WO2020164323A1 - 传输探测参考信号的方法、装置和系统 - Google Patents
传输探测参考信号的方法、装置和系统 Download PDFInfo
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- WO2020164323A1 WO2020164323A1 PCT/CN2019/130249 CN2019130249W WO2020164323A1 WO 2020164323 A1 WO2020164323 A1 WO 2020164323A1 CN 2019130249 W CN2019130249 W CN 2019130249W WO 2020164323 A1 WO2020164323 A1 WO 2020164323A1
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- frequency domain
- domain range
- activated bwp
- bandwidth
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- 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
- H04L5/005—Allocation of pilot signals, i.e. of signals known to the receiver of common pilots, i.e. pilots destined for multiple users or terminals
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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
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
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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
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0092—Indication of how the channel is divided
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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
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
- H04L5/0012—Hopping in multicarrier systems
Definitions
- the embodiments of the present invention relate to but are not limited to the field of mobile communications.
- the 3 rd Generation Partnership Project defines a sounding reference signal (SRS, Sounding Reference Signal) for uplink channel state measurement.
- Network equipment can obtain the uplink through the SRS sent by terminal equipment.
- Channel status In a fifth generation communication system (5G, 5 th -Generation) generation radio access technology (NR, New Radio Access Technology), a known accurate uplink channel status is significant.
- NR New Radio Access Technology
- BWP Bandwidth part
- the embodiments of the present invention provide a method, device and system for transmitting sounding reference signals, which can realize SRS transmission when part of the frequency domain range of the configured SRS is not within the frequency domain range of the activated BWP.
- the embodiment of the present invention provides a method for transmitting sounding reference signals, which includes: when a part of the frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated part of the bandwidth BWP, determining that the frequency domain range of the actual transmission SRS is The overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP.
- An embodiment of the present invention provides an apparatus for transmitting sounding reference signals, including: a determining module, configured to determine the actual transmission of SRS when part of the frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated part of the bandwidth BWP
- the frequency domain range of is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP.
- the embodiment of the present invention provides an apparatus for transmitting sounding reference signals, including a processor and a computer-readable storage medium.
- the computer-readable storage medium stores instructions. When the instructions are executed by the processor, Any of the above methods for transmitting sounding reference signals.
- the embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of any of the above-mentioned methods for transmitting sounding reference signals are realized.
- the embodiment of the present invention provides a system for transmitting sounding reference signals, including: a first node, configured to determine the actual transmission when part of the frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated partial bandwidth BWP
- the frequency domain range of the SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP
- the second node is configured to be configured when part of the frequency domain range of the configured sounding reference signal SRS is not in the activated partial bandwidth BWP
- the frequency domain range of it is determined that the frequency domain range of the actually received SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP.
- Figure 1 is a schematic diagram of a frequency hopping pattern for transmitting sounding reference signals under the configuration of related protocols
- FIG. 2 is a flowchart of a method for transmitting sounding reference signals proposed by an embodiment of the present invention
- Example 3 is a flowchart of the method for transmitting sounding reference signals proposed in Example 1 of the embodiment of the present invention.
- Fig. 4(a) is a schematic diagram 1 of the relationship between the frequency domain range of SRS, the frequency domain range of activated BWP, and the frequency domain range of actual transmission of SRS according to an embodiment of the present invention
- 4(b) is a second schematic diagram of the relationship between the frequency domain range of SRS, the frequency domain range of activated BWP, and the frequency domain range of actual transmission of SRS according to an embodiment of the present invention
- FIG. 5 is a schematic diagram of a frequency hopping pattern for transmitting sounding reference signals according to an embodiment of the present invention
- FIG. 6 is a schematic diagram of actual occurrence and reception positions of SRS when multiple BWPs are configured in a cell in Example 2 of the embodiment of the present invention
- FIG. 7 is a schematic diagram of the structural composition of an apparatus for transmitting sounding reference signals according to another embodiment of the present invention.
- FIG. 8 is a schematic structural composition diagram of a system for transmitting sounding reference signals proposed by another embodiment of the present invention.
- the new generation wireless access technology of the fifth generation communication system it is of great significance to know the accurate uplink channel state.
- the following objectives can be achieved:
- the network equipment After the network equipment obtains the uplink channel status of different frequency bands, it can allocate the frequency band with good uplink channel quality to the terminal equipment for the transmission of the physical uplink shared channel (PUSCH, Physical Uplink Shared Channel), and the network equipment can choose different through SRS
- the transmission parameters (such as instantaneous data rate) and the selection of different parameters related to uplink multi-antenna transmission are used for uplink frequency selective scheduling.
- SRS can be used to measure uplink timing advance (TA, Timing Advance).
- SRS can be used for uplink beam management.
- SRS can also estimate downlink channel quality to facilitate downlink beamforming (BF, BeamForming) for terminal equipment .
- BF BeamForming
- the concept of Bandwidth part is introduced, and the frequency domain range of the BWP is determined by the location and bandwidth parameter locationAndBandwidth (corresponding to the parameter locationAndBandwidth of the 3GPP 311 protocol), and the terminal only works in the BWP.
- the SRS is also at the BWP level, that is, the SRS transmission is performed within the BWP where the terminal is working.
- the offset parameter nshift (corresponding to the parameter freqDomainShift of the 3GPP 311 protocol) is used to indicate the starting position of the SRS transmission bandwidth.
- nshift indicates the starting position of the SRS transmission bandwidth and the Common Resource Block (CRB) )
- C SRS SRS bandwidth configuration
- B SRS SRS bandwidth configuration parameter B SRS
- SRS frequency hopping Determine the frequency hopping pattern of SRS.
- the sending start position of the SRS configured by the network device for the terminal device is not within the frequency domain of the active BWP of the terminal device, that is, the offset parameter nshift is not configured within the BWP range, resulting in part of the configured SRS
- the frequency domain range is not configured within the BWP range.
- an embodiment of the present invention provides a method for transmitting sounding reference signals, including:
- Step 200 When part of the frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated BWP, determine that the frequency domain range of the actual transmission of the SRS is the frequency domain range of the configured SRS and the frequency domain range of the activated BWP The overlapping part.
- the method when SRS frequency hopping is enabled, the method further includes: determining the frequency hopping pattern of the actual transmission of the SRS according to the configured frequency hopping pattern of the SRS and the frequency domain range of the actual transmission of the SRS, namely The frequency hopping pattern of the actual transmission of the SRS is the overlapping part of the configured frequency hopping pattern of the SRS and the frequency domain range of the actual transmission of the SRS.
- the frequency domain range of the actual transmission of SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP; when SRS frequency hopping is enabled
- the frequency domain range of the actual transmission of SRS is determined as the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP, and according to the frequency hopping pattern of the configured SRS and the frequency domain of the actual transmission of SRS
- the domain range determines the frequency hopping pattern for actual transmission of SRS.
- whether SRS frequency hopping is enabled can be determined according to the frequency hopping configuration parameter b hop .
- the frequency domain range of the configured SRS is determined by the following parameters: the initial transmission position of the configured SRS and the total transmission bandwidth of the configured SRS.
- the frequency hopping pattern of the configured SRS is determined by the following configuration parameters: the frequency hopping parameter of the configured SRS.
- the initial transmission position of the configured SRS is determined according to the configured offset parameter nshift
- the total transmission bandwidth of the configured SRS is determined by the values of bandwidth configuration parameters C SRS and B SRS
- the frequency hopping pattern of the configured SRS is configured by the configuration
- the values of the frequency hopping parameters b hop and nRRC of the SRS are determined; among them, b hop is a frequency hopping configuration parameter, and nRRC is a frequency domain starting position parameter.
- the frequency domain range of the configured SRS refers to the RB starting from the initial transmission position of the configured SRS to the RB starting from the initial transmission position of the configured SRS plus the total transmission bandwidth of the configured SRS The obtained frequency domain range between RBs.
- the frequency hopping pattern of the configured SRS refers to the total bandwidth of the frequency hopping and the position of the frequency hopping.
- the same frequency domain range of the configured SRS corresponds to at least one BWP.
- the part of the frequency domain range of the configured SRS that is not within the frequency domain range of the activated BWP includes at least one of the following:
- the configured start sending position n shift of the SRS is not within the frequency domain range of the activated BWP.
- the end sending position of the configured SRS is not within the frequency domain range of the activated BWP;
- that the configured initial transmission position of the SRS is not within the frequency domain range of the activated BWP includes: the configured initial transmission position of the SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- the determination of the frequency domain range for actually transmitting the SRS is the frequency domain range of the configured SRS and the activation
- the overlapping part of the frequency domain range of BWP includes at least one of the following:
- Csrs is the total transmission bandwidth of the configured SRS
- Is the bandwidth of the activated BWP Is the total bandwidth for actually transmitting the SRS
- Is the starting position of the activated BWP Is the starting position of the configured SRS.
- the start position of the configured SRS when the start position of the configured SRS is not within the frequency domain range of the activated BWP, and the end position of the configured SRS is within the frequency domain range of the activated BWP, it is determined that the SRS is actually transmitted
- the starting position of is the starting position of the activated BWP, and it is determined that the total bandwidth of the actual transmission of SRS is
- the start position of the configured SRS is not within the frequency domain range of the activated BWP, and the end position of the configured SRS is not within the frequency domain range of the activated BWP, it is determined that the actual start position of the SRS is transmitted.
- the initial transmission position of the SRS to determine the total bandwidth of the actual transmission of SRS is
- the method when the frequency domain range of the configured SRS is within the frequency domain range of the activated BWP, the method further includes:
- the frequency domain range of the actually transmitted SRS is the frequency domain range of the configured SRS.
- the frequency domain range of the configured SRS within the frequency domain range of the activated BWP includes:
- the initial transmission position of the configured SRS is within the frequency domain of the activated BWP, and the total transmission bandwidth of the configured SRS satisfies
- Csrs is the total transmission bandwidth of the configured SRS
- Is the bandwidth of the activated BWP Is the starting position of the activated BWP
- n shift is the starting position of the configured SRS.
- the configured start sending position of the SRS within the frequency domain range of the activated BWP includes:
- the initial sending position of the configured SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- determining that the frequency domain range of the actually transmitted SRS is the frequency domain range of the configured SRS includes:
- the frequency domain range of the actual transmission of the SRS is limited to the frequency domain range of the configured SRS and the activated BWP
- the overlapping part of the frequency domain range of SRS realizes the transmission of SRS; and, the radio resource control (RRC, Radio Resource Control) configuration parameters of SRS (including C srs , B SRS , b hop , nRRC, SRS and BWP association The complexity of the parameter), while reducing the interference between different nodes during multi-BWP handover, and improving the resource utilization rate of the SRS configured under the multi-BWP.
- RRC Radio Resource Control
- Figure 3 shows the method for transmitting sounding reference signals proposed in Example 1 of the embodiments of the present invention, including:
- Step 301 The network device configures the initial parameters of the SRS and the BWP associated with the SRS to the terminal device, and activates the BWP.
- the initial parameters of the configured SRS include: nshift, C SRS , B SRS, b hop and nRRC.
- the nshift parameter is used to determine the initial transmission position of the configured SRS
- the C SRS and the B SRS are used to determine the transmission bandwidth of each SRS and the total transmission bandwidth of the SRS
- the b hop and nRRC are used to determine the frequency hopping pattern of the SRS.
- the initial parameters of the configured BWP include locationAndBandwidth0-UP and locationAndBandwidth0-Down.
- locationAndBandwidth0-UP is the uplink location and bandwidth parameters of the BWP
- locationAndBandwidth0-Down is the downlink location and bandwidth parameters of the BWP.
- Step 302 The terminal device obtains the frequency domain range of the configured SRS and the frequency domain range of the activated BWP.
- the frequency domain range of the configured SRS is determined by the following parameters: the initial transmission position of the configured SRS and the total transmission bandwidth of the configured SRS.
- the initial transmission position of the configured SRS is determined according to the configured offset value parameter nshift
- the total transmission bandwidth of the configured SRS is determined by the values of the bandwidth configuration parameters C SRS and B SRS .
- the frequency domain range of the configured SRS refers to the RB obtained from the RB starting from the initial transmission position of the configured SRS to the RB starting from the initial transmission position of the configured SRS plus the total transmission bandwidth of the configured SRS The frequency domain range between.
- Step 303 The terminal device and the network device determine whether the frequency domain of the SRS is within the frequency domain of the activated BWP. When part of the frequency domain of the SRS is not within the frequency domain of the activated BWP, step 304 is executed. When the frequency domain of the SRS When the range is within the frequency domain of the activated BWP, step 305 is executed.
- Step 305 The terminal device determines that the frequency domain range in which the SRS is actually sent is the frequency domain range of the configured SRS.
- Step 306 The terminal device determines that the frequency domain range in which the SRS is actually sent is the overlapping part of the configured frequency domain range of the SRS and the activated BWP frequency domain range.
- Step 307 The terminal device determines that the frequency domain range for actually transmitting SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP, and according to the frequency hopping pattern of the configured SRS and the frequency domain range of the actual transmission of the SRS Determine the frequency hopping pattern that actually sends SRS.
- the initial sending position of SRS configured by the network device to the terminal device is n shift
- the total sending bandwidth of SRS is Csrs
- the starting position of activating BWP is The bandwidth to activate BWP is among them
- the starting position of terminal equipment and network equipment actually sending and receiving SRS is The actual sending and receiving bandwidth is or That is, it can be seen in the figure that the frequency domain position of the terminal equipment and the network equipment sending and receiving SRS (that is, the frequency domain range of the actual transmission of SRS) is the overlap portion of the frequency domain position configured to the SRS and the frequency domain position of activating the BWP.
- the non-overlapping part does not send and receive SRS.
- the frequency domain range of the actual transmission of the SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP, and the frequency hopping pattern is the frequency hopping parameter configuration of the configured SRS.
- the configuration of the frequency domain position parameters of the SRS resources in these BWPs can be exactly the same, that is, the offset parameter nshift (corresponding to The protocol parameter freqDomainShift), an SRS frequency domain position index parameter nRRC (corresponding to the protocol parameter freqDomainPosition), C SRS , B SRS and b hop have the same values.
- the offset parameter nshift corresponding to The protocol parameter freqDomainShift
- nRRC corresponding to the protocol parameter freqDomainPosition
- C SRS , B SRS and b hop have the same values.
- a cell is configured with BWP of three bandwidths of 60M, 80M and 100M, the starting position of BWP1 (60M) bandwidth The starting position of BWP2 (80M) bandwidth The starting position of BWP3 (100M) bandwidth
- the embodiment of the present invention first compares the frequency domain range of the SRS configured by the network equipment to the terminal device with the frequency domain range of the activated BWP, and judges whether the frequency domain position of the configured SRS is within the frequency domain position range of the activated BWP, and accordingly Decide whether to adjust the starting frequency domain position of the actual transmission of SRS, and then proceed according to the configured SRS bandwidth parameter (that is, the total transmission bandwidth of the SRS configured above) and the frequency domain position parameter of the BWP (that is, the bandwidth of the above activated BWP) By comparison, it is determined whether the frequency domain range of the configured SRS and the frequency domain range of the activated BWP completely overlap, and based on this, it is determined whether to adjust the frequency domain range of the actual transmission of the SRS.
- the configured SRS bandwidth parameter that is, the total transmission bandwidth of the SRS configured above
- the frequency domain position parameter of the BWP that is, the bandwidth of the above activated BWP
- the behavior of the network device and the terminal device to receive and send the SRS can be determined.
- the terminal device is switching between multiple BWPs, the same terminal device is in multiple BWPs.
- the frequency domain configuration of the SRS can be the same, which greatly simplifies the configuration complexity of the SRS in multiple BWPs.
- there will be no collision between the SRS of different terminal equipment which reduces the SRS interference in the cell and increases Resource utilization of SRS under multiple BWPs.
- another embodiment of the present invention provides an apparatus for transmitting sounding reference signals, including:
- the determining module 701 is configured to determine that the frequency domain range of the actually transmitted SRS is the frequency domain range of the configured SRS and the frequency domain range of the configured SRS when the partial frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated partial bandwidth BWP.
- the determining module 701 is further configured as:
- the frequency hopping pattern of the actual transmission of SRS is determined according to the configured frequency hopping pattern of the SRS and the frequency domain range of the actual transmission of SRS, that is, the frequency hopping pattern of the actual transmission of SRS is the frequency hopping of the configured SRS The overlap between the pattern and the frequency domain of the actual transmission of SRS.
- the frequency domain range of the actual transmission of SRS is the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP; when SRS frequency hopping is enabled
- the frequency domain range of the actual transmission of SRS is determined as the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP, and according to the frequency hopping pattern of the configured SRS and the frequency domain of the actual transmission of SRS
- the domain range determines the frequency hopping pattern for actual transmission of SRS.
- the frequency domain range of the configured SRS is determined by the following parameters: the initial transmission position of the configured SRS and the total transmission bandwidth of the configured SRS.
- the frequency hopping pattern of the configured SRS is determined by the following configuration parameters: the frequency hopping parameter of the configured SRS.
- the initial transmission position of the configured SRS is determined according to the configured offset parameter nshift
- the total transmission bandwidth of the configured SRS is determined by the values of the bandwidth configuration parameters C SRS and B SRS
- the frequency hopping pattern of the configured SRS is determined by the configuration
- the values of the frequency hopping parameters b hop and nRRC of the SRS are determined; among them, b hop is a frequency hopping configuration parameter, and nRRC is a frequency domain starting position parameter.
- the frequency domain range of the configured SRS refers to the RB starting from the initial transmission position of the configured SRS to the RB starting from the initial transmission position of the configured SRS plus the total transmission bandwidth of the configured SRS The obtained frequency domain range between RBs.
- the frequency hopping pattern of the configured SRS refers to the total bandwidth of the frequency hopping and the position of the frequency hopping.
- the same frequency domain range of the configured SRS corresponds to at least one BWP.
- the part of the frequency domain range of the configured SRS that is not within the frequency domain range of the activated BWP includes at least one of the following:
- the configured start sending position n shift of the SRS is not within the frequency domain range of the activated BWP;
- the end sending position of the configured SRS is not within the frequency domain range of the activated BWP.
- the determining module 701 may be configured to use at least one of the following methods to implement the determination of the frequency domain range for actually transmitting the SRS as the overlapping part of the frequency domain range of the configured SRS and the frequency domain range of the activated BWP:
- Csrs is the total transmission bandwidth of the configured SRS
- Is the bandwidth of the activated BWP Is the total bandwidth for actually transmitting the SRS
- Is the starting position of the activated BWP Is the starting position of the configured SRS.
- the start position of the configured SRS when the start position of the configured SRS is not within the frequency domain range of the activated BWP, and the end position of the configured SRS is within the frequency domain range of the activated BWP, it is determined that the SRS is actually transmitted
- the starting position of is the starting position of the activated BWP, and it is determined that the total bandwidth of the actual transmission of SRS is
- the start position of the configured SRS is not within the frequency domain range of the activated BWP, and the end position of the configured SRS is not within the frequency domain range of the activated BWP, it is determined that the actual start position of the SRS is transmitted.
- the initial transmission position of the SRS to determine the total bandwidth of the actual transmission of SRS is
- that the configured start sending position of the SRS is not within the frequency domain range of the activated BWP includes:
- the initial sending position of the configured SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- the determining module 701 is further configured as:
- the frequency domain range of the configured SRS is within the frequency domain range of the activated BWP, it is determined that the frequency domain range of the actually transmitted SRS is the frequency domain range of the configured SRS.
- the frequency domain range of the configured SRS within the frequency domain range of the activated BWP includes:
- the initial transmission position of the configured SRS is within the frequency domain of the activated BWP, and the total transmission bandwidth of the configured SRS satisfies
- Csrs is the total transmission bandwidth of the configured SRS
- Is the bandwidth of the activated BWP Is the starting position of the activated BWP
- n shift is the starting position of the configured SRS.
- the determining module 701 may be configured to implement the determination of the frequency domain range of the actually transmitted SRS as the frequency domain range of the configured SRS in the following manner:
- the configured start sending position of the SRS within the frequency domain range of the activated BWP includes:
- the initial sending position of the configured SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- the frequency domain range of the actual transmission of the SRS is limited to the frequency domain range of the configured SRS and the activated BWP
- the overlapping part of the frequency domain range of SRS realizes the transmission of SRS; and, the radio resource control (RRC, Radio Resource Control) configuration parameters of SRS (including C srs , B SRS , b hop , nRRC, SRS and BWP association The complexity of the parameter), while reducing the interference between different nodes during multi-BWP handover, and improving the resource utilization rate of the SRS configured under the multi-BWP.
- RRC Radio Resource Control
- Another embodiment of the present invention provides an apparatus for transmitting sounding reference signals, including a processor and a computer-readable storage medium, the computer-readable storage medium stores instructions, and when the instructions are executed by the processor , To implement any of the above methods for transmitting sounding reference signals.
- Another embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of any of the above-mentioned methods for transmitting sounding reference signals are realized.
- another embodiment of the present invention provides a system for transmitting sounding reference signals, including:
- the first node 801 is configured to determine that when a part of the frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated partial bandwidth BWP, determine that the frequency domain range of the actually transmitted SRS is the frequency domain range of the configured SRS and The overlapping part of the frequency domain range of the activated BWP;
- the second node 802 is configured to determine that the frequency domain range of the actually received SRS is the frequency domain range of the configured SRS when the partial frequency domain range of the configured sounding reference signal SRS is not within the frequency domain range of the activated partial bandwidth BWP The overlapping part of the frequency domain range of the activated BWP.
- the first node 801 is also configured as:
- the second node 802 is also configured as:
- the frequency hopping pattern of the actually received SRS is determined according to the configured frequency hopping pattern of the SRS and the frequency domain range of the actual transmission of the SRS.
- the first node 801 is further configured as:
- the frequency domain range of the configured SRS is within the frequency domain range of the activated BWP, determining that the frequency domain range in which the SRS is actually sent is the frequency domain range of the configured SRS;
- the second node 802 is also configured as:
- the frequency domain range of the configured SRS is within the frequency domain range of the activated BWP, it is determined that the frequency domain range of the actually received SRS is the frequency domain range of the configured SRS.
- the first node 801 is further configured as:
- the second node 802 is also configured as:
- Csrs is the total transmission bandwidth of the configured SRS
- n shift is the starting position of the configured SRS.
- the configured start sending position of the SRS within the frequency domain range of the activated BWP includes:
- the initial sending position of the configured SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- the first node 801 is further configured as:
- the configured start sending position of the SRS is not within the frequency domain range of the activated BWP;
- the end sending position of the configured SRS is not within the frequency domain range of the activated BWP;
- Determining that the start position for actually sending the SRS is the start position of the activated BWP or the start position of the configured SRS;
- the second node 802 is also configured as:
- the configured start sending position of the SRS is not within the frequency domain range of the activated BWP;
- the end sending position of the configured SRS is not within the frequency domain range of the activated BWP;
- Determining that the starting position for actually receiving the SRS is the starting position of the activated BWP or the starting position of the configured SRS;
- Csrs is the total transmission bandwidth of the configured SRS
- n shift is the initial sending position of the configured SRS.
- that the configured start sending position of the SRS is not within the frequency domain range of the activated BWP includes:
- the initial sending position of the configured SRS satisfies
- n shift is the initial sending position of the configured SRS, Is the starting position of the activated BWP.
- each processing module in the algorithm of this patent can be realized by a program running on a processor, or can be realized by a specific logic circuit, such as: a central processing unit (CPU), a microprocessor It can be implemented by a device (MPU), a digital signal processor (DSP), or a field programmable gate array (FPGA).
- CPU central processing unit
- MPU microprocessor
- DSP digital signal processor
- FPGA field programmable gate array
- GSM Global System of Mobile communication
- CDMA Code Division Multiple Access
- GSM broadband code division multiple access
- WCDMA Wideband Code Division Multiple Access system
- General Packet Radio Service GPRS, General Packet Radio Service
- LTE Long Term Evolution
- LTE-A Advanced Long Term Evolution
- FDD Frequency Division Duplex
- TDD Time Division Duplex
- UMTS Universal Mobile Telecommunication System
- WiMAX Worldwide Interoperability for Microwave Access
- WiMAX Worldwide Interoperability for Microwave Access
- next-generation communications System for example, fifth-generation (5G, fifth-generation) communication system
- NR New Radio access technology
- the network device mentioned in the solution of this application can be any device with a wireless transceiver function or a chip that can be installed in the device.
- the device includes but is not limited to: base station (for example, base station NodeB, evolved base station eNodeB) , The next generation (NR) base station (gNodeB, next Generation NodeB), the network equipment in the fifth generation (5G) communication system (such as transmission point (TP, Transmission Point), transmission and reception point (TRP, Transmission Reception Point), small Base station equipment, etc.), network equipment in future communication systems, access nodes, wireless relay nodes, and wireless backhaul nodes in a wireless fidelity (WiFi, Wireless-Fidelity) system.
- terminal equipment may also be referred to as user equipment (UE, User Equipment), access terminal, user unit, user station, mobile station, mobile station, remote station, remote terminal, mobile equipment, user terminal, terminal, wireless communication Equipment, user agent or user device.
- the terminal device in the embodiment of the present application may be a mobile phone (mobile phone), a tablet computer (Pad), a computer with a wireless transceiver function, a virtual reality (VR, Virtual Reality) terminal device, and an augmented reality (AR, Augmented Reality) terminal Equipment, wireless terminals in industrial control, wireless terminals in self-driving, wireless terminals in remote medical, wireless terminals in smart grid, transportation safety ( Wireless terminals in transportation safety, wireless terminals in smart cities, and wireless terminals in smart homes.
- the embodiment of this application does not limit the application scenario.
- the aforementioned terminal equipment and the chips that can be installed in the aforementioned terminal equipment are collectively referred to as terminal equipment.
- the disclosed method and device can be implemented in other ways.
- the device embodiments described above are merely illustrative.
- the division of the modules is only a logical function division, and there may be other divisions in actual implementation, such as: multiple modules or components can be combined, or It can be integrated into another system, or some features can be ignored or not implemented.
- the communication connection between the displayed or discussed components may be indirect coupling or communication connection through some interfaces, devices or modules, and may be electrical, mechanical or other forms.
- modules described above as separate components may or may not be physically separate, and the components displayed as modules may or may not be physical modules, that is, they may be located in one place or distributed on multiple network modules; Some or all of the modules may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.
- the functional modules in the embodiments of the present invention may all be integrated into one processing module, or each module may be individually used as a module, or two or more modules may be integrated into one module;
- the module can be implemented in the form of hardware, or in the form of hardware plus software functional modules.
- All or part of the steps of the above method embodiments can be implemented by a program instructing relevant hardware, the aforementioned program can be stored in a computer-readable storage medium, and when the program is executed, it executes the steps including the above method embodiments; and
- the aforementioned storage media include: removable storage devices, read-only memory (ROM, Read-Only Memory), magnetic disks or optical disks, and other media that can store program codes.
- Such software may be distributed on a computer-readable medium
- the computer-readable medium may include a computer storage medium (or non-transitory medium) and a communication medium (or transitory medium).
- the term computer storage medium includes volatile and non-volatile memory implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules, or other data).
- Computer storage media include but are not limited to RAM, ROM, EEPROM, flash memory or other memory technology, CD-ROM, digital versatile disk (DVD) or other optical disk storage, magnetic cassette, tape, magnetic disk storage or other magnetic storage device, or Any other medium used to store desired information and that can be accessed by a computer.
- communication media usually contain computer-readable instructions, data structures, program modules, or other data in a modulated data signal such as carrier waves or other transmission mechanisms, and may include any information delivery media .
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Abstract
Description
Claims (20)
- 一种传输探测参考信号的方法,包括:当配置的探测参考信号SRS的部分频域范围不在激活部分带宽BWP的频域范围内时,确定实际传输SRS的频域范围为配置的SRS的频域范围和所述激活BWP的频域范围的重叠部分。
- 根据权利要求1所述的方法,其中,当SRS跳频使能时,该方法还包括:根据配置的SRS的跳频图样和所述实际传输SRS的频域范围确定实际传输SRS的跳频图样。
- 根据权利要求2所述的方法,其中,所述配置的SRS跳频图样由跳频参数b hop和nRRC确定;其中,b hop为跳频配置参数,nRRC为频域起始位置参数。
- 根据权利要求1~3任一项所述的方法,其中,当所述配置的SRS的频域范围在所述激活BWP的频域范围内时,该方法还包括:确定所述实际传输SRS的频域范围为所述配置的SRS的频域范围。
- 根据权利要求1~3任一项所述的方法,其中,所述配置的SRS的部分频域范围不在所述激活BWP的频域范围内包括以下至少之一:配置的SRS的起始发送位置不在所述激活BWP的频域范围内;配置的SRS的结束发送位置不在所述激活BWP的频域范围内;所述确定实际传输所述SRS的频域范围为配置的SRS的频域范围和激活BWP的频域范围的重叠部分包括以下至少之一:确定实际传输所述SRS的起始位置为所述激活BWP的起始位置或配置的SRS的起始发送位置;
- 根据权利要求7或8所述的方法,其中,当配置的SRS的起始发送位置不在所述激活BWP的频域范围内,且配置的SRS的结束发送位置在激活BWP的频域范围内时,确定实际传输所述SRS的起始位置为所述激活BWP的起始位置,且确定实际传输SRS的总的带宽为当配置的SRS的起始发送位置不在所述激活BWP的频域范围内,且配置的SRS的结束发送位置不在激活BWP的频域范围内时,确定实际传输所述SRS的起始位置为所述激活BWP的起始位置,且确定实际传输SRS的总的带宽为 并且当配置的SRS的起始发送位置在所述激活BWP的频域范围内,且配置的SRS的结束发送位置不在激活BWP的频域范围内时,确定实际传输所述SRS的起始位置为配置的SRS的起始发送位置,且确定实际传输SRS的总的带宽为
- 根据权利要求1~3任一项所述的方法,其中,所述配置的SRS的同一个频域范围对应至少一个BWP。
- 一种传输探测参考信号的装置,包括:确定模块,构造为当配置的探测参考信号SRS的部分频域范围不在激活部分带宽BWP的频域范围内时,确定实际传输SRS的频域范围为所述配置的SRS的频域范围和所述激活BWP的频域范围的重叠部分。
- 一种传输探测参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,其中,当所述指令被所述处理器执行时,实现如权利要求1~10任一项所述的传输探测参考信号的方法。
- 一种计算机可读存储介质,其上存储有计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求1~10任一项所述的传输探测参考信号的方法的步骤。
- 一种传输探测参考信号的系统,包括:第一节点,构造为当配置的探测参考信号SRS的部分频域范围不在激活部分带宽BWP的频域范围内时,确定实际发送SRS的频域范围为所述配置的SRS的频域范围和所述激活BWP的频域范围的重叠部分;第二节点,构造为当配置的探测参考信号SRS的部分频域范围不在所述激活BWP的频域范围内时,确定实际接收SRS的频域范围为所述配置的SRS的频域范围和所述激活BWP的频域范围的重叠部分。
- 根据权利要求14所述的系统,所述第一节点还构造为:当SRS跳频使能时,根据配置的SRS的跳频图样和所述实际传输SRS的频域范围确定实际发送SRS的跳频图样;所述第二节点还构造为:当SRS跳频使能时,根据配置的SRS的跳频图样和所述实际传输SRS的频域范围确定实际接收SRS的跳频图样。
- 根据权利要求14或15所述的系统,所述第一节点还构造为:当所述配置的SRS的频域范围在所述激活BWP的频域范围内时,确定所述实际发送SRS的频域范围为所述配置的SRS的频域范围;所述第二节点还构造为:当所述配置的SRS的频域范围在所述激活BWP的频域范围内时,确定所述实际接收SRS的频域范围为所述配置的SRS的频域范围。
- 根据权利要求16所述的系统,其中,所述第一节点还构造为:所述第二节点还构造为:
- 根据权利要求14或15所述的系统,其中,所述第一节点还构造为:当满足以下至少之一时:配置的SRS的起始发送位置不在所述激活BWP的频域范围内;配置的SRS的结束发送位置不在所述激活BWP的频域范围内;执行以下至少之一:确定实际发送所述SRS的起始位置为所述激活BWP的起始位置或配置的SRS的起始发送位置;所述第二节点还构造为:当满足以下至少之一时:配置的SRS的起始发送位置不在所述激活BWP的频域范围内;配置的SRS的结束发送位置不在所述激活BWP的频域范围内;执行以下至少之一:确定实际接收所述SRS的起始位置为所述激活BWP的起始位置或配置的SRS的起始发送位置;
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