IP Library Granted Patent US 7,251,293
Granted Patent B2
US 7,251,293 · App. 10/730,419 · Granted Jul 31, 2007

Digital pre-distortion for the linearization of power amplifiers with asymmetrical characteristics

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,251,293
App. No.
10/730,419
Granted
Jul 31, 2007
Kind
B2
Abstract

An input signal is pre-distorted to reduce spurious emissions resulting from subsequent signal amplification. Frequency-dependent pre-distortion is preferably implemented in combination with frequency-independent pre-distortion, where the frequency-dependent pre-distortion corresponds to amplifier distortion that has a magnitude that is proportional to the frequency offset from the carrier frequency and a ±90° phase shift on either side of the carrier frequency. The frequency-dependent pre-distortion is generated by differentiating waveforms corresponding to two different sets of pre-distortion parameters with respect to time. In one embodiment, one of the differentiated waveforms is applied to a positive-frequency filter and the other to a negative-frequency filter to generate positive- and negative-frequency pre-distortion signals, respectively, to account for asymmetries in the amplifier characteristics. In another embodiment, only one of the differentiated waveforms is applied to an asymmetric filter (i.e., either a positive-frequency filter or a negative-frequency filter).

Claims (95)

1. A method for reducing spurious emissions in an amplified signal by applying pre-distortion, whose magnitude is frequency-dependent, to an input signal to generate a pre-distorted signal, such that, when the pre-distorted signal is applied to an amplifier to generate the amplified signal, the pre-distortion reduces the spurious emissions in the amplified signal, wherein the pre-distorted signal is generated by:

(a) generating a first frequency-dependent pre-distortion signal corresponding to a first set of frequency components for the input signal;

(b) generating a second frequency-dependent pre-distortion signal corresponding to a second set of frequency components for the input signal, wherein the first set of frequency components is different from the second set of frequency components; and

(c) combining the first and second frequency-dependent pre-distortion signals to generate the pre-distorted signal, wherein:

the first set of frequency components corresponds to positive-frequency components of the input signal, wherein the positive-frequency components correspond to frequencies that are greater than a center frequency of the input signal; and

the second set of frequency components corresponds to negative-frequency components of the input signal, wherein the negative-frequency components correspond to frequencies that are smaller than the center frequency of the input signal.

2. The method of claim 1 , wherein the phase of the pre-distortion is also frequency-dependent.

3. The method of claim 1 , wherein:

the first frequency-dependent pre-distortion signal is generated by:

(1) generating a first set of one or more waveforms corresponding to a first set of one or more pre-distortion parameters;

(2) differentiating the first set of one or more waveforms with respect to time, to generate a first set of one or more differentiated waveforms; and

(3) applying the first set of one or more differentiated waveforms to a positive-frequency operation to generate the first frequency-dependent pre-distortion signal; and

the second frequency-dependent pre-distortion signal is generated by:

(1) generating a second set of one or more waveforms corresponding to a second set of one or more pre-distortion parameters;

(2) differentiating the second set of one or more waveforms with respect to time to generate a second set of one or more differentiated waveforms; and

(3) applying the second set of one or more differentiated waveforms to a negative-frequency operation to generate the second frequency-dependent pre-distortion signal.

4. The method of claim 1 , further comprising the step of generating a frequency-independent pre-distorted signal from the input signal, wherein the frequency-independent pre-distorted signal and the first and second frequency-dependent pre-distortion signals are combined to generate the pre-distorted signal.

5. The method of claim 1 , wherein:

the input signal is represented in a base-band domain; and

the first and second frequency-dependent pre-distortion signals are generated in a digital domain.

6. An apparatus for applying pre-distortion to an input signal to generate a pre-distorted signal, such that, when the pre-distorted signal is applied to an amplifier to generate an amplified signal, the pre-distortion reduces spurious emissions in the amplified signal, the apparatus comprising:

(a) a first signal processing path adapted to generate a main pre-distortion signal from the input signal;

(b) a second signal processing path adapted to generate a first frequency-dependent pre-distortion signal corresponding to a first set of frequency components for the input signal;

(c) a third signal processing path adapted to generate a second frequency-dependent pre-distortion signal corresponding to a second set of frequency components for the input signal, wherein frequencies of the first set of frequency components are different from frequencies of the second set of frequency components; and

(d) a combiner adapted to combine the first and second frequency-dependent pre-distortion signals with the main pre-distortion signal to generate the pre-distorted signal.

7. The apparatus of claim 6 , wherein:

the first set of frequency components corresponds to positive-frequency components of the input signal, wherein the positive-frequency components correspond to frequencies that are greater than a center frequency of the input signal; and

the second set of frequency components corresponds to negative-frequency components of the input signal, wherein the negative-frequency components correspond to frequencies that are smaller than the center frequency of the input signal.

8. The apparatus of claim 7 , wherein:

the first frequency-dependent pre-distortion signal is generated by:

(1) generating a first set of one or more waveforms corresponding to a first set of one or more pre-distortion parameters;

(2) differentiating the first set of one or more waveforms with respect to time to generate a first set of one or more differentiated waveforms; and

(3) applying the first set of one or more differentiated waveforms to a positive-frequency operation to generate the first frequency-dependent pre-distortion signal; and

the second frequency-dependent pre-distortion signal is generated by:

(1) generating a second set of one or more waveforms corresponding to a second set of one or more pre-distortion parameters;

(2) differentiating the second set of one or more waveforms with respect to time to generate a second set of one or more differentiated waveforms; and

(3) applying the second set of one or more differentiated waveforms to a negative-frequency operation to generate the second frequency-dependent pre-distortion signal.

9. The apparatus of claim 8 , wherein the positive-frequency and negative-frequency operations are implemented using filters.

10. The apparatus of claim 6 , wherein:

the first set of frequency components corresponds to positive-frequency components and negative-frequency components of the input signal;

the second set of frequency components corresponds to only positive-frequency components or only negative-frequency components of the input signal;

the positive-frequency components correspond to frequencies that are greater than a center frequency of the input signal; and

the negative-frequency components correspond to frequencies that are smaller than the center frequency of the input signal.

11. The apparatus of claim 10 , wherein:

the first frequency-dependent pre-distortion signal is generated by:

(1) generating a first set of one or more waveforms corresponding to a first set of one or more pre-distortion parameters;

(2) differentiating the first set of one or more waveforms with respect to time to generate the first frequency-dependent pre-distortion signal; and

the second frequency-dependent pre-distortion signal is generated by:

(1) generating a second set of one or more waveforms corresponding to a second set of one or more pre-distortion parameters;

(2) differentiating the second set of one or more waveforms with respect to time to generate a second set of one or more differentiated waveforms; and

(3) applying the second set of one or more differentiated waveforms to a negative-frequency operation or a positive-frequency operation to generate the second frequency-dependent pre-distortion signal.

12. The apparatus of claim 11 , wherein the positive-frequency operation or the negative-frequency operation is implemented using a filter.

13. The apparatus of claim 6 , wherein:

the input signal is represented in a base-band domain; and

the main pre-distortion signal and the first and second frequency-dependent pre-distortion signals are generated in a digital domain.

14. The apparatus of claim 6 , wherein:

the first signal processing path comprises:

(1) an index generator adapted to generate index values proportional to envelope power of the input signal;

(2) a first look-up table adapted to provide first and second pre-distortion parameters using the index values; and

(3) a first multiplier adapted to multiply the input signal by the first and second pre-distortion parameters to generate the main pre-distortion signal;

the second signal processing path comprises:

(1) a second look-up table adapted to provide third and fourth pre-distortion parameters using the index values;

(2) a second multiplier adapted to multiply the input signal by the third and fourth pre-distortion parameters to generate first multiplied signals; and

(3) a first differentiator adapted to differentiate the first multiplied signals with respect to time to generate first differentiated signals; and

the third signal processing path comprises:

(1) a third look-up table adapted to provide fifth and sixth pre-distortion parameters using the index values;

(2) a third multiplier adapted to multiply the input signal by the fifth and sixth pre-distortion parameters to generate second multiplied signals; and

(3) a second differentiator adapted to differentiate the second multiplied signals with respect to time to generate second differentiated signals.

15. The apparatus of claim 14 , wherein:

the second signal processing path further comprises a positive-frequency filter adapted to filter the first differentiated signals to generate the first frequency-dependent predistortion signal; and

the third signal processing path further comprises a negative-frequency filter adapted to filter the second differentiated signals to generate the second frequency-dependent predistortion signal.

16. The apparatus of claim 14 , wherein:

the first differentiated signals are the first frequency-dependent predistortion signal; and

the third signal processing path further comprises either a positive-frequency filter or a negative-frequency filter adapted to filter the second differentiated signals to generate the second frequency-dependent predistortion signal.

17. A method for reducing spurious emissions in an amplified signal by applying pre-distortion, whose magnitude is frequency-dependent, to an input signal to generate a pre-distorted signal, such that, when the pre-distorted signal is applied to an amplifier to generate the amplified signal, the pre-distortion reduces the spurious emissions in the amplified signal, wherein the pre-distorted signal is generated by:

(a) generating a first frequency-dependent pre-distortion signal corresponding to a first set of frequency components for the input signal;

(b) generating a second frequency-dependent pre-distortion signal corresponding to a second set of frequency components for the input signal, wherein the first set of frequency components is different from the second set of frequency components; and

(c) combining the first and second frequency-dependent pre-distortion signals to generate the pre-distorted signal, wherein:

the first set of frequency components corresponds to positive-frequency components and negative-frequency components of the input signal;

the second set of frequency components corresponds to only positive-frequency components or only negative-frequency components of the input signal;

the positive-frequency components correspond to frequencies that are greater than a center frequency of the input signal; and

the negative-frequency components correspond to frequencies that are smaller than the center frequency of the input signal.

18. The method of claim 17 , wherein the phase of the pre-distortion is also frequency-dependent.

19. The method of claim 17 , wherein:

the first frequency-dependent pre-distortion signal is generated by:

(1) generating a first set of one or more waveforms corresponding to a first set of one or more pre-distortion parameters;

(2) differentiating the first set of one or more waveforms with respect to time to generate the first frequency-dependent pre-distortion signal; and

the second frequency-dependent pre-distortion signal is generated by:

(1) generating a second set of one or more waveforms corresponding to a second set of one or more pre-distortion parameters;

(2) differentiating the second set of one or more waveforms with respect to time to generate a second set of one or more differentiated waveforms; and

(3) applying the second set of one or more differentiated waveforms to a negative-frequency operation or a positive-frequency operation to generate the second frequency-dependent pre-distortion signal.

20. The method of claim 17 , further comprising the step of generating a frequency-independent pre-distorted signal from the input signal, wherein the frequency-independent pre-distorted signal and the first and second frequency-dependent pre-distortion signals are combined to generate the pre-distorted signal.

21. The method of claim 17 , wherein:

the input signal is represented in a base-band domain; and

the first and second frequency-dependent pre-distortion signals are generated in a digital domain.

Assignments (16)
RELEASE OF SECURITY INTEREST AT REEL/FRAME 049905/0504 Recorded Dec 19, 2024
From: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
To: ARRIS ENTERPRISES LLC (F/K/A ARRIS ENTERPRISES, INC.); ARRIS TECHNOLOGY, INC.; ARRIS SOLUTIONS, INC.; COMMSCOPE, INC. OF NORTH CAROLINA; COMMSCOPE TECHNOLOGIES LLC; RUCKUS WIRELESS, LLC (F/K/A RUCKUS WIRELESS, INC.)
Reel/Frame 071477/0255 →
TERM LOAN SECURITY AGREEMENT Recorded Jul 3, 2019
From: COMMSCOPE, INC. OF NORTH CAROLINA; COMMSCOPE TECHNOLOGIES LLC; ARRIS ENTERPRISES LLC; ARRIS TECHNOLOGY, INC.; RUCKUS WIRELESS, INC.; ARRIS SOLUTIONS, INC.
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 049905/0504 →
ABL SECURITY AGREEMENT Recorded Jul 3, 2019
From: COMMSCOPE, INC. OF NORTH CAROLINA; COMMSCOPE TECHNOLOGIES LLC; ARRIS ENTERPRISES LLC; ARRIS TECHNOLOGY, INC.; RUCKUS WIRELESS, INC.; ARRIS SOLUTIONS, INC.
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 049892/0396 →
PATENT SECURITY AGREEMENT Recorded Jul 3, 2019
From: COMMSCOPE TECHNOLOGIES LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 049892/0051 →
RELEASE OF SECURITY INTEREST Recorded Apr 9, 2019
From: JPMORGAN CHASE BANK, N.A.
To: REDWOOD SYSTEMS, INC.; ALLEN TELECOM LLC; ANDREW LLC; COMMSCOPE, INC. OF NORTH CAROLINA; COMMSCOPE TECHNOLOGIES LLC
Reel/Frame 049260/0001 →
RELEASE OF SECURITY INTEREST Recorded Apr 9, 2019
From: JPMORGAN CHASE BANK, N.A.
To: REDWOOD SYSTEMS, INC.; ALLEN TELECOM LLC; ANDREW LLC; COMMSCOPE, INC. OF NORTH CAROLINA; COMMSCOPE TECHNOLOGIES LLC
Reel/Frame 048840/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE DELETE THE WRONG PROPERTY NJMBER PREVIOUSLY RECORDED AT REEL: 021805 FRAME: 0276. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded May 23, 2018
From: ANDREW CORPORATION
To: ANDREW LLC
Reel/Frame 046377/0458 →
RELEASE OF SECURITY INTEREST PATENTS (RELEASES RF 036201/0283) Recorded Mar 31, 2017
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: ALLEN TELECOM LLC; COMMSCOPE TECHNOLOGIES LLC; COMMSCOPE, INC. OF NORTH CAROLINA; REDWOOD SYSTEMS, INC.
Reel/Frame 042126/0434 →
SECURITY INTEREST Recorded Jul 28, 2015
From: ALLEN TELECOM LLC; COMMSCOPE TECHNOLOGIES LLC; COMMSCOPE, INC. OF NORTH CAROLINA; REDWOOD SYSTEMS, INC.
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 036201/0283 →
CHANGE OF NAME Recorded Mar 25, 2015
From: ANDREW LLC
To: COMMSCOPE TECHNOLOGIES LLC
Reel/Frame 035285/0057 →
SECURITY AGREEMENT Recorded May 4, 2011
From: ALLEN TELECOM LLC, A DELAWARE LLC; ANDREW LLC, A DELAWARE LLC; COMMSCOPE, INC OF NORTH CAROLINA, A NORTH CAROLINA CORPORATION
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 026272/0543 →
SECURITY AGREEMENT Recorded May 3, 2011
From: ALLEN TELECOM LLC, A DELAWARE LLC; ANDREW LLC, A DELAWARE LLC; COMMSCOPE, INC. OF NORTH CAROLINA, A NORTH CAROLINA CORPORATION
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 026276/0363 →
PATENT RELEASE Recorded Feb 3, 2011
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
To: COMMSCOPE, INC. OF NORTH CAROLINA; ALLEN TELECOM LLC; ANDREW LLC (F/K/A ANDREW CORPORATION)
Reel/Frame 026039/0005 →
CHANGE OF NAME Recorded Nov 10, 2008
From: ANDREW CORPORATION
To: ANDREW LLC
Reel/Frame 021805/0276 →
SECURITY AGREEMENT Recorded Jan 9, 2008
From: COMMSCOPE, INC. OF NORTH CAROLINA; ALLEN TELECOM, LLC; ANDREW CORPORATION
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 020362/0241 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2003
From: VELLA-COLEIRO, GEORGE P.
To: ANDREW CORPORATION
Reel/Frame 014776/0981 →