DIGITAL MULTI-BAND PREDISTORTION LINEARIZER WITH NON-LINEAR SUBSAMPLING ALGORITHM IN THE FEEDBACK LOOP
20210211147 · 2021-07-08
Inventors
- Fadhel M. Ghannouchi (Calgary, CA)
- Aidin Bassam (Calgary, CA)
- Mohamed Helaoui (Calgary, CA)
- Andrew Kwan (Calgary, CA)
Cpc classification
H03F3/189
ELECTRICITY
H03F2200/207
ELECTRICITY
H03F2200/204
ELECTRICITY
H03F2200/111
ELECTRICITY
H03F2200/408
ELECTRICITY
International classification
H03F1/32
ELECTRICITY
H03F3/189
ELECTRICITY
Abstract
A concurrent multi-band linearized transmitter (CMLT) has a concurrent digital multi-band predistortion block (CDMPB) and a concurrent multi-band transmitter (CMT) connected to the CDMPB. The CDMPB can have a plurality of digital baseband signal predistorter blocks (DBSPBs), an analyzing and modeling (A&M) stage, and a signal observation feedback loop. Each DBSPB can have a plurality of inputs, each corresponding to a single frequency band of the multi-band input signal, and its output corresponding to a single frequency band; each output connect corresponding to an input of the CMLT. The A&M stage can have a plurality of outputs connected to and updating the parameters of the DBSPBs, and a plurality of inputs connected to either both outputs of the signal observation loop or the output of the subsampling loop and to outputs of the DBSPBs. The A&M stage can perform signals' time alignment, reconstruction of signals and compute parameters of DBSPBs.
Claims
1.-9. (canceled)
10. A linearized transmitter comprising: a digital predistorter in a transmit signal path effecting predistortion of input signals to output predistorted signal; a power amplifier connected in the transmit signal path to amplify the predistorted input signal for transmission; an analyzing and modelling stage for modelling at least one nonlinearity in the power amplifier and providing predistorter coefficients to update the digital predistorter; and a signal observation feedback receiver, receiving a feedback signal taken from an output of the power amplifier, said signal observation feedback receiver having a feedback bandwidth smaller than a bandwidth of the transmit signal path, said signal observation feedback receiver operable for providing samples of the feedback signal to the analyzing and modelling stage for modelling said at least at least one nonlinearity and for effecting real-time estimation.
11. The linearized transmitter of claim 10, said estimation including estimating coefficients for the digital predistorter based on said provided samples.
12. The linearized transmitter of claim 11, wherein said estimating includes recomputing coefficients for the digital predistorter.
13. The linearized transmitter of claim 10, wherein said analyzing and modeling stage is further configured to: perform time alignment of the samples of the feedback signals; and perform reconstruction of complex baseband signals from sampling said outputs of said concurrent multi-band transmitter.
14. The linearized transmitter of claim 10, wherein said signal observation feedback receiver is configured to: down-convert samples of the feedback signals; and extract from said down-converted samples a baseband equivalent.
15. The linearized transmitter of claim 10, wherein providing said samples of the feedback signal includes sampling of multiple frequency segments of the feedback signal by the signal observation feedback receiver.
16. The linearized transmitter of claim 10, wherein sampling of the feedback signal by the signal observation feedback receiver comprising subsampling of the feedback signal by the signal observation feedback receiver.
17. The linearized transmitter of claim 10, wherein the signal observation feedback receiver is implemented without an anti-aliasing filter.
18. The linearized transmitter of claim 10, wherein providing said samples of the feedback signal includes sampling at frequency rates lower than a carrier frequency of the output signal and higher than the output signal bandwidth.
19. A method for linearizing a transmitter, said method comprising: applying an input signal to a transmit signal path having at least one power amplifier producing at least one output signal in response to the applied signal; receiving at least one observed signal of the at least one output signal of the power amplifier using a feedback receiver having a feedback bandwidth smaller than a bandwidth of the transmit signal path; determining one or more sets of predistortion coefficients for controlling operation of a digital predistorter applied to signals in the transmit signal path; and using one or more sets of the determined predistortion coefficients for said predistorting, said coefficients being based at least in part on the sampled multiple frequency portions of the output signal.
20. The method of claim 19, including sampling over multiple frequency portions of the at least one output signal.
21. The method of claim 20, said sampling is at frequency lower than a carrier frequency of the output signal, but higher than the feedback bandwidth.
22. The method of claim 20, wherein sampled multiple frequency portions being replicates for use in reconstructing a baseband signal.
23. The method of claim 20, wherein sampling over the multiple frequency segments of the at least one output signal comprises: subsampling a measured signal observed with the observation receiver of the at least one output signal of the output of the transmit chain to produce a resultant subsampled signal having a spectral representation that is a folded copy of an original spectral representation of the measured signal.
24. A method for linearizing a transmitter, said method comprising: producing at least one output signal from a power amplifier in a transmit signal path; sampling at least one observed signal of the output signal in the transmit signal path using a feedback receiver, wherein the sampling is at a frequency lower than twice a highest signal frequency, but higher than two times a signal bandwidth of the feedback receiver and wherein the sampling is over multiple frequency segments of the output signal; and determining one or more sets of predistortion coefficients for controlling operation of a digital predistorter to predistort signals applied to the transmit signal path, by using one or more sets of predistortion coefficients for said predistorting, said coefficients being determined at least in part from the sampled multiple frequency segments of the output signal.
25. The linearized transmitter of claim 1, further configured with: a plurality of said digital predistorters, each to effect predistortion of one of a plurality of concurrent multiband input signals; and a concurrent multiband transmitter including said power amplifier to amplify the predistorted concurrent multiband signals for said transmission; and wherein said predistorters are updated by a single analyzing and modelling stage based on samples from a single signal observation feedback receiver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION
[0029] The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
[0030] Broadly, an embodiment of the present invention provides multiple branch digital predistortion linearization architecture and digital signal processing algorithms for impairments-free operation and linearized multi-band transmitter.
[0031] Referring to
[0032] For digital predistortion linearization and identify the inverse model, the sample of the RF signal are captured using dual-band coupler 140. Then the RF signals are bandpass filtered 145, frequency down converted 150, digitized using analog-to-digital converters 155. The digital output samples 160, the input signals 105 and predistorted signals 115 are used in the analyzing stage 165 for nonlinear model identification and reverse modeling.
[0033] The feedback path of the dual-band linearizer requires the use of two down-conversion stages 150, as well as bandpass filters 145 to remove most of the imperfections caused by the power amplifier. The predistorted inputs, x.sub.pd1 and x x.sub.pd2, 115 as well as the output of each band of the PA, y.sub.1 and y.sub.2, 160 are used to generate the predistorter signal processing model 110. The processing model equations of the linearization processing algorithm 165 for prediction and compensation of the distortions and intermodulations is as follows:
[0034] Where x.sub.1(n) and x.sub.2(n) are the input signals, x.sub.pd1(n) and x.sub.pd2(n) are the predistorted signals to the input of the dual-band transmitter, c.sub.1,j,k,m and c.sub.2,j,k,m are the indentified model's coefficients, and finally M is the order of the memory effect and K is the order of nonlinearity.
[0035] Concurrent multi-band receiver architectures require a bandpass filter 145, down-conversion stage 150, and ADC 155 for the translation of each RF frequency bands to baseband. Using subsampling with a high speed ADC allows the elimination of all these components; however, the user needs to make sure that the signals don't overlap in the subsampled spectral domain.
[0036] Sampling multi-bands at the same time also eliminates the time delay taken between different band paths caused by the filters.
[0037] Sampling the band-limited RF signal at frequency rates much lower than the carrier frequency, but higher than signal bandwidth folds the RF signal to the lower frequencies, where these replicates of the RF signal at baseband or intermediate frequencies can be used to reconstruct the baseband signal. To make sure that there is no aliasing between the replicas, the subsampling rate should be chosen in the following range:
[0038] where f.sub.L and f.sub.U are the lower and upper frequencies of the band-limited RF signal, B=f.sub.U−f.sub.L is the signal bandwidth, and n is an integer value.
[0039]
[0040] In dual-band operation transmitter with nonlinearity, the first and second bands will produce intermodulation, cross modulation and harmonic products.
[0041] Now considering two RF signals at carrier frequencies of ω.sub.2 and ω.sub.2, with their respective bandwidths B1 and B2 as shown in
[0042] The, out-of-band intermodulation-modulation, and harmonics generated by the fundamental signals are not required for the predistortion application; therefore, an iterative subsampling algorithm has been developed to subsample the RF signals without any overlap with the other unwanted RF signals.
[0043] Referring to
[0044] Referring to
[0045] As an example for the application of this invention,
[0046] Referring to