WO2023011551A1 - 一种相位跟踪参考信号的传输方法及装置 - Google Patents
一种相位跟踪参考信号的传输方法及装置 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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Definitions
- the present application relates to the field of communication technologies, and in particular to a method and device for transmitting a phase tracking reference signal.
- phase noise phase noise
- CFO carrier frequency offset
- cyclic prefix-orthogonal frequency division multiplexing cyclic prefix-orthogonal frequency division multiplexing, CP-OFDM
- CP-OFDM cyclic prefix-orthogonal frequency division multiplexing
- DFT-s-OFDM discrete Fourier transform extended orthogonal frequency division multiplexing
- the PTRS when the PTRS is mapped to the DFT-s-OFDM waveform for transmission, it will be transmitted according to the determined PTRS pattern.
- the PTRS pattern includes the number of PTRS groups and the number of sampling points in the PTRS groups.
- the number of sampling points in the PTRS group in the PTRS pattern is 4, the phase noise estimation performance of PTRS will be affected by the advance amount of the receiving window, making the demodulation performance poor.
- the present application provides a transmission method and device for a phase tracking reference signal to improve demodulation performance.
- the present application provides a transmission method of a phase tracking reference signal, which method can be applied to network equipment, chips or functional modules in network equipment, etc.; or, the method can be applied to terminal equipment, chips in terminal equipment or function modules etc.
- the following are examples of application to network equipment or terminal equipment.
- the method may include: determining a first PTRS pattern, and transmitting a PTRS according to the first PTRS pattern; wherein, the first PTRS pattern belongs to a first PTRS pattern set, and the first PTRS pattern set includes a plurality of PTRS pattern, all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol at the position of the orthogonal frequency division multiplexing (OFDM) symbol; the PTRS pattern is used to indicate the distribution rule of the PTRS in the OFDM symbol ;
- the PTRS pattern includes a plurality of PTRS groups, and each PTRS group includes a plurality of consecutive PTRS sampling points.
- the terminal device and the network device can determine the required PTRS pattern in the PTRS pattern set in which all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol, so that all PTRS groups in the determined PTRS pattern are It is not located at the end of the OFDM symbol to reduce the influence of parameters such as the receiving window advance amount on the phase noise accuracy of PTRS estimation, so that when the PTRS is transmitted according to the PTRS pattern, the demodulation performance can be improved and the spectrum efficiency can be improved.
- transmitting the PTRS according to the first PTRS pattern may specifically be: the network device receives the PTRS according to the first PTRS pattern; when the method is applied to a terminal device, The transmitting the PTRS according to the first PTRS pattern may specifically be: the terminal device sends the PTRS according to the first PTRS pattern.
- all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol at the position of the OFDM symbol, specifically: any sampling point of the last PTRS group in each PTRS pattern is at The positions of the OFDM symbols are not located at the last sampling point or the last modulation symbol (that is, the last QAM symbol) of the OFDM symbol; or, any sampling point of the last PTRS group in each PTRS pattern is in the OFDM symbol The distance between the position of the position of the OFDM symbol and the last sampling point or the last modulation symbol (ie, the last QAM symbol) of the OFDM symbol is greater than a preset distance threshold. In this way, it can be accurately determined that the positions of all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol.
- the number of PTRS sampling points in a PTRS group in any one of the multiple PTRS patterns is not equal to 4. In this way, the positions of all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol.
- the network device determines the first PTRS pattern.
- the specific method may be: the network device determines that the value of the first parameter is greater than or equal to a first threshold, and the first parameter includes a receiving window Advance amount; determine the first PTRS pattern according to the value of the second parameter and the first correspondence; the first correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns, Each value set corresponds to a PTRS pattern, and the multiple PTRS patterns in the first correspondence relationship are the same as the multiple PTRS patterns included in the first PTRS pattern set.
- the network device can determine a PTRS pattern in which all PTRS groups are not located at the end of the OFDM symbol, so as to improve demodulation performance.
- the network device before determining the first PTRS pattern, receives first information from the terminal device, where the first information is used to indicate the value of the second parameter in the recommended second correspondence set, the number of value sets of the second parameter is greater than 5; the second correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns, and the second correspondence
- the plurality of PTRS patterns in includes the first set of PTRS patterns. In this way, the network device can know the value set of the second parameter that meets the requirements of the terminal device.
- the network device before determining the first PTRS pattern, sends second information to the terminal device, where the second information is used to indicate a value set of the second parameter in the second correspondence, the The number of value sets of the second parameter is greater than 5; the second correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns, and the multiple The PTRS patterns include said first set of PTRS patterns.
- the network device can configure the value set of the second parameter for the terminal device, so that the terminal device can further determine the corresponding PTRS pattern set.
- the network device before determining the first PTRS pattern, sends third information to the terminal device, where the third information is used to indicate multiple sets of value sets of the second parameter, and each set of the second parameter The number of value sets of the second parameter is greater than 5.
- the network device sends fourth information to the terminal device, where the fourth information is used to indicate a value set of a group of the second parameters, and the value set of the group of the second parameters
- the value set is one of the multiple sets of value sets of the second parameter; the set of value sets of the second parameter includes the value set of the second parameter in the first correspondence .
- the network device can configure the value set of the second parameter for the terminal device, so that the terminal device can further determine the corresponding PTRS pattern set.
- the network device sends the value of the first parameter to the terminal device; or, the network device sends fifth information to the terminal device, and the fifth information is the first indicates whether the value of the first parameter is greater than or equal to a first threshold; or, the network device sends sixth information to the terminal device, where the sixth information is used to indicate the first correspondence.
- the terminal device can determine the corresponding relationship between the value set of the used second parameter and the PTRS pattern, and then determine the PTRS pattern.
- the terminal device determines the first PTRS pattern
- the specific method may be: the terminal device determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence; the first correspondence is the The corresponding relationship between multiple value sets of the second parameter and multiple PTRS patterns, each value set corresponds to a PTRS pattern, and the multiple PTRS patterns in the first correspondence relationship and the first PTRS pattern The multiple PTRS patterns included in the pattern set are the same; the first PTRS pattern is determined according to the value of the second parameter and the first correspondence. In this way, the terminal device can determine the PTRS pattern in which all PTRS groups are not located at the end of the OFDM symbol, so as to improve the demodulation performance.
- the terminal device determines that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship
- the specific method may be: the terminal device receives the value of the first parameter from the network device , and it is determined that the value of the first parameter is greater than or equal to the first threshold, then it is determined that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship; wherein, the first A parameter includes a receiving window advance; or, the terminal device receives fifth information from the network device, and when the fifth information is a first value, it indicates whether the value of the first parameter is greater than or equal to a first threshold ; If the fifth information is the first value, determine that the value of the first parameter is greater than or equal to the first threshold, then determine that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the The first correspondence; or, the terminal device receives sixth information from the network device, where the sixth information is used to indicate that the correspondence between the value set
- the terminal device before determining that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship, the terminal device sends the first information to the network device, and the first information is used to indicate the recommended
- the value set of the second parameter in the second corresponding relationship the number of value sets of the second parameter is greater than 5; the second corresponding relationship is a plurality of value sets of the second parameter and A correspondence relationship of multiple PTRS patterns, the multiple PTRS patterns in the second correspondence relationship include the first PTRS pattern set.
- the terminal device may notify the network device of the value set of the second parameter supported by its own capability.
- the terminal device before determining that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, receives second information from the network device, and the second information is used to indicate that the first The value set of the second parameter in the two correspondences, the number of value sets of the second parameter is greater than 5; the second correspondence is a plurality of value sets of the second parameter and a plurality of The correspondence between the PTRS patterns, the multiple PTRS patterns in the second correspondence include the first set of PTRS patterns; further, the terminal device determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first A corresponding relationship, the specific method may be: according to the value set of the second parameter indicated by the second information, determine the corresponding relationship between the value set of the second parameter and the PTRS pattern as the first corresponding relationship . In this way, the terminal device can further determine the corresponding PTRS pattern set through the value set of the second parameter configured by the network device.
- the terminal device before determining that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, the terminal device receives third information from the network device, the third information is used to indicate multiple A set of value sets of the second parameter is set, and the number of value sets of the second parameter in each set is greater than 5.
- the terminal device before determining that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, receives fourth information from the network device, and the fourth information is used to Indicating a set of value sets of the second parameter, the set of value sets of the second parameter is one of the multiple sets of value sets of the second parameters; the set of value sets of the second parameters The value set of the two parameters includes the value set of the second parameter in the first correspondence; the terminal device determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, specifically The method may be: according to the set of value sets of the second parameter indicated by the fourth information, determine the correspondence between the value set of the second parameter and the PTRS pattern as the first correspondence. In this way, the terminal device can further determine the corresponding PTRS pattern set through the value set of the second parameter configured by the network device.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the network device is The modulation and coding scheme MCS configured by the terminal device.
- the first parameter further includes a modulation and coding scheme MCS configured by the network device for the terminal device.
- the specific method may be: determine that the value of the receiving window advance corresponding to the first modulation and coding scheme MCS is greater than or equal to It is equal to the first threshold, the first MCS is one of multiple MCSs configured by the network device for the terminal device, and the multiple MCSs correspond to different thresholds of the receiving window advance value.
- the multiple PTRS patterns in the second correspondence include multiple PTRS patterns in the third correspondence, and the value set of the second parameter in the first correspondence and the set The value sets of the second parameters in the third corresponding relationship are different.
- the value set of the second parameter in the first correspondence is the same as the value set of the second parameter in the fourth correspondence, and the value set of the second parameter in the first correspondence is There is at least one PTRS pattern different between the plurality of PTRS patterns and the plurality of PTRS patterns in the fourth correspondence; wherein, the fourth correspondence is a plurality of value sets of the second parameter and a plurality of PTRS patterns The fourth corresponding relationship is the corresponding relationship used when the value of the first parameter is smaller than the first threshold.
- the network device when the network device receives PTRS from the terminal device according to the first PTRS pattern, when the signal-to-noise ratio SNR and/or the MCS configured for the terminal device is greater than a preset threshold, the network device Perform phase noise estimation for each PTRS group in the first PTRS pattern, and perform interpolation between the obtained results of each PTRS group to obtain a full-symbol phase noise estimation result; when the signal-to-noise ratio SNR and/or is the terminal When the modulation and coding scheme MCS configured by the device is less than or equal to the preset threshold, the network device sequentially performs phase-noise joint estimation on each consecutive two PTRS groups in the first PTRS pattern, and obtains each consecutive Interpolation is performed between the results of the two PTRS groups to obtain the full-symbol phase noise estimation result. In this way, the network device can flexibly perform phase noise estimation to obtain a better phase noise estimation result.
- the present application provides a transmission method of a phase tracking reference signal PTRS, which can be applied to network equipment, chips or functional modules in network equipment, etc.; or, the method can be applied to terminal equipment, or in terminal equipment Chips or functional modules, etc.
- PTRS phase tracking reference signal
- the method may include: determining a third PTRS pattern according to the value of the second parameter and a fifth corresponding relationship; wherein the fifth corresponding relationship is a plurality of value sets of the second parameter and a plurality of Correspondence of PTRS patterns, wherein each value set corresponds to a PTRS pattern; the PTRS pattern is used to indicate the distribution rule of the PTRS in the orthogonal frequency division multiplexing OFDM symbol; the PTRS pattern includes a plurality of PTRS Each PTRS group includes a plurality of continuous PTRS sampling points; when there is at least one PTRS group in the third PTRS pattern, the position of the OFDM symbol is located at the end of the OFDM symbol, and it is determined that the value of the first parameter is greater than or equal to the first When a threshold is reached, a fourth PTRS pattern is determined according to the third PTRS pattern, and a PTRS is transmitted according to the fourth PTRS pattern; the first parameter includes a receiving window advance amount.
- the terminal device and the network device can further determine the new PTRS pattern, thereby reducing the impact of the receiving window advance on the PTRS phase noise estimation , to ensure the phase noise estimation performance of PTRS, thereby improving demodulation performance and spectrum efficiency.
- the PTRS when it is determined that the value of the first parameter is smaller than the first threshold, the PTRS is transmitted according to the third PTRS pattern. In this way, when the receiving window advance has no or little influence on the PTRS phase noise estimation, the network device and the terminal device can transmit the PTRS according to the current PTRS pattern.
- the fourth PTRS pattern is determined according to the third PTRS pattern, and the specific method may be: adjusting the number of PTRS groups in the third PTRS pattern and/or the number of PTRS sampling points in a PTRS group, The fourth PTRS pattern is obtained. In this way, the obtained fourth PTRS pattern is not affected by the reception window advance amount and the like on the PTRS phase noise estimation, thereby ensuring the phase noise estimation performance of the PTRS, thereby improving demodulation performance and spectrum efficiency.
- the fourth PTRS pattern is determined according to the third PTRS pattern.
- the specific method may be: multiplying the number of PTRS groups in the third PTRS pattern by A, and multiplying the number of PTRS groups in the third PTRS pattern
- the number of PTRS sampling points in each PTRS group is divided by A to obtain the number of PTRS groups of the fourth PTRS pattern and the number of PTRS sampling points included in each PTRS group, and A is an integer greater than or equal to 2; or, the first Add B to the number of PTRS groups in the three PTRS patterns to obtain the number of PTRS groups of the fourth PTRS pattern, and use the PTRS sampling points of each PTRS group in the third PTRS pattern as the PTRS of each PTRS group in the fourth PTRS pattern
- the number of sampling points, wherein, the distribution distance between the last two PTRS groups in the fourth PTRS pattern is greater than the second threshold; B is an integer greater than or equal to 1; or, add the
- the second threshold and the third threshold are respectively positively correlated with the scheduling bandwidth configured by the network device for the terminal device.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the network device is The modulation and coding scheme MCS configured by the terminal device.
- the first parameter further includes a modulation and coding scheme MCS configured by the network device for the terminal device.
- the specific method may be: determine that the value of the receiving window advance corresponding to the first modulation and coding scheme MCS is greater than or equal to the first threshold A threshold, the first MCS is one of multiple MCSs configured by the network device for the terminal device, and the multiple MCSs correspond to different thresholds of the value of the receiving window advance.
- At least one PTRS group in the first PTRS pattern is located at the end of the OFDM symbol at the position of the OFDM symbol, which may include: at least one sampling point of the at least one PTRS group in the first PTRS pattern is at The position of the OFDM symbol is located at the last sampling point or the last modulation symbol (ie, the last QAM symbol) of the OFDM symbol; or, at least one sampling point of at least one PTRS group exists in the OFDM symbol in the first PTRS pattern The distance between the position and the last sampling point of the OFDM symbol or the last modulation symbol (that is, the last QAM symbol) is less than or equal to a preset distance threshold. In this way, it can be accurately determined that at least one PTRS group in the PTRS pattern is located at the end of the OFDM symbol at the position of the OFDM symbol.
- the network device when the method is applied to a network device, the network device sends the value of the first parameter to the terminal device; or, the network device sends seventh information to the terminal device, and the seventh information uses Indicates whether the value of the first parameter is greater than or equal to the first threshold. In this way, the terminal device can determine whether the first parameter is greater than or equal to the first threshold.
- the terminal device when the method is applied to a terminal device, the terminal device receives the value of the first parameter from the network device; or, the terminal device receives and sends seventh information from the network device, and the seventh information Used to indicate whether the value of the first parameter is greater than or equal to the first threshold. In this way, the terminal device can determine whether the first parameter is greater than or equal to the first threshold.
- the network device when the network device receives PTRS from the terminal device according to the fourth PTRS pattern, when the signal-to-noise ratio SNR and/or the modulation and coding scheme MCS configured for the terminal device is greater than a preset threshold, the The network device performs phase noise estimation for each PTRS group in the fourth PTRS pattern, and performs interpolation between the obtained results of each PTRS group to obtain a full-symbol phase noise estimation result; when the signal-to-noise ratio SNR and/ Or when the modulation and coding scheme MCS configured for the terminal device is less than or equal to the preset threshold, the network device sequentially performs phase-noise joint estimation on every two consecutive PTRS groups in the fourth PTRS pattern, and obtains Interpolation is performed between the results of every two consecutive PTRS groups to obtain a full-symbol phase noise estimation result. In this way, the network device can flexibly perform phase noise estimation to obtain a better phase noise estimation result.
- the present application also provides a transmission device for a phase tracking reference signal
- the transmission device for a phase tracking reference signal may be a terminal device
- the transmission device for a phase tracking reference signal has the function of realizing the above first aspect or the first
- the functions described above may be implemented by hardware, or may be implemented by executing corresponding software on the hardware.
- the hardware or software includes one or more modules corresponding to the above functions.
- the structure of the phase tracking reference signal transmission device includes a transceiver unit and a processing unit, and these units can implement the above-mentioned first aspect or various possible designs of the first aspect, or the second aspect or the first aspect
- the terminal device in each possible design example of the second aspect refer to the detailed description in the method example for details, and details are not repeated here.
- the structure of the phase tracking reference signal transmission device includes a transceiver and a processor, and optionally also includes a memory, and the transceiver is used to send and receive data, and to communicate with other devices in the communication system.
- the device communicates and interacts, and the processor is configured to support the transmission device of the phase tracking reference signal to execute the above-mentioned first aspect or each possible design of the first aspect, or the second aspect or each possible design of the second aspect Corresponding functionality of the end device in the example.
- the memory is coupled with the processor, which stores necessary program instructions and data of the transmission device of the phase tracking reference signal.
- the present application also provides a phase tracking reference signal transmission device, the phase tracking reference signal transmission device may be a network device, and the phase tracking reference signal transmission device has the ability to realize the above first aspect or the first
- the phase tracking reference signal transmission device may be a network device, and the phase tracking reference signal transmission device has the ability to realize the above first aspect or the first
- the functions described above may be implemented by hardware, or may be implemented by executing corresponding software on the hardware.
- the hardware or software includes one or more modules corresponding to the above functions.
- the structure of the phase tracking reference signal transmission device includes a transceiver unit and a processing unit, and these units can implement the above-mentioned first aspect or various possible designs of the first aspect, or the second aspect or the first aspect
- the structure of the phase tracking reference signal transmission device includes a transceiver unit and a processing unit, and these units can implement the above-mentioned first aspect or various possible designs of the first aspect, or the second aspect or the first aspect
- the network device in each possible design example of the second aspect refer to the detailed description in the method example for details, and details are not repeated here.
- the structure of the phase tracking reference signal transmission device includes a transceiver and a processor, and optionally also includes a memory, and the transceiver is used to send and receive data, and to communicate with other devices in the communication system.
- the device communicates and interacts, and the processor is configured to support the transmission device of the phase tracking reference signal to execute the above-mentioned first aspect or each possible design of the first aspect, or the second aspect or each possible design of the second aspect
- the memory is coupled with the processor, which stores necessary program instructions and data of the transmission device of the phase tracking reference signal.
- the embodiment of the present application provides a communication system, which may include the terminal device and the network device mentioned above.
- the embodiments of the present application provide a computer-readable storage medium, the computer-readable storage medium stores program instructions, and when the program instructions are run on the computer, the computer executes the first aspect and its Any possible design, or the method described in the second aspect and any possible design thereof.
- Exemplary, computer readable storage media may be any available media that can be accessed by a computer.
- computer readable media may include non-transitory computer readable media, random-access memory (random-access memory, RAM), read-only memory (read-only memory, ROM), electrically erasable In addition to programmable read-only memory (electrically EPROM, EEPROM), CD-ROM or other optical disk storage, magnetic disk storage medium or other magnetic storage device, or can be used to carry or store the desired program code in the form of instructions or data structures and can Any other media accessed by a computer.
- random-access memory random-access memory
- read-only memory read-only memory
- ROM read-only memory
- CD-ROM or other optical disk storage magnetic disk storage medium or other magnetic storage device, or can be used to carry or store the desired program code in the form of instructions or data structures and can Any other media accessed by a computer.
- the embodiments of the present application provide a computer program product including computer program codes or instructions, which, when run on a computer, enable the computer to implement any possible design of the above-mentioned first aspect or the first aspect, or the first aspect The method described in the second aspect and any possible design thereof.
- the present application also provides a chip, including a processor, the processor is coupled to a memory, and is used to read and execute program instructions stored in the memory, so that the chip realizes the above first aspect Or any possible design of the first aspect, or the method described in the second aspect and any possible design thereof.
- Fig. 1 is a schematic diagram of phase noise power spectral density under a kind of phase noise model
- Fig. 2 is a schematic diagram of the phase noise power spectral density under another phase noise model
- Fig. 3 is a schematic diagram of a frequency domain signal without phase noise influence during a 64QAM modulation signal
- Fig. 4 is a schematic diagram of the influence of weak phase noise on frequency domain signals when a 64QAM modulation signal is used;
- Fig. 5 is a schematic diagram of the influence of strong phase noise on frequency domain signals when a 64QAM modulation signal is used;
- Fig. 6 is a schematic diagram of the distribution of a PTRS pattern with 4 PTRS sampling points in the FFT window of the transmitting end and the receiving end;
- FIG. 7 is a schematic structural diagram of a communication system provided by the present application.
- FIG. 8 is a schematic diagram of functional modules of a sending end and a receiving end provided by the present application.
- FIG. 9 is a flow chart of a method for transmitting a phase tracking reference signal provided by the present application.
- FIG. 10a is a schematic flow diagram of a PTRS transmission provided by the present application.
- FIG. 10b is a schematic flow diagram of a PTRS transmission provided by the present application.
- FIG. 11 is a flow chart of another method for transmitting a phase tracking reference signal provided by the present application.
- FIG. 12 is a schematic flow diagram of another transmission PTRS provided by the present application.
- FIG. 13 is a schematic diagram of mapping of a PTRS pattern provided by the present application.
- FIG. 14 is a schematic structural diagram of a phase tracking reference signal transmission device provided by the present application.
- FIG. 15 is a structural diagram of a transmission device for a phase tracking reference signal provided in the present application.
- Embodiments of the present application provide a method and device for transmitting a phase tracking reference signal, so as to improve demodulation performance.
- the method and the device described in this application are based on the same technical concept. Since the principles of the method and the device to solve the problem are similar, the implementation of the device and the method can be referred to each other, and the repetition will not be repeated.
- At least one (species) refers to one (species) or multiple (species), and multiple (species) refers to two (species) or more than two (species).
- the uplink in addition to supporting cyclic prefix-orthogonal frequency division multiplexing (CP-OFDM) waveforms, the uplink also supports discrete Fourier transform extended regular Cross frequency division multiplexing (discrete fourier transformation-spread-OFDM, DFT-s-OFDM) waveform.
- DFT-s-OFDM waveform has a lower peak-to-average power ratio (PAPR) than the CP-OFDM waveform.
- PAPR peak-to-average power ratio
- N is the number of subcarriers within the scheduling bandwidth
- x(i) is the modulation symbol, wherein the modulation method includes quadrature amplitude modulation (quadrature amplitude modulation, QAM) modulation, quadrature phase shift keying (quadrature phase shift keying, QPSK) modulation, ⁇ /2 phase shift binary phase shift keying ( ⁇ /2 shifted binary phase shift keying, ⁇ /2-BPSK) modulation, amplitude phase shift keying (amplitude phase shift keying, APSK) modulation, non Uniform QAM modulation, etc.; y(k) is a signal to be mapped on a subcarrier.
- an inverse discrete Fourier transform (Inverse Discrete Fourier Transformation, IDFT) operation will be performed on the signal on the subcarrier on the scheduling bandwidth of the same OFDM symbol to recover the transmit a signal.
- IDFT inverse discrete Fourier Transformation
- high frequency frequency band above 6GHz, such as 28GHz, 39GHz, 60GHz, 73GHz, etc.
- PHN phase noise
- CFO carrier frequency offset
- FIGS. 3-5 show schematic diagrams of influences of different phase noises on received signals in the frequency domain (the abscissa is in-phase, and the ordinate is 90-degree phase (quadrature)).
- Figure 3 is a schematic diagram of a frequency domain signal without phase noise influence when corresponding to a 64QAM modulation signal
- Figure 4 is a schematic diagram of the influence of weak phase noise on a frequency domain signal when corresponding to a 64QAM modulation signal
- Figure 5 is a schematic diagram of the influence of strong phase noise on a frequency domain signal when corresponding to a 64QAM modulation signal Schematic representation of signal effects. It can be seen from Figure 3- Figure 5 that when there is phase noise, the constellation points of 64QAM rotate and spread, and the constellation points with strong phase noise are compared with the constellation points with weak phase noise. The ratio of C's distance is higher.
- the existing NR protocol introduces a phase tracking reference signal (PTRS) for both waveforms (CP-OFDM and DFT-s-OFDM) to compensate for the influence of phase noise and improve demodulation performance.
- PTRS phase tracking reference signal
- the transmission process of PTRS may be as follows: the transmitting end maps the PTRS to an Orthogonal Frequency Division Multiplexing (OFDM) symbol according to the PTRS pattern, and sends it to the receiving end; the receiving end receives the PTRS according to the PTRS pattern .
- the PTRS pattern is used to indicate the distribution rule of the PTRS in the OFDM symbol; wherein, the PTRS pattern suitable for DFT-s-OFDM includes a plurality of PTRS groups, and each PTRS group includes a plurality of continuous PTRS sampling points (that is, includes a plurality of continuous modulation symbols).
- the PTRS pattern can be determined by the scheduling bandwidth, as shown in Table 1 below.
- the scheduling bandwidth scheduled by the device to the terminal device and Table 1 determine the specific PTRS pattern in the current data transmission.
- both the network device and the terminal device determine that the number of PTRS groups in the PTRS pattern is 4 according to Table 1 below, and the number of PTRS sampling points in the PTRS group is 2.
- the terminal equipment and network equipment can further determine the specific position of the PTRS in a DFT-s-OFDM symbol.
- the number of all QAM symbols included in a DFT-s-OFDM that is, the number of resource elements (resource elements, RE) or the number of subcarriers included in the scheduling bandwidth
- N PTRS group number
- M the number of PTRS sampling points in the PTRS group
- the number of PTRS sampling points in the PTRS group is 4, one PTRS group in the PTRS group is distributed at the end of the DFT-s-OFDM symbol.
- network equipment generally considers one or more of the effects of multipath, timing error, or different timing errors of different terminal devices, and the timing of its receiving devices will have a certain amount of advance, as shown in Figure 6
- FFT fast Fourier transformation
- Figure 6 shows that the PTRS group number N is 2, 4 and 8 respectively, the PTRS sampling point number in the PTRS group is the pattern of 4, and the FFT window (i.e. the output window) and the reception window of the PTRS pattern at the transmitting end (TX) It can be seen from Fig. 6 that a set of PTRS is distributed at the end of the DFT-s-OFDM symbol. Wherein, the signal in the output window is subjected to IFFT as a whole.
- the signal corresponding to the PTRS group located at the end of the DFT-s-OFDM symbol will also be distributed in the CP part of the head of the DFT-s-OFDM symbol.
- CP cyclic prefix
- IFFT inverse fast Fourier transformation
- the receiving window is advanced, which will cause the channel to be equalized and located in the CP, that is, the PTRS group at the front of the receiving window will be remapped back to the end of the DFT-s-OFDM symbol, and the PTRS group actually located at the end of the DFT-s-OFDM because the receiving window will be discarded in advance, that is, the PTRS group within the dotted box in Figure 6 will be discarded.
- the phase noise estimation of DFT-s-OFDM needs to estimate the phase noise value based on each PTRS group, and interpolate between PTRS groups to obtain the phase noise estimation value on the entire DFT-s-OFDM symbol.
- the PTRS group returning to the tail of the DFT-s-OFDM signal actually comes from the CP in front of the DFT-s-OFDM signal, so the phase noise experienced on it is actually the phase noise in front of the DFT-s-OFDM symbol, not DFT -
- the phase noise on the PTRS group at the end of the s-OFDM symbol so when the phase noise estimated based on the PTRS group is used to interpolate and estimate the phase noise on the entire DFT-s-OFDM symbol, the accuracy of the phase noise estimation will decrease significantly, As a result, the demodulation performance will be deteriorated and the spectral efficiency will be reduced.
- the present application proposes a transmission method of a phase tracking reference signal, so that the phase noise estimation of the PTRS will not be affected by the advance amount of the receiving window, thereby improving demodulation performance and spectral efficiency.
- the transmission method of the phase tracking reference signal provided by the embodiment of the present application can be applied to various communication systems, such as LTE system, NR system, or wireless local area networks (wireless local area networks, WLAN), fifth generation (5th generation, 5G) communication system, the sixth generation (6th generation, 6G) communication system or other future evolution systems, or other wireless communication systems using wireless access technology, etc., as long as there is phase noise in the communication system, the embodiment of the present application Both apply.
- the embodiments of the present application are applicable to scenarios where high-frequency phase noise is severe.
- this application can also be applied to the following scenarios: enhanced mobile broadband (enhanced Mobile BroadBand, eMBB), multi-site transmission (the same terminal device transmits signals to multiple sites), backhaul scenarios, wireless broadband to the home (wireless to the x, WTTx), device to device (device to device, D2D) and other scenarios that require high timing or high transmission rate.
- enhanced mobile broadband enhanced Mobile BroadBand, eMBB
- multi-site transmission the same terminal device transmits signals to multiple sites
- backhaul scenarios wireless broadband to the home (wireless to the x, WTTx)
- device to device device to device
- D2D device to device
- the application does not limit the waveform, and can be applied to systems based on CP-OFDM or DFT-s-OFDM.
- FIG. 7 shows a structural diagram of a possible communication system to which the method for transmitting a phase tracking reference signal provided in the embodiment of the present application is applicable.
- the communication system may include multiple network devices and multiple terminal devices.
- the network device is a device with a wireless transceiver function or a chip that can be set in the network device.
- Network devices can be base stations, relay stations or access points.
- the network device may be a node B (node B, NB) in wideband code division multiple access (WCDMA), or an evolved base station (evolutional Node B, eNB or eNodeB) in LTE, Or a new generation of base stations (generation Node B, gNodeB or gNB) in NR.
- the network device may also be a wireless controller in a cloud radio access network (cloud radio access network, CRAN) scenario.
- cloud radio access network cloud radio access network, CRAN
- the network device may also be a base station controller (base station controller, BSC), a base transceiver station (base transceiver station, BTS), a home base station (for example, home evolved NodeB, or home Node B, HNB), a baseband unit (baseband unit, BBU), wireless fidelity (wireless fidelity, Wi-Fi) system access point (access point, AP), wireless relay node, wireless backhaul node, transmission point (transmission and reception point, TRP or transmission point, TP), etc., may also be a network node constituting a gNB or a transmission point, such as a baseband unit (BBU), or a distributed unit (distributed unit, DU).
- the network device may also be a base station in a future 5G network or a network device in a future evolved shared land mobile network (public land mobile network, PLMN) network.
- the network device may also be a wearable device or a vehicle-mounted device.
- a gNB may include a centralized unit (CU) and a distributed unit (DU).
- the CU implements some functions of the gNB, and the DU implements some functions of the gNB.
- the DU can be used to realize the transmission and reception of radio frequency signals, the conversion of radio frequency signals and baseband signals, and part of baseband processing.
- the CU can be used for baseband processing, controlling the base station, and so on.
- the CU is responsible for processing non-real-time protocols and services, and implements functions of radio resource control (radio resource control, RRC) and packet data convergence protocol (packet data convergence protocol, PDCP) layers.
- RRC radio resource control
- PDCP packet data convergence protocol
- the DU is responsible for processing physical layer protocols and real-time services, realizing the functions of the radio link control (radio link control, RLC) layer, medium access control (medium access control, MAC) layer and physical (physical, PHY) layer. Since the information of the RRC layer will eventually become the information of the PHY layer, or be transformed from the information of the PHY layer, under this architecture, high-level signaling, such as RRC layer signaling, can also be considered to be sent by the DU , or, sent by DU and AAU.
- the network device may be a device including one or more of a CU node, a DU node, and an AAU node.
- the CU can be divided into network devices in an access network (radio access network, RAN), and the CU can also be divided into network devices in a core network (core network, CN), which is not limited in this application.
- Terminal equipment can also be called user equipment (User Equipment, UE), access terminal, terminal unit, terminal station, mobile station, mobile station, remote station, remote terminal, mobile device, wireless communication device, terminal agent or terminal device, etc.
- the terminal device may be a mobile phone, a tablet computer (Pad), a computer with a wireless transceiver function, a virtual reality (virtual reality, VR) terminal device, an augmented reality (augmented reality, AR) terminal device, an industrial control ( Wireless terminals in industrial control, wireless terminals in self driving, wireless terminals in remote medical, wireless terminals in smart grid, and transportation safety Wireless terminals, wireless terminals in smart cities, smart wearable devices (smart glasses, smart watches, smart headphones, etc.), wireless terminals in smart homes, etc.
- VR virtual reality
- AR augmented reality
- Wireless terminals in industrial control Wireless terminals in industrial control, wireless terminals in self driving, wireless terminals in remote medical, wireless terminals in smart grid, and transportation safety Wireless terminals, wireless terminals in smart cities, smart wearable devices (s
- It can also be a cellular phone, a cordless phone, a session initiation protocol (SIP) phone, a wireless local loop (WLL) station, a personal digital assistant (PDA), a wireless communication capable Handheld devices, computing devices or other processing devices connected to wireless modems, vehicle-mounted devices, wearable devices, terminal devices in future 5G networks or terminal devices in future evolved PLMN networks, etc. It may also be a chip or a chip module (or chip system) that can be installed in the above equipment. In this application, a terminal device with a wireless transceiver function and a chip that can be installed in the aforementioned terminal device are collectively referred to as a terminal device.
- a terminal device with a wireless transceiver function and a chip that can be installed in the aforementioned terminal device are collectively referred to as a terminal device.
- eMBB shown by the solid line in Figure 7
- multi-site transmission shown by the dashed line 1 in Figure 7
- backhaul scenarios shown by the dashed line in Figure 7 2
- D2D shown in dotted line 3 in Figure 7
- network devices and terminals can be deployed on land, including indoors or outdoors, handheld or vehicle-mounted; they can also be deployed on water; they can also be deployed on airplanes, balloons and satellites in the air.
- the embodiments of the present application do not limit the application scenarios of the network device and the terminal device.
- the terminal device, or the processor in the terminal device, or a chip or a chip system, or a functional module can be used to transmit the PTRS etc.; it may be a network device, or a processor in the network device, or a chip or a chip system, or a functional module, etc., to realize receiving the PTRS.
- the device that sends the PTRS may be called the sending end, and the device that receives the PTRS is called the receiving end.
- FIG. 8 shows a schematic diagram of functional modules of a sending end and a receiving end to which this embodiment of the present application applies.
- the sending end can generate a PTRS sequence.
- the sending end generates source bits (data bit stream), encodes the source bits, performs QAM modulation on the encoded bits, and obtains a modulated data sequence.
- the transmitting end maps/arranges the generated PTRS sequence and the modulated data sequence (referring to the mapping of the pre-DFT data QAM symbol and the PTRS QAM symbol), and performs a DFT operation on the mapped/arranged sequence.
- the sequence after DFT and the generated DMRS sequence are mapped to the RE (that is, the DFT-s-OFDM symbol is mapped to the specified frequency domain resource), and the inverse fast Fourier transform (inverse fast fourier transform, IFFT) is performed, and the CP is superimposed Obtain the final sequence of symbols. Then the final symbol sequence is sent to the receiver through the channel.
- the inverse fast Fourier transform inverse fast fourier transform, IFFT
- the receiving end is the reverse process of the sending end, that is, after receiving the symbol sequence from the sending end, the receiving end removes the superimposed CP in the symbol sequence (that is, discards the signal outside the FFT receiving window), and performs fast Fourier transform (faast fourier transform, FFT). Afterwards, the receiving end performs channel equalization (including operations such as channel estimation).
- the receiving end performs RE demapping and inverse discrete Fourier transform (IDFT) on the sequence that has completed channel equalization, and then the receiving end performs PTRS acquisition, and performs phase noise estimation according to the obtained PTRS, and according to the phase noise It is estimated that phase noise compensation is performed, and the sequence after phase noise compensation is subjected to QAM demodulation and decoding to restore the data bit stream sent by the sending end.
- IDFT inverse discrete Fourier transform
- DAC digital-to-analog- At least one of a converter (DAC), a power amplifier (power amplifier, PA), a low noise amplifier (low noise amplifier, LNA), an analog-to-digital converter (analog-to-digital converter, ADC) and the like.
- DAC digital-to-analog- At least one of a converter
- PA power amplifier
- LNA low noise amplifier
- ADC analog-to-digital converter
- the transmission method of the phase tracking reference signal provided by the present application is described in detail by taking the sending end as a terminal device and the receiving end as a network device as an example, but this application is not limited thereto.
- OFDM symbol refers generally, which may be a DFT-s-OFDM symbol or a CP-OFDM symbol, which is not limited in this application.
- a method for transmitting a phase tracking reference signal provided in the embodiment of the present application may be applicable to the communication system shown in FIG. 7 .
- the specific process of the method may include:
- Step 901 The terminal device determines a first PTRS pattern.
- the first PTRS pattern belongs to the first PTRS pattern set, the first PTRS pattern set includes a plurality of PTRS patterns, and all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol; the PTRS pattern is used to indicate PTRS distribution rules in OFDM symbols; the PTRS pattern includes a plurality of PTRS groups, and each PTRS group includes a plurality of continuous PTRS sampling points.
- the PTRS pattern is used to indicate the distribution rules of PTRS in OFDM symbols, and the OFDM symbols distributed by PTRS may be one OFDM symbol or multiple OFDM symbols, which is not limited in this application.
- the multiple consecutive PTRS sampling points may be QAM symbols, for example, they may be QAM symbols before DFT, or they may be QAM symbols after IDFT.
- all PTRS groups in each PTRS pattern are not located at the end of the OFDM symbol at the position of the OFDM symbol, which may be any of the following two situations:
- any sampling point of the last PTRS group in each PTRS pattern is not located in the last sampling point of the OFDM symbol or the last QAM symbol in the OFDM symbol.
- the distance between the position of any sampling point of the last PTRS group in each PTRS pattern in the OFDM symbol and the last sampling point of the OFDM symbol or the last QAM symbol is greater than a preset distance threshold.
- the number of PTRS sampling points in a PTRS group in any one of the plurality of PTRS patterns is not equal to 4. In this way, it can also be ensured that the positions of all PTRS groups in the first PTRS pattern determined by the terminal device are not located at the end of the OFDM symbol in the OFDM symbol.
- the terminal device determines the first PTRS pattern
- the specific method may be: the terminal device determines that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship, and according to the first corresponding relationship, The values of the two parameters and the first correspondence determine the first PTRS pattern; wherein, the first correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns, each A value set corresponds to a PTRS pattern, and the multiple PTRS patterns in the first correspondence are the same as the multiple PTRS patterns included in the first PTRS pattern set; A plurality of PTRS patterns constitute the first PTRS pattern set, and it can also be understood that the corresponding relationship is a corresponding relationship between the value set of the second parameter and the first PTRS pattern set.
- the value set of the second parameter in any one of the corresponding relationships can correspond to the threshold value of the second parameter, and can be used to characterize multiple value intervals (or called threshold value intervals, intervals, value ranges, thresholds, etc.) limits, etc.).
- the second parameter may be the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter may also be the scheduling bandwidth configured by the network device for the terminal device and the network
- the device is a modulation coding scheme (modulation coding scheme, MCS) configured for the terminal device.
- the corresponding relationship between the value set of the second parameter and the PTRS pattern may be defined in advance, and the following describes in detail by taking the second parameter as the scheduling bandwidth configured by the network device for the terminal device as an example.
- the value set of the PTRS pattern is expanded (the value of the PTRS pattern is also the number of PTRS groups of the PTRS pattern and the number of PTRS sampling points in each PTRS group), so that each PTRS in the prior art
- a PTRS pattern with 4 PTRS sampling points in the group can correspond to a PTRS pattern with a number of PTRS sampling points other than 4, where "corresponding" can be understood as the same or close to the PTRS overhead, or the same or close to the same or close to the number of PTRS sampling points, that is, Ng*
- the value of Ns is equal or close, Ng represents the number of PTRS groups, Ns represents the number of sampling points in the PTRS group, and defines the corresponding relationship between the value set of multiple second parameters and the PTRS pattern.
- a PTRS pattern with a number of sampling points other than 4 can be configured to avoid the problem of poor demodulation performance caused by a PTRS pattern with a number of sampling points of 4 when there is an influence of the receiving window advance in the prior art.
- it can be understood as adding or extending the PTRS pattern in the above Table 1.
- Ng represents the number of PTRS groups in the PTRS pattern, that is, OFDM symbols (such as DFT-s-OFDM symbols)
- the PTRS pattern of [Ng,4] may correspond to the PTRS pattern of [2Ng,2].
- Table 2 shows the correspondence between scheduling bandwidth and PTRS patterns.
- mapping rule can further be defined for this type of PTRS pattern, such as all mapped in each gap
- the header may also have other mapping rules, which are not limited in this application.
- a corresponding relationship between a set of value sets of the second parameter and multiple PTRS pattern sets can be defined, wherein any two PTRS pattern sets in the multiple PTRS pattern sets have at least A PTRS pattern is different. That is, the value sets of the same second parameter in different scenarios correspond to different PTRS pattern sets.
- the corresponding relationship between the scheduling bandwidth and the PTRS pattern shown in Table 3 below can be that in a set of corresponding relationships, the number of PTRS sampling points in the group of all PTRS patterns in the PTRS pattern set is not 4, that is, in the PTRS pattern set All PTRS groups of all PTRS patterns are not located at the end of the OFDM symbol.
- the scheduling bandwidth and the newly added PTRS pattern set (that is, the newly added multiple PTRS patterns, or the multiple newly added PTRS patterns) have been added. ) correspondence. That is, there is a corresponding relationship between the scheduling bandwidth and the current PTRS pattern set in Table 3 (that is, multiple current PTRS patterns, or multiple current PTRS patterns), and the scheduling bandwidth is related to the newly added PTRS pattern in Table 3. There is another correspondence between collections. It is sufficient to select an appropriate corresponding relationship according to different scenarios to determine the required PTRS pattern.
- the first correspondence relationship may be the correspondence relationship between other PTRS patterns and scheduling bandwidths in Table 2 except that the number of sampling points in the group is 4. That is, at this time, the multiple PTRS patterns included in the first PTRS pattern set can be [2,2], [4,2], [8,2] in Table 2. , the PTRS pattern of [16,2].
- the first correspondence may be the correspondence between the scheduling bandwidth and the newly added PTRS pattern set in Table 3.
- the multiple PTRS patterns included in the first PTRS pattern set can be [2,2], [4,2], [8,2] in the number of PTRS groups and the number of sampling points in the group in Table 3 , the PTRS pattern of [16,2].
- the threshold values of the scheduling bandwidth corresponding to the PTRS pattern [4,2] in Table 3 are N RB1 and N RB3 , that is to say, the scheduling bandwidth is within the range of N RB1 ⁇ N RB ⁇ N RB3 .
- PTRS patterns [4,2] That is, compared to the corresponding relationship in Table 1, the scheduling bandwidth does not change, but the corresponding PTRS pattern changes.
- the terminal device determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, which may specifically include the following three methods:
- Method b1 the terminal device receives the value of the first parameter from the network device, and determines that the value of the first parameter is greater than or equal to the first threshold, then determines the value set of the second parameter
- the corresponding relationship with the PTRS pattern is the first corresponding relationship.
- the terminal device receives fifth information from the network device.
- the fifth information is a first value, it may indicate whether the value of the first parameter is greater than or equal to a first threshold; if the fifth The five information is the first value, and the terminal device determines that the value of the first parameter is greater than or equal to the first threshold, then the terminal device determines the correspondence between the value set of the second parameter and the PTRS pattern is the first corresponding relationship.
- Method b3 The terminal device receives sixth information from the network device, where the sixth information is used to indicate that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence.
- the terminal device determines that the value of the first parameter received from the network device is smaller than the first threshold, the terminal device determines that the value of the second parameter is The correspondence between the value set and the PTRS pattern is the third correspondence or the fourth correspondence.
- the third correspondence and the fourth correspondence are correspondences between a value set of the second parameter and a plurality of PTRS patterns.
- the third correspondence is the correspondence determined by the terminal device in the first possible example above.
- the multiple PTRS patterns in the third correspondence can be [2,2], [2,4], [4,2], [4, 4], [8,4] PTRS patterns, that is, the PTRS pattern set in the third correspondence includes and only includes ⁇ [2,2], [2,4], [4,2], [4,4] , [8,4] ⁇ .
- a value of the above first parameter greater than or equal to the first threshold is classified into one scheme, and a value of the first parameter smaller than the first threshold is classified into another scheme. It should be understood that this is only an example, and a value of the first parameter greater than the first threshold may be classified into one scheme, and a value of the first parameter less than or equal to the first threshold may be classified into another scheme. That is to say, “equal to” can be combined with “greater than” or “less than”, which is not limited in the present application. It should be understood that in the description of the present application, other situations involving "equal to” are the same.
- the threshold value corresponding to the value set of the second parameter in the first correspondence and the The threshold values corresponding to the value sets of the second parameter in the third correspondence relationship are different.
- the threshold value corresponding to the value set of the second parameter in the first correspondence relationship is different from the threshold value corresponding to the value set of the second parameter in the third correspondence relationship. means that at least one threshold value is different.
- the fourth correspondence is a correspondence determined by the terminal device in the second possible example above.
- the fourth correspondence may be the correspondence in Table 3 between the scheduling bandwidth and the current PTRS pattern set.
- the value set of the second parameter in the first correspondence and all values in the fourth correspondence are the same, and at least one PTRS pattern is different between the multiple PTRS patterns in the first correspondence relationship and the multiple PTRS patterns in the fourth correspondence relationship.
- the terminal device determines that the value set of the second parameter is the same as
- the corresponding relationship of the PTRS pattern is the third corresponding relationship or the fourth corresponding relationship.
- the sixth information may be used to indicate that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, or the sixth information may be used to indicate that the The correspondence between the value set of the second parameter and the PTRS pattern is the third correspondence or the fourth correspondence.
- the terminal device may determine the first correspondence The corresponding relationship between the value sets of the two parameters and the PTRS pattern is the first corresponding relationship.
- the terminal device determines the second parameter
- the corresponding relationship between the value set of and the PTRS pattern is the third corresponding relationship or the fourth corresponding relationship.
- the terminal device determines the third correspondence or the fourth correspondence, determine the second PTRS according to the value of the second parameter and the third correspondence or the fourth correspondence pattern, and send a PTRS to the network device according to the second PTRS pattern.
- the value of the first parameter mentioned above that is greater than the first threshold may specifically include the following three situations:
- the first parameter is an advance amount of the receiving window, and the value of the advance amount of the receiving window is greater than or equal to the first threshold.
- the first parameter includes the receiving window advance and the MCS, and the values of the receiving window advance and the MCS are both greater than or equal to their corresponding first thresholds. It should be understood that the first threshold of the receiving window advance value is different from the first threshold of the MCS value, and the respective threshold values are not limited in this application.
- the first parameter includes a reception window advance
- different MCSs may define different reception advance thresholds.
- the value of the receiving window advance is greater than or equal to the first threshold, specifically, the value of the receiving window advance corresponding to the first MCS is greater than or equal to the first threshold, and the first MCS is the first threshold.
- the network device is one of the multiple MCSs configured for the terminal device, and the multiple MCSs correspond to different thresholds of the receiving window advance value.
- the determination condition that the value of the first parameter is less than the first threshold is similar to the determination condition that the value of the first parameter is greater than or equal to the first threshold, and the specific details will not be described in detail in this application.
- the above-mentioned determination that the value of the first parameter is greater than or equal to the first threshold is to determine that the value of the first parameter satisfies a preset condition.
- the preset condition may include: the receiving window advance is greater than or equal to a first threshold, or the receiving window advance and the MCS meet a first condition.
- the receiving window advance amount and the MCS satisfy the first condition, which may include: the receiving window advance amount and the MCS are both greater than or equal to their respective thresholds, or the receiving window corresponding to the first MCS
- the value of the advance amount is greater than or equal to the first threshold. It should be understood that, when the value of the first parameter does not meet the preset condition, it means that the value of the first parameter is smaller than the first threshold, which will not be described in detail here.
- the terminal device may recommend a set of values of the second parameter to the network device according to its own hardware capability Collection (implemented by reporting suggested thresholds).
- the terminal device may send first information to the network device, where the first information is used to indicate that the second The value set of the parameter, the number of the value set of the second parameter is greater than 5; the second correspondence is a plurality of value sets of the second parameter and a plurality of PTRS patterns (may be referred to as the second PTRS image set), the multiple PTRS patterns in the second correspondence include the first PTRS pattern set.
- the second PTRS pattern set in the second correspondence may include multiple PTRS patterns in the third correspondence and multiple PTRS patterns in the first correspondence. That is, the union of the multiple PTRS patterns in the third correspondence and the multiple PTRS patterns in the first correspondence is the second PTRS pattern set.
- the multiple value sets of the second parameter in the second correspondence may include the value sets of the scheduling bandwidth shown in Table 2. It can be seen that there are 7 value sets of the scheduling bandwidth in Table 2, which is greater than 5.
- the terminal device may report five value sets of the second parameter to the network device according to the existing process, that is, different pattern sets correspond to the same second parameter A collection of values.
- the set of values of the second parameter reported by the terminal device to the network device may be the set of five scheduled bandwidth values shown in Table 3.
- the network device configures the value set of the second parameter for the terminal device, so as to notify the terminal device of all The set of values for the second parameter.
- the network device may configure five value sets of the second parameter for the terminal device according to an existing process.
- the value set of the second parameter configured by the network device for the terminal device may be the five value sets of scheduling bandwidth shown in Table 3.
- the method for the network device to configure the value set of the second parameter for the terminal device may include the following two methods:
- Method d1 The terminal device receives second information from the network device, the second information is used to indicate a value set of the second parameter in the second correspondence, and the value of the second parameter The number of collections is greater than 5.
- the terminal device may determine the first corresponding relationship according to the value set of the second parameter indicated by the second information.
- the corresponding relationship between the value sets of the two parameters and the PTRS pattern is the first corresponding relationship.
- the terminal device receives third information from the network device, the third information is used to indicate multiple sets of value sets of the second parameters, and each set of value sets of the second parameters The number is greater than 5. Afterwards, the terminal device receives fourth information from the network device, the fourth information is used to indicate a set of value sets of the second parameters, and the set of values of the set of second parameters is One of the multiple sets of value sets of the second parameter; the set of value sets of the second parameter includes the value set of the second parameter in the first correspondence.
- the terminal device may, according to the set of value sets of the second parameter indicated by the fourth information, Determine the correspondence between the value set of the second parameter and the PTRS pattern as the first correspondence.
- the fourth information indicates a set of values of the second parameter
- it may be realized by indicating whether the value of the first parameter is greater than or equal to the first threshold, or by indicating the value of the first parameter Value acquisition may also be realized by directly indicating a threshold value of a group of second parameters.
- the network device may send the second information or the third information through high-layer signaling, and the network device may send the fourth information through downlink control information (DCI).
- DCI downlink control information
- the fourth information may also be high-level signaling.
- the fourth information is high-level signaling, different from the effective time of the third information, the effective time of the third information is longer than the effective time of the fourth information, or the (average) update frequency of the fourth information is higher, ( average) with a shorter update cycle.
- the value set of the second parameter configured by the network device may also include the value set of the second parameter in the third correspondence.
- the number of the value set of the second parameter regardless of whether it is reported by the terminal device or configured by the network device is the same as the number of multiple PTRS patterns included in the second PTRS pattern set in the second correspondence.
- the configuration may be based on the following criteria:
- N PRBmax is the maximum number of physical resource blocks (physical resource blocks, PRBs) within the scheduling bandwidth.
- subsequent terminal devices and network devices can determine the required PTRS pattern through the third correspondence.
- Criterion 2 When the value of the first parameter is greater than or equal to the first threshold (that is, when the value of the first parameter satisfies a preset condition), the network device can pass the value of the second parameter The value of the set makes a certain interval an empty set and the invalid part will cause the PTRS pattern of the PTRS group at the end of the OFDM symbol (such as the DFT-s-OFDM symbol).
- the subsequent terminal device and network device can determine the required PTRS pattern through the first correspondence.
- the network device needs to dynamically adjust the PTRS pattern determination criterion, namely Dynamically configure the value set of the second parameter.
- the PTRS pattern determination criterion namely Dynamically configure the value set of the second parameter.
- the network equipment can be configured according to the above criterion 1; when the number of scheduled users is large or When there are many multipaths in the channel environment, the impact of the receiving window advance cannot be ignored, so the network equipment can be configured according to the above criterion 2.
- the configuration is only once in the prior art, but in this application, it can be dynamically configured according to the scene, that is, it can be configured multiple times.
- the terminal device first reports multiple value sets of the second parameter recommended through the first information (realized by reporting the recommended threshold value); after that, the network device according to In the current scenario, the terminal device configures the value set of the second parameter (that is, configures the threshold value of the second parameter) for the terminal device through the second information; then, the terminal device configures the value set of the second parameter according to the configuration and the corresponding The PTRS pattern set and the value of the second parameter determine the PTRS pattern, and send the PTRS according to the determined PTRS pattern; the network device configures the value set of the second parameter and the corresponding PTRS pattern set, and the value of the second parameter Determine the PTRS pattern, receive the PTRS according to the determined PTRS pattern, and perform phase noise estimation and compensation.
- the network device reconfigures the value set of the second parameter for the terminal device through the second information according to the changed scene (that is, the gate for configuring the second parameter limit value); then, the terminal device determines the PTRS pattern according to the value set of the configured second parameter and the corresponding PTRS pattern set, and the value of the second parameter, and sends the PTRS according to the determined PTRS pattern; the network device sends the PTRS according to the configured The value set of the second parameter and the corresponding PTRS pattern set, and the value of the second parameter determine the PTRS pattern, and receive the PTRS according to the determined PTRS pattern, and perform phase noise estimation and compensation. It can be seen from FIG. 10a that the network device can perform multiple configuration processes, and FIG. 10a only takes two configuration processes as an example.
- a method in which the network device configures the value set of the second parameter through the above-mentioned method d2 is taken as an example for description.
- the terminal device first reports multiple value sets of the second parameter recommended through the first information (realized by reporting the recommended threshold value); after that, the network device according to In the current scenario, configure the value set of the second parameter (that is, configure the threshold value of the second parameter) for the terminal device through the third information and the fourth information; then, the terminal device configures the value of the second parameter according to the configured value
- the set and the corresponding PTRS pattern set, and the value of the second parameter determine the PTRS pattern, and send the PTRS according to the determined PTRS pattern;
- the network device configures the value set of the second parameter and the corresponding PTRS pattern set, and the second The value of the parameter determines the PTRS pattern, and receives the PTRS according to the determined PTRS pattern, and performs phase noise estimation and compensation.
- the network device reconfigures the value set of the second parameter for the terminal device through the fourth information according to the changed scene (that is, the gate for configuring the second parameter limit value), or reconfigure the value set of the second parameter for the terminal device through the third information and the fourth information (that is, configure the threshold value of the second parameter); then, the terminal device The value set and the corresponding PTRS pattern set, and the value of the second parameter determine the PTRS pattern, and send the PTRS according to the determined PTRS pattern; the network device configures the value set of the second parameter and the corresponding PTRS pattern set, And the value of the second parameter determines the PTRS pattern, receives the PTRS according to the determined PTRS pattern, and performs phase noise estimation and compensation. It can be seen from FIG. 10b that the network device can perform multiple configuration processes, and only two configurations of the fourth information are shown in FIG. 10b as an example.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the MCS configured by the network device for the terminal device
- the value set of the second parameter is the same as that of the PTRS pattern
- the corresponding relationship means that the PTRS pattern is related to both the scheduling bandwidth and the MCS, or the PTRS pattern is determined by both the scheduling bandwidth and the MCS.
- Table 4 below exemplarily shows the corresponding relationship between the scheduling bandwidth, the MCS and the PTRS pattern. Among them, "None" indicates that PTRS is not mapped, or PTRS does not exist, or there is no PTRS.
- PTRS patterns corresponding to different scheduling bandwidths may be different.
- the PTRS pattern corresponding to [N RB1 , N RB2 ) is [4,2]
- the pattern corresponding to [N RB3 , N RB4 ) is [8,2].
- different MCSs may have different PTRS patterns.
- the PTRS pattern corresponding to [MCS 1 , MCS 2 ) is [8,2]
- the PTRS pattern corresponding to [MCS 0 , MCS 1 ) is [4,4].
- Step 902 The network device determines the first PTRS pattern.
- the PTRS patterns determined by the network device and the terminal device are the same, and this application uses the first PTRS pattern as an example for description.
- the network device determines the first PTRS pattern
- the specific method may be: the network device determines that the value of the first parameter is greater than or equal to a first threshold; according to the second The value of the parameter and the first corresponding relationship determine the first PTRS pattern.
- the network device determines that the value of the first parameter is less than or equal to the first threshold, determine the first threshold according to the value of the second parameter and the third corresponding relationship or the fourth corresponding relationship.
- Two PTRS patterns, followed by receiving PTRS with the second PTRS pattern are two PTRS patterns, followed by receiving PTRS with the second PTRS pattern.
- the value of the first parameter is greater than or equal to the first threshold, or the related introduction of the value of the first parameter smaller than the first threshold can refer to the relevant description involved in step 901, which will not be repeated here. repeat.
- the network device determines the first PTRS pattern according to the value of the second parameter and the first correspondence
- the terminal device determines the first PTRS pattern according to the value of the second parameter and the first
- the method for determining the first PTRS pattern according to the corresponding relationship is similar, which can be referred to each other, and will not be repeated here.
- Step 903 The terminal device and the network device transmit PTRS according to the first PTRS pattern.
- the terminal device transmits the PTRS according to the first PTRS pattern, that is, the terminal device sends the PTRS to the network device according to the first PTRS pattern.
- the network device transmits the PTRS according to the first PTRS pattern, that is, the network device receives the PTRS from the terminal device according to the first PTRS pattern.
- the network device may select different phase noise estimation algorithms to perform phase noise estimation according to actual conditions . For example, when the signal-to-noise ratio (signal-to-noise ratio, SNR) and/or MCS is greater than the preset threshold (that is, the SNR and/or MCS is higher, the impact of noise on the estimation accuracy is smaller than the impact of the receiving window advance amount ), the network device may separately perform phase noise estimation for each PTRS group in the first PTRS pattern, and perform interpolation between the obtained results of each PTRS group (that is, perform inter-group interpolation) to obtain a full Phase noise estimation results for symbols.
- SNR signal-to-noise ratio
- MCS the preset threshold
- the network device may separately perform phase noise estimation for each PTRS group in the first PTRS pattern, and perform interpolation between the obtained results of each PTRS group (that is, perform inter-group interpolation) to obtain a full Phase noise estimation results for symbols.
- the network device Phase noise joint estimation or combined estimation can be performed on each consecutive two PTRS groups in the first PTRS pattern in turn, and interpolation is performed between the obtained results of each consecutive two PTRS groups to obtain a full-symbol phase noise Estimated results.
- group 1 and group 2 jointly estimate a phase noise estimate ⁇ 1
- group 3 and group 4 jointly estimate another phase noise estimate ⁇ 2, and then based on ⁇ 1 and ⁇ 2, interpolate to obtain the center points of group 1 and group 2 and group Estimates of the phase noise experienced by the data between the center points of groups 3 and 4.
- two full-symbol phase noise estimation results can also be obtained through the above two methods, and the result with better performance can be selected as the final result.
- the terminal device and the network device can determine the required PTRS pattern in each PTRS pattern in which all PTRS groups are not located at the end of the OFDM symbol in the PTRS pattern set, so that the determination All PTRS groups in the PTRS pattern are not located at the end of the OFDM symbol, so as to reduce the influence of parameters such as the receiving window advance on the phase noise accuracy of PTRS estimation, so that when transmitting PTRS according to the PTRS pattern, the demodulation performance can be improved and the spectral efficiency can be improved.
- the transmission of the PTRS described above is an uplink transmission process.
- the network device sends PTRS to the terminal device, and when the terminal device receives PTRS from the network device, the terminal device will have a receiving window advance amount.
- the terminal device needs to report to the network device
- the receiving window advance amount and other schemes for determining the PTRS pattern are similar to the method in the uplink transmission process, which can be referred to each other, and will not be described in detail here.
- FIG. 11 is another method for transmitting a phase tracking reference signal provided in an embodiment of the present application, which can be applied to the communication system shown in FIG. 7 .
- the specific process of the method may include:
- Step 1101 The first device determines a third PTRS pattern according to the value of the second parameter and the fifth corresponding relationship; wherein, the fifth corresponding relationship is a plurality of value sets of the second parameter and a plurality of PTRS patterns The corresponding relationship, wherein each value set corresponds to a PTRS pattern; the PTRS pattern is used to indicate the distribution rule of the PTRS in the OFDM symbol; the PTRS pattern includes a plurality of PTRS groups, and each PTRS group includes multiple consecutive PTRS sampling points.
- the first device is a network device or a terminal device.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the bandwidth configured by the network device for the terminal device MCS.
- Step 1102 When there is at least one PTRS group in the third PTRS pattern and the position of the OFDM symbol is located at the end of the OFDM symbol, and it is determined that the value of the first parameter is greater than the first threshold, the first device according to the third The PTRS pattern determines a fourth PTRS pattern, and transmits the PTRS according to the fourth PTRS pattern.
- At least one PTRS group in the third PTRS pattern there is at least one PTRS group in the third PTRS pattern, and the position of the OFDM symbol is located at the end of the OFDM symbol.
- at least one sampling point of at least one PTRS group exists in the third PTRS pattern.
- the position of the OFDM symbol is located at the end of the OFDM symbol.
- the distance of one QAM symbol is less than or equal to the preset distance threshold.
- Step 1103 When it is determined that the value of the first parameter is less than or equal to the first threshold, the first device transmits the PTRS according to the third PTRS pattern.
- the relevant description of the first parameter and the value of the first parameter greater than or equal to the first threshold, or the value of the first parameter smaller than the first threshold please refer to the relevant description involved in the embodiment shown in FIG. 9 , which will not be described in detail here.
- the network device sends the value of the first parameter to the terminal device; or, the network device sends seventh information to the terminal device, and the seventh information Used to indicate whether the value of the first parameter is greater than or equal to the first threshold.
- the terminal device may determine whether the value of the first parameter is greater than or equal to the first threshold based on the information sent by the network device.
- the transmission of the PTRS by the first device according to the fourth PTRS pattern specifically includes: the terminal device sends the PTRS to the network device according to the fourth PTRS pattern The PTRS; when the first device is the network device, the transmission of the PTRS by the first device according to the fourth PTRS pattern is specifically: the network device receives from the terminal device according to the fourth PTRS pattern The PTRS.
- the transmission of PTRS by the first device according to the third PTRS pattern specifically includes: the terminal device sends to the network device according to the third PTRS pattern The PTRS; when the first device is the network device, the first device transmits the PTRS according to the third PTRS pattern specifically: the network device transmits the PTRS from the terminal device according to the third PTRS pattern Receive the PTRS.
- the first device determines the fourth PTRS pattern according to the third PTRS pattern
- the specific method may be: the first device determines the PTRS group in the third PTRS pattern and/or the number of PTRS sampling points in the PTRS group is adjusted to obtain the fourth PTRS pattern.
- the first device determines the fourth PTRS pattern according to the third PTRS pattern, which may be any one of the following three methods:
- Method e1 The first device multiplies the number of PTRS groups in the third PTRS pattern by A, and divides the number of PTRS sampling points in each PTRS group in the third PTRS pattern by A to obtain the fourth PTRS
- the number of PTRS groups of the pattern and the number of PTRS sampling points included in each PTRS group, A is an integer greater than or equal to 2.
- the first device adds B to the number of PTRS groups in the third PTRS pattern to obtain the number of PTRS groups in the fourth PTRS pattern, and adds the number of PTRS sampling points of each PTRS group in the third PTRS pattern As the number of PTRS sampling points of each PTRS group in the fourth PTRS pattern, wherein the distribution distance between the last two PTRS groups in the second PTRS pattern is greater than the second threshold; B is an integer greater than or equal to 1.
- the first device adds K to the number of PTRS groups in the third PTRS pattern to obtain the number of PTRS groups in the fourth PTRS pattern, and keeps the number of PTRS sampling points in the first H-2 PTRS groups as the In the third PTRS pattern, the number of sampling points in the PTRS group is constant, and the number of PTRS sampling points in the last two PTRS groups is the number of sampling points in the last PTRS group in the third PTRS pattern divided by L to obtain each of the fourth PTRS patterns.
- K is an integer greater than or equal to 1
- L is an integer greater than or equal to 2
- H is the number of PTRS groups in the fourth PTRS pattern, and H is a positive integer greater than 2.
- the second threshold and the third threshold are respectively positively correlated with the scheduling bandwidth configured by the network device for the terminal device. That is, the larger the scheduling bandwidth is, the larger the second threshold and the third threshold are.
- the fourth PTRS pattern determined by the above method when the number of PTRS sampling points in the PTRS group in the determined fourth PTRS pattern is 2, the number of PTRS sampling points in the divided PTRS group is still A PTRS group is mapped in the middle of each gap, so that there will be no PTRS group at the end of the OFDM symbol, so as to reduce the influence of the reception window advance.
- Fig. 12 shows a flow chart of transmitting PTRS.
- the first device first determines the initial PTRS pattern [Ng0, Ns0] (ie The third PTRS pattern), when Ns is equal to 4, judge whether the receiving window advance is greater than or equal to the first threshold, if so, then determine [Ng1, Ns1] according to any method in the above methods e1-e3 (that is, the first threshold Four PTRS patterns), transmit PTRS according to the determined [Ng1, Ns1]; otherwise, directly transmit PTRS according to [Ng0, Ns0].
- the first parameter is the advance amount of the receiving window.
- mapping diagram is shown in (a) in FIG. 13 .
- the process of determining [Ng1, Ns1] according to the above method e1-e3 is as follows:
- a PTRS group can be added before the last group of the original PTRS, and the newly added PTRS The distribution distance of the group from the last PTRS group is greater than a second threshold.
- the mapping diagram of PTRS pattern [5,4] is shown in Fig. 13(c).
- the last group is located at the end of the DFT-s-OFDM symbol, and the distribution distance between the penultimate group and the last group is larger than the third threshold.
- the mapping diagram of the PTRS pattern [5, ⁇ 4, 2 ⁇ ] is shown in (d) in Fig. 13 .
- Ns1 may also be 3, etc., which is not limited in this application.
- the terminal device may report the value set of the second parameter to the network device according to the existing process in the standard TR38822, such as the value set of the second parameter in Table 1 A set of 5 scheduling bandwidth values.
- the network device can also configure the value set of the second parameter for the terminal device according to the existing process in the standard TR38822, for example, the 5 value sets of scheduling bandwidth in Table 1.
- the network device may select different phase noise estimation algorithms to perform phase noise estimation according to actual conditions . For example, when the signal-to-noise ratio (signal-to-noise ratio, SNR) and/or MCS is greater than the preset threshold (that is, the SNR and/or MCS is higher, the impact of noise on the estimation accuracy is smaller than the impact of the receiving window advance amount ), the network device may separately perform phase noise estimation for each PTRS group in the fourth PTRS pattern, and perform interpolation between the obtained results of each PTRS group (that is, perform inter-group interpolation) to obtain a full Phase noise estimation results for symbols.
- SNR signal-to-noise ratio
- MCS the preset threshold
- the network device may separately perform phase noise estimation for each PTRS group in the fourth PTRS pattern, and perform interpolation between the obtained results of each PTRS group (that is, perform inter-group interpolation) to obtain a full Phase noise estimation results for symbols.
- the network device Phase noise joint estimation or combined estimation can be performed on each consecutive two PTRS groups in the fourth PTRS pattern in turn, and interpolation is performed between the obtained results of each consecutive two PTRS groups to obtain a full-symbol phase noise Estimated results.
- group 1 and group 2 jointly estimate a phase noise estimate ⁇ 1, group 3 and group 4 jointly estimate another phase noise estimate ⁇ 2, and then based on ⁇ 1 and ⁇ 2, interpolate to obtain the center points of group 1 and group 2 and group Estimates of the phase noise experienced by the data between the center points of groups 3 and 4.
- group 1 and group 2 jointly estimate a phase noise estimate ⁇ 1
- group 3 and group 4 jointly estimate another phase noise estimate ⁇ 2, and then based on ⁇ 1 and ⁇ 2, interpolate to obtain the center points of group 1 and group 2 and group Estimates of the phase noise experienced by the data between the center points of groups 3 and 4.
- joint phase noise estimation can be performed on the last two PTRS groups. If the e2 or e3 method is used, the estimated result of the last PTRS group can be discarded.
- two full-symbol phase noise estimation results can also be obtained through the above two methods, and the result with better performance can be selected as the final result.
- the terminal device and the network device can further determine a new PTRS pattern, thereby reducing the impact of the receiving window advance on the PTRS phase noise
- the impact of the estimated phase noise is guaranteed to ensure the phase noise estimation performance of PTRS, thereby improving the demodulation performance and spectrum efficiency.
- all PTRS groups in the PTRS pattern can be mapped to the head of the gap; Mapping rule mapping, that is, all PTRS groups are mapped in the middle of the gap; or, the position of the last PTRS group can also be moved, so that the last PTRS group in the PTRS pattern and the tail of the OFDM symbol (such as the last sampling point of OFDM or the last One QAM symbol) is greater than the set threshold.
- the phase tracking reference signal transmission device 1400 may include a transceiver unit 1401 and a processing unit 1402 .
- the transceiver unit 1401 is used for the phase tracking reference signal transmission device 1400 to transmit PTRS
- the processing unit 1402 is used for controlling and managing the actions of the phase tracking reference signal transmission device 1400 .
- the processing unit 1402 may also control the steps performed by the transceiver unit 1401 .
- the phase tracking reference signal transmission apparatus 1400 may specifically be the terminal device in the above embodiment, a processor in the terminal device, or a chip or a chip system, or a functional module, etc.; or, the phase The tracking reference signal transmitting apparatus 1400 may specifically be the network device in the foregoing embodiments, a processor of the network device, or a chip or a chip system, or a functional module, and the like.
- phase tracking reference signal transmission apparatus 1400 when used to realize the functions of the network device in the embodiment described in FIG. 9 , it may specifically include:
- the processing unit 1402 is configured to determine a first phase tracking reference signal PTRS pattern, the first PTRS pattern belongs to a first PTRS pattern set, the first PTRS pattern set includes a plurality of PTRS patterns, and all PTRS patterns in each PTRS pattern The positions of the groups in the OFDM symbol are not located at the tail of the OFDM symbol; the PTRS pattern is used to indicate the distribution rule of the PTRS in the OFDM symbol; the PTRS pattern includes a plurality of PTRS groups, and each PTRS group includes Multiple consecutive PTRS sampling points; the transceiver unit 1401 is configured to transmit PTRS according to the first PTRS pattern, that is, receive PTRS according to the first PTRS pattern.
- the processing unit 1402 when determining the first PTRS pattern, is specifically configured to: determine that the value of the first parameter is greater than or equal to a first threshold, and the first parameter includes receiving window advance; determine the first PTRS pattern according to the value of the second parameter and the first correspondence; the first correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns , each value set corresponds to a PTRS pattern, and the multiple PTRS patterns in the first correspondence relationship are the same as the multiple PTRS patterns included in the first PTRS pattern set.
- the transceiving unit 1401 is further configured to: before the processing unit 1402 determines the first PTRS pattern, receive first information from the terminal device, the first information is used to indicate the recommended The value set of the second parameter in the second correspondence relationship, the number of value sets of the second parameter is greater than 5; the second correspondence relationship is a plurality of value sets and a plurality of value sets of the second parameter A correspondence relationship of a plurality of PTRS patterns, the multiple PTRS patterns in the second correspondence relationship include the first PTRS pattern set.
- the transceiving unit 1401 is further configured to: before the processing unit 1402 determines the first PTRS pattern, send second information to the terminal device, the second information is used to indicate the The value set of the second parameter, the number of value sets of the second parameter is greater than 5; the second correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns, The multiple PTRS patterns in the second correspondence include the first PTRS pattern set.
- the transceiving unit 1401 is further configured to: before the processing unit 1402 determines the first PTRS pattern, send third information to the terminal device, the third information is used to indicate multiple groups of the second A value set of parameters, the number of value sets of the second parameter in each group is greater than 5.
- the transceiving unit 1401 is further configured to send fourth information to the terminal device, where the fourth information is used to indicate a value set of a group of the second parameters, the group of the second parameters
- the value set of the second parameter is one of the multiple sets of value sets of the second parameter; the value set of the set of the second parameter includes the value of the second parameter in the first corresponding relationship collection of values.
- the processing unit 1402 is further configured to send the value of the first parameter to the terminal device; or, send fifth information to the terminal device, when the fifth information is the first value, it indicates Whether the value of the first parameter is greater than or equal to a first threshold; or, sending sixth information to the terminal device, where the sixth information is used to indicate the first correspondence.
- phase tracking reference signal transmission apparatus 1400 when used to implement the functions of the terminal device in the embodiment described above in FIG. 9 , it may specifically include:
- the processing unit 1402 is configured to determine a first phase tracking reference signal PTRS pattern, the first PTRS pattern belongs to a first PTRS pattern set, the first PTRS pattern set includes a plurality of PTRS patterns, and all PTRS patterns in each PTRS pattern The positions of the groups in the OFDM symbol are not located at the end of the OFDM symbol; the PTRS pattern is used to indicate the distribution rule of the PTRS in the OFDM symbol; the PTRS pattern includes a plurality of PTRS groups, and each PTRS group includes A plurality of consecutive PTRS sampling points; the transceiving unit 1401 is configured to transmit PTRS according to the first PTRS pattern, that is, transmit PTRS according to the first PTRS pattern.
- the processing unit 1402 determines the first PTRS pattern, it is specifically configured to: determine that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship;
- the corresponding relationship is the corresponding relationship between multiple value sets of the second parameter and multiple PTRS patterns, each value set corresponds to a PTRS pattern, and the multiple PTRS patterns in the first corresponding relationship are related to all PTRS patterns.
- the multiple PTRS patterns included in the first PTRS pattern set are the same; and the first PTRS pattern is determined according to the value of the second parameter and the first correspondence.
- the transceiving unit 1401 is further configured to: receive the value of the first parameter from the network device; or receive fifth information from the network device, the fifth information being the first When the value indicates whether the value of the first parameter is greater than or equal to the first threshold; or, receiving sixth information from the network device, the sixth information is used to indicate the value set of the second parameter and the PTRS
- the corresponding relationship of patterns is the first corresponding relationship.
- the processing unit 1402 determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, it is specifically configured to: when the transceiver unit 1401 receives the value of the first parameter from the network device After determining that the value of the first parameter is greater than or equal to the first threshold, it is determined that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship; wherein, the first A parameter includes the receiving window advance amount; or, if the fifth information is the first value, indicating that the value of the first parameter is greater than or equal to the first threshold, then determine the value set of the second parameter and the PTRS The corresponding relationship of the pattern is the first corresponding relationship; or, according to the sixth information, it is determined that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship.
- the transceiving unit 1401 is further configured to: send the first information to the network device before the processing unit 1402 determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence,
- the first information is used to indicate the value set of the second parameter in the recommended second correspondence, and the number of value sets of the second parameter is greater than 5;
- the second correspondence is the second Correspondence between multiple value sets of parameters and multiple PTRS patterns, where the multiple PTRS patterns in the second correspondence include the first PTRS pattern set.
- the transceiving unit 1401 is further configured to: before the processing unit 1402 determines that the corresponding relationship between the value set of the second parameter and the PTRS pattern is the first corresponding relationship, receive the second information from the network device , the second information is used to indicate the value set of the second parameter in the second correspondence, the number of value sets of the second parameter is greater than 5; the second correspondence is the second Correspondence between multiple value sets of parameters and multiple PTRS patterns, the multiple PTRS patterns in the second correspondence include the first PTRS pattern set; the processing unit 1402 determines the value of the second parameter When the corresponding relationship between the set and the PTRS pattern is the first corresponding relationship, it is specifically used to: determine the value set of the second parameter and the value set of the PTRS pattern according to the value set of the second parameter indicated by the second information. The corresponding relationship is the first corresponding relationship.
- the transceiving unit 1401 is further configured to: before the processing unit 1402 determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence, receive third information from the network device , the third information is used to indicate multiple sets of value sets of the second parameter, and the number of value sets of each set of the second parameter is greater than five.
- the transceiving unit 1401 is further configured to: receive fourth information from the network device before the processing unit 1402 determines that the correspondence between the value set of the second parameter and the PTRS pattern is the first correspondence,
- the fourth information is used to indicate a set of value sets of the second parameters, and the set of values of the set of second parameters is one of the set of values of the multiple sets of the second parameters group; the value set of the second parameter in the group includes the value set of the second parameter in the first correspondence; the processing unit 1402 determines the value set of the second parameter and the PTRS pattern
- the processing unit 1402 determines the value set of the second parameter and the PTRS pattern
- the corresponding relationship is the first corresponding relationship, it is specifically used to: determine the correspondence between the value set of the second parameter and the PTRS pattern according to the value set of the set of the second parameter indicated by the fourth information
- the relationship is the first corresponding relationship.
- the positions of all PTRS groups in each PTRS pattern in the OFDM symbol are not located at the tail of the OFDM symbol, including: any sampling point of the last PTRS group in each PTRS pattern is at The positions of the OFDM symbols are not located at the last sampling point or the last modulation symbol of the OFDM symbol; or, any sampling point of the last PTRS group in each PTRS pattern is at the same position as the OFDM symbol
- the distance of the last sampling point or the last modulation symbol of is greater than the preset distance threshold.
- the number of PTRS sampling points in a PTRS group in any one of the plurality of PTRS patterns is not equal to 4.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the scheduling bandwidth configured by the network device for the terminal device Modulation and coding scheme MCS configured by the device.
- the first parameter further includes a modulation and coding scheme MCS configured by the network device for the terminal device.
- the processing unit 1402 determines that the value of the first parameter is greater than or equal to the first threshold, it is specifically configured to: determine the receiving window advance corresponding to the first modulation and coding scheme MCS The value is greater than or equal to the first threshold, the first MCS is one of multiple MCSs configured by the network device for the terminal device, and the thresholds of the values of the receiving window advance corresponding to the multiple MCSs are different .
- the multiple PTRS patterns in the second correspondence include multiple PTRS patterns in the third correspondence, and the value set of the second parameter in the first correspondence and the third The value sets of the second parameters in the corresponding relationship are different.
- the value set of the second parameter in the first correspondence is the same as the value set of the second parameter in the fourth correspondence, and the multiple PTRS in the first correspondence There is at least one PTRS pattern different between the pattern and the multiple PTRS patterns in the fourth correspondence; wherein, the fourth correspondence is the correspondence between multiple value sets of the second parameter and multiple PTRS patterns , the fourth correspondence is a correspondence used when the value of the first parameter is less than the first threshold.
- phase tracking reference signal transmission apparatus 1400 when used to implement the functions of the network device in the embodiment described above in FIG. 11 , it may specifically include:
- the processing unit 1402 is configured to determine a third PTRS pattern according to the value of the second parameter and a fifth correspondence; wherein, the fifth correspondence is a plurality of value sets of the second parameter and a plurality of PTRS Pattern correspondence, wherein each value set corresponds to a PTRS pattern; the PTRS pattern is used to indicate the distribution rule of the PTRS in OFDM symbols; the PTRS pattern includes a plurality of PTRS groups , each PTRS group includes a plurality of continuous PTRS sampling points; when there is at least one PTRS group in the third PTRS pattern, the position of the OFDM symbol is located at the end of the OFDM symbol, and it is determined that the value of the first parameter is greater than or equal to the first When the threshold is reached, determine a fourth PTRS pattern according to the third PTRS pattern; the transceiver unit 1401 is configured to transmit PTRS according to the fourth PTRS pattern, that is, transmit PTRS and receive PTRS according to the fourth PTRS pattern
- the transceiver unit 1401 is further configured to send the value of the first parameter to the terminal device; or, send seventh information to the terminal device, and the seventh information is used for Indicates whether the value of the first parameter is greater than or equal to the first threshold.
- the processing unit 1402 is further configured to determine that the value of the first parameter is less than the first threshold; the transceiver unit 1401 is further configured to determine the When the value of the first parameter is smaller than the first threshold, the PTRS is transmitted (that is, received) according to the third PTRS pattern.
- phase tracking reference signal transmission apparatus 1400 when used to implement the functions of the terminal device in the embodiment described above in FIG. 11 , it may specifically include:
- the processing unit 1402 is configured to determine a third PTRS pattern according to the value of the second parameter and a fifth correspondence; wherein, the fifth correspondence is a plurality of value sets of the second parameter and a plurality of PTRS Pattern correspondence, wherein each value set corresponds to a PTRS pattern; the PTRS pattern is used to indicate the distribution rule of the PTRS in OFDM symbols; the PTRS pattern includes a plurality of PTRS groups , each PTRS group includes a plurality of continuous PTRS sampling points; when there is at least one PTRS group in the third PTRS pattern, the position of the OFDM symbol is located at the end of the OFDM symbol, and it is determined that the value of the first parameter is greater than or equal to the first When the threshold is reached, determine a fourth PTRS pattern according to the third PTRS pattern; the transceiver unit 1401 is configured to transmit PTRS according to the fourth PTRS pattern, that is, transmit PTRS and send PTRS according to the fourth PTRS pattern
- the transceiver unit 1401 is further configured to receive the value of the first parameter from the network device; or, receive and send seventh information from the network device, the seventh information is used to indicate the value of the first parameter Whether it is greater than or equal to the first threshold.
- the processing unit 1402 is further configured to determine that the value of the first parameter is less than the first threshold; the transceiver unit 1401 is further configured to determine the When the value of the first parameter is less than the first threshold, transmit (that is, send) the PTRS according to the third PTRS pattern.
- the processing unit 1402 determines the fourth PTRS pattern according to the third PTRS pattern, it is specifically configured to: calculate the number of PTRS groups and/or The number of PTRS sampling points in the PTRS group is adjusted to obtain the fourth PTRS pattern.
- the processing unit 1402 determines the fourth PTRS pattern according to the third PTRS pattern, it is specifically configured to: multiply the number of PTRS groups in the third PTRS pattern by A, and multiply the number of PTRS groups in the third PTRS pattern
- the number of PTRS sampling points in each PTRS group in the three PTRS patterns is divided by A to obtain the number of PTRS groups of the fourth PTRS pattern and the number of PTRS sampling points included in each PTRS group, and A is an integer greater than or equal to 2; or, Add B to the number of PTRS groups in the third PTRS pattern to obtain the number of PTRS groups in the fourth PTRS pattern, and use the PTRS sampling points of each PTRS group in the third PTRS pattern as each PTRS in the fourth PTRS pattern
- the number of PTRS sampling points of the group, wherein, the distribution distance between the last two PTRS groups in the fourth PTRS pattern is greater than the second threshold;
- B is an integer greater than or
- the second threshold and the third threshold are respectively positively correlated with the scheduling bandwidth configured by the network device for the terminal device.
- the second parameter is the scheduling bandwidth configured by the network device for the terminal device; or, the second parameter is the scheduling bandwidth configured by the network device for the terminal device and the bandwidth configured by the network device for the terminal device Configured modulation coding scheme MCS.
- the first parameter further includes a modulation and coding scheme MCS configured by the network device for the terminal device.
- the processing unit 1402 determines that the value of the first parameter is greater than or equal to the first threshold, it is specifically configured to: determine that the value of the receiving window advance corresponding to the first modulation and coding scheme MCS is greater than Or equal to the first threshold, the first MCS is one of multiple MCSs configured by the network device for the terminal device, and the multiple MCSs correspond to different thresholds of the value of the receiving window advance.
- there is at least one PTRS group in the first PTRS pattern and the position of the OFDM symbol is located at the end of the OFDM symbol including: there is at least one sampling point of at least one PTRS group in the first PTRS pattern at the position of the OFDM symbol Located at the last sampling point or the last modulation symbol of the OFDM symbol; or, at least one sampling point of at least one PTRS group exists in the first PTRS pattern at the position of the OFDM symbol and the last sampling point of the OFDM symbol Or the distance of the last modulation symbol is less than or equal to the preset distance threshold.
- each functional unit in the embodiment of the present application may be integrated into one processing unit, each unit may exist separately physically, or two or more units may be integrated into one unit.
- the above-mentioned integrated units can be implemented in the form of hardware or in the form of software functional units.
- the integrated unit is realized in the form of a software function unit and sold or used as an independent product, it can be stored in a computer-readable storage medium.
- the technical solution of the present application is essentially or part of the contribution to the prior art or all or part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium , including several instructions to make a computer device (which may be a personal computer, a server, or a network device, etc.) or a processor (processor) execute all or part of the steps of the methods described in the various embodiments of the present application.
- the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (read-only memory, ROM), random access memory (random access memory, RAM), magnetic disk or optical disc and other media that can store program codes. .
- a phase tracking reference signal transmission device 1500 may include a transceiver 1501 and a processor 1502 .
- the apparatus 1500 for transmitting a phase tracking reference signal may further include a memory 1503 .
- the memory 1503 may be set inside the phase tracking reference signal transmission device 1500 or outside the phase tracking reference signal transmission device 1500 .
- the processor 1502 may control the transceiver 1501 to receive and send information, signals or data, and the like.
- the processor 1502 may be a central processing unit (central processing unit, CPU), a network processor (network processor, NP) or a combination of CPU and NP.
- the processor 1502 may further include a hardware chip.
- the aforementioned hardware chip may be an application-specific integrated circuit (application-specific integrated circuit, ASIC), a programmable logic device (programmable logic device, PLD) or a combination thereof.
- the aforementioned PLD may be a complex programmable logic device (complex programmable logic device, CPLD), a field-programmable gate array (field-programmable gate array, FPGA), a general array logic (generic array logic, GAL) or any combination thereof.
- the transceiver 1501, the processor 1502 and the memory 1503 are connected to each other.
- the transceiver 1501, the processor 1502 and the memory 1503 are connected to each other through a bus 1504;
- the bus 1504 can be a Peripheral Component Interconnect (PCI) bus or an extended industry standard Structure (Extended Industry Standard Architecture, EISA) bus, etc.
- PCI Peripheral Component Interconnect
- EISA Extended Industry Standard Architecture
- the bus can be divided into address bus, data bus, control bus and so on. For ease of representation, only one thick line is used in FIG. 15 , but it does not mean that there is only one bus or one type of bus.
- the memory 1503 is used to store programs and the like.
- the program may include program code including computer operation instructions.
- the memory 1503 may include RAM, and may also include non-volatile memory (non-volatile memory), such as one or more disk memories.
- the processor 1502 executes the application program stored in the memory 1503 to realize the above functions, thereby realizing the function of the phase tracking reference signal transmission device 1500 .
- the apparatus 1500 for transmitting the phase tracking reference signal may be the terminal device in the above embodiment; it may also be the network device in the above embodiment.
- phase tracking reference signal transmission apparatus 1500 implements the functions of the terminal equipment in the embodiment shown in FIG.
- the transceiving operation the processor 1502 may implement other operations performed by the terminal device in the embodiment shown in FIG. 9 except for the transceiving operation.
- the processor 1502 may implement other operations performed by the terminal device in the embodiment shown in FIG. 9 except for the transceiving operation.
- the apparatus 1500 for transmitting the phase tracking reference signal implements the functions of the network equipment in the embodiment shown in FIG.
- the transceiving operation to be performed the processor 1502 may implement other operations performed by the network device in the embodiment shown in FIG. 9 except for the transceiving operation.
- the apparatus 1500 for transmitting the phase tracking reference signal implements the functions of the network equipment in the embodiment shown in FIG. The transceiving operation to be performed; the processor 1502 may implement other operations performed by the network device in the embodiment shown in FIG. 9 except for the transceiving operation.
- the transceiver 1501 can implement the terminal equipment in the embodiment shown in FIG. The transceiving operation performed; the processor 1502 may implement other operations performed by the terminal device in the embodiment shown in FIG. 11 except for the transceiving operation.
- the processor 1502 may implement other operations performed by the terminal device in the embodiment shown in FIG. 11 except for the transceiving operation.
- the transceiver 1501 when the phase tracking reference signal transmission apparatus 1500 realizes the function of the network device in the embodiment shown in FIG. 11 , the transceiver 1501 can realize the network device in the embodiment shown in FIG. The transceiving operation performed; the processor 1502 may implement other operations performed by the network device in the embodiment shown in FIG. 11 except for the transceiving operation.
- the processor 1502 may implement other operations performed by the network device in the embodiment shown in FIG. 11 except for the transceiving operation.
- the embodiments of the present application provide a communication system, and the communication system may include the terminal device and the network device involved in the above embodiments.
- An embodiment of the present application also provides a computer-readable storage medium, the computer-readable storage medium is used to store a computer program, and when the computer program is executed by a computer, the computer can realize the phase tracking reference signal provided by the above-mentioned method embodiment the transmission method.
- the embodiment of the present application also provides a computer program product, the computer program product is used to store a computer program, and when the computer program is executed by a computer, the computer can implement the phase tracking reference signal transmission method provided by the above method embodiment.
- the embodiment of the present application further provides a chip, including a processor, the processor is coupled to a memory, and is configured to call a program in the memory so that the chip implements the phase tracking reference signal transmission method provided by the above method embodiment.
- An embodiment of the present application further provides a chip, the chip is coupled to a memory, and the chip is used to implement the method for transmitting a phase tracking reference signal provided in the above method embodiment.
- the embodiments of the present application may be provided as methods, systems, or computer program products. Accordingly, the present application may take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, the present application may take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) having computer-usable program code embodied therein.
- computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
- These computer program instructions may also be stored in a computer-readable memory capable of directing a computer or other programmable data processing apparatus to operate in a specific manner, such that the instructions stored in the computer-readable memory produce an article of manufacture comprising instruction means, the instructions
- the device realizes the function specified in one or more procedures of the flowchart and/or one or more blocks of the block diagram.
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Abstract
Description
关联因子 | [N RB0,N RB1) | [N RB1,N RB2) | [N RB2,N RB3) | [N RB3,N RB4) | [N RB4,+∞) |
[MCS 0,MCS 1) | None | [2,4] | [4,2] | [4,4] | [8,4] |
[MCS 1,MCS 2) | [2,2] | [4,2] | [4,2] | [8,2] | [8,4] |
[MCS 2,MCS 3) | [2,2] | [4,2] | [4,2] | [8,2] | [16,2] |
Claims (24)
- 一种相位跟踪参考信号的传输方法,其特征在于,包括:确定第一相位跟踪参考信号PTRS图案,所述第一PTRS图案属于第一PTRS图案集合,所述第一PTRS图案集合包括多个PTRS图案,每个PTRS图案中所有PTRS组在正交频分复用OFDM符号的位置均不位于OFDM符号尾部;所述PTRS图案用于指示PTRS在OFDM符号中的分布规则;所述PTRS图案包括多个PTRS组,每个PTRS组包括多个连续的PTRS采样点;根据所述第一PTRS图案传输PTRS。
- 如权利要求1所述的方法,其特征在于,所述每个PTRS图案中所有PTRS组在OFDM符号的位置均不位于OFDM符号尾部,包括:所述每个PTRS图案中最后一个PTRS组的任意一个采样点在OFDM符号的位置均不位于所述OFDM符号的最后一个采样点或最后一个调制符号;或者所述每个PTRS图案中最后一个PTRS组的任意一个采样点在OFDM符号的位置与所述OFDM符号的最后一个采样点或最后一个调制符号的距离均大于预设距离阈值。
- 如权利要求1或2所述的方法,其特征在于,所述多个PTRS图案中任一个PTRS图案中PTRS组内PTRS采样点数不等于4。
- 如权利要求1-3任一项所述的方法,其特征在于,确定所述第一PTRS图案,包括:确定第一参数的取值大于或等于第一阈值,所述第一参数包括接收窗提前量;根据第二参数的取值和第一对应关系确定所述第一PTRS图案;所述第一对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,每一个取值集合对应一种PTRS图案,所述第一对应关系中的所述多个PTRS图案与所述第一PTRS图案集合包括的多个PTRS图案相同。
- 如权利要求4所述的方法,其特征在于,在确定第一PTRS图案之前,所述方法还包括:从终端设备接收第一信息,所述第一信息用于指示推荐的第二对应关系中所述第二参数的取值集合,所述第二参数的取值集合的个数大于5;所述第二对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,所述第二对应关系中的多个PTRS图案包括所述第一PTRS图案集合。
- 如权利要求4或5所述的方法,其特征在于,在确定第一PTRS图案之前,所述方法还包括:向终端设备发送第二信息,所述第二信息用于指示第二对应关系中所述第二参数的取值集合,所述第二参数的取值集合的个数大于5;所述第二对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,所述第二对应关系中的多个PTRS图案包括所述第一PTRS图案集合。
- 如权利要求4-6任一项所述的方法,其特征在于,在确定第一PTRS图案之前,所述方法还包括:向终端设备发送第三信息,所述第三信息用于指示多组所述第二参数的取值集合,每组所述第二参数的取值集合的个数大于5。
- 如权利要求7所述的方法,其特征在于,所述方法还包括:向所述终端设备发送第四信息,所述第四信息用于指示一组所述第二参数的取值集合,所述一组所述第二参数的取值集合为所述多组所述第二参数的取值集合中的一组;该组所述第二参数的取值集合包含所述第一对应关系中的所述第二参数的取值集合。
- 如权利要求4-8任一项所述的方法,其特征在于,所述方法还包括:向所述终端设备发送所述第一参数的取值;或者向所述终端设备发送第五信息,所述第五信息为第一值时,指示所述第一参数的取值是否大于或等于第一阈值;或者向所述终端设备发送第六信息,所述第六信息用于指示所述第一对应关系。
- 如权利要求1-3任一项所述的方法,其特征在于,确定第一PTRS图案,包括:确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系;所述第一对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,每一个取值集合对应一种PTRS图案,所述第一对应关系中的所述多个PTRS图案与所述第一PTRS图案集合包括的多个PTRS图案相同;根据所述第二参数的取值和所述第一对应关系确定所述第一PTRS图案。
- 如权利要求10所述的方法,其特征在于,确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系,包括:从网络设备接收第一参数的取值,并确定所述第一参数的取值大于或等于所述第一阈值,则确定所述第二参数的取值集合与PTRS图案的对应关系为所述第一对应关系;其中,所述第一参数包括接收窗提前量;或者从所述网络设备接收第五信息,所述第五信息为第一值时,指示所述第一参数的取值是否大于或等于第一阈值;若所述第五信息为所述第一值,确定所述第一参数的取值大于或等于所述第一阈值,则确定所述第二参数的取值集合与PTRS图案的对应关系为所述第一对应关系;或者从所述网络设备接收第六信息,所述第六信息用于指示所述第二参数的取值集合与PTRS图案的对应关系为所述第一对应关系。
- 如权利要求10所述的方法,其特征在于,在确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系之前,所述方法还包括:向网络设备发送第一信息,所述第一信息用于指示推荐的第二对应关系中所述第二参数的取值集合,所述第二参数的取值集合的个数大于5;所述第二对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,所述第二对应关系中的多个PTRS图案包括所述第一PTRS图案集合。
- 如权利要求10或12所述的方法,其特征在于,在确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系之前,所述方法还包括:从网络设备接收第二信息,所述第二信息用于指示第二对应关系中所述第二参数的取值集合,所述第二参数的取值集合的个数大于5;所述第二对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,所述第二对应关系中的多个PTRS图案包括所述第一PTRS图案集合;确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系,包括:根据所述第二信息指示的所述第二参数的取值集合,确定所述第二参数的取值集合与PTRS图案的对应关系为所述第一对应关系。
- 如权利要求10或12所述的方法,其特征在于,在确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系之前,所述方法还包括:从网络设备接收第三信息,所述第三信息用于指示多组所述第二参数的取值集合,每组所述第二参数的取值集合的个数大于5。
- 如权利要求14所述的方法,其特征在于,在确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系之前,所述方法还包括:从所述网络设备接收第四信息,所述第四信息用于指示一组所述第二参数的取值集合,所述一组所述第二参数的取值集合为所述多组所述第二参数的取值集合中的一组;该组所述第二参数的取值集合包含所述第一对应关系中的所述第二参数的取值集合;确定第二参数的取值集合与PTRS图案的对应关系为第一对应关系,包括:根据所述第四信息指示的所述一组所述第二参数的取值集合,确定所述第二参数的取值集合与PTRS图案的对应关系为所述第一对应关系。
- 如权利要求4-15任一项所述的方法,其特征在于,所述第二参数为网络设备为终端设备配置的调度带宽;或者,所述第二参数为所述网络设备为所述终端设备配置的调度带宽和所述网络设备为所述终端设备配置的调制编码方案MCS。
- 如权利要求4-9、11任一项所述的方法,其特征在于,所述第一参数还包括网络设备为所述终端设备配置的调制编码方案MCS。
- 如权利要求4-9、11任一项所述的方法,其特征在于,确定所述第一参数的取值大于或等于所述第一阈值,包括:确定第一调制编码方案MCS对应的所述接收窗提前量的取值大于或等于所述第一阈值,所述第一MCS为网络设备为终端设备配置的多个MCS中的一个,所述多个MCS对应的所述接收窗提前量的取值的阈值不同。
- 如权利要求5-6、12-13任一项所述的方法,其特征在于,所述第二对应关系中的多个PTRS图案包括第三对应关系中的多个PTRS图案,所述第一对应关系中的所述第二参数的取值集合和所述第三对应关系中的所述第二参数的取值集合不相同。
- 如权利要求4、10-11任一项所述的方法,其特征在于,所述第一对应关系中的所述第二参数的取值集合和第四对应关系中的所述第二参数的取值集合相同,所述第一对应关系中的多个PTRS图案与所述第四对应关系中的多个PTRS图案存在至少一个PTRS图案不相同;其中,所述第四对应关系为所述第二参数的多个取值集合与多个PTRS图案的对应关系,所述第四对应关系为所述第一参数的取值小于所述第一阈值时所用的对应关系。
- 一种相位跟踪参考信号的传输装置,其特征在于,包括收发器和处理器,其中:所述收发器用于传输相位跟踪参考信号PTRS,或者,接收或发送信息;所述处理器与存储器耦合,用于调用所述存储器中的计算机指令使得所述相位跟踪参考信号的传输装置执行如权利要求1-20任一项所述的方法。
- 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质中存储有计算机可执行指令,所述计算机可执行指令在被所述计算机调用时用于使所述计算机执行上述权利要求1-20中任一项所述的方法。
- 一种包含指令的计算机程序产品,其特征在于,当所述计算机程序产品在计算机上运行时,使得所述计算机如执行权利要求1-20中任一项所述的方法。
- 一种芯片,其特征在于,所述芯片与存储器耦合,用于读取并执行所述存储器中存储的程序指令,以实现如权利要求1-20中任一项所述的方法。
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CN110024322A (zh) * | 2016-09-28 | 2019-07-16 | Idac控股公司 | 用于无线通信系统的参考信号设计 |
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CN112654089A (zh) * | 2017-01-06 | 2021-04-13 | 华为技术有限公司 | 一种参考信号的配置方法、装置及系统 |
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