IP Library Granted Patent US 7,196,840
Granted Patent B2
US 7,196,840 · App. 10/303,050 · Granted Mar 27, 2007

Amplitude balancing for multilevel signal transmission

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Quick Facts
Patent No.
US 7,196,840
App. No.
10/303,050
Granted
Mar 27, 2007
Kind
B2
Abstract

Arrangements are provided for an amplitude balanced optical amplifier. A combination of an optical preamplifier and a gain/loss variation modification device (VMD) is employed. The gain/loss VMD compensates the gain variation across different wavelength channels introduced by the preamplifier. The gain/loss VMD operates based on a gain/loss profile that is complementary to that of the preamplifier. More than one amplifier may be deployed. In addition, feedback control may be applied to either the preamplifier or the gain/loss VMD to dynamically control the performance.

Claims (98)

1. An amplitude balanced (AB) optical amplifier, comprising:

an optical preamplifier; and

a gain/loss variation modification device (VMD) in optical communication with said preamplifier,

wherein said optical preamplifier has a gain profile adapted to amplify a wavelength division multiplexed optical signal comprising a plurality of wavelength channels in which at least one of said plurality of wavelength channels includes a multilevel encoded signal to produce an amplified optical signal having a gain variation across said plurality of wavelength channels, and

wherein said gain/loss variation modification device is constructed to modify said amplified optical signal across said plurality of wavelength channels, said gain/loss modification device having a gain/loss profile substantially complementary to said gain variation of said optical preamplifier so as to at least partially cancel said gain variation introduced by said optical preamplifier, wherein

said at least one of said plurality of wavelength channels includes a hybrid signal comprising at least one multilevel signal and at least one on-off-keyed signal.

2. The optical amplifier according to claim 1 , wherein the preamplifier comprises at least one of:

an Erbium Doped Fiber Amplifier (EDFA);

an Erbium Doped Waveguide Amplifier (EDWA);

a Raman amplifier;

a Rare Earth Doped Fiber Amplifier (REDFA); and

a semiconductor amplifier.

3. The optical amplifier according to claim 1 , wherein the gain/loss VMD comprises at least one of:

a long period Bragg grating;

a plurality of long period Bragg gratings;

a multichannel variable optical attenuator;

a combination of a circulator and a plurality of Bragg gratings;

a micro-electro-mechanical device;

a Raman amplifier operating based on a gain profile that is complementary to the gain profile of the preamplifier;

an REDFA operating based on a gain/loss profile that is complementary to the gain profile of the preamplifier; and

a semiconductor amplifier operating based on a gain/loss profile that is complementary to the gain profile of the preamplifier.

4. The optical amplifier according to claim 1 , further comprising:

a wavelength sensitive detector capable of detecting the signal power of each wavelength in an output optical signal; and

a gain/loss feedback controller capable of performing feedback control based on a detected signal power of the output optical signal.

5. The optical amplifier according to claim 4 , wherein the gain/loss feedback controller controls the gain/loss of at least one of:

said preamplifier; and said gain/loss VMD.

6. The optical amplifier according to claim 4 , wherein the wavelength sensitive detector comprises:

an optical power tap device capable of tapping the output optical signal to produce two portions for each wavelength, each of which having a certain percentage of signal power; and

an optical channel monitor capable of determining the signal power of each wavelength of the output optical signal based on one portion of the tapped output optical signal.

7. The optical amplifier according to claim 6 , wherein the optical power tap device is realized using an optical coupler.

8. An amplitude balanced (AB) optical amplifier, comprising:

an optical preamplifier;

a gain/loss variation modification device (VMD) in communication with said optical preamplifier; and

an optical post-amplifier in communication with the gain/loss variation modification device, wherein

said optical preamplifier has again profile adapted to amplify a wavelength division multiplexed optical signal comprising a plurality of wavelength channels in which at least one of said plurality of wavelength channels includes a multilevel encoded signal to produce a pre-amplified optical signal having a gain variation across said plurality of wavelength channels,

said gain/loss variation modification device is constructed to modify said pre-amplified optical signal across said plurality of wavelength channels, said gain/loss modification device having a gain/loss profile substantially complementary to said gain variation of said optical preamplifier so as to at least partially cancel said gain variation to produce a modified optical signal, and

said optical post-amplifier is adapted to amplify the modified optical signal to produce an output optical signal, wherein

said at least one of said plurality of wavelength channels includes a hybrid signal comprising at least one multilevel signal and at least one on-off-keyed signal.

9. The optical amplifier according to claim 8 , wherein said optical preamplifier has a first gain profile and said optical post-amplifier has a second gain profile.

10. The optical amplifier according to claim 9 , wherein the gain/loss VMD comprises at least one of:

a long period Bragg grating;

a plurality of Bragg gratings;

a multichannel variable optical attenuator;

a combination of a circulator and a plurality of Bragg gratings;

a Raman amplifier operating based on a gain profile that is complementary to a compound gain profile achieved together by the optical preamplifier according to the first gain profile and the optical post-amplifier according to the second gain profile;

an REDFA operating based on a gain/loss profile that is complementary to the compound gain profile; and

a semiconductor amplifier operating based on a gain/loss profile that is complementary to the compound gain profile.

11. The optical amplifier according to claim 8 , wherein said optical preamplifier comprises at least one of:

an Erbium Doped Fiber Amplifier (EDFA);

an Erbium Doped Waveguide Amplifier (EDWA);

a Raman amplifier;

a Rare Earth Doped Fiber Amplifier (REDFA); and

a semiconductor amplifier.

12. The optical amplifier according to claim 8 , wherein said optical post-amplifier comprises at least one of

an Erbium Doped Fiber Amplifier (EDFA);

an Erbium Doped Waveguide Amplifier (EDWA);

a Raman amplifier;

a Rare Earth Doped Fiber Amplifier (REDFA); and

a semiconductor amplifier.

13. The optical amplifier according to claim 8 , further comprising:

a wavelength sensitive detector capable of detecting the signal power of each wavelength channel contained in the output optical signal; and

a gain/loss feedback controller capable of performing feedback control based on the detected signal power for each wavelength channel contained in the output optical signal.

14. The optical amplifier according to claim 13 , wherein the gain/loss feedback controller controls the gain/loss of at least one of:

the optical preamplifier;

the optical post-amplifier; and

the gain/loss VMD.

15. The optical amplifier according to claim 13 , wherein the wavelength sensitive detector comprises:

an optical power tap device; and

an optical channel monitor, wherein

said optical power tap device is adapted to tap the output optical signal to produce two portions for each wavelength channel, each of which has a certain percentage of signal power, and

said optical channel monitor is adapted to determine the signal power of each wavelength channel of the output optical signal based on one portion of the tapped output optical signal.

16. The optical amplifier according to claim 15 , wherein the optical power tap device comprises an optical coupler.

17. An amplitude balanced optical amplifying mechanism, comprising:

a wavelength division demultiplexer;

a plurality of optical amplifiers in communication with the wavelength division demultiplexer; and

a wavelength division multiplexer in communication with the plurality of optical amplifiers, wherein

said wavelength division demultiplexer is adapted to demultiplex an input optical signal with multiple wavelength channels into different wavelength groups, each of the which comprises a plurality of wavelength channels and carries at least one multilevel encoded signal,

said plurality of optical amplifiers are adapted to amplify optical signals contained in wavelength channels of different wavelength groups to produce amplified signals,

said wavelength division multiplexer is adapted to multiplex the amplified signals from said plurality of optical amplifiers corresponding to different wavelength groups to produce an output optical signal,

at least one of said optical amplifiers having

an optical preamplifier, and

a gain/loss variation modification device (VMD) in communication with the optical preamplifier, wherein

said optical preamplifier has a gain profile adapted to amplify a corresponding optical signal to produce a pre-amplified optical signal having a gain variation across said plurality of wavelength channels, and

said gain/loss variation modification device is constructed to modify said pre-amplified optical signal across said plurality of wavelength channels, said gain/loss modification device having a gain/loss profile substantially complementary to said gain variation of said optical preamplifier so as to at least partially cancel said gain variation introduced by said optical preamplifier, wherein

said at least one of said plurality of wavelength channels includes a hybrid signal comprising at least one multilevel signal and at least one on-off-keyed signal.

18. The optical amplifying mechanism according to claim 17 , wherein each optical amplifier corresponding to a wavelength group further comprises:

an optical post-amplifier in communication with the gain/loss modification device (VMD), wherein

said optical post-amplifier is adapted to amplify the modified optical signals.

19. A method for amplitude balancing an optical signal, comprising:

preamplifying said optical signal with a device having a wavelength-dependent gain characteristic; and

varying a gain/loss characteristic of said preamplified signal with a gain/loss profile substantially complementary to said wavelength-dependent gain characteristic so as to at least partially cancel said gain variation introduced by said optical preamplifier,

wherein said optical signal is a wavelength division multiplexed optical signal comprising a plurality of wavelength channels in which at least one of said plurality of wavelength channels includes a multilevel encoded signal, wherein

said at least one of said plurality of wavelength channels includes a hybrid signal comprising at least one multilevel signal and at least one on-off-keyed signal.

20. An optical amplifying mechanism, comprising:

means for preamplifying said optical signal with a device having a wavelength-dependent gain characteristic; and

means for varying a gain/loss characteristic of said preamplified signal with a gain/loss profile substantially complementary to said wavelength-dependent gain characteristic so as to at least partially cancel said gain variation introduced by said optical preamplifier, wherein

said optical signal is a wavelength division multiplexed optical signal comprising a plurality of wavelength channels in which at least one of said plurality of wavelength channels includes a multilevel encoded signal, wherein

said at least one of said plurality of wavelength channels includes a hybrid signal comprising at least one multilevel signal and at least one on-off-keyed signal.

Assignments (13)
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 →
SECURITY INTEREST Recorded Nov 19, 2021
From: ARRIS SOLUTIONS, INC.; ARRIS ENTERPRISES LLC; COMMSCOPE TECHNOLOGIES LLC; COMMSCOPE, INC. OF NORTH CAROLINA; RUCKUS WIRELESS, INC.
To: WILMINGTON TRUST
Reel/Frame 060752/0001 →
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: ARRIS ENTERPRISES LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 049820/0495 →
CHANGE OF NAME Recorded Jun 25, 2019
From: ARRIS ENTERPRISES, INC.
To: ARRIS ENTERPRISES LLC
Reel/Frame 049586/0470 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Apr 8, 2019
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
To: ARRIS GROUP, INC.; ARRIS ENTERPRISES, INC.; ARRIS SOLUTIONS, INC.; ARRIS KOREA, INC.; ARRIS HOLDINGS CORP. OF ILLINOIS, INC.; BIG BAND NETWORKS, INC.; TEXSCAN CORPORATION; POWER GUARD, INC.; 4HOME, INC.; ACADIA AIC, INC.; AEROCAST, INC.; BROADBUS TECHNOLOGIES, INC.; GENERAL INSTRUMENT CORPORATION; GENERAL INSTRUMENT AUTHORIZATION SERVICES, INC.; GENERAL INSTRUMENT INTERNATIONAL HOLDINGS, INC.; IMEDIA CORPORATION; JERROLD DC RADIO, INC.; LEAPSTONE SYSTEMS, INC.; MODULUS VIDEO, INC.; MOTOROLA WIRELINE NETWORKS, INC.; NETOPIA, INC.; NEXTLEVEL SYSTEMS (PUERTO RICO), INC.; QUANTUM BRIDGE COMMUNICATIONS, INC.; SETJAM, INC.; SUNUP DESIGN SYSTEMS, INC.; UCENTRIC SYSTEMS, INC.; GIC INTERNATIONAL HOLDCO LLC; GIC INTERNATIONAL CAPITAL LLC; CCE SOFTWARE LLC; THE GI REALTY TRUST 1996
Reel/Frame 048825/0294 →
CHANGE OF NAME Recorded Mar 14, 2017
From: ARRIS ENTERPRISES INC
To: ARRIS ENTERPRISES LLC
Reel/Frame 041995/0031 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2015
From: ARRIS SOLUTIONS, INC.
To: ARRIS ENTERPRISES, INC.
Reel/Frame 036601/0162 →
SECURITY AGREEMENT Recorded May 28, 2013
From: ARRIS GROUP, INC.; ARRIS ENTERPRISES, INC.; ARRIS SOLUTIONS, INC.; ARRIS KOREA, INC.; ARRIS HOLDINGS CORP. OF ILLINOIS; BIGBAND NETWORKS, INC.; TEXSCAN CORPORATION; POWER GUARD, INC.; 4HOME, INC.; ACADIA AIC, INC.; AEROCAST, INC.; BROADBUS TECHNOLOGIES, INC.; GENERAL INSTRUMENT CORPORATION; GENERAL INSTRUMENT AUTHORIZATION SERVICES, INC.; GENERAL INSTRUMENT INTERNATIONAL HOLDINGS, INC.; IMEDIA CORPORATION; JERROLD DC RADIO, INC.; LEAPSTONE SYSTEMS, INC.; MODULUS VIDEO, INC.; MOTOROLA WIRELINE NETWORKS, INC.; NETOPIA, INC.; NEXTLEVEL SYSTEMS (PUERTO RICO), INC.; QUANTUM BRIDGE COMMUNICATIONS, INC.; SETJAM, INC.; SUNUP DESIGN SYSTEMS, INC.; UCENTRIC SYSTEMS, INC.; GIC INTERNATIONAL HOLDCO LLC; GIC INTERNATIONAL CAPITAL LLC; CCE SOFTWARE LLC; THE GI REALTY TRUST 1996
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 030498/0023 →
MERGER Recorded Feb 11, 2013
From: BROADBAND ROYALTY CORPORATION
To: ARRIS SOLUTIONS, INC.
Reel/Frame 029790/0127 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 12, 2004
From: OPTINEL SYSTEMS, INC.
To: BROADBAND ROYALTY CORPORATION
Reel/Frame 015236/0850 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2003
From: DULING, IRL N.; VOHRA, SANDEEP T.; MATTHEWS, PAUL J.
To: OPTINEL SYSTEMS, INC.
Reel/Frame 013967/0472 →