IP Library Granted Patent US 9,264,139
Granted Patent B2
US 9,264,139 · App. 13/722,557 · Granted Feb 16, 2016

Optical transport network clock transient suppression systems and methods

Inventors: Alexander Gurd Young (Ottawa, CA); Sebastien Gareau (Ottawa, CA); Tim Norman (Ottawa, CA); Richard Wyatt (Ottawa, CA)
Assignee: Ciena Corporation
H04B10/27H04J3/00H04J3/1652H04Q11/0001H04J2203/0089
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Quick Facts
Patent No.
US 9,264,139
App. No.
13/722,557
Granted
Feb 16, 2016
Kind
B2
Abstract

An Optical Transport Network (OTN) method, an OTN switching node method, and an OTN node utilize a “double wrapper” configuration to eliminate clock transients in OTN networks. That is, the systems and methods bury an ODU beneath another overclocked ODU thereby eliminating any interruptions due to clock transients, framing events or other disruptions. For example, an ODU2 can be mapped into an ODU2e, an ODU3 can be mapped into an ODU3e2, an ODU4 can be mapped into an ODUG or some other overclocked variant of ODU4, and the like. Specifically, ODU2e, ODU3e2, ODUG, etc. are overclocked variants of ODU2, ODU3, ODU4, etc. The systems and methods propose to use these overclocked signals to carry standard ODU signals to eliminate clock transient problems.

Claims (37)

1. An Optical Transport Network (OTN) method, comprising:

transmitting an Optical channel Data Unit (ODU) signal between a pair of OTN switching nodes mapped within an overclocked OTN signal, wherein the ODU signal is an ODUn with n=2, 3, or 4 and the overclocked OTN signal is a High Order (HO) overclocked variant of the ODUn;

performing one or more of control plane signaling and exchange of Operations, Administration, Maintenance, and Provisioning (OAM&P) data between the pair of OTN switching nodes using overhead associated with the overclocked OTN signal, wherein the one or more of the control plane signaling and the OAM&P data is for the ODU signal; and

responsive to a clock transient, framing events, or other disruptions on the ODU signal affecting the control plane signaling, maintaining the one or more of control plane signaling and OAM&P data for the ODU signal through the overhead associated with the overclocked OTN signal in a double mapping configuration, wherein the double mapping configuration includes the ODU signal mapped in the overclocked OTN signal such that the overclocked OTN signal carries the one or more of the control plane signaling and the OAM&P data for the ODU signal.

2. The OTN method of claim 1 , wherein the ODU signal comprises an ODU2 and the overclocked signal comprises an ODU2e.

3. The OTN method of claim 1 , wherein the ODU signal comprises an ODU3 and the overclocked signal comprises an ODU3e2.

4. The OTN method of claim 1 , wherein the ODU signal comprises an ODU4 and the overclocked signal comprises an ODUG.

5. The OTN method of claim 1 , further comprising:

mapping the ODU signal into the overclocked OTN signal utilizing Generic Mapping Protocol (GMP) or a variant thereof.

6. The OTN method of claim 1 , wherein the ODU signal comprises a High Order (HO) signal.

7. The OTN method of claim 1 , wherein the ODU signal is hidden within the overclocked OTN signal insulating the control plane signaling and OAM&P data from any clock transients, framing events or other disruptions experienced on the ODU signal due to the ODU signal switching from ODUj to ODUk or vice versa.

8. An Optical Transport Network (OTN) switching node method, comprising:

receiving an Optical channel Data Unit (ODU) signal within an overclocked OTN signal at an OTN switching node, wherein the ODU signal is an ODUn with n=2, 3, or 4 and the overclocked OTN signal is a High Order (HO) overclocked variant of the ODUn;

processing overhead from the overclocked OTN signal;

demapping the ODU signal from the overclocked OTN signal;

processing the ODU signal;

mapping the processed ODU signal into another overclocked OTN signal, wherein the processed ODU signal is an ODUn with n=2, 3, or 4 and the other overclocked OTN signal is a High Order (HO) overclocked variant of the ODUn; and

transmitting the other overclocked OTN signal to another OTN switching node.

9. The OTN switching node method of claim 8 , further comprising:

processing the overhead from the overclocked OTN signal for one or more of control plane signaling and Operations, Administration, Maintenance, and Provisioning (OAM&P) data, wherein the one or more of the control plane signaling and the OAM&P data is for the ODU signal.

10. The OTN switching node method of claim 8 , wherein the ODU signal comprises an ODU2 and the overclocked signal comprises an ODU2e.

11. The OTN switching node method of claim 8 , wherein the ODU signal comprises an ODU3 and the overclocked signal comprises an ODU3e2.

12. The OTN switching node method of claim 8 , wherein the ODU signal comprises an ODU4 and the overclocked signal comprises an ODUG.

13. The OTN switching node method of claim 8 , further comprising:

performing the mapping step and the demapping step utilizing Generic Mapping Protocol (GMP) or a variant thereof.

14. The OTN switching node method of claim 8 , wherein the ODU signal comprises a High Order (HO) signal.

15. The OTN switching node method of claim 8 , wherein the ODU signal is hidden within the overclocked OTN signal insulating the one or more of control plane signaling and OAM&P data from any clock transients experienced on the ODU signal due to the ODU signal switching from ODUj to another source or vice versa.

16. An Optical Transport Network (OTN) node, comprising:

at least one line module communicatively coupled to another OTN node;

a switch communicatively coupled to the at least one line module; and

a controller communicatively coupled to the at least one line module and the switch;

wherein the at least one line module operates in a double mapping configuration where an Optical channel Data Unit (ODU) signal is transmitted to the other OTN node in an overclocked OTN signal, wherein the ODU signal is an ODUn with n=2, 3, or 4 and the overclocked OTN signal is a High Order (HO) overclocked variant of the ODUn; and

wherein the controller is configured to perform one or more of control plane signaling and exchange of Operations, Administration, Maintenance, and Provisioning (OAM&P) data using overhead associated with the overclocked OTN signal to prevent interruptions associated with the ODU signal, wherein the one or more of the control plane signaling and the OAM&P data is for the ODU signal.

17. The OTN node of claim 16 , wherein the ODU signal comprises an ODU2 and the overclocked signal comprises an ODU2e.

18. The OTN node of claim 16 , wherein the ODU signal comprises an ODU3 and the overclocked signal comprises an ODU3e2.

19. The OTN node of claim 16 , wherein the ODU signal comprises an ODU4 and the overclocked signal comprises an ODUG.

20. The OTN node of claim 16 , wherein the at least one line module is configured to map and demap the ODU signal utilizing Generic Mapping Protocol (GMP) or a variant thereof.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Nov 20, 2023
From: BANK OF AMERICA, N.A.
To: CIENA CORPORATION
Reel/Frame 065630/0232 →
PATENT SECURITY AGREEMENT Recorded Nov 8, 2019
From: CIENA CORPORATION
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 050969/0001 →
RELEASE OF SECURITY INTEREST Recorded Oct 30, 2019
From: DEUTSCHE BANK AG NEW YORK BRANCH
To: CIENA CORPORATION
Reel/Frame 050938/0389 →
PATENT SECURITY AGREEMENT Recorded Jul 16, 2014
From: CIENA CORPORATION
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 033347/0260 →
SECURITY INTEREST Recorded Jul 15, 2014
From: CIENA CORPORATION
To: DEUTSCHE BANK AG NEW YORK BRANCH
Reel/Frame 033329/0417 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2012
From: YOUNG, ALEXANDER GURD; GAREAU, SEBASTIEN; NORMAN, TIM; WYATT, RICHARD
To: CIENA CORPORATION
Reel/Frame 029512/0739 →
Continuity (3)
Continuation In Part 13476589 · May 21, 2012
Continuation 13633173 · Oct 2, 2012
Related Publication 20130308943A1 · Nov 21, 2013