IP Library Granted Patent US 7,564,305
Granted Patent B2
US 7,564,305 · App. 11/938,537 · Granted Jul 21, 2009

System and method for self-cancellation of N

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Quick Facts
Patent No.
US 7,564,305
App. No.
11/938,537
Granted
Jul 21, 2009
Kind
B2
Abstract

A method for reducing distortion in a nonlinear device whereby n th -order intermodulation products are canceled. A test signal is applied to the input of the nonlinear device and amplitudes of n th - and m th -order intermodulation products are measured. Transfer function coefficients and an optimum value of a baseband resistance are calculated. A baseband resistance is applied to an output of the device. An input signal is applied to the input of the device and a m th -order intermodulation product is passed through the baseband resistance and added back to the input. A system for practicing the same includes a signal source that generates the test signal, a unit that measures the intermodulation products, a unit that calculates the transfer function coefficients and the optimum value of a baseband resistance, and a unit that applies the baseband resistance to the output of the device.

Claims (90)

1. A method for canceling n th -order intermodulation products of a nonlinear device, comprising:

applying a test signal to an input of a nonlinear device;

measuring amplitudes of n th -order intermodulation products and m th -order intermodulation products;

calculating transfer function coefficients; and

calculating an optimum value of a baseband resistance.

2. The method of claim 1 , further comprising:

applying the baseband resistance to an output of the nonlinear device.

3. The method of claim 2 , further comprising:

applying an input signal to the input of the nonlinear device.

4. The method of claim 3 , further comprising:

passing at least one of the m th -order intermodulation products through the baseband resistance; and

adding the at least one of the m th -order intermodulation products to the input of the nonlinear device.

5. The method of claim 1 , wherein m=2 and n=3.

6. The method of claim 5 , wherein the test signal comprises a first component and a second component,

wherein a frequency of the first component corresponds to a lower bound of a band of an input signal, and a frequency of the second component corresponds to an upper bound of the band of the input signal,

wherein the first component and the second component have equal amplitude and phase.

7. The method of claim 6 , wherein the n th -order intermodulation products comprise a third-order lower sideband and a third-order upper sideband, and the m th -order intermodulation products comprise a second-order baseband.

8. The method of claim 7 , wherein the transfer function coefficients comprise a second-order coefficient and a third-order coefficient,

wherein the second-order coefficient is proportional to an amplitude of the second-order baseband, and the third-order coefficient is proportional to both an amplitude of the third-order lower sideband and an amplitude of the third-order upper sideband.

9. The method of claim 8 , wherein the optimum value of the baseband resistance is calculated according to the equation:

R

=

A

2

0.75

B

-

1

,

wherein R equals the optimum value of the baseband resistance, A equals the second-order coefficient, and B equals the third-order coefficient.

10. A system for canceling n th -order intermodulation products of a nonlinear device comprising a first apparatus and a second apparatus,

wherein the first apparatus comprises a test signal source for applying a test signal to an input of a nonlinear device; a measuring unit for measuring amplitudes of n th -order intermodulation products and m th -order intermodulation products; and a calculating unit for calculating transfer function coefficients and an optimum value of a baseband resistance,

wherein the second apparatus comprises a baseband resistor unit for applying the baseband resistance to an output of the nonlinear device.

11. The system of claim 10 , wherein m=2 and n=3.

12. The system of claim 11 , wherein the test signal comprises a first component and a second component,

wherein a frequency of the first component corresponds to a lower bound of a band of an input signal, and a frequency of the second component corresponds to an upper bound of the band of the input signal,

wherein the first component and the second component have equal amplitude and phase.

13. The system of claim 12 , wherein the n th -order intermodulation products comprise a third-order lower sideband and a third-order upper sideband, and the m th -order intermodulation products comprise a second-order baseband.

14. The system of claim 13 , wherein the transfer function coefficients comprise a second-order coefficient and a third-order coefficient,

wherein the second-order coefficient is proportional to an amplitude of the second-order baseband, and the third-order coefficient is proportional to both an amplitude of the third-order lower sideband and an amplitude of the third-order upper sideband.

15. The system of claim 14 , wherein the optimum value of the baseband resistance calculated by the calculating unit is calculated according to the equation:

R

=

A

2

0.75

B

-

1

,

wherein R equals the optimum value of the baseband resistance, A equals the second-order coefficient, and B equals the third-order coefficient.

16. An apparatus for canceling n th -order intermodulation products of a nonlinear device comprising:

a test signal source for applying a test signal to an input of a nonlinear device;

a measuring unit for measuring amplitudes of n th -order intermodulation products and m th -order intermodulation products;

a calculating unit for calculating transfer function coefficients and an optimum value of a baseband resistance; and

a baseband resistor unit for applying the baseband resistance to an output of the nonlinear device.

17. The apparatus of claim 16 , wherein m=2 and n=3.

18. The apparatus of claim 17 , wherein the test signal comprises a first component and a second component,

wherein a frequency of the first component corresponds to a lower bound of a band of an input signal, and a frequency of the second component corresponds to an upper bound of the band of the input signal,

wherein the first component and the second component have equal amplitude and phase.

19. The apparatus of claim 18 , wherein the n th -order intermodulation products comprise a third-order lower sideband and a third-order upper sideband, and the m th -order intermodulation products comprise a second-order baseband.

20. The apparatus of claim 19 , wherein the transfer function coefficients comprise a second-order coefficient and a third-order coefficient,

wherein the second-order coefficient is proportional to an amplitude of the second-order baseband, and the third-order coefficient is proportional to both an amplitude of the third-order lower sideband and an amplitude of the third-order upper sideband.

21. The apparatus of claim 20 , wherein the optimum value of the baseband resistance is calculated according to the equation:

R

=

A

2

0.75

B

-

1

,

wherein R equals the optimum value of the baseband resistance, A equals the second-order coefficient, and B equals the third-order coefficient.

22. A computer program embodied in a computer-readable storage medium, the program comprising code to control a system to:

apply a test signal to an input of a nonlinear device;

measure amplitudes of n th -order intermodulation products and m th -order intermodulation products; and

calculate transfer function coefficients and an optimum value of a baseband resistance.

23. The computer program of claim 22 , further comprising code to control a system to apply the baseband resistance to an output of the nonlinear device.

24. The computer program of claim 23 , further comprising code to control a system to apply an input signal to the input of the nonlinear device.

25. The computer program of claim 24 , further comprising code to control a system to:

pass at least one of the m th -order intermodulation products through the baseband resistance; and

add the at least one of the m th -order intermodulation products to the input of the nonlinear device.

26. The computer program of claim 22 , wherein m=2 and n=3.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION NUMBER 10/075,623 PREVIOUSLY RECORDED AT REEL: 034484 FRAME: 0740. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT FOR SECURITY --- PATENTS. Recorded Jun 14, 2017
From: CORIANT OPERATIONS, INC.; TELLABS RESTON, LLC (FORMERLY KNOWN AS TELLABS RESTON, INC.); WICHORUS, LLC (FORMERLY KNOWN AS WICHORUS, INC.)
To: TELECOM HOLDING PARENT LLC
Reel/Frame 042980/0834 →
ASSIGNMENT FOR SECURITY - - PATENTS Recorded Nov 26, 2014
From: CORIANT OPERATIONS, INC.; TELLABS RESTON, LLC (FORMERLY KNOWN AS TELLABS RESTON, INC.); WICHORUS, LLC (FORMERLY KNOWN AS WICHORUS, INC.)
To: TELECOM HOLDING PARENT LLC
Reel/Frame 034484/0740 →
SECURITY AGREEMENT Recorded Dec 6, 2013
From: TELLABS OPERATIONS, INC.; TELLABS RESTON, LLC (FORMERLY KNOWN AS TELLABS RESTON, INC.); WICHORUS, LLC (FORMERLY KNOWN AS WICHORUS, INC.)
To: CERBERUS BUSINESS FINANCE, LLC, AS COLLATERAL AGENT
Reel/Frame 031768/0155 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2008
From: DEISCH, CECIL W.
To: TELLABS OPERATIONS, INC.
Reel/Frame 020658/0195 →