of this application, only the base station in the NR system is taken as an example for introduction, and the specific type of the base station is not limited.
- an effective method is to collect community data in real time, and then perform offline or online model training based on the data collected from the existing network.
- one method is to predict the best transceiver beam pair based on historical beam pair information.
- the other method is to configure the terminal as the first auxiliary beam, and the network side predicts the best based on historical transmit beam information.
- the transmit beam, or the network side is configured as the first auxiliary beam, and the terminal side predicts the best receiving beam based on historical receiving beam information.
- the current protocol does not currently support configuring the desired beam (spatial filter) between multiple measurement reports.
- This application proposes a method of requesting the transmitter or receiver to configure a desired spatial filter to enable AI-based beam prediction.
- the embodiment of the beam in the NR protocol can be a spatial domain filter, or a spatial filter or a spatial parameter.
- the beam used to send signals can be called a transmission beam (transmission beam, Tx beam), a spatial domain transmission filter (spatial domain transmission filter) or a spatial transmission parameter (spatial transmission parameter);
- the beam used to receive signals can be called a It is the reception beam (reception beam, Rx beam), which can be called the spatial domain receive filter (spatial domain receive filter) or spatial receive parameter (spatial RX parameter).
- the transmitting beam may refer to the distribution of signal strength in different directions in space after the signal is emitted by the antenna
- the receiving beam may refer to the signal strength distribution of the wireless signal received from the antenna in different directions in space.
- the beam may be a wide beam, a narrow beam, or other types of beams.
- the beam forming technology may be beam forming technology or other technologies.
- the beamforming technology can be digital beamforming technology, analog beamforming technology, or hybrid digital/analog beamforming technology.
- Beams generally correspond to resources. For example, when performing beam measurement, the network device measures different beams through different resources. The terminal device feeds back the measured resource quality, and the network device knows the quality of the corresponding beam. During data transmission, beam information is also indicated by its corresponding resources. For example, the network device uses the transmission configuration indication (TCI) resource in the downlink control information (DCI) to indicate the physical downlink shared channel (PDSCH) beam information of the terminal device.
- TCI transmission configuration indication
- DCI downlink control information
- multiple beams with the same or similar communication characteristics may be regarded as one beam.
- One beam may include one or more antenna ports for transmitting data channels, control channels, detection signals, etc.
- One or more antenna ports forming a beam can also be viewed as a set of antenna ports.
- each beam of the network device corresponds to a resource, so the resource index can be used to uniquely identify the beam corresponding to the resource.
- the beam forming technology may be beamforming or other technical means. Beamforming technology can achieve higher antenna array gain by pointing it in a specific direction in space. Beamforming technology can be specifically digital beamforming technology, analog beamforming technology, and hybrid digital/analog beamforming technology. Analog beamforming can be achieved using phase shifters. A radio frequency chain (RF chain) adjusts the phase through a phase shifter to control changes in the direction of the analog beam. Therefore, a radio frequency link can only emit one analog beam at the same time.
- RF chain radio frequency chain
- RF links may also be called RF channels. That is, one radio frequency channel can only emit one beam at the same time.
- the beam corresponding to the resource can be uniquely identified through the index of the resource.
- the resource may be an uplink signal resource or a downlink signal resource.
- Uplink signals include but are not limited to: sounding reference signal (SRS) and demodulation reference signal (demodulation reference signal, DMRS).
- SRS sounding reference signal
- DMRS demodulation reference signal
- Downlink signals include but are not limited to: channel state information reference signal (CSI-RS), cell specific reference signal (CSRS), user equipment (User Equipment, UE) specific reference signal (user equipment specific reference signal, US-RS), demodulation reference signal (demodulation reference signal, DMRS) and synchronization signal/physical broadcast channel block (synchronization signal/physical broadcast channel block, SS/PBCH block).
- CSI-RS channel state information reference signal
- CSRS cell specific reference signal
- UE User Equipment
- US-RS user equipment specific reference signal
- demodulation reference signal demodulation reference signal
- SS/PBCH block synchronization signal/physical broadcast channel block
- SS/PBCH block can be referred to as synchronization signal block (SSB).
- RRC radio resource control
- a resource is a data structure, including the relevant parameters of its corresponding uplink/downlink signal, such as the type of uplink/downlink signal, the resource element that carries the uplink/downlink signal, and the transmission time and period of the uplink/downlink signal. , the number of ports used to send uplink/downlink signals, etc.
- Each uplink/downlink signal resource has a unique index to identify the uplink/downlink signal resource.
- the index of the resource can also be called the identifier of the resource, and this embodiment of the present application does not impose any limitation on this.
- Network equipment can generate beams in different directions.
- the specific direction of beams used to communicate with terminal devices is determined through beam management.
- Beam management mainly includes the following steps:
- Step 1 The network device configures beam resources.
- the network device configuring beam resources includes: the network device generates measurement configuration information (ie, beam measurement configuration information), and sends the measurement configuration information to the terminal device.
- measurement configuration information ie, beam measurement configuration information
- Measurement configuration information mainly includes two parts: resource configuration information and reporting configuration information.
- Resource configuration information refers to information related to measurement resources. Resource configuration information can be configured in the protocol through a three-level structure (resource configuration (resource Config)-resource set (resource set)-resource (resource)).
- Reporting configuration information refers to information related to measurement result reporting. Report configuration information can be configured in the protocol through Report Config.
- the network device can send measurement configuration information to the terminal through radio resource control (RRC) signaling.
- RRC radio resource control
- Step 2 The terminal equipment measures the beam communication quality.
- the network device sends downlink signals (ie, beams) on the resource element (Resource Element, RE) corresponding to the resource configured in the resource configuration information.
- the terminal device receives the downlink signal on the resource element corresponding to the resource configured in the resource configuration information, and configures it according to the measurement
- the downlink signal is measured using the configuration information to obtain the quality of the downlink signal, that is, the communication quality of the beam.
- Step 3 The terminal device selects the best beam and the terminal device reports the best beam to the network device.
- the terminal device sends a beam measurement report to the network device indicating the optimal beam.
- the beam measurement report may include the index and quality of one or more resources, etc.
- the beam measurement report can be carried in the physical uplink control channel (PUCCH) or the physical uplink shared channel (PUSCH).
- PUCCH physical uplink control channel
- PUSCH physical uplink shared channel
- Beam management resources refer to resources used for beam management, which can also be embodied as resources used for calculating and measuring beam quality.
- Beam quality includes layer 1reference signal received reference power (layer 1reference signal received power, L1-RSRP), layer 1reference signal received reference signal quality (layer 1reference signal received quality, L1-RSRQ), etc.
- beam management resources may include synchronization signals, broadcast channels, downlink channel measurement reference signals, tracking signals, downlink control channel demodulation reference signals, downlink shared channel demodulation reference signals, uplink sounding reference signals, uplink random access signals, etc. .
- Beam indication information is used to indicate the beam used for transmission, including transmitting beams and/or receiving beams. Including beam number, beam management resource number, uplink signal resource number, downlink signal resource number, absolute index of the beam, relative index of the beam, logical index of the beam, index of the antenna port corresponding to the beam, index of the antenna port group corresponding to the beam, The index of the downlink signal corresponding to the beam, the time index of the downlink synchronization signal block corresponding to the beam, the beam pair link (BPL) information, the transmit parameter corresponding to the beam (Tx parameter), and the receive parameter (Rx parameter) corresponding to the beam , the transmit weight corresponding to the beam, the weight matrix corresponding to the beam, the weight vector corresponding to the beam, the receive weight corresponding to the beam, the index of the transmit weight corresponding to the beam, the index of the weight matrix corresponding to the beam, the index of the weight vector corresponding to the beam, beam At least one of the index of the corresponding reception weight, the reception codebook corresponding to the
- the downlink signal includes a synchronization signal, Broadcast channel, broadcast signal demodulation signal, channel state information reference signal (CSI-RS), cell specific reference signal (cell specific reference signal, CSRS), UE specific reference signal (user equipment specific reference signal, US-RS), downlink control channel demodulation reference signal, downlink data channel demodulation reference signal, or downlink phase noise tracking signal.
- the uplink signal includes any one of the uplink random access sequence, uplink sounding reference signal, uplink control channel demodulation reference signal, uplink data channel demodulation reference signal, and uplink phase noise tracking signal.
- the network device may also allocate QCL identifiers to beams that have a quasi-co-location (QCL) relationship among the beams associated with the frequency resource group.
- QCL quasi-co-location
- the beam can also be called an air domain transmission filter
- the transmit beam can also be called an air domain transmit filter
- the receive beam can also be called an air domain receive filter.
- the beam indication information can also be embodied as a transmission configuration index (TCI).
- TCI can include a variety of parameters, such as cell number, bandwidth part number, reference signal identifier, synchronization signal block identifier, QCL type, etc.
- This application does not limit the metrics used to measure beam quality.
- Metrics for measuring beam quality include, but are not limited to:
- RSRP Reference signal received power
- Reference signal received strength indicator received signal strength indicator, RSSI
- SINR Signal to interference and noise ratio
- Signal quality indicator channel quality indicator, CQI
- the quasi-homologous relationship is used to indicate that multiple resources have one or more identical or similar communication characteristics.
- the same or similar communication configuration can be used.
- Large-scale characteristics may include: delay spread, average delay, Doppler spread, Doppler frequency shift, average gain, reception parameters, terminal equipment receive beam number, transmit/receive channel correlation, receive angle of arrival, receiver antenna Spatial correlation, main angle of arrival (angel-of-arrival, AoA), average angle of arrival, expansion of AoA, etc.
- Airspace quasi-colocation can be considered a type of QCL.
- the spatial domain From the perspective of the transmitter, if two antenna ports are quasi-colocated in the air domain, it means that the corresponding beam directions of the two antenna ports are consistent in space. From the receiving end, if the two antenna ports are quasi-co-located in the air domain, it means that the receiving end can receive the signals sent by the two antenna ports in the same beam direction.
- the quasi-colocation assumption refers to assuming whether there is a QCL relationship between two ports.
- the configuration and indication of quasi-colocation assumptions can be used to assist the receiving end in signal reception and demodulation.
- the receiving end can confirm that port A and port B have a QCL relationship, that is, the large-scale parameters of the signal measured on port A can be used for signal measurement and demodulation on port B.
- Simultaneous reception includes the receiving end (such as a terminal device) receiving multiple signals on one receiving parameter, and also includes receiving multiple signals on multiple receiving parameters that can be used simultaneously.
- Wireless communication signals need to be received and sent by antennas.
- Multiple antenna elements can be integrated on a panel, which can be called an antenna panel.
- the antenna panel can also be expressed as an antenna array (antenna array) or antenna subarray (antenna subarray).
- An antenna panel may include one or more antenna arrays/sub-arrays.
- An antenna panel can have one or more crystal oscillators (oscillators) controlled.
- the terminal device may include multiple antenna panels, and each antenna panel may include one or more beams.
- Network equipment may also include multiple antenna panels, each antenna panel including one or more beams.
- the antenna elements are driven by the radio frequency link.
- An RF link can drive one or more antenna elements.
- An antenna panel can be driven by one RF link or by multiple RF links. In this application, the antenna panel can also be replaced by a radio frequency link, or multiple radio frequency links driving one antenna panel, or one or more radio frequency links controlled by a crystal oscillator.
- RF links may also be called RF channels.
- radio frequency channels may include receive channels and/or transmit channels.
- An RF link or RF channel may also be called a receiver branch.
- the embodiment of this application provides a data collection method, as shown in Figure 2, including:
- Step 101 The first communication device sends first information to the second communication device.
- the first information indicates the first auxiliary information and/or the capability information of the first communication device.
- the first auxiliary information is used to indicate the method of data collection.
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- Step 102 The first communication device receives the second information sent by the second communication device, where the second information is used to indicate the beam configuration of the second communication device;
- Step 103 The first communication device obtains a data sample based on the second information.
- the first auxiliary information includes requirement information indicating the period of the beam measuring a single sample, and the first auxiliary beam,
- the first auxiliary information also includes at least one of the following: the number of total measurement cycles of a single beam measurement sample; the number of beam measurement samples. in,
- the total number of measurement cycles for a single beam measurement sample refers to the number of measurement cycles for a sample in the time dimension.
- the measurement configuration of a measurement cycle includes multiple reference resources, corresponding to which multiple beams can be measured. For example, if the measurement cycle interval is 40ms, and the measurement configuration of one measurement cycle is configured with 8 reference signals, then the number of measurement cycles within 160ms is 4, and each measurement cycle can measure 8 beams;
- the requirement for the period of a single beam measurement sample represents the requirement for the second communication device to be configured as the first auxiliary beam in the reference signal resource dimension and/or the time dimension, and the requirement for the period of the beam measurement single sample
- the requirements include the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, the first reference signal resources being reference signal resources for the second communication device using a first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- a second auxiliary beam is configured, and the second auxiliary beam enables the first communication device to signal The beam of the second communication device with the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the above information indicates that in the reference resource dimension and/or the time dimension, the number or proportion of resources of the second communication device configured as the first auxiliary beam.
- the first auxiliary beam is the second communication device requested by the first communication device. beam.
- the data collected by the first communication device can be used for single-side beam prediction, beam inference, or beam performance evaluation. Otherwise, if the second communication device is not configured as the first auxiliary beam, the data collected by the first communication device is directly used for training or inference of the AI model, and the effect of unilateral prediction cannot be achieved.
- the first communication device may be a network side device or a terminal
- the second communication device may be a terminal or a network side device.
- the first communication device may instruct the second communication device to configure the first auxiliary beam through the first information, and learn whether the second communication device is configured as the first auxiliary beam through the second information, and then determine whether multiple measurement results can be combined. Together they serve as a beam prediction training sample, inference sample, or performance monitoring sample.
- the terminal is configured as the first auxiliary beam, and the network side predicts the best transmit beam based on historical transmit beam information, or the network side is configured as the first auxiliary beam, and the terminal side predicts the best receive beam based on historical receive beam information.
- the first auxiliary beam is a preset beam or a network side transmitting beam or a terminal receiving beam that enables the strongest received signal quality.
- the capability information of the first communication device includes at least one of the following:
- the second communication device can use the beam according to its own goals, There is no need to assist with the first communication device.
- the first communication device has relatively strong capabilities and can support AI reasoning, training, and performance monitoring in scenarios where the second communication device does not assist. If the instruction requires the second communication device to use the first auxiliary beam in conjunction with the first auxiliary beam, in this case the first communication device is unable to collect data required for AI inference, training, and performance monitoring without the assistance of the second communication device;
- Types of first auxiliary beams that can support data collection The more types of first auxiliary beams that can be supported, the stronger the capability of the first device;
- the minimum number of measurement cycles of the first auxiliary beam that can support data collection The smaller the number of cycles, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device;
- the third number of minimum reference signal resources of the first auxiliary beam that can support data collection indicates the capability of the first communication device and also indicates the cooperation degree of the second communication device. The smaller the number, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device;
- the minimum proportion of the third number that can support data collection to the second number indicates the capability of the first communication device and also indicates the cooperation degree of the second communication device. The smaller the minimum ratio, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the prediction capability index of the second auxiliary beam is the prediction capability index of the second auxiliary beam.
- the first communication device learns whether the second communication device is configured as the first auxiliary beam through the second information, and can then determine whether multiple measurement results can be combined together as a beam prediction training sample, inference sample, or performance monitoring sample.
- the terminal is configured as the first auxiliary beam, and the network side predicts the best transmit beam based on historical transmit beam information, or the network side is configured as the first auxiliary beam, and the terminal side predicts the best receive beam based on historical receive beam information. Samples are collected online, or inference samples are collected online, or performance monitoring samples are collected online, thereby enabling AI-based beam prediction.
- the first auxiliary beam is a preset beam or a network side transmitting beam or a terminal receiving beam that enables the strongest received signal quality.
- the period of the beam measurement single sample includes a first period and a second period
- the first communication device obtaining the data sample based on the second information includes:
- the first communication device measures the beam as the input of the beam measurement sample in the first period; and measures the beam as the label of the beam measurement sample in the second period.
- the first communication device is a terminal (UE)
- the second communication device is a network side device (including a base station)
- the second information includes measurement configuration information. After the measurement configuration information is obtained, beam measurement can be performed based on the measurement configuration information.
- this embodiment includes the following steps:
- Step 2 The base station finds a suitable transmit beam, such as the best transmit beam reported by the latest UE, or obtains the best transmit beam through prediction, and fixes the transmit beam to the preset beam;
- Step 3 The base station sends measurement configuration information to the UE, including:
- NZP-CSI-RS-ResourceSet One or more non-zero power channel state information reference signal resource sets (NZP-CSI-RS-ResourceSet), including repetition ON/off, that is, whether to repeat;
- the first auxiliary beam type that can support data collection is a certain preset beam
- Step 4 The UE performs beam quality measurement based on the measurement configuration, that is, performs data collection, and then generates samples based on the second information.
- the base station indicates through the second information whether the base station is configured as the first auxiliary beam in this measurement configuration, that is, a desired preset beam, which can help the UE determine whether multiple measurement results can be combined in Together as a beam prediction inference sample.
- the base station configures the transmit beam as the first auxiliary beam, online collection of inference samples for the UE to predict the best receive beam based on historical receive beam information is enabled.
- the method further includes:
- the first communication device performs beam measurement on the configured reference signal
- the current beam measurement is determined according to whether the current measurement configuration of the second communication device in the second information is the same as the historical measurement configuration, or whether the current measurement configuration of the second communication device uses the second auxiliary beam. Whether the results and historical beam measurement results form a beam measurement sample.
- this beam measurement belongs to either the first cycle or the second cycle.
- this embodiment includes the following steps:
- the base station which includes: the first period
- Step 2 The base station finds a suitable transmitting beam, such as the best transmitting beam reported by the UE most recently, or obtains the best transmitting beam through prediction;
- Step 3 The base station sends measurement configuration information to the UE, including:
- NZP-CSI-RS-ResourceSet One or more non-zero power channel state information reference signal resource sets (NZP-CSI-RS-ResourceSet), including repetition ON/off, that is, whether to repeat;
- the first auxiliary beam type that can support data collection is the second auxiliary beam
- Step 4 The UE performs beam quality measurement based on the measurement configuration, that is, data collection. Based on the second letter information generation sample.
- the base station indicates through the second information whether the base station is configured as the second auxiliary beam in this measurement configuration, that is, the terminal receives the beam with the highest quality, which can help the UE determine whether multiple measurement results can be combined in Together they serve as a beam prediction training sample or performance monitoring sample. It is enabled that when the network configures the transmit beam to be the second auxiliary beam, the UE predicts the online collection of training samples of the best receive beam based on historical receive beam information, or the online collection of performance monitoring samples.
- the method further includes:
- the first communication device performs beam measurement on the configured reference signal
- the current beam measurement is determined according to whether the current measurement configuration of the second communication device in the second information is the same as the historical measurement configuration, or whether the current measurement configuration of the second communication device uses the second auxiliary beam. Whether the results and historical beam measurement results form a beam measurement sample.
- this beam measurement belongs to either the first cycle or the second cycle.
- the number of measurement cycles of the first period in the first information is 2, and within a measurement resource configuration, the second communication device configures the number of reference signal resources of the first auxiliary beam to be 2. ;
- the number of measurement cycles in the second cycle is 1.
- the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8;
- the UE receives the second information measured in 3 cycles, and the One piece of second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2, and the second piece of second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2.
- the third second information indicates that the second communication device configures the number of reference signal resources as the first auxiliary beam to be 8.
- the beam information measured in the first two cycles can be used as input, and the beam information measured in the last cycle can be used as a label, and combined into a training or performance monitoring sample that predicts the future cycle based on the two historical cycles.
- the number of measurement cycles in the first period in the first information is 2, and within a measurement resource configuration, the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2; The number of measurement cycles in the second cycle is 2.
- the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8; the UE receives the second information measured in 4 cycles,
- the first second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2
- the second second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2.
- the third piece of second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8, and the fourth piece of second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8.
- the number is 8.
- the beam information measured in the first 2 cycles can be used as input, and the beam information measured in the last 2 cycles can be used as labels to combine into a training or performance monitoring sample based on the historical 2 cycles to predict the next 2 cycles.
- the number of measurement cycles in the first period in the first information is 2, and within a measurement resource configuration, the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8; Second cycle test The number of measurement cycles is 1.
- the number of reference signal resources configured by the second communication device as the first auxiliary beam is 8; the UE receives the second information of 3 cycles of measurement, and the first second information
- the number of reference signal resources indicating that the second communication device is configured as the first auxiliary beam is 8, and the number of cycles in which the second communication device is configured as the first auxiliary beam in the future is 1;
- the second second information indicates that the second communication device is configured as The number of reference signal resources of the first auxiliary beam is 8, and the number of cycles in which the second communication device is configured as the first auxiliary beam in the future is 0;
- the third second information indicates that the second communication device is configured as the reference signal of the first auxiliary beam.
- the number of resources is 8.
- the beam information measured in the first two cycles can be used as input, and the beam information measured in the last cycle can be used as a label, and combined into a training or performance monitoring sample that predicts the future cycle based on the two historical cycles.
- the number of measurement cycles in the first period in the first information is 3, and within a measurement resource configuration, the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2;
- the number of measurement cycles in the second cycle is 0;
- the UE receives the second information measured in 3 cycles, and the first second information indicates that the number of reference signal resources configured by the second communication device as the first auxiliary beam is 2,
- the number of cycles for the second communication device to be configured as the first auxiliary beam in the future is 2;
- the second second information indicates that the number of reference signal resources for the second communication device to be configured as the first auxiliary beam is 2, and the number of cycles for the second communication device to be configured as the first auxiliary beam in the future is
- the number of cycles of the first auxiliary beam is 1;
- the third second information indicates that the number of reference signal resources for the second communication device to be configured as the first auxiliary beam is 2, and the number of cycles for the second communication device to be configured as the first auxiliary beam in the future is 0. Therefore, the beam information
- the first communication device is a network side device
- the second communication device is a terminal
- the first information also includes measurement configuration information
- the second information includes beam measurement results and the second Beam configuration of communication equipment.
- the terminal After receiving the measurement configuration information from the network side device, the terminal can perform beam measurement according to the measurement configuration information, and feedback to the network side device whether to respond to the measurement configuration information.
- this embodiment includes the following steps:
- Step 1 The base station sends measurement configuration information (including first information) to the UE, including
- One or more NZP-CSI-RS-ResourceSets used to instruct the UE to use the reference signal resource configuration of the first auxiliary beam in this measurement configuration, including repetition off, that is, no repetition;
- the first auxiliary beam type is a certain preset beam
- Step 2 The UE determines that the receiving beam is the first auxiliary beam, performs beam measurement, and reports the beam measurement results, including:
- the first auxiliary beam type is a certain preset beam
- Step 3 The base station generates a sample based on the second information.
- the terminal can use the second information to indicate whether the received beams among multiple measurement reports are consistent, which can help the base station determine whether the results of multiple measurement reports can be combined together as a beam prediction training sample or inference.
- Samples, or performance monitoring samples It is enabled that when the terminal is configured as the first auxiliary beam, the base station predicts the best transmission beam based on historical transmission beam information to collect online training samples, or online collection of inference samples, or online collection of performance monitoring samples.
- this embodiment includes the following steps:
- Step 1 The base station sends measurement configuration information (including first information) to the UE, including
- One or more NZP-CSI-RS-ResourceSets used to instruct the UE to use the reference signal resource configuration of the first auxiliary beam in this measurement configuration, including repetition off, that is, no repetition;
- the first auxiliary beam type is the second auxiliary beam
- Step 2 The UE determines the receiving beam, performs beam measurement, and reports the beam measurement results, including:
- the first auxiliary beam type is the second auxiliary beam
- Step 3 The base station generates a sample based on the second information.
- the terminal can indicate through the second information whether multiple measurement reports use the second auxiliary beam, thereby helping the base station determine whether the results of multiple measurement reports can be combined together as a beam prediction training sample. Or inference samples, or performance monitoring samples.
- the network is enabled to collect online training samples, inference samples, or performance monitoring samples to predict the best transmit beam based on historical transmit beam information.
- the number of cycles is equivalent to the number of cycles, the number of cycles, or the number of cycles.
- the embodiment of this application also provides a data collection method, as shown in Figure 9, including:
- Step 201 The second communication device receives the first information sent by the first communication device.
- the first information indicates the first auxiliary information and/or the capability information of the first communication device.
- the first auxiliary information is used to indicate data collection.
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- Step 202 The second communication device sends second information to the first communication device, where the second information is used to indicate the beam configuration of the second communication device.
- the first auxiliary information includes requirement information indicating a period for beam measurement of a single sample, and first auxiliary beam,
- the requirement for the period of a single beam measurement sample represents the requirement for the second communication device to be configured as the first auxiliary beam in the reference signal resource dimension and/or the time dimension, and the requirement for the period of the beam measurement single sample
- the requirements include the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, the first reference signal resources being reference signal resources for the second communication device using a first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- the second auxiliary beam being the beam of the second communication device that enables the first communication device to have the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the capability information of the first communication device includes at least one of the following:
- the third number is a minimum proportion of the second number that can support data collection.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the prediction capability index of the second auxiliary beam is the prediction capability index of the second auxiliary beam.
- the first communication device is a terminal
- the second communication device is a network side device
- the second information includes measurement configuration information
- the first communication device is a network side device
- the second communication device is a terminal
- the first information also includes measurement configuration information
- the second information includes beam measurement results and the second Beam configuration of communication equipment.
- the second communication device sending the second information in response to the first information to the first communication device includes:
- the second communication device determines a beam of the second communication device based on the first information
- the second communication device performs beam measurement on the configured reference signal
- the second communication device determines second information, the second information indicates whether the second communication device adopts the same beam as the historical measurement configuration, or indicates whether the second communication device uses such that the first communication device
- the beam with the highest channel quality the second information also includes beam quality information.
- the method further includes:
- the current measurement configuration of the second communication device and the historical measurement configuration in the second information use the same beam, or whether the current measurement configuration of the second communication device uses the second auxiliary beam, determine the current beam. Whether the measurement results and historical beam measurement results form a beam measurement sample.
- the execution subject may be a data collection device.
- the data collection device executing the data collection method is used as an example to illustrate the data collection device provided by the embodiment of the present application.
- An embodiment of the present application provides a data collection device, applied to a first communication device, including:
- the first sending module is configured to send first information to the second communication device, where the first information indicates the first auxiliary information and/or the capability information of the first communication device, and the first auxiliary information is used to indicate the method of data collection. Auxiliary requirements, the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- a first receiving module configured to receive second information sent by the second communication device, where the second information is used to indicate the beam configuration of the second communication device;
- a processing module configured to obtain data samples based on the second information.
- the first auxiliary information includes requirement information indicating the period of the beam measuring a single sample, and the first auxiliary beam,
- the first auxiliary information also includes at least one of the following:
- the total number of measurement cycles for a single beam measurement sample that is, the number of measurement cycles for a sample in the time dimension.
- the measurement configuration of a measurement cycle can be divided into multiple reference resources, corresponding to which multiple beams can be measured. For example, if the measurement cycle interval is 40ms, and 8 reference signals are configured for one measurement cycle, the number of measurement cycles within 160ms is 4, and each measurement cycle can measure 8 beams;
- the requirement for the period of a single beam measurement sample represents the requirement for the second communication device to be configured as the first auxiliary beam in the reference signal resource dimension and/or the time dimension, and the requirement for the period of the beam measurement single sample
- the requirements include the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, and the first reference signal resource is The second communication device uses the reference signal resources of the first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- the second auxiliary beam being the beam of the second communication device that enables the first communication device to have the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the above information indicates that in the reference resource dimension and/or the time dimension, the number or proportion of resources of the second communication device configured as the first auxiliary beam.
- the first auxiliary beam is the second communication device requested by the first communication device. beam.
- the data collected by the first communication device can be used for single-side beam prediction, beam inference, or beam performance evaluation. Otherwise, if the second communication device is not configured as the first auxiliary beam, the data collected by the first communication device is directly used for training or inference of the AI model, and the effect of unilateral prediction cannot be achieved.
- the first communication device may be a network side device or a terminal
- the second communication device may be a terminal or a network side device.
- the first communication device can instruct the second communication device to configure the first auxiliary beam through the first information, and learn whether the second communication device is configured as the first auxiliary beam through the second information, and then determine whether multiple measurement results can be combined. Together they serve as a beam prediction training sample, inference sample, or performance monitoring sample.
- the terminal is configured as the first auxiliary beam, and the network side predicts the best transmit beam based on historical transmit beam information, or the network side is configured as the first auxiliary beam, and the terminal side predicts the best receive beam based on historical receive beam information.
- the first auxiliary beam is a preset beam or a network side transmitting beam or a terminal receiving beam that enables the strongest received signal quality.
- the capability information of the first communication device includes at least one of the following:
- the second communication device can use the beam according to its own goals, There is no need to assist with the first communication device.
- the first communication device has relatively strong capabilities and can support AI reasoning, training, and performance monitoring in scenarios where the second communication device does not assist. If the instruction requires the second communication device to use the first auxiliary beam in conjunction with the first auxiliary beam, in this case the first communication device is unable to collect data required for AI inference, training, and performance monitoring without the assistance of the second communication device;
- Types of first auxiliary beams that can support data collection The more types of first auxiliary beams that can be supported, the stronger the capability of the first device;
- the minimum number of measurement cycles of the first auxiliary beam that can support data collection The smaller the number of cycles, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device;
- the third number of minimum reference signal resources of the first auxiliary beam that can support data collection indicates the capability of the first communication device and also indicates the cooperation degree of the second communication device. The smaller the number, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device;
- the minimum proportion of the third number that can support data collection to the second number indicates the capability of the first communication device and also indicates the cooperation degree of the second communication device. The smaller the minimum ratio, the lower the need for assistance from the second communication device and the stronger the capability of the first communication device.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the prediction capability index of the second auxiliary beam is the prediction capability index of the second auxiliary beam.
- the first communication device learns whether the second communication device is configured as the first auxiliary beam through the second information, and can then determine whether multiple measurement results can be combined together as a beam prediction training sample, inference sample, or performance monitoring sample.
- the terminal is configured as the first auxiliary beam, and the network side predicts the best transmit beam based on historical transmit beam information, or the network side is configured as the first auxiliary beam, and the terminal side predicts the best receive beam based on historical receive beam information. Samples are collected online, or inference samples are collected online, or performance monitoring samples are collected online, thereby enabling AI-based beam prediction.
- the first auxiliary beam is a preset beam or a network side transmitting beam or a terminal receiving beam that enables the strongest received signal quality.
- the first communication device is a terminal
- the second communication device is a network side device
- the second information includes measurement configuration information
- the period of the beam measurement single sample includes a first period and a second period
- the processing module is configured to measure the beam in the first period as the input of the beam measurement sample; in the second period
- the measurement beam serves as a label for the beam measurement sample.
- the processing module is configured to perform beam measurement on the configured reference signal; according to whether the current measurement configuration of the second communication device in the second information is the same as the historical measurement configuration, or whether the second measurement configuration is the same. Whether the current measurement configuration of the second communication device uses the second auxiliary beam, determine whether the current beam measurement result and the historical beam measurement result form a beam measurement sample.
- the processing module is configured to determine whether the current beam measurement belongs to one of the first cycle or the second cycle based on the first number of the current beam measurement.
- the first communication device is a network side device
- the second communication device is a terminal
- the third communication device is a terminal.
- One piece of information further includes measurement configuration information
- the second information includes beam measurement results and the beam configuration of the second communication device.
- the processing module is configured to use the same beam according to whether the current measurement configuration of the second communication device and the historical measurement configuration in the second information, or whether the current measurement configuration of the second communication device uses The second auxiliary beam determines whether the current beam measurement results and the historical beam measurement results form a beam measurement sample.
- An embodiment of the present application provides a data collection device applied to a second communication device, including:
- the second receiving module is used to receive the first information sent by the first communication device.
- the first information indicates the first auxiliary information and/or the capability information of the first communication device.
- the first auxiliary information is used to indicate data collection.
- the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- the second sending module is configured to send second information to the first communication device, where the second information is used to indicate the beam configuration of the second communication device.
- the first auxiliary information includes requirement information indicating the period of the beam measuring a single sample, and the first auxiliary beam,
- the requirement for the period of a single beam measurement sample represents the requirement for the second communication device to be configured as the first auxiliary beam in the reference signal resource dimension and/or the time dimension, and the requirement for the period of the beam measurement single sample
- the requirements include the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, the first reference signal resources being reference signal resources for the second communication device using a first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- the second auxiliary beam being the beam of the second communication device that enables the first communication device to have the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the capability information of the first communication device includes at least one of the following:
- the third number is a minimum proportion of the second number that can support data collection.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the prediction capability index of the second auxiliary beam is the prediction capability index of the second auxiliary beam.
- the first communication device is a terminal
- the second communication device is a network side device
- the second information includes measurement configuration information
- the first communication device is a network side device
- the second communication device is a terminal
- the first information also includes measurement configuration information
- the second information includes beam measurement results and the second Beam configuration of communication equipment.
- the second sending module is configured to determine the beam of the second communication device according to the first information; perform beam measurement on the configured reference signal; determine second information, and the second information indicates that the Whether the second communication device uses the same beam as the historical measurement configuration, or indicates whether the second communication device uses a beam that makes the first communication device have the highest channel quality, and the second information also includes beam quality information.
- the second sending module is configured to use the same beam according to whether the current measurement configuration of the second communication device and the historical measurement configuration in the second information, or whether the current measurement configuration of the second communication device uses the same beam. Check whether the second auxiliary beam is used in the measurement configuration, and determine whether the current beam measurement results and the historical beam measurement results form a beam measurement sample.
- the data collection device in the embodiment of the present application may be an electronic device, such as an electronic device with an operating system, or may be a component in the electronic device, such as an integrated circuit or chip.
- the electronic device may be a terminal or other devices other than the terminal.
- terminals may include but are not limited to the types of terminals 11 listed above, and other devices may be servers, network attached storage (Network Attached Storage, NAS), etc., which are not specifically limited in the embodiment of this application.
- NAS Network Attached Storage
- the data collection device provided by the embodiments of the present application can implement each process implemented by the method embodiments in Figures 2 to 9, and achieve the same technical effect. To avoid duplication, the details will not be described here.
- this embodiment of the present application also provides a communication device 600, which includes a processor 601 and a memory 602.
- the memory 602 stores programs or instructions that can be run on the processor 601, for example.
- the communication device 600 is the first communication device, when the program or instruction is executed by the processor 601, each step of the above-mentioned data collection method embodiment is implemented, and the same technical effect can be achieved.
- the communication device 600 is a second communication device, when the program or instruction is executed by the processor 601, each step of the above-mentioned data collection method embodiment is implemented, and the same technical effect can be achieved. To avoid duplication, the details will not be described here.
- An embodiment of the present application also provides a first communication device.
- the first communication device includes a processor and a memory.
- the memory stores programs or instructions that can be run on the processor.
- the program or instructions are processed by the processor.
- the processor when executed, implements the steps of the data acquisition method as described above.
- An embodiment of the present application also provides a first communication device, including a processor and a communication interface, wherein the communication interface is used to send first information to the second communication device, where the first information indicates the first auxiliary information and /or capability information of the first communication device, the first auxiliary information is used to indicate the auxiliary requirements for data collection, the capability information of the first communication device is used to indicate the data collection capability of the first communication device; receiving the first communication device Second information sent by the second communication device, the second information is used to indicate the beam configuration of the second communication device; the processor is used to obtain data samples based on the second information.
- An embodiment of the present application also provides a second communication device.
- the second communication device includes a processor and a memory.
- the memory stores programs or instructions that can be run on the processor.
- the program or instructions are processed by the processor.
- the processor when executed, implements the steps of the method as described in the third aspect.
- Embodiments of the present application also provide a second communication device, including a processor and a communication interface, wherein the communication interface is used to receive first information sent by the first communication device, where the first information indicates first auxiliary information. And/or the capability information of the first communication device, the first auxiliary information is used to indicate the auxiliary requirements for data collection, the capability information of the first communication device is used to indicate the data collection capability of the first communication device; to the The first communication device sends second information, the second information being used to indicate the beam configuration of the second communication device.
- the first communication device may be a network side device or a terminal
- the second communication device may be a terminal or a network side device.
- FIG. 11 is a schematic diagram of the hardware structure of a terminal that implements an embodiment of the present application.
- the terminal 700 includes but is not limited to: a radio frequency unit 701, a network module 702, an audio output unit 703, an input unit 704, a sensor 705, a display unit 706, a user input unit 707, an interface unit 708, a memory 709, a processor 710, etc. At least some parts.
- the terminal 700 may also include a power supply (such as a battery) that supplies power to various components.
- the power supply may be logically connected to the processor 710 through a power management system, thereby managing charging, discharging, and power consumption through the power management system. Management and other functions.
- the terminal structure shown in FIG. 11 does not constitute a limitation on the terminal.
- the terminal may include more or fewer components than shown in the figure, or some components may be combined or arranged differently, which will not be described again here.
- the input unit 704 may include a graphics processing unit (GPU) 7041 and a microphone 7042.
- the graphics processing unit 7041 is responsible for the image capture device (GPU) in the video capture mode or the image capture mode. Process the image data of still pictures or videos obtained by cameras (such as cameras).
- the display unit 706 may include a display panel 7061, which may be configured in the form of a liquid crystal display, an organic light emitting diode, or the like.
- the user input unit 707 includes a touch panel 7071 and other input devices 7072. One less. Touch panel 7071, also called touch screen.
- the touch panel 7071 may include two parts: a touch detection device and a touch controller.
- Other input devices 7072 may include but are not limited to physical keyboards, function keys (such as volume control keys, switch keys, etc.), trackballs, mice, and joysticks, which will not be described again here.
- the radio frequency unit 701 after receiving downlink data from the network side device, can transmit it to the processor 710 for processing; in addition, the radio frequency unit 701 can send uplink data to the network side device.
- the radio frequency unit 701 includes, but is not limited to, an antenna, amplifier, transceiver, coupler, low noise amplifier, duplexer, etc.
- Memory 709 may be used to store software programs or instructions as well as various data.
- the memory 709 may mainly include a first storage area for storing programs or instructions and a second storage area for storing data, wherein the first storage area may store an operating system, an application program or instructions required for at least one function (such as a sound playback function, Image playback function, etc.) etc.
- memory 709 may include volatile memory or non-volatile memory, or memory 709 may include both volatile and non-volatile memory.
- non-volatile memory can be read-only memory (Read-Only Memory, ROM), programmable read-only memory (Programmable ROM, PROM), erasable programmable read-only memory (Erasable PROM, EPROM), electrically removable memory. Erase programmable read-only memory (Electrically EPROM, EEPROM) or flash memory.
- Volatile memory can be random access memory (Random Access Memory, RAM), static random access memory (Static RAM, SRAM), dynamic random access memory (Dynamic RAM, DRAM), synchronous dynamic random access memory (Synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (Double Data Rate SDRAM, DDRSDRAM), enhanced synchronous dynamic random access memory (Enhanced SDRAM, ESDRAM), synchronous link dynamic random access memory (Synch link DRAM) , SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DRRAM).
- RAM Random Access Memory
- SRAM static random access memory
- DRAM dynamic random access memory
- DRAM synchronous dynamic random access memory
- SDRAM double data rate synchronous dynamic random access memory
- Double Data Rate SDRAM Double Data Rate SDRAM
- DDRSDRAM double data rate synchronous dynamic random access memory
- Enhanced SDRAM, ESDRAM enhanced synchronous dynamic random access memory
- Synch link DRAM synchronous link dynamic random access memory
- SLDRAM direct memory bus
- the processor 710 may include one or more processing units; optionally, the processor 710 integrates an application processor and a modem processor, where the application processor mainly handles operations related to the operating system, user interface, application programs, etc., Modem processors mainly process wireless communication signals, such as baseband processors. It can be understood that the above-mentioned modem processor may not be integrated into the processor 710.
- the first communication device is a terminal
- the processor 710 is configured to send first information to the second communication device, where the first information indicates the first auxiliary information and/or the capability information of the first communication device, and the The first auxiliary information is used to indicate the auxiliary requirements for data collection, and the capability information of the first communication device is used to indicate the data collection capability of the first communication device; upon receiving the second information sent by the second communication device, the first communication device The second information is used to indicate the beam configuration of the second communication device; data samples are obtained based on the second information.
- the first auxiliary information includes requirement information indicating the period of the beam measuring a single sample, and the first auxiliary beam,
- the first auxiliary information also includes at least one of the following:
- the requirement of the period of the beam measurement single sample indicates that the second communication device is in the reference signal resource dimension. And/or the requirement of being configured as the first auxiliary beam in the time dimension, the requirement of the period of the beam measuring a single sample includes the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, the first reference signal resources being reference signal resources for the second communication device using a first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- the second auxiliary beam being the beam of the second communication device that enables the first communication device to have the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the capability information of the first communication device includes at least one of the following:
- the third number is a minimum proportion of the second number that can support data collection.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the second information includes measurement configuration information.
- the period of the beam measurement single sample includes a first period and a second period
- the processor 710 is configured to measure the beam in the first period as the input of the beam measurement sample; measure in the second period Beam serves as a label for the beam measurement sample.
- the processor 710 is configured to perform beam measurement on the configured reference signal; according to whether the current measurement configuration of the second communication device in the second information is the same as the historical measurement configuration, or whether the second measurement configuration is the same. Whether the current measurement configuration of the communication equipment uses the second auxiliary beam, determine whether the current beam measurement results are consistent with the historical beam measurement results. Form a beam measurement sample.
- the processor 710 is configured to determine whether the current beam measurement belongs to one of the first cycle or the second cycle based on the first number of the current beam measurement.
- the second communication device is a terminal
- the processor 710 is configured to receive the first information sent by the first communication device, where the first information indicates the first auxiliary information and/or the capability information of the first communication device, so
- the first auxiliary information is used to indicate auxiliary requirements for data collection, and the capability information of the first communication device is used to indicate the data collection capability of the first communication device;
- the second information is sent to the first communication device, and the second information is sent to the first communication device.
- the second information is used to indicate the beam configuration of the second communication device.
- the first auxiliary information includes requirement information indicating the period of the beam measuring a single sample, and the first auxiliary beam,
- the first auxiliary information also includes at least one of the following:
- the requirement for the period of a single beam measurement sample represents the requirement for the second communication device to be configured as the first auxiliary beam in the reference signal resource dimension and/or the time dimension, and the requirement for the period of the beam measurement single sample
- the requirements include the number of beam measurement cycles, and at least one of the following:
- the second communication device is configured with a first number of first reference signal resources, the first reference signal resources being reference signal resources for the second communication device using a first auxiliary beam;
- the first auxiliary beam is the beam of the second communication device requested by the first communication device, including at least one of the following:
- the second auxiliary beam being the beam of the second communication device that enables the first communication device to have the highest channel quality
- the beam of the second communication device is configured as a preset one.
- the capability information of the first communication device includes at least one of the following:
- the third number is a minimum proportion of the second number that can support data collection.
- the second information includes at least one of the following:
- the second communication device configures the type of the first auxiliary beam for this measurement
- the first information further includes measurement configuration information
- the second information includes beam measurement results and the beam configuration of the second communication device.
- the processor 710 is configured to determine the beam of the second communication device according to the first information; perform beam measurement on the configured reference signal; determine second information, the second information indicating the second Whether the communication device adopts the same beam as the historical measurement configuration, or indicates whether the second communication device uses the beam that makes the first communication device have the highest channel quality, and the second information also includes beam quality information.
- the processor 710 is configured to use the same beam according to whether the current measurement configuration of the second communication device and the historical measurement configuration in the second information, or whether the current measurement configuration of the second communication device uses the same beam. Use the second auxiliary beam to determine whether the current beam measurement result and the historical beam measurement result form a beam measurement sample.
- embodiments of the present application further provide a network-side device, including a processor and a communication interface.
- a network-side device including a processor and a communication interface.
- the embodiment of the present application also provides a network side device.
- the network side device 800 includes: an antenna 81 , a radio frequency device 82 , a baseband device 83 , a processor 84 and a memory 85 .
- the antenna 81 is connected to the radio frequency device 82 .
- the radio frequency device 82 receives information through the antenna 81 and sends the received information to the baseband device 83 for processing.
- the baseband device 83 processes the information to be sent and sends it to the radio frequency device 82.
- the radio frequency device 82 processes the received information and then sends it out through the antenna 81.
- the method performed by the network side device in the above embodiment can be implemented in the baseband device 83, which includes a baseband processor.
- the baseband device 83 may include, for example, at least one baseband board on which multiple chips are disposed, as shown in FIG. Program to perform the network device operations shown in the above method embodiments.
- the network side device may also include a network interface 86, which is, for example, a common public radio interface (CPRI).
- a network interface 86 which is, for example, a common public radio interface (CPRI).
- CPRI common public radio interface
- the network side device 800 in this embodiment of the present invention also includes: instructions or programs stored in the memory 85 and executable on the processor 84.
- the processor 84 calls the instructions or programs in the memory 85 to execute the data as described above. Collection methods and achieve the same technical effect. To avoid duplication, they will not be described in detail here.
- Embodiments of the present application also provide a readable storage medium.
- Programs or instructions are stored on the readable storage medium.
- the program or instructions are executed by the processor, each process of the above-mentioned data collection method embodiment is implemented, and the same can be achieved. skills To avoid repetition, we will not go into details here.
- the processor is the processor in the terminal described in the above embodiment.
- the readable storage medium includes computer readable storage media, such as computer read-only memory ROM, random access memory RAM, magnetic disk or optical disk, etc.
- An embodiment of the present application further provides a chip.
- the chip includes a processor and a communication interface.
- the communication interface is coupled to the processor.
- the processor is used to run programs or instructions to implement the above data collection method embodiment. Each process can achieve the same technical effect. To avoid duplication, it will not be described again here.
- chips mentioned in the embodiments of this application may also be called system-on-chip, system-on-a-chip, system-on-chip or system-on-chip, etc.
- Embodiments of the present application further provide a computer program/program product.
- the computer program/program product is stored in a storage medium.
- the computer program/program product is executed by at least one processor to implement the above data collection method embodiment.
- Each process can achieve the same technical effect. To avoid repetition, we will not go into details here.
- An embodiment of the present application also provides a communication system, including: a first communication device and a second communication device.
- the first communication device can be used to perform the steps of the data collection method as described above.
- the second communication device can be used To perform the steps of the data collection method as described above.
- the methods of the above embodiments can be implemented by means of software plus the necessary general hardware platform. Of course, it can also be implemented by hardware, but in many cases the former is better. implementation.
- the technical solution of the present application can be embodied in the form of a computer software product that is essentially or contributes to the existing technology.
- the computer software product is stored in a storage medium (such as ROM/RAM, disk , CD), including several instructions to cause a terminal (which can be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in various embodiments of this application.
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Abstract
Description
Claims (22)
- 一种数据采集方法,包括:第一通信设备向第二通信设备发送第一信息,所述第一信息指示第一辅助信息和/或第一通信设备的能力信息,所述第一辅助信息用于指示数据采集的辅助需求,所述第一通信设备的能力信息用于指示第一通信设备的数据采集能力;所述第一通信设备接收所述第二通信设备发送的第二信息,所述第二信息用于指示第二通信设备的波束配置;所述第一通信设备基于所述第二信息获取数据样本。
- 根据权利要求1所述的数据采集方法,其中,所述第一辅助信息包括指示波束测量单样本的周期的需求信息,以及第一辅助波束,所述第一辅助信息还包括以下至少一项:波束测量单样本的总的测量周期的数目;波束测量样本的数目;其中,所述波束测量单样本的周期的需求表征所述第二通信设备在参考信号资源维度和/或时间维度上被配置为所述第一辅助波束的需求,所述波束测量单样本的周期的需求包括波束测量周期数,以及以下至少一项:所述第二通信设备被配置为第一参考信号资源的第一数目,所述第一参考信号资源为所述第二通信设备使用第一辅助波束的参考信号资源;总的参考信号资源的第二数目;所述第一数目占所述第二数目的比例;所述第一辅助波束的类型指示;其中,所述第一辅助波束是第一通信设备请求的第二通信设备的波束,包括以下至少一项:在波束测量周期内,配置为第二辅助波束,所述第二辅助波束是使得第一通信设备信道质量最高的第二通信设备的波束;在波束测量周期内,配置为预设的第二通信设备的波束。
- 根据权利要求2所述的数据采集方法,其中,所述第一通信设备的能力信息包括以下至少一项:是否支持在所述第二通信设备不使用第一辅助波束的情况下进行数据采集;可支持数据采集的第一辅助波束的类型;可支持数据采集的第一辅助波束的最小测量周期数;可支持数据采集的第一辅助波束的最少参考信号资源的第三数目;可支持数据采集的所述第三数目占所述第二数目的最小比例。
- 根据权利要求2所述的数据采集方法,其中,所述第二信息包括以下至少一项:所述第二通信设备本次测量配置与历史测量配置使用相同波束的指示;所述第二通信设备与本次测量配置使用相同波束的历史测量配置的标识;所述第二通信设备本次测量配置与上一次测量配置使用相同波束的指示;所述第二通信设备未来与本次测量配置使用相同波束的周期数;所述第二通信设备本次测量配置使用所述第二辅助波束的指示;所述第二通信设备未来使用所述第二辅助波束的周期数;所述第二通信设备未来使用所述第一辅助波束的周期数;所述第二通信设备本次测量配置所述第一辅助波束的类型;所述第二辅助波束的预测能力指标。
- 根据权利要求2所述的数据采集方法,其中,所述第一通信设备为终端,所述第二通信设备为网络侧设备,所述第二信息包括测量配置信息。
- 根据权利要求2或5所述的数据采集方法,其中,所述波束测量单样本的周期包括第一周期和第二周期,所述第一通信设备基于所述第二信息获取数据样本包括:所述第一通信设备在所述第一周期测量波束作为波束测量样本的输入;在所述第二周期上测量波束作为波束测量样本的标签。
- 根据权利要求6所述的数据采集方法,其中,所述第一通信设备接收所述第二通信设备的第二信息之后,所述方法还包括:所述第一通信设备对配置的参考信号进行波束测量;根据所述第二信息中所述第二通信设备的本次测量配置与历史测量配置是否使用相同,或所述第二通信设备的本次测量配置是否使用第二辅助波束,判断本次波束测量结果与历史波束测量结果是否组成一波束测量样本。
- 根据权利要求7所述的数据采集方法,所述方法还包括:根据本次波束测量的所述第一数目,判断本次波束测量属于第一周期或第二周期二者之一。
- 根据权利要求1所述的数据采集方法,其中,所述第一通信设备为网络侧设备,所述第二通信设备为终端,所述第一信息还包括测量配置信息,所述第二信息包括波束测量结果和所述第二通信设备的波束配置。
- 根据权利要求9所述的数据采集方法,所述方法还包括:根据所述第二信息中所述第二通信设备的本次测量配置与历史测量配置是否使用相同波束,或所述第二通信设备的本次测量配置是否使用第二辅助波束,判断本次波束测量结果与历史波束测量结果是否组成一波束测量样本。
- 一种数据采集方法,包括:第二通信设备接收第一通信设备发送的第一信息,所述第一信息指示第一辅助信息和/或第一通信设备的能力信息,所述第一辅助信息用于指示数据采集的辅助需求,所述第一通信设备的能力信息用于指示第一通信设备的数据采集能力;所述第二通信设备向所述第一通信设备发送第二信息,所述第二信息用于指示第二通 信设备的波束配置。
- 根据权利要求11所述的数据采集方法,其中,所述第一辅助信息包括指示波束测量单样本的周期的需求信息,以及第一辅助波束,所述第一辅助信息还包括以下至少一项:波束测量单样本的总的测量周期的数目;波束测量样本的数目;其中,所述波束测量单样本的周期的需求表征所述第二通信设备在参考信号资源维度和/或时间维度上被配置为所述第一辅助波束的需求,所述波束测量单样本的周期的需求包括波束测量周期数,以及以下至少一项:所述第二通信设备被配置为第一参考信号资源的第一数目,所述第一参考信号资源为所述第二通信设备使用第一辅助波束的参考信号资源;总的参考信号资源的第二数目;所述第一数目占所述第二数目的比例;所述第一辅助波束的类型指示;其中,所述第一辅助波束是第一通信设备请求的第二通信设备的波束,包括以下至少一项:在波束测量周期内,配置为第二辅助波束,所述第二辅助波束是使得第一通信设备信道质量最高的第二通信设备的波束;在波束测量周期内,配置为预设的第二通信设备的波束。
- 根据权利要求12所述的数据采集方法,其中,所述第一通信设备的能力信息包括以下至少一项:是否支持在所述第二通信设备不使用第一辅助波束的情况下进行数据采集;可支持数据采集的第一辅助波束的类型;可支持数据采集的第一辅助波束的最小测量周期数;可支持数据采集的第一辅助波束的最少参考信号资源的第三数目;可支持数据采集的所述第三数目占所述第二数目的最小比例。
- 根据权利要求12所述的数据采集方法,其中,所述第二信息包括以下至少一项:所述第二通信设备本次测量配置与历史测量配置使用相同波束的指示;所述第二通信设备与本次测量配置使用相同波束的历史测量配置的标识;所述第二通信设备本次测量配置与上一次测量配置使用相同波束的指示;所述第二通信设备未来与本次测量配置使用相同波束的周期数;所述第二通信设备本次测量配置使用所述第二辅助波束的指示;所述第二通信设备未来使用所述第二辅助波束的周期数;所述第二通信设备未来使用所述第一辅助波束的周期数;所述第二通信设备本次测量配置所述第一辅助波束的类型;所述第二辅助波束的预测能力指标。
- 根据权利要求12所述的数据采集方法,其中,所述第一通信设备为终端,所述第二通信设备为网络侧设备,所述第二信息包括测量配置信息。
- 根据权利要求11所述的数据采集方法,其中,所述第一通信设备为网络侧设备,所述第二通信设备为终端,所述第一信息还包括测量配置信息,所述第二信息包括波束测量结果和所述第二通信设备的波束配置。
- 根据权利要求16所述的数据采集方法,其中,所述第二通信设备向所述第一通信设备发送响应于所述第一信息的第二信息包括:所述第二通信设备根据所述第一信息确定所述第二通信设备的波束;所述第二通信设备对配置的参考信号进行波束测量;所述第二通信设备确定第二信息,所述第二信息指示所述第二通信设备是否与历史测量配置采用相同的波束,或指示所述第二通信设备是否使用使得所述第一通信设备信道质量最高的波束,所述第二信息还包括波束质量信息。
- 根据权利要求16所述的数据采集方法,所述方法还包括:根据所述第二信息中所述第二通信设备的本次测量配置与历史测量配置是否使用相同波束,或所述第二通信设备的本次测量配置是否使用第二辅助波束,判断本次波束测量结果与历史波束测量结果是否组成一波束测量样本。
- 一种数据采集装置,包括:第一发送模块,用于向第二通信设备发送第一信息,所述第一信息指示第一辅助信息和/或第一通信设备的能力信息,所述第一辅助信息用于指示数据采集的辅助需求,所述第一通信设备的能力信息用于指示第一通信设备的数据采集能力;第一接收模块,用于接收所述第二通信设备发送的第二信息,所述第二信息用于指示第二通信设备的波束配置;处理模块,用于基于所述第二信息获取数据样本。
- 一种数据采集装置,包括:第二接收模块,用于接收第一通信设备发送的第一信息,所述第一信息指示第一辅助信息和/或第一通信设备的能力信息,所述第一辅助信息用于指示数据采集的辅助需求,所述第一通信设备的能力信息用于指示第一通信设备的数据采集能力;第二发送模块,用于向所述第一通信设备发送第二信息,所述第二信息用于指示第二通信设备的波束配置。
- 一种通信设备,包括处理器和存储器,所述存储器存储可在所述处理器上运行的程序或指令,所述程序或指令被所述处理器执行时实现如权利要求1至18任一项所述的数据采集方法的步骤。
- 一种可读存储介质,所述可读存储介质上存储程序或指令,所述程序或指令被处理器执行时实现如权利要求1至18任一项所述的数据采集方法的步骤。
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| US20220039124A1 (en) * | 2018-09-28 | 2022-02-03 | Telefonaktiebolaget Lm Ericsson (Publ) | Beamforming Assistance |
| US20220110004A1 (en) * | 2020-10-06 | 2022-04-07 | Qualcomm Incorporated | Data-aided beam management |
| CN114423019A (zh) * | 2020-10-09 | 2022-04-29 | 诺基亚通信公司 | 监测波束 |
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- 2022-07-22 CN CN202210872114.XA patent/CN117499973A/zh active Pending
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| US20220039124A1 (en) * | 2018-09-28 | 2022-02-03 | Telefonaktiebolaget Lm Ericsson (Publ) | Beamforming Assistance |
| WO2021154610A1 (en) * | 2020-01-30 | 2021-08-05 | Idac Holdings, Inc. | Method of network-assisted beamformed energy harvesting signaling and corresponding apparatus |
| CN113676929A (zh) * | 2020-05-14 | 2021-11-19 | 华为技术有限公司 | 候选波束测量方法、终端、网络设备、芯片系统及介质 |
| US20220110004A1 (en) * | 2020-10-06 | 2022-04-07 | Qualcomm Incorporated | Data-aided beam management |
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