IP Library › Granted Patent US 12,744,599
Granted Patent B2
US 12,744,599 · App. 18/663,406 · Granted Sep 22, 2026

Method and system for monitoring non-linear effects along an optical communication line

Inventor: Zhiping Jiang (Kanata, CA)
Assignee: HUAWEI TECHNOLOGIES CO., LTD.
H04B10/2543H04B10/07951H04B10/07H04B10/077H04B10/0777H04B10/25H04B10/2507H04B10/2537H04B10/29H04J14/02
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Quick Facts
Patent No.
US 12,744,599
App. No.
18/663,406
Granted
Sep 22, 2026
Kind
B2
Abstract

Systems and methods for monitoring non-linear effects along an optical communication line transmitting an optical signal, the optical signal being formed from a plurality of sub-signals, each sub-signal being carried over a corresponding wavelength of a plurality of wavelengths. The method includes modulating, by a power dither, an optical power of a first set of sub-signals among the plurality of sub-signals at an output of a first amplifier assembly of the optical communication line; and determining, at a second amplifier assembly of the optical communication line downstream from the first amplifier assembly, a gain modulation affecting a second set of sub-signals due to the modulation of the optical power of the first set of sub-signals.

Claims (51)

1 . A method for monitoring non-linear effects along an optical communication line transmitting an optical signal, the optical signal being formed from a plurality of sub-signals, each sub-signal being carried over a corresponding wavelength of a plurality of wavelengths, the method comprising:

modulating, by a power dither, an optical power of a first set of sub-signals among the plurality of sub-signals at an output of a first amplifier assembly of the optical communication line; and

determining, at a second amplifier assembly of the optical communication line downstream from the first amplifier assembly, a gain modulation affecting a second set of sub-signals due to the modulation of the optical power of the first set of sub-signals.

2 . The method of claim 1 , further comprising, in response to a failure occurring at the first amplifier assembly, adjusting a gain of the first amplifier assembly based on the gain modulation.

3 . The method of claim 1 , wherein modulating the optical power of the first set of sub-signals comprises:

applying the power dither by modulating a pump signal of an optical pump of the first amplifier assembly.

4 . The method of claim 1 , wherein modulating the optical power of the first set of sub-signals comprises:

applying the power dither by a variable optical attenuator.

5 . The method of claim 1 , wherein modulating the optical power of the first set of sub-signals comprises applying, by a first optical amplifier of the first optical amplifier assembly, the power dither to the first set of sub-signals,

the first amplifier assembly including:

the first optical amplifier for amplifying optical power of the first set of sub-signals, and

a second optical amplifier for amplifying optical power of the second set of sub-signals.

6 . The method of claim 1 , wherein determining a gain modulation comprises determining a variation of an optical power received at a third optical amplifier of the second amplifier assembly, said variation caused by the modulation,

the second amplifier assembly including:

a fourth optical amplifier for receiving and amplifying optical power of the first set of sub-signals, and

the third optical amplifier for receiving and amplifying optical power of the second set of sub-optical signals.

7 . The method of claim 1 , wherein the gain modulation is a Stimulated Raman Scattering non-linear effect.

8 . The method of claim 1 , wherein wavelengths corresponding to the first set of sub-signals are C-band wavelengths and wavelengths corresponding to the second set of sub-signals are L-band wavelengths.

9 . The method of claim 1 , wherein wavelengths corresponding to the first set of sub-signals are L-band wavelengths and wavelengths corresponding to the second set of sub-signals are C-band wavelengths.

10 . The method of claim 1 , with the power dither being a first power dither, further comprising applying, at the second amplifier assembly, a second power dither,

the second dither modulating with an opposite phase to the first power dither.

11 . The method of claim 1 , wherein determining the gain modulation comprises:

determining an experimental value of the gain modulation based on optical power measurement executed at the second amplifier assembly;

determining a theoretical value of the gain modulation based on parameters of the first amplifier assembly and the optical communication line; and

in response to a difference between the experimental value and the theoretical value being lower than a pre-determined threshold, identifying the gain modulation as the experimental value.

12 . An optical system for monitoring non-linear effect along an optical communication line transmitting an optical signal, the system comprising:

a controller;

a first amplifier assembly operatively connected to the controller, the first amplifier assembly being optically connected to the optical communication line; and

a second amplifier assembly operatively connected to the controller, the second amplifier assembly being optically connected to the optical communication line,

the optical signal being formed from a plurality of sub-signals, each sub-signal being carried over a corresponding wavelength of a plurality of wavelengths,

the controller being configured to:

modulate, by a power dither, an optical power of a first set of sub-signals among the plurality of sub-signals at an output of a first amplifier assembly of the optical communication line; and

determine, at a second amplifier assembly of the optical communication line downstream from the first amplifier assembly, a gain modulation affecting a second set of sub-signals due to the modulation of the optical power of the first set of sub-signals.

13 . The optical system of claim 12 , wherein, in response to a failure occurring at the first amplifier assembly, the controller is further configured to adjust a gain of the first amplifier assembly based on the gain modulation.

14 . The optical system of claim 12 , wherein the processor is configured to modulate the optical power of the first set of sub-signals by applying the power dither by modulating a pump signal of an optical pump of the first amplifier assembly.

15 . The optical system of claim 12 , wherein the processor is configured to modulate the optical power of the first set of sub-signals by applying the power dither by a variable optical attenuator.

16 . The optical system of claim 12 , wherein:

the first amplifier assembly includes:

a first optical amplifier for amplifying optical power of the first set of sub-signals, and a second optical amplifier for amplifying optical power of the second set of sub-signals; and

the second amplifier assembly includes:

a third optical amplifier for receiving and amplifying optical power of the second set of sub-signals, and a fourth optical amplifier for receiving and amplifying optical power of the first set of sub-signals.

17 . The optical system of claim 12 , wherein wavelengths corresponding to the first set of sub-signals are C-band wavelengths and wavelengths corresponding to the second set of sub-signals are L-band wavelengths.

18 . The optical system of claim 12 , wherein wavelengths corresponding to the first set of sub-signals are L-band wavelengths and wavelengths corresponding to the second set of sub-signals are C-band wavelengths.

19 . The optical system of claim 12 , wherein:

the power dither is a first power dither; and

the processor is further configured to apply, at the second amplifier assembly, a second power dither,

the second dither modulating with an opposite phase to the first power dither.

20 . The optical system of claim 12 , wherein the processor is configured to determine the gain modulation by:

determining an experimental value of the gain modulation based on optical power measurement executed at the second amplifier assembly;

determining a theoretical value of the gain modulation based on parameters of the first amplifier assembly and the optical communication line; and

in response to a difference between the experimental value and the theoretical value being lower than a pre-determined threshold, identifying the gain modulation as the experimental value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2024
From: JIANG, ZHIPING
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 067405/0095 →
Continuity (1)
Related Publication 20250358009A1 · Nov 20, 2025
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