The present invention relates to the field of 5G communication, in particular to the field of research and development and testing of mobile communication instruments, specifically, it refers to a method for implementing predistortion compensation processing for 5G NR in-band modulated signals.
With the rapid development of 5G communication, the requirements for 5G test instruments are getting higher and higher, especially the requirements for instantaneous bandwidth are getting wider and wider, Sub6G requires the maximum modulation bandwidth to be 200 MHz, and the bandwidth of the millimeter wave band is even 1 GHz, due to the influence of device, board and industrial design, the problems of poor inband spectrum ripple and phase consistency within the bandwidth of the 5G broadband modulation signal will occur.
The traditional method to solve the problem of poor inband spectrum ripple and phase consistency within the bandwidth of 5G broadband modulation signals is to correct the different device circuits of the signal generation channel, in turn, the inband spectrum ripple and phase consistency of the broadband modulated signal are improved. Although this method can bring some improvement by modifying the hardware device circuit, the effect is very limited, at the same time, due to the poor consistency of different PCB boards, it is necessary to debug each board separately, which not only takes a long time for debugging and calibration, but also cannot achieve the desired effect.
The purpose of the present invention is to overcome the shortcomings of the above-mentioned prior art, and to provide a method for realizing predistortion compensation processing for 5G NR (New Radio, new air interface) in-band modulated signals that satisfies the requirements of simple operation, high efficiency, and wide application range.
In order to achieve the above objects, the method for implementing predistortion compensation processing for 5G NR in-band modulated signals of the present invention is as follows:
The Method for implementing predistortion compensation processing for 5G NR in-band modulated signals, its main feature is that the method includes the following steps:
Preferably, the step (1) specifically includes the following steps:
Preferably, in the step (5), the baseband data is generated according to the I and Q baseband signals, specifically:
The baseband data is generated from the I and Q baseband signals according to the following formula:
Ali(n)=Nli(n)×H(n);
Alq(n)=Nlq(n)×H(n);
Among them, Nli(n) and Nlq(n) are I and Q baseband signals respectively, H(n) is a power compensation factor, n=0, 1, . . . , 4095.
Preferably, in the step (1), the sub-carrier bandwidths are configured as 15 kHz, 30 kHz and 60 kHz.
Preferably, the filter in the step (6) is a root raised cosine filter, and the roll-off coefficient is 0.22.
The method for implementing predistortion compensation processing for 5G NR in-band modulated signals of the present invention is adopted, by measuring the power difference of the output continuous wave signal of the modulation channel in advance, the unbalance degree in the test band is predicted, and then the impulse response of the difference channel is calculated; Combined with the characteristics of 5G NR subcarrier allocation and resource occupation, predistortion compensation is performed without the need to modify the device circuit in the channel, thus achieving the purpose of compensating the entire transmission channel. This method not only greatly improves the in-band flatness and phase consistency indicators within the bandwidth of the 5G broadband modulated signal, but also improves the efficiency of research and development and production.
In order to be able to understand the technical content of the present invention more clearly, is further exemplified by the following detailed description of embodiments.
The method for implementing predistortion compensation processing for a 5G NR in-band modulated signals of the present invention, wherein the method includes the following steps as shown in
As a preferred embodiment of the present invention, in the step (5), the baseband data is generated according to the I and Q baseband signals, specifically:
The baseband data is generated from the I and Q baseband signals according to the following formula:
Ali(n)=Nli(n)×H(n);
Alq(n)=Nlq(n)×H(n);
Among them, Nli(n) and Nlq(n) are I and Q baseband signals respectively, H(n) is a power compensation factor, n=0, 1, . . . , 4095.
As a preferred embodiment of the present invention, in the step (1), the sub-carrier bandwidths are configured as 15 kHz, 30 kHz and 60 kHz.
As a preferred embodiment of the present invention, the filter in the step (6) is a root raised cosine filter, and the roll-off coefficient is 0.22.
In a specific embodiment of the present invention, applied to a device for 5G NR signal generation, the specific implementation method includes the following steps: configuring the modulator to output a continuous wave signal, switching the output frequency interval of the signal to be consistent with the 5G NR subcarrier bandwidth, and record the power value corresponding to the current frequency through the power meter; the power value Pn measured by the power meter takes P0 as the reference point, calculates the power measurement difference between all points and P0, and normalizes the power difference into the channel impulse response; perform the inverse Fourier transform of the obtained channel impulse response on a fixed point, and convert it into a power compensation factor H(n) in the time domain; the original baseband signal generated by 5G NR is subjected to IFFT (inverse Fourier transform) according to different symbols to generate two I and Q two baseband signals; multiply the power compensation factor/Q baseband data point by point to generate the compensated baseband data; filter the generated baseband data, and then send it to the A/D for digital-to-analog conversion to generate an analog zero-IF signal and then enter the broadband demodulator for frequency conversion modulation of 5G NR broadband signal.
The present invention provides a predistortion method for 5G NR wideband modulated signals of different frequencies, which effectively improves the inband spectrum ripple of the 5G NR wideband modulated signals, it effectively reduces the bit error rate in the process of signal transmission, improves the quality of the modulated signal, and can be widely used in 5G NR signal generation equipment.
The 5G NR (New Radio, new air interface) in-band modulation signal predistortion compensation method in the present invention measures the power difference of the output continuous wave signal of the modulation channel in advance, pre-tests the in-band imbalance, and then calculates the difference channel impulse response; combined with the characteristics of 5G NR subcarrier allocation and resource occupation, predistortion compensation is performed without the need to modify the device circuit in the channel, thus achieving the purpose of compensating the entire transmission channel. This method not only greatly improves the inband spectrum ripple and phase consistency indicators within the bandwidth of the 5G broadband modulated signal, but also improves the efficiency of research and development and production.
In a specific embodiment of the present invention, the 5G NR in-band modulated signal predistortion compensation method specifically includes the following steps:
Where n=0, 1, . . . , 4095.
Step 1) the subcarrier bandwidths are configured as 15 kHz, 30 kHz and 60 kHz, and the number of fully configured RBs is 275 RBs.
The formula for inverse Fourier transform of the channel impulse response in step 4) is:
Among them, tstart,lμ≤t<tstart,lμ+(Nuμ+NCP,lμ)Tc is a time interval between subframes.
Among them, μ is the subcarrier bandwidth configuration, l is the symbol position, TC is the time interval between chips, k is a ratio calculated according to different subcarrier bandwidths, NscRB is the number of resource units in an RB. number, NCP,lμ is the cyclic prefix length under different subcarrier configuration conditions.
The filter in step 6) adopts a root raised cosine filter with a roll-off coefficient of 0.22, which is used for filtering shaping.
The calibration compensation and signal process comprises of the following steps:
The method for implementing predistortion compensation processing for 5G NR in-band modulated signals of the present invention is adopted, by measuring the power difference of the output continuous wave signal of the modulation channel in advance, the unbalance degree in the test band is predicted, and then the impulse response of the difference channel is calculated; Combined with the characteristics of 5G NR subcarrier allocation and resource occupation, predistortion compensation is performed without the need to modify the device circuit in the channel, thus achieving the purpose of compensating the entire transmission channel. This method not only greatly improves the in-band flatness and phase consistency indicators within the bandwidth of the 5G broadband modulated signal, but also improves the efficiency of research and development and production.
In this specification, the present invention has been described with the reference to its specific embodiments. However, it is obvious still may be made without departing from the spirit and scope of the present invention, various modifications and transformation. Accordingly, the specification and drawings should be considered as illustrative rather than restrictive.
| Number | Date | Country | Kind |
|---|---|---|---|
| 202010191787.X | Mar 2020 | CN | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/CN2020/088119 | 4/30/2020 | WO |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2021/184499 | 9/23/2021 | WO | A |
| Number | Name | Date | Kind |
|---|---|---|---|
| 20140294057 | Joung | Oct 2014 | A1 |
| 20150256216 | Ding et al. | Sep 2015 | A1 |
| 20190081770 | Zhao | Mar 2019 | A1 |
| 20190182021 | Shokri Razaghi | Jun 2019 | A1 |
| Number | Date | Country |
|---|---|---|
| 102694758 | Sep 2012 | CN |
| 110166007 | Aug 2019 | CN |
| 110266276 | Sep 2019 | CN |
| 110730055 | Jan 2020 | CN |
| Entry |
|---|
| Int'l Search Report for PCT/CN2020/088119, dated Dec. 17, 2020. |
| Cappello. Tommaso et al. “Supply and Load-Modulated Balanced Amplifier for Efficient Broadband 5G Base Stations”, IEEE Transactions on Microwave Theory and Techniques, Jul. 31, 2019 (Jul. 31, 2019) (Abstract only). |
| Number | Date | Country | |
|---|---|---|---|
| 20230097877 A1 | Mar 2023 | US |