IP Library › Granted Patent US 9,438,369
Granted Patent B2
US 9,438,369 · App. 14/536,792 · Granted Sep 6, 2016

Margin-based optimization systems and methods in optical networks for capacity boosting

Inventors: Gerard L. Swinkels (Ottawa, CA); David W. Boertjes (Nepean, CA); David Miedema (Ottawa, CA); Kim B. Roberts (Nepean, CA)
Assignee: Ciena Corporation
H04J14/0257H04B10/0795H04B10/572H04B10/58H04J14/0227H04J14/0241H04J14/0271
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,438,369
App. No.
14/536,792
Granted
Sep 6, 2016
Kind
B2
Abstract

Systems and methods of optimizing capacity of an optical network include identifying a first wavelength with an associated target capacity; determining that the first wavelength has insufficient capability to operate at the associated target capacity; and adjusting one or more wavelengths to increase capability of the first wavelength such that the first wavelength can operate at the associated target capacity.

Claims (31)

1. A method of optimizing capacity of an optical network, the method comprising:

identifying a first wavelength with an associated target capacity;

determining that the first wavelength has insufficient capability to operate at the associated target capacity by comparing one or more parameters associated with the first wavelength to one or more predetermined thresholds;

performing a nonlinear optimization of excess margin in the optical network, the performing comprising modeling bit rate, Optical Signal to Noise Ratio (OSNR), and whether or not a wavelength can support additional capacity as real functions; and

adjusting one or more wavelengths in the optical network separate from the first wavelength to increase capability of the first wavelength to operate at the associated target capacity, wherein the adjusting is in response to a result of the nonlinear optimization.

2. The method of claim 1 , wherein the adjusting utilizes any one of modifying average power, changing wavelength, changing modulation, and changing precompensation.

3. The method of claim 1 , wherein the one or more parameters are any of additive noise, Cross-Phase Modulation, Cross-Polarization Modulation, and spectral width.

4. The method of claim 1 , wherein the one or more parameters are measured by a modem associated with the first wavelength.

5. The method of claim 1 , wherein the insufficient capability is based on any of noise margin and spectral width.

6. The method of claim 1 , wherein the insufficient capability is not enough to either presently meet a performance for the associated target capacity or to meet a performance for the associated target capacity at a future time.

7. The method of claim 1 , wherein the adjusting utilizes changing modulation to achieve any one of reduced nonlinear aggression, reduced spectral width, and changed spectral shape.

8. The method of claim 1 , wherein the adjusting is simulated in an application prior to operation on nodes in the optical network.

9. A controller for optimizing capacity of an optical network, the controller comprising:

a processor communicatively coupled to a network interface; and

memory storing instructions that, when executed, cause the processor to identify a first wavelength with an associated target capacity,

determine that the first wavelength has insufficient capability to operate at the associated target capacity by a comparison of one or more parameters associated with the first wavelength to one or more predetermined thresholds,

perform a nonlinear optimization of excess margin in the optical network, wherein the nonlinear optimization models bit rate, Optical Signal to Noise Ratio (OSNR), and whether or not a wavelength can support additional capacity as real functions; and

cause or simulate adjustment of one or more wavelengths in the optical network separate from the first wavelength to increase capability of the first wavelength to operate at the associated target capacity, wherein the adjustment is in response to a result of the nonlinear optimization.

10. The controller of claim 9 , wherein the adjustment utilizes any of modifying average power, changing wavelength, changing modulation, and changing precompensation.

11. The controller of claim 9 , wherein the one or more parameters are any of additive noise, Cross-Phase Modulation, Cross-Polarization Modulation, and spectral width.

12. The controller of claim 9 , wherein the one or more parameters are measured by a modem associated with the first wavelength.

13. The controller of claim 9 , wherein the insufficient capability is based on any of noise margin and spectral width.

14. The controller of claim 9 , wherein the insufficient capability is not enough to either presently meet a performance for the associated target capacity or to meet a performance for the associated target capacity at a future time.

15. The controller of claim 9 , wherein the adjustment utilizes changing modulation to any of reduce nonlinear aggression, reduce spectral width, and change spectral shape.

16. An optical network, comprising:

a plurality of nodes interconnected by a plurality of links; and

a controller communicatively coupled to one or more of the plurality of nodes, wherein the controller is configured to

identify a first wavelength, between two of the plurality of nodes, with an associated target capacity,

determine that the first wavelength has insufficient capability to operate at the associated target capacity by a comparison of one or more parameters associated with the first wavelength to one or more predetermined thresholds,

perform a nonlinear optimization of excess margin in the optical network, wherein the nonlinear optimization models bit rate, Optical Signal to Noise Ratio (OSNR), and whether or not a wavelength can support additional capacity as real functions; and

cause or simulate adjustment of one or more wavelengths separate from the first wavelength, on some or all links associated with the first wavelength, to increase capability of the first wavelength to operate at the associated target capacity, wherein the adjustment is in response to a result of the nonlinear optimization.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2014
From: SWINKELS, GERARD L.; BOERTJES, DAVID W.; MIEDEMA, DAVID; ROBERTS, KIM B.
To: CIENA CORPORATION
Reel/Frame 034133/0421 →
Continuity (2)
Provisional Application 62000168 · May 19, 2014
Related Publication 20150333824A1 · Nov 19, 2015