IP Library Granted Patent US 6,980,059
Granted Patent B2
US 6,980,059 · App. 10/404,516 · Granted Dec 27, 2005

Data directed frequency acquisition loop that synchronizes to a received signal by using the redundancy of the data in the frequency domain

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Quick Facts
Patent No.
US 6,980,059
App. No.
10/404,516
Granted
Dec 27, 2005
Kind
B2
Abstract

A data-directed frequency-acquisition loop capable of generating a frequency error having a magnitude and direction from a double sideband suppressed signal comprises a first multiplier that multiplies the signal by the output of a VCO. The output of the first multiplier is convolved by a second multiplier. The I output of the second multiplier passes through a first low-pass filter. The filtered I output and the Q output are then multiplied by a third multiplier. The output of the third multiplier is filtered through a second low-pass filter, amplified, and return to the VCO to complete the feedback loop.

Claims (46)

1. A data-directed frequency acquisition loop for synching to a signal, the data-directed frequency acquisition loop comprising:

a VCO having an I and Q output;

a first multiplier having as input the signal and the I and Q output, the first multiplier having an I′ and Q′ output;

a second multiplier having as input the I′ and Q′ output and having an I″ and Q″ output;

a first low-pass filter having as input the I″ output and having a filtered I″ output;

a third multiplier having as input the filtered I″ output and the Q″ output and having a real output; and

a second low-pass filter having as input the real output and having a feedback output that is input to the VCO.

2. The data-directed frequency acquisition loop of claim 1 , wherein the second low-pass filter has a gain greater than 1.

3. The data-directed frequency acquisition loop of claim 1 , further comprising an amplifier, and wherein the feedback output is passed through the amplifier before being input to the VCO.

4. The data-directed frequency acquisition loop of claim 1 , further comprising a third low-pass filter, and wherein the I′ and Q′ output are passed through the third low-pass filter before being input to the second multiplier.

5. The data-directed frequency acquisition loop of claim 1 , wherein the second multiplier is a squarer.

6. A data-directed frequency acquisition loop for synching to a signal, the data-directed frequency acquisition loop comprising:

a VCO with an I and Q out put;

a first multiplier that receives the signal and the I output and generates an I′ component from them;

a second multiplier that receives the signal and the Q VCO output and generates a Q′ component from them;

a third multiplier that receives the I′ and Q′ components and generates an I′Q′ signal from them;

an amplifier that receives the I′Q′ signal and generates a 2I′Q′ signal from it;

a fourth multiplier that receives the I′ component and generates an I′ 2 signal from it;

a fifth multiplier that receives the Q′ component and generates a Q′ 2 signal from it;

a summer that receives the I′ 2 and Q′ 2 signals and generates a I′ 2 -Q′ 2 signal;

a first low pass filter that receives the I′ 2 -Q′ 2 signal and generates a filtered I′ 2 -Q′ 2 signal;

a sixth multiplier that receives the 2I′Q′ signal and the filtered I′ 2 -Q′ 2 signal and generates a raw VCO driving signal from them;

a second low pass filter that receives the raw VCO driving signal, generates a filtered VCO driving signal from it, and sends the filtered VCO driving signal to the VCO.

7. The data-directed frequency acquisition loop of claim 6 , wherein the first and second multipliers are limited to multiplying by 1 and −1.

8. The data-directed frequency acquisition loop of claim 6 , wherein the fourth and fifth multipliers are look-up tables that give the square of the input.

9. The data-directed frequency acquisition loop of claim 6 , further comprising a second amplifier positioned between the first low pass filter and the sixth multiplier.

10. The data-directed frequency acquisition loop of claim 9 , wherein the second amplifier is a hard limiter.

11. A frequency acquisition loop that synchronizes with a signal using both a magnitude of error and a direction of error that are generated by convolving data in the signal, the frequency acquisition loop comprising:

a Costas loop having a VCO;

a sub-circuit that generates I 2 -Q 2 ;

a multiplier that changes the sign of a VCO driving voltage when I 2 -Q 2 is less than zero.

12. A frequency acquisition loop comprising:

a Costas loop having a VCO;

a sub-circuit that generates a difference of a square of an in-phase signal component and a square of a quadrature component;

a multiplier that changes the sign of a VCO driving voltage when the difference is less than zero.

13. The frequency acquisition loop of claim 12 , wherein the multiplier does not change the magnitude of the voltage to the VCO when the difference is less than zero.

14. The frequency acquisition loop of claim 12 , further comprising a complex multiplier that performs a fully-complex squaring operation.

15. A frequency acquisition and phase-lock loon that provides frequency acquisition and chase lock derived from a signal's data, the frequency acquisition and phase-lock loop comprising:

a Costas loop having a VCO;

a sub-circuit that generates a difference between an in-phase component squared and a quadrature component squared;

a multiplier that changes the sign of a VCO driving voltage when the difference between an in-phase component squared and a quadrature component squared is less than zero.

16. A synch loop for providing frequency acquisition and phase-lock loop for a double sideband suppressed carrier signal, the loop comprising:

a Costas loop having a VCO;

an in-phase loop that generates I 2 -Q 2 , the in-phase loop including a multiplier that changes the sign of a VCO driving voltage when I 2 -Q 2 is less than zero;

wherein the frequency acquisition and phase-lock loop provides frequency acquisition and phase lock derived from the signal's data by generating both magnitude of error and a direction of error that are generated by convolving data in the signal; and

wherein the synch loop has four points of stable equilibrium distributed 90 degrees from one another.

Assignments (7)
SECURITY AGREEMENT Recorded Jul 9, 2021
From: MAXLINEAR, INC.; MAXLINEAR COMMUNICATIONS, LLC; EXAR CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 056816/0089 →
RELEASE OF SECURITY INTEREST Recorded Jun 23, 2021
From: MUFG UNION BANK, N.A.
To: MAXLINEAR, INC.; EXAR CORPORATION; MAXLINEAR COMMUNICATIONS LLC
Reel/Frame 056656/0204 →
SUCCESSION OF AGENCY (REEL 042453 / FRAME 0001) Recorded Jul 1, 2020
From: JPMORGAN CHASE BANK, N.A.
To: MUFG UNION BANK, N.A.
Reel/Frame 053115/0842 →
SECURITY AGREEMENT Recorded May 12, 2017
From: MAXLINEAR, INC.; ENTROPIC COMMUNICATIONS, LLC (F/K/A ENTROPIC COMMUNICATIONS, INC.); EXAR CORPORATION
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 042453/0001 →
MERGER AND CHANGE OF NAME Recorded May 19, 2015
From: ENTROPIC COMMUNICATIONS, INC.; EXCALIBUR SUBSIDIARY, LLC; ENTROPIC COMMUNICATIONS, LLC
To: ENTROPIC COMMUNICATIONS, LLC
Reel/Frame 035717/0628 →
MERGER AND CHANGE OF NAME Recorded May 18, 2015
From: EXCALIBUR ACQUISITION CORPORATION; ENTROPIC COMMUNICATIONS, INC.; ENTROPIC COMMUNICATIONS, INC.
To: ENTROPIC COMMUNICATIONS, INC.
Reel/Frame 035706/0267 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2012
From: TRIDENT MICROSYSTEMS, INC.; TRIDENT MICROSYSTEMS (FAR EAST) LTD.
To: ENTROPIC COMMUNICATIONS, INC.
Reel/Frame 028146/0054 →