WO2021227648A1 - 一种上行信道状态信息的获取方法及装置 - Google Patents
一种上行信道状态信息的获取方法及装置 Download PDFInfo
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- WO2021227648A1 WO2021227648A1 PCT/CN2021/081354 CN2021081354W WO2021227648A1 WO 2021227648 A1 WO2021227648 A1 WO 2021227648A1 CN 2021081354 W CN2021081354 W CN 2021081354W WO 2021227648 A1 WO2021227648 A1 WO 2021227648A1
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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
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/713—Spread spectrum techniques using frequency hopping
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
- H04B17/364—Delay profiles
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/382—Monitoring; Testing of propagation channels for resource allocation, admission control or handover
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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
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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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
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
- H04L5/0051—Allocation of pilot signals, i.e. of signals known to the receiver of dedicated pilots, i.e. pilots destined for a single user or terminal
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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
- H04L5/0058—Allocation criteria
- H04L5/0064—Rate requirement of the data, e.g. scalable bandwidth, data priority
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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
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/542—Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality
Definitions
- the present disclosure relates to the field of communication technology, and in particular to a method and device for acquiring uplink channel state information.
- the reciprocity between the angle information and delay information of the uplink channel and the downlink channel is used, that is, the angle information of the uplink channel It can be used as the angle information of the downlink channel, and the delay information of the uplink channel can be used as the delay information of the downlink channel.
- the port selection codebook and the enhanced port selection codebook are respectively defined, thereby assisting the network side equipment to select the appropriate precoding matrix.
- the network side device configures the corresponding Sounding Reference Signal (SRS) resource for the terminal, and the terminal sends the SRS to the network side device based on the SRS resource configuration, so that the network side device can determine the uplink channel through the SRS sent by the terminal Information, and further, obtain angle information and delay information according to the uplink channel information, where the angle information is used to characterize the transmission angle of the signal, and the delay information is used to characterize the time required for the signal from the sending end to the receiving end.
- SRS Sounding Reference Signal
- the SRS resources configured for the terminal on the network side are as follows:
- one SRS resource can be transmitted on N consecutive Orthogonal Frequency Division Multiplexing (OFDM) symbols, where the value of N is 1, 2 or 4.
- OFDM Orthogonal Frequency Division Multiplexing
- one SRS resource has a comb structure, that is, one SRS resource is not mapped on consecutive subcarriers.
- the Comb structure can be represented by the Comb parameter, the value of the Comb parameter is 2 or 4, where the value of the Comb parameter is 2 means that an SRS resource is mapped on every other subcarrier, as shown in SRS resource A and SRS resource B in Figure 1. As shown, the value of the Comb parameter is 4, which means that one SRS resource is mapped on three subcarriers, as shown in SRS resource C in FIG. 1.
- ⁇ U represents the frequency interval of the uplink channel (that is, the interval of subcarriers, physical resource blocks (PRB) or uplink subbands), and ⁇ m represents the delay of the m-th transmission path, Represents the number of resource elements (Resource Element, RE) occupied by sending SRS on the uplink channel subband or PRB, and j represents an imaginary number.
- RE resource Element
- the delay vector of the m-th transmission path of the uplink channel can be passed through a discrete Fourier Transform (DFT) basis vector in the frequency domain.
- DFT discrete Fourier Transform
- the network side device can capture the transmission path with a shorter delay.
- the network side equipment adopts the existing SRS resource configuration method to configure SRS resources for the terminal, since the frequency interval of the Comb structure is small, that is, ⁇ U is small, it is impossible to capture a transmission path with a small delay, and thus cannot Obtain more accurate channel delay information.
- the present disclosure provides a method and device for acquiring uplink channel state information, which are used to capture transmission paths with different delay sizes, thereby designing a higher-precision port selection codebook.
- a method for acquiring uplink channel state information includes:
- the network side device determines that it needs to obtain uplink channel state information, it determines the sounding reference signal SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters;
- the network side device sends the SRS resource configuration information to the terminal, and receives at least one SRS reported by the terminal based on the SRS resource configuration information;
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and determines corresponding uplink channel state information.
- the uplink channel state information includes angle information and/or delay information, where the angle information is used to characterize the signal transmission angle and the signal arrival angle, and the delay information is used to characterize the signal from the terminal The time required to send to the network side device.
- the preset bandwidth parameter is determined according to the maximum allowable uplink scheduling partial bandwidth BWP or the downlink scheduling BWP, and the preset frequency domain density parameter is determined according to the frequency domain of the downlink channel state information reference signal CSI-RS
- the density or precoding matrix indicates the determination of the subband size of the PMI, where the preset bandwidth parameter is an integer multiple of 4. If the preset bandwidth parameter is determined according to the downlink scheduled BWP, the pre The set bandwidth parameter is not greater than the maximum value of the downlink scheduling BWP.
- the network side device determines SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters, which specifically includes:
- the network side device determines the bandwidth configuration of at least one SRS resource based on preset bandwidth parameters
- the network side device determines the frequency domain density of the at least one SRS resource based on preset frequency domain density parameters
- the network side device determines the time domain parameter N corresponding to the at least one SRS resource based on the type of the service request or the known uplink channel quality information of the terminal;
- the terminal when the value of N is greater than 1, the terminal is instructed to transmit the at least one SRS in a frequency hopping manner on N orthogonal frequency division multiplexing OFDM symbols in one time slot or between different time slots ,
- the value of N is equal to 1, it instructs the terminal to transmit the at least one SRS in a frequency hopping manner between different time slots.
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and determines corresponding uplink channel state information, which specifically includes:
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS;
- the network side device uses the following steps to determine corresponding uplink channel state information:
- the network-side device determines X spatial basis vectors based on the first uplink channel information included in the at least one uplink channel information, and determines the angle information of the uplink channel based on the X spatial basis vectors; the network The side device uses the X space-domain basis vectors as CSI-RS beams, and uses X ports to send beamformed CSI-RS to the terminal, so that the terminal selects L ports from the X ports ;
- the network side device receives the port indication information that characterizes the L ports returned by the terminal, and determines M frequency domains based on the L ports and the second uplink channel information included in the at least one uplink channel information Basis vector; the network side device determines the delay information of the uplink channel based on the M frequency domain basis vectors;
- the X, L, and M are preset integers, and the first uplink channel information and the second uplink channel information are the same or different.
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and determines corresponding uplink channel state information, which specifically includes:
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS;
- the network side device uses the following steps to determine corresponding uplink channel state information:
- the network-side device determines a space-domain basis vector and a frequency-domain basis vector based on the at least one uplink channel information, and determines the angle information and time delay of the uplink channel based on the space-domain basis vector and the frequency-domain basis vector information.
- an apparatus for acquiring uplink channel state information includes:
- Memory used to store executable instructions
- the processor is used to read and execute the executable instructions stored in the memory, and execute the following process:
- the sounding reference signal SRS resource configuration information is determined based on the preset bandwidth parameters, the preset frequency domain density parameters, and the preset time domain parameters;
- the uplink channel used by the terminal is measured, and corresponding uplink channel state information is determined.
- the uplink channel state information includes angle information and/or delay information, where the angle information is used to characterize the signal transmission angle and the signal arrival angle, and the delay information is used to characterize the signal from the terminal The time required to send to the network side device.
- the preset bandwidth parameter is determined according to the maximum allowable uplink scheduling partial bandwidth BWP or the downlink scheduling BWP, and the preset frequency domain density parameter is determined according to the frequency domain of the downlink channel state information reference signal CSI-RS
- the density or precoding matrix indicates the determination of the subband size of the PMI, where the preset bandwidth parameter is an integer multiple of 4. If the preset bandwidth parameter is determined according to the downlink scheduled BWP, the pre The set bandwidth parameter is not greater than the maximum value of the downlink scheduling BWP.
- the processor when determining SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters, the processor is specifically configured to:
- the terminal when the value of N is greater than 1, the terminal is instructed to transmit the at least one SRS in a frequency hopping manner on N orthogonal frequency division multiplexing OFDM symbols in one time slot or between different time slots ,
- the value of N is equal to 1, it instructs the terminal to transmit the at least one SRS in a frequency hopping manner between different time slots.
- the processor when measuring the uplink channel used by the terminal based on the at least one SRS, and determining corresponding uplink channel state information, the processor is specifically configured to:
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS;
- the network side device uses the following steps to determine corresponding uplink channel state information:
- the network-side device determines X spatial basis vectors based on the first uplink channel information included in the at least one uplink channel information, and determines the angle information of the uplink channel based on the X spatial basis vectors; the network The side device uses the X space-domain basis vectors as CSI-RS beams, and uses X ports to send beamformed CSI-RS to the terminal, so that the terminal selects L ports from the X ports ;
- the network side device receives the port indication information that characterizes the L ports returned by the terminal, and determines M frequency domains based on the L ports and the second uplink channel information included in the at least one uplink channel information Basis vector; the network side device determines the delay information of the uplink channel based on the M frequency domain basis vectors;
- the X, L, and M are preset integers, and the first uplink channel information and the second uplink channel information are the same or different.
- the processor when measuring the uplink channel used by the terminal based on the at least one SRS, and determining corresponding uplink channel state information, the processor is specifically configured to:
- a space-domain basis vector and a frequency-domain basis vector are determined, and based on the space-domain basis vector and the frequency-domain basis vector, the angle information and time delay information of the uplink channel are determined.
- an apparatus for acquiring uplink channel state information includes:
- the configuration unit is configured to determine sounding reference signal SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters when determining that uplink channel state information needs to be acquired;
- a sending unit configured to send the SRS resource configuration information to the terminal, and receive at least one SRS reported by the terminal based on the SRS resource configuration information
- the processing unit is configured to measure the uplink channel used by the terminal based on the at least one SRS, and determine corresponding uplink channel state information.
- a storage medium when an instruction in the storage medium is executed by a processor, enables the processor to execute the method for acquiring uplink channel state information according to any one of the foregoing.
- the network side device generates SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters. Then, the network side device generates SRS resource configuration information based on the terminal At least one returned SRS measures the uplink channel used by the terminal and determines the corresponding uplink channel state information.
- the frequency domain density of SRS resources can be adjusted, that is, the frequency domain density of SRS resources can be reduced. Due to the reduced frequency domain density, compared with existing SRS resource configuration methods , It can improve the signal-to-interference and noise ratio of each SRS RE, thereby increasing the coverage of SRS.
- through bandwidth parameters increase the bandwidth of SRS resource configuration, so that the network-side equipment can capture transmission paths with different delays, thereby designing More high-precision port selection codebook.
- Figure 1 is a schematic diagram of the frequency domain density of SRS resources in the prior art
- Fig. 2 is a schematic flowchart of a method for acquiring uplink channel state information provided in an embodiment of the present disclosure
- Fig. 3 is a schematic diagram of frequency domain density of SRS resources provided in an embodiment of the present disclosure
- FIG. 4 is a schematic diagram of frequency domain density of another SRS resource provided in an embodiment of the present disclosure.
- FIG. 5 is a schematic diagram of the physical architecture of an apparatus for acquiring uplink channel state information provided in an embodiment of the disclosure
- FIG. 6 is a schematic diagram of the logical architecture of an apparatus for acquiring uplink channel state information provided in an embodiment of the disclosure.
- the network-side device is based on preset bandwidth parameters, preset frequency domain density parameters, And preset time domain parameters, configure at least one SRS resource for the terminal, and then, when receiving at least one SRS transmitted by the terminal using at least one SRS resource, measure the uplink channel based on the at least one SRS to determine the uplink channel state information .
- the process of acquiring uplink channel state information is as follows:
- S201 When the network side device determines that it needs to obtain uplink channel state information, it determines SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters.
- the uplink channel state information includes any one or a combination of angle information and delay information, where the angle information is used to characterize the signal transmission angle and the signal arrival angle, and the delay information is used to characterize The time required for the signal to be sent from the terminal to the network side device.
- network-side devices include but are not limited to base stations, micro cells, etc. In the following, only base stations are used as an example for description.
- the network side device determines that there are but not limited to the following conditions, it determines that it needs to obtain uplink channel state information:
- the first situation the network side device determines that it needs to obtain the uplink channel state information when it determines to schedule the uplink data transmission of the terminal based on the service request sent by the terminal.
- the base station determines to schedule the uplink data transmission of the terminal based on the service request sent by the terminal, it determines that it needs to obtain angle information and delay information.
- the second case the network side device determines that it needs to obtain uplink channel state information when determining precoding for downlink data transmission based on the service request sent by the terminal.
- the base station determines precoding for downlink data transmission based on the service request sent by the terminal, it determines that it needs to obtain angle information and delay information.
- the network side device determines that it needs to obtain uplink channel state information, it can use but not limited to the following steps to configure SRS resources:
- the network side device determines the bandwidth configuration of at least one SRS resource based on preset bandwidth parameters.
- the preset bandwidth parameter may be determined according to the maximum allowable uplink scheduling partial bandwidth (Bandwidth Part, BWP), or may be determined according to the downlink scheduling BWP, where the preset bandwidth parameter takes a value of 4. If the preset bandwidth parameter is determined according to the BWP of the downlink scheduling, the preset bandwidth parameter is not greater than the maximum value of the BWP of the downlink scheduling.
- BWP Bandwidth Part
- the network side device determines the frequency domain density of at least one SRS resource based on the preset frequency domain density parameter.
- the preset frequency domain density parameter may be determined according to the frequency domain density of the downlink channel state information reference signal (Channel-state information Reference Signal, CSI-RS), or may be determined according to the precoding matrix indicator (Precoding Matrix Indicator). , PMI)
- the subband size is determined.
- the preset frequency domain density parameter is determined according to the subband size of the PMI
- the subband size of the channel quality indication (Channel Quality Indication, CQI) is The subband size of PMI is Then the network side device determines the frequency domain density k of at least one SRS resource based on the preset frequency domain density parameter as Among them, R represents the number of PMIs corresponding to a CQI subband during downlink data transmission, Represents the number of PRBs contained in a CQI subband.
- the preset frequency domain density parameters are determined according to the frequency domain density of CSI-RS.
- the frequency domain density of CSI-RS is 0.25 RE/Resource Block (RB)/port PORT, and the base station is based on CSI-RS.
- Frequency domain density determine that the frequency domain density of SRS resource 1 is 0.25 RE/RB/PORT.
- the preset frequency domain density parameter is determined according to the subband size of PMI, where the subband size of CQI Is 4PRB, and the value of R is 1.
- the subband size of PMI If it is 4, the base station determines the frequency domain density k of SRS resource 2 to be 0.25 RE/RB/PORT based on the subband size of CQI and PMI.
- the network side device determines the time domain parameter N corresponding to at least one SRS resource based on the type of the service request or the known uplink channel quality information of the terminal.
- the terminal when the value of N is greater than 1, the terminal is instructed to transmit at least one SRS in a frequency hopping manner on N OFDM symbols in one time slot or between different time slots.
- the value of N When equal to 1, instruct the terminal to send at least one SRS in a frequency hopping manner between different time slots.
- the base station determines that the time domain parameter N of SRS resource 1 has a value of 1, and the frequency domain density diagram of SRS resource 1 is shown in FIG. 3, where the value of N is 1, indicating the terminal SRS1 is sent by frequency hopping between different time slots.
- the base station determines that the value of the time domain parameter N of SRS resource 2 is 4 based on the uplink channel quality information of the known terminal, and the frequency domain density diagram of SRS resource 2 is shown in FIG. 4, where the value of N is At 4 o'clock, the terminal is instructed to use frequency hopping to send SRS1 on 4 OFDM symbols in a time slot.
- the network side device determines SRS resource configuration information of at least one SRS resource based on the bandwidth configuration, frequency domain density, and time domain parameter N.
- the SRS resource configuration information of at least one SRS resource it is also necessary to determine the period configuration corresponding to the at least one SRS resource based on the preset time domain characteristics.
- the period configuration is used to characterize the adoption period, SRS is sent in a semi-continuous or aperiodic manner.
- the base station determines the periodic configuration 1 of the SRS resource 1 based on the preset time domain characteristics, and the periodic configuration 1 indicates that the SRS 1 is sent in an aperiodic manner.
- At least one SRS resource corresponding to the SRS resource configuration information may be included in the same SRS resource set, or may be included in different SRS resource sets, which is not limited in the present disclosure.
- the network side device sends SRS resource configuration information to the terminal, and receives at least one SRS reported by the terminal based on the SRS resource configuration information.
- the base station sends SRS resource configuration information 1 and SRS resource configuration information 2 to the terminal, and receives SRS1 and SRS2 reported by the terminal based on SRS resource configuration information 1 and SRS resource configuration information 2.
- the network side device measures the uplink channel used by the terminal based on at least one SRS, and determines corresponding uplink channel state information.
- the following two methods can be adopted, but not limited to, to determine the uplink channel state information:
- the first method A one-step method is used to determine the uplink channel state information.
- the network side device measures the uplink channel used by the terminal based on at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS.
- the uplink channel information includes, but is not limited to, angle information, time delay information, Doppler offset information, uplink channel signal amplitude, phase information and other information. All are encapsulated in the uplink channel information. Therefore, further processing of the uplink channel information is required to obtain various information such as angle information and delay information.
- the base station measures the uplink channel used by the terminal based on SRS1 and SRS2, and generates uplink channel information corresponding to SRS1 and uplink channel information 2 corresponding to SRS2.
- the network-side device determines the space-domain basis vector and the frequency-domain basis vector based on at least one uplink channel information.
- the base station determines the spatial basis vector 1 based on the uplink channel information 1, and determines the frequency domain basis vector 1 based on the uplink channel information 2.
- the network-side device determines the angle information and delay information of the uplink channel based on the space-domain basis vector and the frequency-domain basis vector.
- the base station determines the angle information 1 of the uplink channel based on the space-domain basis vector 1, and determines the delay information 1 of the uplink channel based on the frequency-domain basis vector 1.
- steps B1, B2, and B3 are one step.
- steps B1, B2, and B3 are one step.
- the steps are described separately in the present disclosure.
- the second method A two-step method is used to determine the uplink channel state information.
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS.
- the base station measures the uplink channel used by the terminal based on SRS1 and SRS2, and generates uplink channel information corresponding to SRS1 and uplink channel information 2 corresponding to SRS2.
- the network side device determines X spatial basis vectors based on the first uplink channel information included in the at least one uplink channel information, and determines the angle information of the uplink channel based on the X spatial basis vectors.
- the base station determines 8 spatial base vectors 2 based on the uplink channel information 1, and determines the angle information 2 of the uplink channel based on the 8 spatial base vectors 2.
- the network-side device uses X spatial base vectors as CSI-RS beams, and uses X ports to send beamformed CSI-RS to the terminal, so that the terminal selects L ports from the X ports.
- the base station uses 8 spatial base vectors 2 as CSI-RS beams, and uses 8 ports to transmit beamformed CSI-RS to the terminal, so that the terminal selects 4 ports from the 8 ports.
- the network side device receives the port indication information representing the L ports returned by the terminal, and determines M frequency domain basis vectors based on the second uplink channel information contained in the L ports and the at least one uplink channel information.
- the base station receives the port indication information returned by the terminal that characterizes the 4 ports selected by the terminal, and determines 4 frequency domain basis vectors 2 based on the 4 ports and the uplink channel information 2.
- the network side device determines the corresponding time delay information based on the M frequency domain basis vectors.
- the base station determines the time delay information 2 of the uplink channel based on 4 frequency domain basis vectors 2.
- R, N, X, L, M and other parameters can be pre-configured by the network side equipment for the terminal, can be pre-defined by the network side equipment and the terminal, or reported by the terminal, and the disclosure is not limited.
- R, N, The values of X, L, and M are integers.
- steps C1, C2, and C3 are the first step
- steps C4 and C5 are the second step.
- steps C1, C2, and C3 are the first step
- steps C4 and C5 are the second step.
- the network side device uses the first method to determine the uplink channel state information.
- the network side device determines the frequency domain density k of SRS resource 3 to be 0.25RE based on the subband size of the PMI /RB/PORT, and based on the known uplink channel quality information of the terminal, determine the value of the time domain parameter N of SRS resource 3 as 1. Then, the network side equipment based on the bandwidth configuration, frequency domain density k and time domain parameter N, Determine the SRS resource configuration information 3 of the SRS resource 3.
- the network side device sends the SRS resource configuration information 3 to the terminal, and receives the SRS 3 reported by the terminal based on the SRS resource configuration information 3.
- the network side device Based on SRS3, the network side device measures the uplink channel used by the terminal and generates uplink channel information 3 corresponding to SRS3. Then, the network side device determines the spatial domain basis vector 3 and frequency domain basis vector 3 based on the uplink channel information 3, and based on The space-domain basis vector 3 and the frequency-domain basis vector 3 respectively determine the angle information 3 and the delay information 3 of the uplink channel.
- the frequency domain density k of SRS resource 3 is 0.25 RE/RB/PORT, and the value of the time domain parameter N of SRS resource 3 is 1. Since the specific process of determining the bandwidth configuration, frequency domain density k, and time domain parameter N of the SRS3 resource is the same as the above, it will not be repeated here.
- the network side device sends the SRS resource configuration information 3 to the terminal, and receives the SRS 3 reported by the terminal based on the SRS resource configuration information 3.
- the network side device Based on SRS3, the network side device measures the uplink channel used by the terminal and generates uplink channel information 3 corresponding to SRS3. Then, the network side device determines 8 spatial basis vectors 3 based on the uplink channel information 3, and based on the 8 spatial basis vectors Vector 3, determine the angle information 3 of the uplink channel, and then, the network side device uses 8 spatial basis vectors 3 as the CSI-RS beam, and uses 8 ports to send the beam-formed CSI-RS to the terminal, so that the terminal starts from 8 Select 4 ports among the four ports, and the network side device receives the port indication information returned by the terminal that characterizes the 4 ports selected by the terminal, and based on the 4 ports and the uplink channel information 3, determines the 4 frequency domain basis vectors 3, and then the network The side device determines the time delay information 3 of the uplink channel based on the four frequency domain basis vectors 3.
- the network-side device uses the first method to determine the uplink channel state information.
- one SRS resource uses the resource configuration method in the prior art, and the other One SRS resource adopts the resource configuration method provided in this disclosure.
- the network side device determines the resource configuration information 4 of the SRS resource 4 based on the bandwidth configuration of the SRS resource 4 and the value of the Comb parameter.
- the network side device sends SRS resource configuration information 3 and resource configuration information 4 to the terminal, and receives SRS3 and SRS4 reported by the terminal based on the resource configuration information 3 and resource configuration information 4.
- the network side device measures the uplink channel used by the terminal based on SRS3 and SRS4, and generates uplink channel information 3 corresponding to SRS1 and uplink channel information 4 corresponding to SRS4. Then, the network side device determines the spatial basis vector based on the uplink channel information 4 4. Determine the frequency domain basis vector 4 based on the uplink channel information 1. Then, the network side device determines the angle information 4 of the uplink channel based on the spatial basis vector 4, and determines the delay information of the uplink channel based on the frequency domain basis vector 4. 4.
- the network side device uses the second method to determine the uplink channel state information.
- one SRS resource adopts the resource configuration method in the prior art.
- Another SRS resource adopts the resource configuration method provided in this disclosure.
- the network side device determines the resource configuration information 4 of the SRS resource 4 based on the bandwidth configuration of the SRS resource 4 and the value of the Comb parameter.
- the network side device sends the SRS resource configuration information 3 and the resource configuration information 4 to the terminal, and receives the SRS3 and SRS4 returned by the terminal based on the resource configuration information 3 and the resource configuration information 4.
- the network side device measures the uplink channel used by the terminal based on SRS3 and SRS4, and generates uplink channel information 3 corresponding to SRS1 and uplink channel information 4 corresponding to SRS4. Then, the network side device determines 8 spatial domains based on the uplink channel information 4 Base vector 5, and based on 8 spatial base vectors 5, determine the angle information 5 of the uplink channel. Then, the network side device uses 8 spatial base vectors 5 as CSI-RS beams, and uses 8 ports to send beamforming to the terminal.
- the CSI-RS allows the terminal to select 4 ports from the 8 ports, and the network side device receives the port indication information returned by the terminal, which characterizes the 4 ports selected by the terminal, and determines 4 based on the 4 ports and the uplink channel information 3 After that, the network-side device determines the time delay information 5 of the uplink channel based on the four frequency-domain basis vectors 5.
- an embodiment of the present disclosure provides an apparatus for acquiring uplink channel state information, which includes at least:
- the memory 501 is used to store executable instructions
- the processor 502 is configured to read and execute executable instructions stored in the memory, and execute the following process:
- the sounding reference signal SRS resource configuration information is determined based on the preset bandwidth parameters, the preset frequency domain density parameters, and the preset time domain parameters;
- the uplink channel used by the terminal is measured, and corresponding uplink channel state information is determined.
- the uplink channel state information includes angle information and/or delay information, where the angle information is used to characterize the signal transmission angle and the signal arrival angle, and the delay information is used to characterize the signal from the terminal The time required to send to the network side device.
- the preset bandwidth parameter is determined according to the maximum allowable uplink scheduling partial bandwidth BWP or the downlink scheduling BWP, and the preset frequency domain density parameter is determined according to the frequency domain of the downlink channel state information reference signal CSI-RS
- the density or precoding matrix indicates the determination of the subband size of the PMI, where the preset bandwidth parameter is an integer multiple of 4. If the preset bandwidth parameter is determined according to the downlink scheduled BWP, the pre The set bandwidth parameter is not greater than the maximum value of the downlink scheduling BWP.
- the processor 502 when determining SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters, is specifically configured to:
- the terminal when the value of N is greater than 1, the terminal is instructed to transmit the at least one SRS in a frequency hopping manner on N orthogonal frequency division multiplexing OFDM symbols in one time slot or between different time slots ,
- the value of N is equal to 1, it instructs the terminal to transmit the at least one SRS in a frequency hopping manner between different time slots.
- the processor 502 when measuring the uplink channel used by the terminal based on the at least one SRS, and determining corresponding uplink channel state information, the processor 502 is specifically configured to:
- the network side device measures the uplink channel used by the terminal based on the at least one SRS, and generates at least one uplink channel information corresponding to the at least one SRS;
- the network side device uses the following steps to determine corresponding uplink channel state information:
- the network-side device determines X spatial basis vectors based on the first uplink channel information included in the at least one uplink channel information, and determines the angle information of the uplink channel based on the X spatial basis vectors; the network The side device uses the X space-domain basis vectors as CSI-RS beams, and uses X ports to send beamformed CSI-RS to the terminal, so that the terminal selects L ports from the X ports ;
- the network side device receives the port indication information that characterizes the L ports returned by the terminal, and determines M frequency domains based on the L ports and the second uplink channel information included in the at least one uplink channel information Basis vector; the network side device determines the delay information of the uplink channel based on the M frequency domain basis vectors;
- the X, L, and M are preset integers, and the first uplink channel information and the second uplink channel information are the same or different.
- the processor 502 when measuring the uplink channel used by the terminal based on the at least one SRS, and determining corresponding uplink channel state information, the processor 502 is specifically configured to:
- a space-domain basis vector and a frequency-domain basis vector are determined, and based on the space-domain basis vector and the frequency-domain basis vector, the angle information and time delay information of the uplink channel are determined.
- the transceiver 503 is used to receive and send data under the control of the processor 502.
- the bus architecture may include any number of interconnected buses and bridges. Specifically, one or more processors represented by the processor 502 and various circuits of the memory represented by the memory 501 are linked together.
- the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, power management circuits, etc., which are all known in the art, and therefore, no further descriptions are provided herein.
- the bus interface provides the interface.
- the transceiver 503 may be a plurality of elements, including a transmitter and a transceiver, and provide a unit for communicating with various other devices on the transmission medium.
- the processor 502 is responsible for managing the bus architecture and general processing, and the memory 501 can store data used by the processor 502 when performing operations.
- an embodiment of the present disclosure provides an apparatus for acquiring uplink channel state information. As shown in FIG. 6, it at least includes: a configuration unit 601, a sending unit 602, and a processing unit 603, where:
- the configuration unit 601 is configured to determine sounding reference signal SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters when it is determined that uplink channel state information needs to be acquired;
- the sending unit 602 is configured to send the SRS resource configuration information to the terminal, and receive at least one SRS reported by the terminal based on the SRS resource configuration information;
- the processing unit 603 is configured to measure the uplink channel used by the terminal based on the at least one SRS, and determine corresponding uplink channel state information.
- the configuration unit 601, the sending unit 602, and the processing unit 603 cooperate with each other to realize the functions of the apparatus for acquiring uplink channel state information in the foregoing various embodiments.
- the embodiments of the present disclosure provide a storage medium.
- the processor can execute any one implemented by the apparatus for acquiring uplink channel state information in the above process. Item method.
- the network side device generates SRS resource configuration information based on preset bandwidth parameters, preset frequency domain density parameters, and preset time domain parameters. Then, the network side device generates SRS resource configuration information based on the terminal At least one returned SRS measures the uplink channel used by the terminal and determines the corresponding uplink channel state information.
- the frequency domain density of SRS resources can be adjusted, that is, the frequency domain density of SRS resources can be reduced. Due to the reduced frequency domain density, compared with existing SRS resource configuration methods It can improve the signal-to-interference-to-noise ratio of each SRS RE, thereby increasing the coverage of SRS.
- bandwidth parameters it can increase the bandwidth of SRS resource configuration, so that network-side equipment can capture transmission paths with different delays, thereby designing Produce a more high-precision port selection codebook.
- the embodiments of the present disclosure can be provided as a method, a system, or a computer program product. Therefore, the present disclosure may adopt the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Moreover, the present disclosure may take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program codes.
- computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
- These computer program instructions can also be stored in a computer-readable memory that can guide a computer or other programmable data processing equipment to work in a specific manner, so that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction device.
- the device implements the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
- These computer program instructions can also be loaded on a computer or other programmable data processing equipment, so that a series of operation steps are executed on the computer or other programmable equipment to produce computer-implemented processing, so as to execute on the computer or other programmable equipment.
- the instructions provide steps for implementing the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
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Abstract
Description
Claims (12)
- 一种上行信道信息的获取方法,其特征在于,包括:网络侧设备确定需要获取上行信道状态信息时,基于预设的带宽参数、预设的频域密度参数、以及预设的时域参数,确定探测参考信号SRS资源配置信息;所述网络侧设备将所述SRS资源配置信息发送至终端,并接收所述终端基于所述SRS资源配置信息上报的至少一个SRS;所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息。
- 如权利要求1所述的方法,其特征在于,所述预设的带宽参数根据最大允许的上行调度的部分带宽BWP或下行调度的BWP确定,所述预设的频域密度参数根据下行信道状态信息参考信号CSI-RS的频域密度或预编码矩阵指示PMI的子带大小确定,其中,所述预设的带宽参数的取值为4的整数倍,若所述预设的带宽参数根据下行调度的BWP确定,则所述预设的带宽参数不大于下行调度的BWP的最大值。
- 如权利要求1或2所述的方法,其特征在于,所述网络侧设备基于预设的带宽参数、预设的频域密度参数、以及预设的时域参数,确定SRS资源配置信息,具体包括:所述网络侧设备基于预设的带宽参数,确定至少一个SRS资源的带宽配置;所述网络侧设备基于预设的频域密度参数,确定所述至少一个SRS资源的频域密度;所述网络侧设备基于业务请求的类型或已知终端的上行信道质量信息,确定所述至少一个SRS资源对应的时域参数N;所述网络侧设备基于所述带宽配置、所述频域密度和所述时域参数N,确定至少一个SRS资源的SRS资源配置信息;其中,当N的取值大于1时,指示所述终端在一个时隙内或者不同的时隙间的N个正交频分复用OFDM符号上,采用跳频的方式发送所述至少一个SRS,N的取值等于1时,指示所述终端在不同的时隙间采用跳频的方式发送所述至少一个SRS。
- 如权利要求1或2所述的方法,其特征在于,所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息,具体包括:所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,生成所述至少一个SRS对应的至少一个上行信道信息;所述网络侧设备采用以下步骤,确定相应的上行信道状态信息:所述网络侧设备基于所述至少一个上行信道信息包含的第一上行信道信息,确定X个空域基向量,并基于所述X个空域基向量,确定所述上行信道状态信息中的角度信息;所述网络侧设备将所述X个空域基向量作为CSI-RS的波束,并采用X个端口向所述终端发送波束赋形的CSI-RS,令所述终端从所述X个端口中选择L个端口;所述网络侧设备接收所述终端返回的表征所述L个端口的端口指示信息,并基于所述L个端口和所述至少一个上行信道信息包含的第二上行信道信息,确定M个频域基向量;所述网络侧设备基于所述M个频域基向量,确定所述上行信道状态信息中的时延信息;其中,所述X、L、M为预设的整数,所述第一上行信道信息和所述第二上行信道信息相同,或者,不相同。
- 如权利要求1或2所述的方法,其特征在于,所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息,具体包括:所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,生成所述至少一个SRS对应的至少一个上行信道信息;所述网络侧设备采用以下步骤,确定相应的上行信道状态信息:所述网络侧设备基于所述至少一个上行信道信息,确定空域基向量和频域基向量,并基于所述空域基向量和所述频域基向量,确定所述上行信道状态信息中的角度信息和时延信息。
- 一种上行信道状态信息的获取装置,其特征在于,包括:存储器,用于存储可执行指令;处理器,用于读取并执行存储器中存储的可执行指令,执行下列过程:确定需要获取上行信道状态信息时,基于预设的带宽参数、预设的频域密度参数、以及预设的时域参数,确定探测参考信号SRS资源配置信息;将所述SRS资源配置信息发送至终端,并接收所述终端基于所述SRS资源配置信息上报的至少一个SRS;基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息。
- 如权利要求6所述的装置,其特征在于,所述预设的带宽参数根据最大允许的上行调度的部分带宽BWP或下行调度的BWP确定,所述预设的频域密度参数根据下行信道状态信息参考信号CSI-RS的频域密度或预编码矩阵指示PMI的子带大小确定,其中,所述预设的带宽参数的取值为4的整数倍,若所述预设的带宽参数根据下行调度的BWP确定,则所述预设的带宽参数不大于下行调度的BWP的最大值。
- 如权利要求6或7所述的装置,其特征在于,基于预设的带宽参数、预设的频域密度参数、以及预设的时域参数,确定SRS资源配置信息时,所述处理器具体用于:基于预设的带宽参数,确定至少一个SRS资源的带宽配置;基于预设的频域密度参数,确定所述至少一个SRS资源的频域密度;基于业务请求的类型或已知终端的上行信道质量信息,确定所述至少一个SRS资源对应的时域参数N;所述网络侧设备基于所述带宽配置、所述频域密度和所述时域参数N,确定至少一个SRS资源的SRS资源配置信息;其中,当N的取值大于1时,指示所述终端在一个时隙内或者不同的时隙间的N个正交频分复用OFDM符号上,采用跳频的方式发送所述至少一个SRS,N的取值等于1时,指示所述终端在不同的时隙间采用跳频的方式发送所述至少一个SRS。
- 如权利要求6或7所述的装置,其特征在于,基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息时,所述处理器具体用于:所述网络侧设备基于所述至少一个SRS,对所述终端使用的上行信道进行测量,生成所述至少一个SRS对应的至少一个上行信道信息;所述网络侧设备采用以下步骤,确定相应的上行信道状态信息:所述网络侧设备基于所述至少一个上行信道信息包含的第一上行信道信息,确定X个空域基向量,并基于所述X个空域基向量,确定所述上行信道状态信息中的角度信息;所述网络侧设备将所述X个空域基向量作为CSI-RS的波束,并采用X个端口向所述终端发送波束赋形的CSI-RS,令所述终端从所述X个端口中选择L个端口;所述网络侧设备接收所述终端返回的表征所述L个端口的端口指示信息,并基于所述L个端口和所述至少一个上行信道信息包含的第二上行信道信息,确定M个频域基向量;所述网络侧设备基于所述M个频域基向量,确定所述上行信道状态信息中的时延信息;其中,所述X、L、M为预设的整数,所述第一上行信道信息和所述第二上行信道信息相同,或者,不相同。
- 如权利要求6或7所述的装置,其特征在于,基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息时,所述处理器具体用于:基于所述至少一个SRS,对所述终端使用的上行信道进行测量,生成所述至少一个SRS对应的至少一个上行信道信息;采用以下步骤,确定相应的上行信道状态信息:基于所述至少一个上行信道信息,确定空域基向量和频域基向量,并基于所述空域基向量和所述频域基向量,确定所述上行信道状态信息中的角度信息和时延信息。
- 一种上行信道状态信息的获取装置,其特征在于,包括:配置单元,用于确定需要获取上行信道状态信息时,基于预设的带宽参数、预设的频域密度参数、以及预设的时域参数,确定探测参考信号SRS资源配置信息;发送单元,用于将所述SRS资源配置信息发送至终端,并接收所述终端基于所述SRS资源配置信息上报的至少一个SRS;处理单元,用于基于所述至少一个SRS,对所述终端使用的上行信道进行测量,并确定相应的上行信道状态信息。
- 一种存储介质,其特征在于,当所述存储介质中的指令由处理器执行时,使得所述处理器能够执行如权利要求1至5中任一项所述的上行信道状态信息的获取方法。
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| CN121646960A (zh) * | 2023-09-13 | 2026-03-10 | 华为技术有限公司 | 一种反馈信道状态信息的方法和通信装置 |
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- 2021-03-17 WO PCT/CN2021/081354 patent/WO2021227648A1/zh not_active Ceased
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|---|---|
| CN113677007A (zh) | 2021-11-19 |
| US12556330B2 (en) | 2026-02-17 |
| EP4152857A1 (en) | 2023-03-22 |
| US20230198711A1 (en) | 2023-06-22 |
| CN113677007B (zh) | 2024-04-23 |
| EP4152857B1 (en) | 2025-08-06 |
| EP4152857C0 (en) | 2025-08-06 |
| EP4152857A4 (en) | 2023-11-01 |
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