IP Library Granted Patent US 7,613,402
Granted Patent B2
US 7,613,402 · App. 10/730,413 · Granted Nov 3, 2009

Duobinary receiver

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Quick Facts
Patent No.
US 7,613,402
App. No.
10/730,413
Granted
Nov 3, 2009
Kind
B2
Abstract

An optical receiver adapted to process an optical duobinary signal received over a transmission link in an optical communication system. In one embodiment, the receiver has an optical-to-electrical signal converter coupled to a decoder. The decoder processes an electrical signal generated by the converter to generate a bit sequence corresponding to the optical signal. To generate a bit value, the decoder integrates the electrical signal using a sampling window and compares the integration result with a decision threshold value. In one configuration, the width of the sampling window and the decision threshold value are selected based on the eye diagram and noise distribution function, respectively, corresponding to the optical signal. Advantageously, embodiments of the present invention improve overall back-to-back (i.e., source-to-destination) system performance, e.g., by improving dispersion tolerance and/or reducing optical power corresponding to a selected bit error rate value.

Claims (72)

1. A method of signal processing, comprising:

convening an optical signal into an electrical signal having an amplitude corresponding to optical power of the optical signal; and

sampling the electrical signal using a sampling window to generate a bit sequence corresponding to the optical signal, wherein:

the sampling window has a width;

the electrical signal has a series of waveforms comprising first and second pluralities of waveforms, wherein each waveform of the first plurality represents a binary “0” and each waveform of the second plurality represents a binary “1”;

each waveform is integrated over the sampling window width to generate an integration result;

the integration result is compared with a decision threshold value to generate a corresponding bit value;

the sampling window width is selected to be less than a bit length in the electrical signal in order to reduce contribution of the second plurality of waveforms into integration results corresponding to the first plurality of waveforms;

the optical signal is an optical duobinary signal; and

the sampling window width is less than about 25% of a bit length.

2. The method of claim 1 , wherein, for each waveform:

when the integration result is greater than or equal to the decision threshold value, the bit value is binary “1”;

when the integration result is smaller than the decision threshold value, the bit value is binary “0”; and

the decision threshold value is selected to correspond to a level different from a mean of space and mark levels in the electrical signal in order to reduce contribution of spontaneous bit noise and thermal noise into the integration results corresponding to the first and second pluralities of waveforms.

3. The method of claim 1 , wherein the width of the sampling window is selected based on an eye diagram of the optical signal.

4. The method of claim 1 , further comprising:

generating a first clock signal based on the electrical signal;

multiplying a frequency of the first clock signal to generate a second clock signal; and

selecting the width of the sampling window using the second clock signal.

5. The method of claim 4 , comprising aligning the sampling window with respect to the waveforms based on the second clock signal.

6. The method of claim 1 , wherein the sampling window width is selected based on duty cycle corresponding to the second plurality of waveforms.

7. The method of claim 6 , wherein the duty cycle is greater than one.

8. The method of claim 1 , wherein the sampling window width is about 10% of a bit length.

9. An optical receiver, comprising:

a signal converter adapted to convert an optical signal into an electrical signal having an amplitude corresponding to optical power of the optical signal; and

a decoder coupled to the signal converter and adapted to (i) sample the electrical signal using a sampling window and (ii) generate a bit sequence corresponding to the optical signal, wherein:

the sampling window has a width;

the electrical signal has a series of waveforms comprising first and second pluralities of waveforms, wherein each waveform of the first plurality represents a binary “0” and each waveform of the second plurality represents a binary “1” ;

the decoder is adapted to:

integrate each waveform over the sampling window width to generate an integration result;

compare the integration result with a decision threshold value to generate a corresponding bit value; and

select the sampling window width to be less than a bit length in the electrical signal in order to reduce contribution of the second plurality of waveforms into integration results corresponding to the first plurality of waveforms;

the optical signal is an optical duobinary signal; and

the sampling window width is less than about 25% of a bit length.

10. The receiver of claim 9 , wherein, for each waveform:

when the integration result is greater than or equal to the decision threshold value, the bit value is binary “1”;

when the integration result is smaller than the decision threshold value, the bit value is binary “0”; and

the decision threshold value is selected to correspond to a level different from a mean of space and mark levels in the electrical signal in order to reduce contribution of spontaneous bit noise and thermal noise into the integration results corresponding to the first and second pluralities of waveforms.

11. The receiver of claim 9 , wherein the sampling window width is selected based on an eye diagram of the optical signal.

12. The receiver of claim 9 , further comprising:

a clock recovery circuit coupled to the signal converter and adapted to generate a first clock signal based on the electrical signal; and

a clock multiplier coupled between the clock recovery circuit and the decoder and adapted to multiply a frequency of the first clock signal to generate a second clock signal, wherein:

the decoder is adapted to select the sampling window width based on the second clock signal.

13. The receiver of claim 12 , wherein the decoder is adapted to align the sampling window with respect to the waveforms based on the second clock signal.

14. The receiver of claim 9 , wherein the sampling window width is selected based on duty cycle corresponding to the second plurality of waveforms.

15. The receiver of claim 14 , wherein the duty cycle is greater than one.

16. The receiver of claim 9 , wherein the sampling window width is about 10% of a bit length.

17. An optical communication system, comprising an optical transmitter and an optical receiver coupled via a transmission link, wherein the optical receiver comprises:

a signal converter adapted to convert an optical signal received from the transmitter via the transmission link into an electrical signal having an amplitude corresponding to optical power of the optical signal; and

a decoder coupled to the signal converter and adapted to (i) sample the electrical signal using a sampling window and (ii) generate a bit sequence corresponding to the optical signal, wherein:

the sampling window has a width;

the electrical signal has a series of waveforms comprising first and second pluralities of waveforms, wherein each waveform of the first plurality represents a binary “0” and each waveform of the second plurality represents a binary “1”;

the decoder is adapted to:

integrate each waveform over the sampling window width to generate an integration result;

compare the integration result with a decision threshold value to generate a corresponding bit value; and

select the sampling window width to be less than a bit length in the electrical signal in order to reduce contribution of the second plurality of waveforms into integration results corresponding to the first plurality of waveforms;

the optical signal is an optical duobinary signal; and

the sampling window width is less than about 25% of a bit length.

18. The system of claim 17 , wherein:

when the integration result is greater than or equal to the decision threshold value, the bit value is binary “1”;

when the integration result is smaller than the decision threshold value, the bit value is binary “0”; and

the decision threshold value is selected to correspond to a level different from a mean of space and mark levels in the electrical signal in order to reduce contribution of spontaneous bit noise and thermal noise into the integration results corresponding to the first and second pluralities of waveforms.

19. An optical receiver, comprising:

means for converting an optical signal into an electrical signal having an amplitude corresponding to optical power of the optical signal; and

means for sampling the electrical signal using a sampling window to generate a bit sequence corresponding to the optical signal, wherein:

the sampling window has a width:

the electrical signal has a series of waveforms comprising first and second pluralities of waveforms, wherein each waveform of the first plurality represents a binary “0” and each waveform of the second plurality represents a binary “1”;

each waveform is integrated over the sampling window width to generate an integration result;

the integration result is compared with a decision threshold value to generate a corresponding bit value; and

the sampling window width is selected to be less than a bit length in the electrical signal in order to reduce contribution of the second plurality of waveforms into integration results corresponding to the first plurality of waveforms;

the optical signal is an optical duobinary signal; and

the sampling window width is less than about 25% of a bit length.

Assignments (12)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2021
From: PROVENANCE ASSET GROUP LLC
To: RPX CORPORATION
Reel/Frame 059352/0001 →
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2021
From: CORTLAND CAPITAL MARKETS SERVICES LLC
To: PROVENANCE ASSET GROUP HOLDINGS LLC; PROVENANCE ASSET GROUP LLC
Reel/Frame 058983/0104 →
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2021
From: NOKIA US HOLDINGS INC.
To: PROVENANCE ASSET GROUP HOLDINGS LLC; PROVENANCE ASSET GROUP LLC
Reel/Frame 058363/0723 →
ASSIGNMENT AND ASSUMPTION AGREEMENT Recorded Feb 14, 2019
From: NOKIA USA INC.
To: NOKIA US HOLDINGS INC.
Reel/Frame 048370/0682 →
SECURITY INTEREST Recorded Sep 13, 2017
From: PROVENANCE ASSET GROUP HOLDINGS, LLC; PROVENANCE ASSET GROUP, LLC
To: CORTLAND CAPITAL MARKET SERVICES, LLC
Reel/Frame 043967/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2017
From: NOKIA TECHNOLOGIES OY; NOKIA SOLUTIONS AND NETWORKS BV; ALCATEL LUCENT SAS
To: PROVENANCE ASSET GROUP LLC
Reel/Frame 043877/0001 →
SECURITY INTEREST Recorded Sep 13, 2017
From: PROVENANCE ASSET GROUP HOLDINGS, LLC; PROVENANCE ASSET GROUP LLC
To: NOKIA USA INC.
Reel/Frame 043879/0001 →
RELEASE OF SECURITY INTEREST Recorded Oct 9, 2014
From: CREDIT SUISSE AG
To: ALCATEL-LUCENT USA INC.
Reel/Frame 033950/0261 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2013
From: ALCATEL-LUCENT USA INC.
To: ALCATEL LUCENT
Reel/Frame 030410/0341 →
SECURITY INTEREST Recorded Mar 7, 2013
From: ALCATEL-LUCENT USA INC.
To: CREDIT SUISSE AG
Reel/Frame 030510/0627 →
MERGER Recorded Sep 15, 2009
From: LUCENT TECHNOLOGIES INC.
To: ALCATEL-LUCENT USA INC.
Reel/Frame 023232/0900 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2003
From: LIU, XIANG; MOELLER, LOTHAR BENEDICT ERHARD JOSEF; WEI, XING; XIE, CHONGJIN
To: LUCENT TECHNOLOGIES INC.
Reel/Frame 014777/0007 →