IP Library › Patent Application 19257578
Patent Application
App. No. 19/257,578

MULTI-CELL PROCESSING ARCHITECTURES FOR MODELING AND IMPAIRMENT COMPENSATION IN MULTI-INPUT MULTI-OUTPUT SYSTEMS

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Quick Facts
Patent No.
US None
App. No.
19/257,578
Abstract

A method of linearizing a transmitter, including applying an input signal to a transmission path of the transmitter to produce output signals, forming a plurality of distinct transformation functions deployed to operate in parallel in the transmission path, each of the distinct transformation functions being based on estimated impairments in the transmission path, wherein inputs to each of the distinct transformation functions include multiple separate signals, each of which are formed from the input signal. The method further includes generating, in parallel, a plurality of transformed signals from each of the distinct transformation functions and providing predistortion signals to the transmission path for the linearizing of the transmitter by using the transformed signals.

Claims (53)

1 . A method of linearizing a transmitter, the method comprising:

applying an input signal to a transmission path of the transmitter to produce output signals;

forming a plurality of distinct transformation functions operable in parallel in said transmission path, each said distinct transformation function being based on estimated impairments in the transmission path, wherein inputs to each said distinct transformation function include multiple separate signals derived from the input signal;

generating, in parallel, a plurality of transformed signals from each of the distinct transformation functions; and

providing predistortion signals to the transmission path using said transformed signals for said linearizing of the transmitter.

2 . The method of claim 1 , including processing of the input signal for deriving the multiple separate signals.

3 . The method of claim 1 , including processing of the predistortion signals to produce said output signals.

4 . The method of claim 1 , wherein said input signal is a multi-band signal.

5 . The method of claim 4 , wherein each band of the multi-band signal corresponds to a branch of a multiple branch transmitter.

6 . The method of claim 4 , wherein each band of the multi-band signal corresponds to a signal modulated in a different carrier frequency in a multi-frequency multi-input multi-output transmitter.

7 . The method of claim 1 , wherein the transformation functions include linear processing blocks for compensating for distortions and effects of interference in the transmission path of the transmitter.

8 . The method of claim 1 , wherein the transformation functions include non-linear processing blocks compensating for nonlinear distortions, crossband distortion and memory effects in the transmission path of the transmitter.

9 . The method of claim 1 , wherein the transformation functions include linear functions.

10 . The method of claim 1 , wherein the forming includes:

generating a matrix of processing cells, comprising:

nonlinear processing blocks compensating for nonlinear distortions and effects of interference between signal paths of multiple separate band signals; and

linear processing blocks compensating for linear distortions and the effects of interference between signal paths of the multiple separate band signals.

11 . The method of claim 10 , wherein the matrix is an N-by-N matrix where N is a number representing the separate band signals.

12 . A linearizer for a multiple branch multiple-input multiple-output (MIMO) transmitter, comprising:

a transmission path of the transmitter for applying input signals having multiple separate signals to produce output signals;

a predistorter model generated by using the input signals and the output signals to estimate non-linearities and crosstalk in the transmitter, the model having a plurality of transformation functions based on estimated nonlinearities and crosstalk in the transmission path; and

a predistorter configured with said predistorter model for generating a plurality of predistorter signals, each being obtained from a set of respective transformation functions.

13 . The linearizer of claim 12 , wherein each separate signal corresponds to signals modulated in a different carrier frequency in a multi-frequency MIMO transmitter.

14 . The linearizer of claim 12 , wherein the separate signals have a common carrier frequency, with each having a different modulation and a different bandwidth.

15 . The linearizer of claim 12 , including compensating for linear distortions, and effects of interference between signals of the multiple-input and multiple-output transmitter using linear processing blocks.

16 . The linearizer of claim 12 , including compensating for the multiple-input multiple-output distortions, and effects of impedance mismatches and crosstalk in the signal paths of the multiple-input multi-output transmitter.

17 . The linearizer of claim 12 , wherein the transformation functions include non-linear functions.

18 . The linearizer of claim 12 , wherein the transformation functions include linear functions.

19 . The linearizer of claim 12 , wherein said transformation functions being formed:

by generating a matrix of processing cells comprising:

nonlinear processing blocks compensating for nonlinear distortions, impedance mismatches and effects of interference and crosstalk between the multiple separate signals; and

linear processing blocks compensating for linear distortions and effects of interference between the multiple separate signals.

20 . The linearizer of claim 19 , wherein the matrix is an N by N matrix where N is an integer number of the multiple signals.

21 . A method of linearizing a multiple branch multiple-input multiple-output (MIMO) transmitter, the method comprising:

applying an input signal having multiple separate band signals to a transmission path of the transmitter to produce output signals, and wherein each band corresponds to a branch of the multiple branch MIMO transmitter;

using the input signals and the output signals to estimate non-linearities and impairments in the transmitter;

forming a plurality of transformation functions based on the estimated non-linearities and impairments in the transmission path;

generating a plurality of transformed signals, each being equal to a combination of respective transformation functions applied to multiple separate band signals of the input signals; and

providing distortion signals to the transmission path, using said transformed signals, to linearize the transmitter.

22 . A method of linearizing a transmitter, the method comprising:

applying a plurality of input signals to each of a plurality of a corresponding transmission paths of the transmitter to produce output signals;

forming a plurality of distinct transformation functions deployed to operate in parallel, each distinct transformation function being based on estimated impairments of the transmitter, wherein inputs to the transformation functions include at least one of, respective ones of the plurality of input signals, and a signal modelling impairments of the transmitter;

generating, in parallel, a plurality of transformed signals from each of the distinct transformation functions; and

providing predistortion signals to the transmission path for said linearizing of the transmitter by using said transformed signals.

23 . The method of claim 22 , wherein the transmitter is a multi-input multi-output transmitter.

24 . The method of claim 22 , wherein the plurality of input signals form a multiband signal.

25 . A method of linearizing a transmitter, the method comprising:

applying an input signal to a transmission path of the transmitter to produce output signals;

forming a plurality of distinct transformation functions deployed to operate in parallel in said transmission path, each said distinct transformation function being based on estimated impairments in the transmission path, wherein inputs to each said distinct transformation function include a combination of multiple separate signals, each of which are derived from the input signal;

generating, in parallel, a plurality of transformed signals from each of the distinct transformation functions; and

providing predistortion signals to the transmission path for said linearizing of the transmitter by using said transformed signals.

26 . The method of claim 25 , including processing of the input signal for deriving the multiple separate signals.

27 . The method of claim 25 , including processing of the predistortion signals to produce said output signals.

Assignments (3)
NUNC PRO TUNC ASSIGNMENT Recorded Dec 4, 2025
From: BASSAM, AIDIN SEYED; HELAOUI, MOHAMED
To: GHANNOUCHI, FADHEL M
Reel/Frame 073111/0937 →
NUNC PRO TUNC ASSIGNMENT Recorded Nov 13, 2025
From: DARRAJI, RAMZI
To: GHANNOUCHI, FADHEL M
Reel/Frame 072886/0509 →
NUNC PRO TUNC ASSIGNMENT Recorded Nov 12, 2025
From: DARRAJI, RAMZI
To: GHANNOUCHI, FADHEL M
Reel/Frame 072873/0977 →