WO2018028501A1 - 一种下行接收波束训练信号的传输方法及装置 - Google Patents
一种下行接收波束训练信号的传输方法及装置 Download PDFInfo
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- WO2018028501A1 WO2018028501A1 PCT/CN2017/095838 CN2017095838W WO2018028501A1 WO 2018028501 A1 WO2018028501 A1 WO 2018028501A1 CN 2017095838 W CN2017095838 W CN 2017095838W WO 2018028501 A1 WO2018028501 A1 WO 2018028501A1
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- downlink
- beam training
- receive beam
- downlink receive
- training signal
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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
- H04B7/08—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
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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
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0686—Hybrid systems, i.e. switching and simultaneous transmission
- H04B7/0695—Hybrid systems, i.e. switching and simultaneous transmission using beam selection
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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
- 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
- H04B7/08—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
- H04B7/0837—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station using pre-detection combining
- H04B7/0842—Weighted combining
- H04B7/0848—Joint weighting
- H04B7/0851—Joint weighting using training sequences or error signal
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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
- H04B7/08—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
- H04B7/0868—Hybrid systems, i.e. switching and combining
- H04B7/088—Hybrid systems, i.e. switching and combining using beam selection
Definitions
- the present disclosure relates to the field of communications technologies, and in particular, to a method and an apparatus for transmitting a downlink receive beam training signal.
- wireless access technology standards such as LTE (Long Term Evolution)/LTE-A (LTE-Advanced) They are all built on the basis of MIMO+OFDM (Orthogonal Frequency Division Multiplexing) technology.
- the performance gain of MIMO technology comes from the spatial freedom that multi-antenna systems can obtain. Therefore, one of the most important evolution directions of MIMO technology in the development of standardization is the expansion of dimensions.
- Rel-9 focuses on MU-MIMO technology enhancement, and TM (Transmission Mode)-8 MU-MIMO (Multi-User MIMO, multi-user multiple input multiple output) transmission can support up to 4 downlink data layers. .
- Rel-10 introduces support for 8 antenna ports, further improving the spatial resolution of channel state information, and further extending the transmission capability of SU-MIMO (Single-User MIMO, single-user multiple input multiple output) to up to 8 data layers. .
- SU-MIMO Single-User MIMO, single-user multiple input multiple output
- Rel-13 and Rel-14 introduce FD-MIMO technology to support 32 ports for beamforming in both full and vertical directions.
- Beamforming is a signal preprocessing technique based on an antenna array. Beamforming produces a directional beam by adjusting the weighting coefficients of each element in the antenna array, so that a significant array gain can be obtained. Therefore, beamforming technology is expanding coverage, improving edge throughput, and suppressing interference. There are great advantages in terms of aspects.
- fully digital large-scale antennas can have up to 128/256/512 antenna elements and up to 128/256/512 transceivers, each connected to a transceiver.
- the antenna vibrator is a component on the antenna that has the function of guiding and amplifying electromagnetic waves, so that the electromagnetic signal received by the antenna is stronger.
- the antenna element is made of a metal having good conductivity.
- the vibrator has a rod shape, and some of the structures are more complicated. Generally, a plurality of vibrators are arranged in parallel on the antenna.
- the terminal measures channel state information and feeds back by transmitting pilot signals up to 128/256/512 antenna ports.
- an antenna array of up to 32/64 antenna elements can also be configured.
- the path loss makes the coverage of wireless signals extremely limited. With large-scale antenna technology, the coverage of wireless signals can be extended to an applicable range.
- All-digital antenna arrays each with an independent transceiver, will greatly increase the size, cost and power consumption of the device.
- ADC analog-to-digital converter
- DAC digital-to-analog converter
- analog beamforming In order to reduce the size, cost and power consumption of the device, a technical solution based on analog beamforming is proposed, as shown in FIGS. 1 and 2.
- the main feature of analog beamforming is the weighted shaping of the intermediate frequency (Figure 1) or the RF signal ( Figure 2) by a phase shifter.
- the S0 signal (baseband signal, ie, the intermediate frequency signal) passes through a digital-to-analog converter (DAC), is weighted and shaped by a phase shifter, and is amplified by a power amplifier (PA) and then transmitted.
- DAC digital-to-analog converter
- PA power amplifier
- the receiving antenna After receiving the signal, the receiving antenna is amplified by a Low Noise Amplifier (LNA), and then weighted by a phase shifter, and then sent to an analog-to-digital converter (ADC) to output a received signal r0.
- LNA Low Noise Amplifier
- ADC analog-to-digital converter
- the advantage is that all transmit (receive) antennas have only one transceiver, which is simple to implement, reducing cost, size and power consumption.
- the sender and the receiver respectively have with Transceiver (antenna), number of antennas at the transmitting end Receiver antenna number
- Transceiver Antenna
- Receiver antenna number The maximum number of parallel transport streams supported by beamforming is
- the hybrid beamforming structure of Figure 3 balances the flexibility of digital beamforming and the low complexity of analog beamforming, with the ability to support multiple data streams and simultaneous shaping of multiple users, while also complexity. Control is within reasonable limits.
- Both analog beamforming and digital-to-analog hybrid beamforming require adjustment of the analog beamforming weights at both ends of the transceiver so that the resulting beam can be aligned with the opposite end of the communication.
- the beam shaping weights sent by the base station side and the beam shaping weights received by the terminal side need to be adjusted.
- the beam shaping weights sent by the terminal side and received by the base station side need to be adjusted.
- the technical problem to be solved by the present disclosure is to provide a method and a device for transmitting a downlink receive beam training signal, so that the terminal can perform downlink receive beam training based on the manner triggered by the base station.
- an embodiment of the present disclosure provides a method for transmitting a downlink receive beam training signal, which may include:
- Training of the downlink receive beam is performed according to the downlink receive beam training signal.
- the receiving the downlink receive beam training trigger notification message sent by the first device may further include: sending a downlink receive beam training request message to the first device.
- the step of receiving the downlink receive beam training signal sent by the first device may further include:
- the step of receiving the downlink receive beam training trigger notification message sent by the first device to the second device may include:
- the downlink receiving beam training trigger notification message sent by the first device is received by the downlink control information DCI or dedicated trigger signaling.
- the downlink receive beam training trigger notification message may include: whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the step of receiving the downlink receive beam training signal sent by the first device according to the downlink receive beam training trigger notification message may include:
- the method before receiving the downlink receive beam training signal sent by the first device by using the downlink transmit beam determined by the first device, the method may further include:
- the training result information may include: an identifier of a downlink transmission beam of the first device recommended by the second device or a downlink transmission beam training signal strength information of the first device measured by the second device.
- the step of receiving the downlink receive beam training signal sent by the first device according to the downlink receive beam training trigger notification message may include:
- the time domain location of the downlink receive beam training signal in the subframe is determined by the second device with the first device or determined by the first device.
- the step of performing training of the downlink receiving beam according to the downlink receiving beam training signal may include:
- the downlink receive beam training triggering message After the downlink receive beam training triggering message is valid, the downlink receive beam is trained, and the downlink receive beam for receiving the downlink data sent by the first device is determined.
- the time point of the downlink receiving beam training trigger notification message is: a time point at which the downlink receiving beam training trigger notification message is received, and a time interval.
- the time interval is determined by the second device with the first device or determined by the first device.
- the step of determining a downlink receiving beam for receiving downlink data sent by the first device may include:
- the downlink receiving beam training signal is received by using different downlink receiving beams, and the downlink receiving beam with the strongest received signal power is selected as the downlink receiving beam for receiving the downlink data sent by the first device; or
- the downlink receiving beam training signal is received by using different downlink receiving beams, and channel estimation is performed. According to the channel estimation result, the downlink receiving beam with the strongest received signal power is selected as the downlink data for receiving the first device. Downstream receive beam; or
- a wide downlink receiving beam is used for training, and then a narrow downlink receiving beam is used for training, and an optimal narrow downlink receiving beam is determined as a downlink receiving beam for receiving downlink data sent by the first device.
- the method further includes:
- An embodiment of the present disclosure further provides a transmission apparatus for a downlink receive beam training signal, which may include:
- a receiving module configured to receive a downlink receiving beam training trigger notification message sent by the first device
- the training module is configured to receive, according to the downlink receive beam training trigger notification message, a downlink receive beam training signal sent by the first device, and perform downlink receive beam training according to the downlink receive beam training signal.
- the transmitting device of the downlink receiving beam training signal may further include: a first sending module, configured to send a downlink receiving beam training request message to the first device.
- the transmitting device of the downlink receiving beam training signal may further include: a second sending module, configured to send, to the first device, the number of downlink receiving beams of the second device or the number of downlink receiving beams that need to be trained.
- An embodiment of the present disclosure further provides a method for transmitting a downlink receive beam training signal, which may include:
- the sending the downlink receiving beam training trigger notification message to the second device may further include:
- Receiving a downlink receive beam training request message sent by the second device Receiving a downlink receive beam training request message sent by the second device.
- the sending the downlink receive beam training signal to the second device may further include:
- the step of sending a downlink receive beam training trigger notification message to the second device may include:
- the downlink receiving beam training trigger notification message is sent to the second device by using downlink control information DCI or dedicated signaling.
- the downlink receive beam training trigger notification message may include: whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the step of sending the downlink receive beam training signal to the second device may include:
- the downlink receive beam training signal is shaped by using a beamforming weight of the downlink transmit beam
- the downlink receive beam training signal is sent to the second device.
- the step of determining a downlink transmit beam used by the downlink receive beam training signal may include:
- the training result information may include: an identifier of a downlink transmission beam of the first device recommended by the second device or a downlink transmission beam training signal strength information of the first device measured by the second device.
- the downlink transmit beam used by the downlink receive beam training signal is the same as the downlink transmit beam that the first device sends downlink data to the second device.
- the time domain location of the downlink receive beam training signal sent to the second device in the subframe is determined by the second device and the first device or determined by the first device.
- the first device sends the time domain location notification message to the second device when the time domain location of the downlink receive beam training signal sent to the second device is determined by the first device.
- the time point of sending the downlink receive beam training signal to the second device is: sending downlink receiving
- the time point at which the beam training triggers the notification message is added to the time interval, which is determined by the second device with the first device or determined by the first device.
- the time interval is determined by the first device, and the first device sends the time interval notification message to the second device.
- An embodiment of the present disclosure further provides a transmission apparatus for a downlink receive beam training signal, which may include:
- a first sending module configured to send a downlink receiving beam training trigger notification message to the second device
- a second sending module configured to send a downlink receive beam training signal to the second device, where the downlink receive beam training trigger notification message is used to trigger the second device to receive the downlink receive beam training signal to perform a downlink receive beam Training.
- the transmitting device of the downlink receiving beam training signal may further include: a first receiving module, configured to receive a downlink receiving beam training request message sent by the second device.
- the transmitting device of the downlink receiving beam training signal may further include: a second receiving module, configured to receive the number of downlink receiving beams sent by the second device or the number of downlink receiving beams that need to be trained.
- Embodiments of the present disclosure also provide a transmission apparatus for a downlink receive beam training signal, including a receiver, a processor, and a memory, where:
- the receiver is configured to receive a downlink receive beam training trigger notification message sent by the first device
- the processor by executing the program and data stored in the memory, is configured to trigger the receiver to receive a downlink receive beam training signal sent by the first device according to the downlink receive beam training trigger notification message, And performing training of the downlink receive beam according to the downlink receive beam training signal received by the receiver.
- the downlink receiving beam training signal transmission device further includes a transmitter, wherein: the transmitter is configured to send a downlink receiving beam training request message to the first device.
- Embodiments of the present disclosure also provide a transmission apparatus for downlink receive beam training signals, including a transmitter, a processor, and a memory, where:
- the processor is configured to generate a downlink receive beam training trigger notification message and a downlink receive beam training signal by executing the program and data stored in the memory;
- the transmitter is configured to send a downlink receive beam training trigger notification message to the second device, and And the downlink receiving beam training triggering notification message is used to trigger the second device to receive the downlink receiving beam training signal to perform training of the downlink receiving beam.
- the downlink receiving beam training signal transmission device further includes a receiver, wherein: the receiver is configured to receive a downlink receiving beam training request message sent by the second device.
- the embodiment of the present disclosure receives the downlink receive beam training trigger notification message sent by the first device, and receives the downlink receive beam training signal sent by the first device according to the downlink receive beam training trigger notification message, and performs downlink receiving Beam training.
- the first device may be a base station
- the second device may be a terminal, so as to implement a base station-based trigger mechanism, and the terminal performs downlink beam training.
- 1 is a schematic diagram of weighted shaping of an intermediate frequency (baseband) signal by analog beamforming
- 2 is a schematic diagram of weighted shaping of a radio frequency signal by analog beamforming
- 3 is a schematic diagram of digital-to-analog hybrid beamforming
- FIG. 4 is a flowchart of a method for transmitting a downlink receive beam training signal according to a first embodiment of the terminal of the present disclosure
- FIG. 5 is a flowchart of a method for transmitting a downlink receive beam training signal according to a second embodiment of the terminal of the present disclosure
- FIG. 6 is a flowchart of a method for transmitting a downlink receive beam training signal according to a third embodiment of the terminal of the present disclosure
- FIG. 7 is a schematic diagram of a typical terminal receiving a downlink receive beam training trigger notification message and a downlink receive beam training signal
- FIG. 8 is a schematic diagram of another exemplary terminal receiving a downlink receive beam training trigger notification message and a downlink receive beam training signal
- FIG. 9 is a schematic structural diagram of a terminal according to the present disclosure.
- FIG. 10 is a flowchart of a method for transmitting a downlink receive beam training signal on a base station side according to the present disclosure.
- the first device may be a base station or other type of transmission point device
- the second device may be a user equipment (or terminal).
- the sending device (such as the first device) may also be a terminal that can perform configuration operations on other terminals.
- the base station may be an evolved base station (Evolved Node B, referred to as an eNB or an e-NodeB), a macro base station, a micro base station (also referred to as a "small base station"), a pico base station, and an access in an LTE system or an evolved system thereof.
- Point Access Point, AP for short
- TRP Transmit or Receive Point
- the terminal may also be referred to as a user equipment (User Equipment, UE for short), or may be called a Terminal, a mobile station (Mobile Station, MS), a mobile terminal (Mobile Terminal), etc., and the terminal may be connected to the wireless access network (
- the Radio Access Network (referred to as RAN) communicates with one or more core networks.
- the terminal may be a mobile phone (or "cellular" phone), a computer with a mobile terminal, etc., for example, the terminal may also be portable. Pocket, handheld, computer built-in or in-vehicle mobile devices that exchange voice and/or data with a wireless access network.
- the downlink data is not limited to the downlink data carried by the channel such as the PDSCH in the communication system. It may be all possible downlink signals sent by the base station, including downlink data signals or downlink control signals.
- the terminal in the embodiment of the present disclosure may also be a D2D (Device to Device) terminal or an M2M (Machine to Machine) terminal.
- D2D Device to Device
- M2M Machine to Machine
- the following embodiments take a base station as a first device and a terminal as a second device as an example.
- a first embodiment of the present disclosure provides a method for transmitting a downlink receive beam training signal, including:
- Step 41 Receive a downlink receive beam training trigger notification message sent by the base station.
- the downlink receiving beam training trigger notification message sent by the base station may be received by using downlink control information (DCI) or dedicated trigger signaling or other information block.
- DCI downlink control information
- the DCI may be an uplink access grant DCI or a downlink access grant DCI.
- the downlink receive beam trigger notification message includes but is not limited to the following content:
- the time-frequency position of the downlink received training signal for example, the occupied OFDM symbol, the start time, and the like.
- the downlink receiving beam training trigger notification message may be sent according to the downlink receiving beam training trigger notification message, and the downlink receiving beam training signal sent by the base station by using the downlink transmitting beam determined by the base station. Further, the downlink receive beam training signal is sent after the beamforming weight of the downlink transmit beam is shaped.
- the downlink transmission beam of the base station may be determined according to the following manner: the base station determines, according to the training result information of the downlink transmission beam of the base station reported by the terminal to the base station, where the training result information may include: the base station recommended by the terminal The identifier of the downlink transmit beam and/or the downlink transmit beam training signal strength information of the base station measured by the terminal.
- the base station determines that the downlink transmission beam is all or part of the downlink transmission beam recommended by the terminal reported by the terminal.
- the base station determines one or more beams facing the terminal based on the downlink transmit beam training result information reported by the terminal.
- the downlink transmission beam includes an angular coverage of the downlink transmission beam recommended by the terminal, or an angle coverage of the downlink transmission beam recommended by the terminal, and the like.
- the training result information of the downlink transmit beam of the base station that is reported by the terminal may include: a identifier of the recommended downlink transmit beam, such as a number of the downlink transmit beam, and may further include downlink transmit beam training signal strength information received by the terminal, for example, Receive signal power level, etc.
- the step of performing training of the downlink receiving beam may further include: performing, by the second device, the AGC (Automatic Gain Control) adjustment by using the trained downlink receiving beam.
- AGC Automatic Gain Control
- the embodiment of the present disclosure receives the downlink receive beam training trigger notification message sent by the base station, and receives the downlink receive beam training signal sent by the base station according to the downlink receive beam training trigger notification message, and performs training of the downlink receive beam.
- the trigger mechanism based on the base station is implemented, and the terminal performs downlink beam training.
- a second embodiment of the present disclosure provides a method for transmitting a downlink receive beam training signal, including:
- Step 51 Send a downlink receive beam training request message to the base station; the terminal may also send the number of downlink receive beams of the terminal or the number of downlink receive beams that need to be trained to the base station, and the base station according to the number of the downlink receive beams or The number of downlink receive beams that need to be trained determines the number of downlink receive beam training signals.
- the terminal may send the downlink receive beam training request message to the base station, and send the number of downlink receive beams of the terminal or the number of downlink receive beams to be trained to the base station; or may only send downlink receive beam training to the base station.
- the request message may also be sent to the base station only for the number of downlink receive beams of the terminal or the number of downlink receive beams that need to be trained.
- Step 52 Receive a downlink receive beam training trigger notification message sent by the base station according to the downlink receive beam training request message.
- the downlink receiving beam training trigger notification message sent by the base station to the terminal may be received by using downlink control information (DCI) or dedicated trigger signaling or other information block.
- DCI downlink control information
- the DCI may be an uplink access grant DCI or a downlink access grant DCI.
- the downlink receive beam trigger notification message includes but is not limited to the following:
- Step 53 Receive a downlink receive beam training signal sent by the base station according to the downlink receive beam training trigger notification message, and perform downlink receive beam training.
- the step of performing training of the downlink receiving beam may further include: performing, by the second device, the AGC (Automatic Gain Control) adjustment by using the trained downlink receiving beam.
- AGC Automatic Gain Control
- the downlink receive beam training trigger notification message is sent according to the downlink receive beam training trigger notification message, and the downlink receive beam training signal sent by the base station by using the downlink transmit beam determined by the base station is received; further, the downlink receive beam training signal uses a downlink transmit beam beam assignment. After the shape weight is shaped, it is sent;
- the downlink transmission beam of the base station may be determined according to the following manner: the base station determines, according to the training result information of the downlink transmission beam of the base station reported by the terminal to the base station, where the training result information may include: the base station recommended by the terminal The identifier of the downlink transmit beam and/or the downlink transmit beam training signal strength information of the base station measured by the terminal;
- the base station determines one or more beams facing the terminal or a group of terminals based on downlink transmission beam training result information reported by one or more terminals;
- the downlink transmission beam includes an angular coverage of the downlink transmission beam recommended by the terminal, or an angle coverage of the downlink transmission beam recommended by the terminal, and the like.
- the information about the downlink transmit beam reported by the terminal may include: the identifier of the recommended downlink transmit beam, such as the number of the downlink transmit beam, and may further include the downlink transmit beam training signal strength information received by the terminal, such as the received signal power level, and the like. .
- the terminal may receive the downlink receive beam training sent by the base station according to the downlink receive beam training trigger notification message and the downlink receive beam training signal in a time domain position within the subframe. signal.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the time domain position of the downlink receive beam training signal in the subframe may be agreed by the terminal with the base station or determined by the base station.
- the transmission of the downlink receive beam training signal can be in the first M OFDM symbols of each subframe.
- the value of M may be determined by the terminal or the base station or determined by the base station.
- the embodiment of the present disclosure sends a downlink receive beam training request message to the base station, and receives a downlink receive beam training trigger notification message sent by the base station to the terminal, and receives the downlink receive beam training trigger notification message, and receives the sent by the base station.
- the downlink receives the beam training signal.
- the trigger mechanism based on the base station is implemented, and the terminal performs downlink beam training.
- a third embodiment of the present disclosure provides a method for transmitting a downlink receive beam training signal, including:
- Step 61 Send a downlink receive beam training request message to the base station; where the step is optional; the terminal may also send the number of downlink receive beams of the terminal or the number of downlink receive beams that need to be trained to the base station, and the base station
- the number of downlink receive beam training signals is determined according to the number of downlink receive beams or the number of downlink receive beams that need to be trained.
- the terminal may send the downlink receive beam training request message to the base station, and send the number of downlink receive beams of the terminal or the number of downlink receive beams to be trained to the base station; or may only send downlink receive beam training to the base station.
- the request message may also be sent to the base station only for the number of downlink receive beams of the terminal or the number of downlink receive beams that need to be trained.
- Step 62 Receive a downlink receive beam training trigger notification message sent by the base station according to the downlink receive beam training request message.
- Step 63 Receive a downlink receive beam training signal sent by the base station according to the downlink receive beam training trigger notification message.
- Step 64 Perform training on the downlink receive beam according to the downlink receive beam training signal, thereby determining a downlink receive beam.
- the downlink receiving beam of the downlink data sent by the receiving base station is determined.
- Step 65 Receive downlink data sent by the base station by using the determined downlink receiving beam.
- step 64 after the downlink receive beam training trigger notification message is valid, the downlink receive beam training is performed according to the downlink receive beam training signal, and the downlink receive beam is determined;
- the effective time of the downlink receive beam training trigger notification message is: the time + time interval of receiving the downlink receive beam training trigger notification message; in other words, the effective time point is the receive downlink receive beam training trigger notification message. Time point plus time interval. The time interval can be zero or greater than zero.
- the time interval may be agreed by the protocol, or agreed by the terminal and the base station in advance, or determined by the base station.
- the base station may send the information to the terminal by using the time interval notification signaling; or the time interval may also be obtained from the downlink receiving beam training trigger notification message; of course, the embodiment does not limit the time interval. Carryed by other downlink information blocks.
- the time interval notification signaling includes information about the time interval. The terminal obtains the time interval according to the information or signaling.
- the terminal may obtain a start time of downlink receive beam training according to the time interval.
- the terminal assumes that the downlink receive beam training trigger notification message is valid at the time + time interval of receiving the downlink receive beam training trigger notification message, and the time interval is fixed or is notified by the base station (for example, carried in the downlink receive beam trigger notification message) Or, the time-frequency position of the downlink receiving training signal in the downlink receiving beam triggering notification message may be obtained.
- the base station may also be carried by the DCI, or carried by dedicated time domain location notification signaling, or by other downlink signaling. Carrying, etc.).
- the terminal receives the downlink receive beam trigger signaling in the nth subframe
- the downlink receive beam training signal is in the n+mth subframe
- m is in the trigger notification.
- the message or other message carrying the information about the time interval or the downlink receive beam training sequence position notification signaling, m 0, means that the training signal and the trigger message are in the same subframe.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- step 64 the downlink receive beam is trained after the downlink receive beam training trigger notification message is valid.
- the terminal uses different downlink receiving beams to receive the downlink receiving beam training signal, and selects the downlink receiving beam with the strongest receiving signal power as the downlink receiving beam for receiving the downlink data sent by the base station;
- the terminal uses different downlink receiving beams to receive the downlink receiving beam training signals, and performs channel estimation. According to the channel estimation result, the downlink receiving beam with the strongest received signal power is selected as the receiving base station for transmitting. Downlink receive beam of downlink data;
- the training of the downlink receiving beam by the terminal does not limit the reception of several downlink receiving beams in one time.
- the terminal may receive the training sequence by using only one receiving beam at a time, or may simultaneously receive the training sequence by using multiple receiving beams at the same time, which is not limited in the disclosure.
- the terminal can also train the downlink receive beam by using a wide downlink receive beam for training.
- the narrow downlink receiving beam is used for training, and the optimal narrow downlink receiving beam is determined as the downlink receiving beam of the downlink data sent by the receiving base station;
- the narrow receive beam can cover the coverage of the wide receive beam, or the coverage of the narrow receive beam is slightly higher than the coverage of the wide receive beam.
- the training of the downlink receive beam can be performed simultaneously with the training of the downlink transmit beam.
- the training of the downlink receive beam training and the downlink transmit beam alternates.
- a typical terminal receives a downlink receive beam training trigger notification message and a downlink receive beam training signal.
- the trigger message of the downlink receive beam and the downlink receive beam training signal are in the same subframe.
- the base station may send downlink data to the terminal, and the terminal receives the downlink data sent by the base station.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the downlink data and the downlink receive beam training signal can be transmitted by using the same downlink transmit beam, so that the terminal can receive the data after receiving the downlink receive beam training signal to obtain the best downlink receive beam.
- another typical terminal receives a downlink receive beam training trigger notification message and a downlink receive beam training signal.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the terminal After receiving the downlink receive beam training signal, the terminal obtains the best downlink receive beam, and saves the beam weight for subsequent downlink data reception.
- the transmission method of the downlink receiving beam training signal of the present disclosure is applicable to analog and digital-analog hybrid beamforming, and is also applicable to digital beamforming, and can implement trigger-based downlink receiving beam training.
- the fourth embodiment of the present disclosure further provides a transmission apparatus for a downlink receive beam training signal, which may include:
- a receiving module configured to receive a downlink receiving beam training trigger notification message sent by the base station
- the training module is configured to receive a downlink receive beam training signal sent by the base station according to the downlink receive beam training trigger notification message, and perform downlink receive beam training.
- the transmitting device of the downlink receiving beam training signal may further include: a first sending module, configured to send a downlink receiving beam training request message to the base station.
- the transmitting device of the downlink receiving beam training signal may further include: a second sending module, configured to send, to the base station, the number of downlink receiving beams of the terminal or the number of downlink receiving beams that need to be trained.
- the receiving module is specifically configured to: receive, by using downlink control information DCI or dedicated trigger signaling or other downlink information block, a downlink receiving beam training trigger notification message sent by the base station to the terminal.
- the downlink receive beam training trigger notification message includes, but is not limited to, whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the training module is specifically configured to: receive, according to the downlink receive beam training trigger notification message, a downlink receive beam training signal sent by a base station by using a downlink transmit beam determined by the base station.
- the transmitting device of the downlink receiving beam training signal may further include: a third sending module, configured to report, to the base station, training result information of a downlink sending beam of the base station.
- the training result information includes, but is not limited to, an identifier of a downlink transmission beam of the base station recommended by the terminal and/or a downlink transmission beam training signal strength information of the base station measured by the terminal.
- the training module is specifically configured to: according to the downlink receive beam training trigger notification message, and the downlink receive beam training signal receives a downlink receive beam training signal sent by the base station in a time domain position in the subframe.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein;
- the time domain position of the downlink receive beam training signal in the subframe is determined by the terminal and the base station or determined by the base station.
- the training module is specifically configured to: after the downlink receive beam training trigger notification message takes effect, perform downlink receive beam training according to the downlink receive beam training signal, and determine a downlink receive beam.
- the effective time of the downlink receive beam training trigger notification message is: receiving the next The time + time interval of the line receiving beam training trigger notification message; the time interval is determined by the terminal with the base station or determined by the base station.
- the training module is specifically configured to: receive downlink receive beam training signals by using different downlink receive beams, and select a downlink receive beam with the strongest received signal power as a downlink for receiving downlink data sent by the base station. Receiving beam; or
- the downlink receiving beam training signal is received by using different downlink receiving beams, and channel estimation is performed. According to the channel estimation result, the downlink receiving beam with the strongest received signal power is selected as the downlink receiving for receiving the downlink data sent by the base station. Beam; or
- the training module may also use a wide downlink receive beam for training, and then use a narrow downlink receive beam for training, and determine an optimal narrow downlink receive beam as a downlink receive beam for receiving downlink data sent by the base station.
- the receiving module is further configured to receive the downlink data sent by the base station by using the determined downlink receiving beam.
- the downlink receiving beam that receives the downlink data is the same as the receiving beam that receives the downlink receiving beam training signal.
- the embodiment of the transmission apparatus for the downlink receive beam training signal is the apparatus corresponding to the foregoing method, and all implementation examples in the foregoing methods are applicable to the embodiment of the apparatus, and the same technical effects can be achieved.
- the fifth embodiment of the present disclosure further provides a terminal, including:
- a receiver configured to receive a downlink receive beam training trigger notification message sent by the base station
- the processor is used to implement the functions implemented by the following functional modules:
- the training module is configured to receive a downlink receive beam training signal sent by the base station according to the downlink receive beam training trigger notification message, and perform downlink receive beam training.
- the terminal may further include: a transmitter, configured to send a downlink receive beam training request message to the base station.
- the transmitter is further configured to send, to the base station, the number of downlink receiving beams of the terminal or the number of downlink receiving beams that need to be trained.
- the receiver is specifically configured to: use downlink control information DCI or dedicated trigger signaling, Receiving a downlink receive beam training trigger notification message sent by the base station to the terminal.
- the downlink receive beam training trigger notification message includes, but is not limited to, whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the training module is specifically configured to: receive, according to the downlink receive beam training trigger notification message, a downlink receive beam training signal sent by a base station by using a downlink transmit beam determined by the base station.
- the transmitter is further configured to report, to the base station, training result information of a downlink transmit beam of the base station.
- the training result information includes, but is not limited to, an identifier of a downlink transmission beam of the base station recommended by the terminal and/or a downlink transmission beam training signal strength information of the base station measured by the terminal.
- the training module is specifically configured to: according to the downlink receive beam training trigger notification message, and the downlink receive beam training signal receives a downlink receive beam training signal sent by the base station in a time domain position in the subframe.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the time domain position of the downlink receive beam training signal in the subframe is determined by the terminal and the base station or determined by the base station.
- the training module is specifically configured to: after the downlink receive beam training trigger notification message takes effect, perform downlink receive beam training according to the downlink receive beam training signal, and determine a downlink receive beam.
- the time of the downlink receive beam training trigger notification message is: the time + time interval of receiving the downlink receive beam training trigger notification message; the time interval is determined by the terminal and the base station or determined by the base station.
- the training module is specifically configured to: receive downlink receive beam training signals by using different downlink receive beams, and select a downlink receive beam with the strongest received signal power as a downlink for receiving downlink data sent by the base station. Receiving beam; or
- the downlink receiving beam training signal is received by using different downlink receiving beams, and channel estimation is performed. According to the channel estimation result, the downlink receiving beam with the strongest received signal power is selected as the downlink receiving for receiving the downlink data sent by the base station. Beam; or
- the training module may also first use a wide downlink receive beam for training, and then adopt narrow downlink reception.
- the beam is trained to determine an optimal narrow downlink receive beam as a downlink receive beam for receiving downlink data transmitted by the base station.
- the terminal may further include: the receiving module is further configured to receive the downlink data sent by the base station by using the determined downlink receiving beam.
- the downlink receiving beam that receives the downlink data is the same as the receiving beam that receives the downlink receiving beam training signal.
- the processor is coupled to the memory via a bus interface, and the processor is coupled through a bus interface receiver or transmitter; the memory is configured to store programs and data used by the processor in performing operations ;
- a bus interface is an interface of any number of interconnected buses and bridges that may be included in a bus architecture, specifically linked by one or more processors represented by the processor and various circuits of memory represented by the memory.
- the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
- the bus interface provides an interface.
- the receiver or transmitter can be a plurality of components that provide means for communicating with various other devices on a transmission medium.
- This embodiment of the present disclosure can also implement trigger-based downlink receive beam training.
- a sixth embodiment of the present disclosure further provides a method for transmitting a downlink receive beam training signal, including:
- Step 71 Send a downlink receive beam training trigger notification message to the terminal.
- the step may further include: receiving a downlink receive beam training request message sent by the terminal.
- the base station may perform downlink receiving beam training on the terminal according to the downlink receiving beam training request message sent by the terminal.
- the step may also include: receiving the number of downlink receiving beams sent by the terminal or the number of downlink receiving beams that need to be trained, so that the number of downlink receiving beams that are sent by the terminal or the number of downlink receiving beams that need to be trained may be used. Number, determining the number of downlink receive beam training signals.
- the downlink receiving beam training trigger notification message is sent to the terminal by using downlink control information DCI or dedicated signaling or other downlink information block;
- the downlink receive beam training trigger notification message includes but is not limited to: whether there is a downlink The indication information of the beam training signal and/or the time-frequency position of the downlink reception beam training signal are received.
- Step 72 Send a downlink receive beam training signal to the terminal.
- the base station determines the downlink transmit beam, and uses the beam shaping weight of the downlink transmit beam to shape the downlink transmit beam training signal and then send the signal to the terminal.
- the step may further include: the base station receiving the training result information of the downlink transmit beam of the base station reported by the terminal; the training result information includes, but is not limited to, the identifier of the downlink transmit beam of the base station recommended by the terminal, and/or the terminal measurement Power intensity information of the downlink transmit beam for training of the base station.
- the base station may determine the downlink transmit beam according to the training result information.
- the time domain location of the downlink receive beam training signal sent to the terminal in the subframe may be protocol-scheduled, or the terminal or the base station agrees, or is determined by the base station.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the time domain location of the downlink receive beam training signal in the subframe is protocol-defined, or when the terminal and the base station agree, the agreed time domain location may include: the first M orthogonalities of each subframe agreed with the terminal. Frequency division multiplexed OFDM symbols, where M is a positive integer.
- the base station sends the time domain location notification message to the terminal when the time domain location of the downlink receive beam training signal sent to the terminal is determined by the base station.
- the time domain location notification message may be carried by the DCI, or may be carried by a downlink receiving beam training trigger notification message, or carried by other downlink information blocks.
- the base station determines that the downlink receive beam training signal is in the first M orthogonal frequency division multiplexing OFDM symbols in the subframe, and the time domain location notification message sent by the base station to the terminal is the value of M.
- time for transmitting the downlink receive beam training signal to the terminal is: time + time interval for transmitting the downlink receive beam training trigger notification message, where the time interval is determined by the terminal and the base station or determined by the base station.
- the base station When the time interval is determined by the base station, the base station sends the time interval notification message to the terminal.
- the message or other message carrying the time interval or downlink receive beam training sequence location notification signaling is carried.
- the method further includes:
- Step 73 Send downlink data to the terminal by using a downlink transmission beam for transmitting downlink data.
- This embodiment of the present disclosure is applicable to both analog and digital-to-analog hybrid beamforming, to digital beamforming, and to trigger-based downlink receive beam training.
- the seventh embodiment of the present disclosure further provides a transmission apparatus for a downlink receive beam training signal, which may include:
- a first sending module configured to send a downlink receiving beam training trigger notification message to the terminal
- the second sending module is configured to send a downlink receive beam training signal to the terminal.
- the method for transmitting the downlink receive beam training signal may further include: a first receiving module, configured to receive a downlink receive beam training request message sent by the terminal.
- the transmitting device of the downlink receiving beam training signal may further include: a second receiving module, configured to receive the number of downlink receiving beams sent by the terminal or the number of downlink receiving beams that need to be trained.
- the first sending module is specifically configured to send a downlink receiving beam training trigger notification message to the terminal by using downlink control information DCI or dedicated signaling or other downlink information block.
- the downlink receive beam training trigger notification message includes, but is not limited to, whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the second sending module is specifically configured to: determine a downlink transmit beam used by the downlink receive beam training signal, and use the beam shaping weight of the downlink transmit beam to shape the downlink receive beam training signal, and then The terminal sends.
- the second sending module is configured to: receive training result information of a downlink transmitting beam of the base station reported by the terminal, and determine, according to the training result information, use, to send the downlink receiving beam training signal, when determining the downlink transmitting beam. Downstream transmit beam.
- the training result information includes, but is not limited to, an identifier of a downlink transmission beam of the base station recommended by the terminal and/or a downlink transmission beam training signal strength information of the base station measured by the terminal.
- the downlink transmit beam used by the downlink receive beam training signal is the same as the downlink transmit beam that the base station sends downlink data to the terminal.
- the time domain location of the downlink receive beam training signal sent to the terminal in the subframe is a protocol approximation.
- the terminal is agreed with the base station, or determined by the base station.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the base station sends the time domain location notification message to the terminal when the time domain location of the downlink receive beam training signal sent to the terminal is determined by the base station.
- the time for transmitting the downlink receive beam training signal to the terminal is: time + time interval for transmitting the downlink receive beam training trigger notification message, where the time interval is determined by the terminal and the base station or determined by the base station.
- the time interval is determined by the base station, and the base station sends the time interval notification message to the terminal.
- the time interval notification message may be carried by the DCI, or carried by the downlink receiving beam training trigger notification message, or carried by other downlink information blocks.
- this embodiment is a device corresponding to the foregoing method for transmitting a downlink receive beam training signal on the base station side, and all implementation manners in the foregoing method embodiments are applicable to the embodiment of the device, and the same technology can be achieved. effect.
- An eighth embodiment of the present disclosure further provides a base station, which may include:
- the transmitter is configured to send a downlink receive beam training trigger notification message to the terminal, and send a downlink receive beam training signal to the terminal.
- the base station may further include: a receiver, configured to receive a downlink receive beam training request message sent by the terminal.
- the receiver is further configured to receive the number of downlink receiving beams sent by the terminal or the number of downlink receiving beams that need to be trained.
- the transmitter sends a downlink receive beam training trigger notification message to the terminal by using downlink control information DCI or dedicated signaling or other downlink information block.
- the downlink receive beam training trigger notification message includes, but is not limited to, whether there is indication information of the downlink receive beam training signal and/or a time-frequency location of the downlink receive beam training signal.
- the transmitter is specifically configured to: determine a downlink transmit beam used by the downlink receive beam training signal, and use the beamforming weight of the downlink transmit beam to shape the downlink receive beam training signal, and then send the signal to the terminal. .
- the transmitter is specifically configured to: when the downlink transmission beam is determined, the base station reported by the receiving terminal
- the training result information of the downlink transmission beam is determined according to the training result information, and the downlink transmission beam used for transmitting the downlink reception beam training signal is determined.
- the training result information includes, but is not limited to, an identifier of a downlink transmission beam of the base station recommended by the terminal and/or a downlink transmission beam training signal strength information of the base station measured by the terminal.
- the downlink transmit beam used by the downlink receive beam training signal is the same as the downlink transmit beam that the base station sends downlink data to the terminal.
- the time domain location of the downlink receive beam training signal sent to the terminal in the subframe is protocol-defined, or is agreed between the terminal and the base station, or determined by the base station.
- the subframes here may be subframes in the LTE system, or may be frames in the LTE system or other time units, or may be time units in other systems, which are not limited herein.
- the base station sends the time domain location notification message to the terminal when the time domain location of the downlink receive beam training signal sent to the terminal is determined by the base station.
- the time for transmitting the downlink receive beam training signal to the terminal is: time + time interval for transmitting the downlink receive beam training trigger notification message, where the time interval is determined by the terminal and the base station or determined by the base station.
- the time interval is determined by the base station, and the base station sends the time interval notification message to the terminal.
- the time interval notification message may be carried by the DCI, or carried by the downlink receiving beam training trigger notification message, or carried by other downlink information blocks.
- a processor may be further included; a memory connected to the processor through a bus interface; the transmitter and the receiver are both connected to the processor through a bus interface; and the memory is configured to store the The program and data that the processor uses when performing operations.
- a bus interface is an interface of any number of interconnected buses and bridges included in a bus architecture, specifically linked by one or more processors represented by the processor and various circuits of memory represented by the memory.
- the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
- the bus interface provides an interface.
- the receiver or transmitter can be a plurality of components that provide means for communicating with various other devices on a transmission medium.
- This embodiment of the present disclosure can also implement trigger-based downlink receive beam training.
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Abstract
Description
Claims (37)
- 一种下行接收波束训练信号的传输方法,包括:接收第一设备发送的下行接收波束训练触发通知消息;根据所述下行接收波束训练触发通知消息,接收所述第一设备发送的下行接收波束训练信号;以及根据所述下行接收波束训练信号进行下行接收波束的训练。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,在所述接收第一设备发送的下行接收波束训练触发通知消息之前,所述方法还包括:向所述第一设备发送下行接收波束训练请求消息。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述根据所述下行接收波束训练触发通知消息,接收所述第一设备发送的下行接收波束训练信号的步骤前还包括:向所述第一设备发送第二设备的下行接收波束的个数或者需要训练的下行接收波束的个数。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述接收第一设备向第二设备发送的下行接收波束训练触发通知消息的步骤包括:通过下行控制信息DCI或者专用触发信令,接收所述第一设备发送的所述下行接收波束训练触发通知消息。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述下行接收波束训练触发通知消息包括:是否存在下行接收波束训练信号的指示信息和/或下行接收波束训练信号的时频位置。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述根据所述下行接收波束训练触发通知消息,接收所述第一设备发送的下行接收波束训练信号的步骤包括:根据所述下行接收波束训练触发通知消息,接收所述第一设备通过所述第一设备确定的下行发送波束发送的下行接收波束训练信号。
- 根据权利要求6所述的下行接收波束训练信号的传输方法,其中,在所述根据所述下行接收波束训练触发通知消息,接收所述第一设备通过所述第一设备确定的下行发送波束发送的下行接收波束训练信号之前,所述方法还包括:向所述第一设备上报所述第一设备的下行发送波束的训练结果信息。
- 根据权利要求7所述的下行接收波束训练信号的传输方法,其中,所述训练结果信息包括:第二设备推荐的所述第一设备的下行发送波束的标识和/或第二设备测量的所述第一设备的下行发送波束训练信号强度信息。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述根据所述下行接收波束训练触发通知消息,接收所述第一设备发送的下行接收波束训练信号的步骤包括:根据所述下行接收波束训练触发通知消息,以及所述下行接收波束训练信号在子帧内的时域位置,接收所述第一设备发送的下行接收波束训练信号。
- 根据权利要求9所述的下行接收波束训练信号的传输方法,其中,所述下行接收波束训练信号在子帧内的时域位置是第二设备与所述第一设备约定的或者由所述第一设备确定的。
- 根据权利要求1所述的下行接收波束训练信号的传输方法,其中,所述根据所述下行接收波束训练信号进行下行接收波束的训练的步骤包括:根据所述下行接收波束训练信号,在下行接收波束训练触发通知消息生效后进行下行接收波束的训练,确定出用于接收所述第一设备发送的下行数据的下行接收波束。
- 根据权利要求11所述的下行接收波束训练信号的传输方法,其中,所述下行接收波束训练触发通知消息的生效时间点为:接收所述下行接收波束训练触发通知消息的时间点加上时间间隔,所述时间间隔是第二设备与所述第一设备约定的或者是由所述第一设备确定的。
- 根据权利要求11所述的下行接收波束训练信号的传输方法,其中,所述确定出用于接收所述第一设备发送的下行数据的下行接收波束的步骤包括:采用不同的下行接收波束进行下行接收波束训练信号的接收,并选出接收 信号功率最强的下行接收波束作为用于接收所述第一设备发送的下行数据的下行接收波束;或者采用不同的下行接收波束进行下行接收波束训练信号的接收,并进行信道估计,根据信道估计结果,选出接收信号功率最强的下行接收波束作为用于接收所述第一设备发送的下行数据的下行接收波束。
- 根据权利要求11所述的下行接收波束训练信号的传输方法,其中,所述确定出用于接收所述第一设备发送的下行数据的下行接收波束后还包括:利用确定出的所述下行接收波束,接收所述第一设备发送的下行数据。
- 一种下行接收波束训练信号的传输装置,包括:接收模块,用于接收第一设备发送的下行接收波束训练触发通知消息;训练模块,用于根据所述下行接收波束训练触发通知消息,接收所述第一设备发送的下行接收波束训练信号,以及根据所述下行接收波束训练信号进行下行接收波束的训练。
- 根据权利要求15所述的下行接收波束训练信号的传输装置,还包括:第一发送模块,用于向所述第一设备发送下行接收波束训练请求消息。
- 根据权利要求15所述的下行接收波束训练信号的传输装置,还包括:第二发送模块,用于向所述第一设备发送第二设备的下行接收波束的个数或者需要训练的下行接收波束的个数。
- 一种下行接收波束训练信号的传输方法,包括:向第二设备发送下行接收波束训练触发通知消息;向所述第二设备发送下行接收波束训练信号,所述下行接收波束训练触发通知消息用于触发所述第二设备接收所述下行接收波束训练信号以进行下行接收波束的训练。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,在向第二设备发送下行接收波束训练触发通知消息之前,所述方法还包括:接收所述第二设备发送的下行接收波束训练请求消息。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,在向第二设备发送下行接收波束训练信号之前,所述方法还包括:接收所述第二设备发送的下行接收波束的个数或者需要训练的下行接收 波束的个数。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,所述向第二设备发送下行接收波束训练触发通知消息的步骤包括:通过下行控制信息DCI或者专用信令,向所述第二设备发送所述下行接收波束训练触发通知消息。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,所述下行接收波束训练触发通知消息包括:是否存在下行接收波束训练信号的指示信息和/或下行接收波束训练信号的时频位置。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,所述向第二设备发送下行接收波束训练信号的步骤包括:确定下行接收波束训练信号使用的下行发送波束;利用所述下行发送波束的波束赋形权值,对所述下行接收波束训练信号赋形后,向所述第二设备发送所述下行接收波束训练信号。
- 根据权利要求23所述的下行接收波束训练信号的传输方法,其中,所述确定下行接收波束训练信号使用的下行发送波束的步骤包括:接收所述第二设备上报的第一设备的下行发送波束的训练结果信息;根据所述训练结果信息,确定发送所述下行接收波束训练信号使用的所述下行发送波束。
- 根据权利要求24所述的下行接收波束训练信号的传输方法,其中,所述训练结果信息包括:所述第二设备推荐的所述第一设备的下行发送波束的标识或者所述第二设备测量的所述第一设备的下行发送波束训练信号强度信息。
- 根据权利要求23所述的下行接收波束训练信号的传输方法,其中,所述下行接收波束训练信号使用的下行发送波束与所述第一设备向所述第二设备发送下行数据的下行发送波束相同。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,向所述第二设备发送的下行接收波束训练信号在子帧内的时域位置是所述第二设备与第一设备约定的或由第一设备确定的。
- 根据权利要求27所述的下行接收波束训练信号的传输方法,其中, 向所述第二设备发送的下行接收波束训练信号在子帧内的时域位置是所述第一设备确定时,所述第一设备向第二设备发送所述时域位置通知消息。
- 根据权利要求18所述的下行接收波束训练信号的传输方法,其中,向所述第二设备发送下行接收波束训练信号的时间点为:发送下行接收波束训练触发通知消息的时间点加上时间间隔,所述时间间隔是所述第二设备与第一设备约定的或者是第一设备确定的。
- 根据权利要求29所述的下行接收波束训练信号的传输方法,其中,所述时间间隔是所述第一设备确定时,所述第一设备向所述第二设备发送所述时间间隔通知消息。
- 一种下行接收波束训练信号的传输装置,包括:第一发送模块,用于向第二设备发送下行接收波束训练触发通知消息;第二发送模块,用于向所述第二设备发送下行接收波束训练信号,所述下行接收波束训练触发通知消息用于触发所述第二设备接收所述下行接收波束训练信号以进行下行接收波束的训练。
- 根据权利要求31所述的下行接收波束训练信号的传输装置,还包括:第一接收模块,用于接收所述第二设备发送的下行接收波束训练请求消息。
- 根据权利要求31所述的下行接收波束训练信号的传输装置,还包括:第二接收模块,用于接收所述第二设备发送的下行接收波束的个数或者需要训练的下行接收波束的个数。
- 一种下行接收波束训练信号的传输装置,包括接收机、处理器和存储器,其中:所述接收机,用于接收第一设备发送的下行接收波束训练触发通知消息;所述处理器,通过执行所述存储器中所存储的程序和数据,用于根据所述下行接收波束训练触发通知消息,触发所述接收机接收所述第一设备发送的下行接收波束训练信号,以及根据所述接收机接收的所述下行接收波束训练信号进行下行接收波束的训练。
- 根据权利要求34所述的下行接收波束训练信号的传输装置,还包括发射机,其中:所述发射机,用于向所述第一设备发送下行接收波束训练请求消息。
- 一种下行接收波束训练信号的传输装置,包括:发射机、处理器和存储器,其中:所述处理器,通过执行所述存储器中所存储的程序和数据,用于生成下行接收波束训练触发通知消息和下行接收波束训练信号;所述发射机,用于向第二设备发送下行接收波束训练触发通知消息,以及用于向所述第二设备发送下行接收波束训练信号,其中所述下行接收波束训练触发通知消息用于触发所述第二设备接收所述下行接收波束训练信号以进行下行接收波束的训练。
- 根据权利要求36所述的下行接收波束训练信号的传输装置,还包括接收机,其中:所述接收机,用于接收所述第二设备发送的下行接收波束训练请求消息。
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