IP Library Granted Patent US 9,578,400
Granted Patent B2
US 9,578,400 · App. 14/957,048 · Granted Feb 21, 2017

Network controller, a multi-fabric shelf and, a method of processing traffic in a transport network

Inventors: Stephen J. West (Petaluma, CA); Scott Pradels (Santa Rosa, CA)
Assignee: Ciena Corporation
H04Q11/0066G02B6/43G02B6/4452G02B6/4472H04B10/801H04J3/1652H04J14/08H04L45/66H04L47/193H04Q1/09H04Q11/0071H04Q2011/0073H04Q2011/0086
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Quick Facts
Patent No.
US 9,578,400
App. No.
14/957,048
Granted
Feb 21, 2017
Kind
B2
Abstract

A network element of a transport network has three fabrics housed within a single shelf of a telco rack, namely a packet fabric, an electrical fabric and an optical fabric. A stream of traffic including a plurality of lambdas is received at a trunk interface of such a shelf. The optical fabric in the shelf performs optical switching on the stream to replace a first lambda in the stream with a second lambda. The first lambda is converted within the shelf into an electrical signal. Also within the shelf, first frames are recovered from the electrical signal. The packet fabric in the shelf is used to perform packet switching on the first frames to generate a flow of second frames. The flow of second frames is transmitted at a client interface of the shelf.

Claims (27)

1. A system adapted to provision traffic in a transport network through at least three switching modes in a transport network, the system comprising:

a network controller communicatively coupled to a plurality of network elements in the transport network, wherein each of the plurality of network elements comprise a plurality of an optical fabric adapted to perform lambda switching of the traffic, an electrical fabric adapted to perform time-division-multiplexed (TDM) of the traffic, and a packet fabric adapted to perform packet switching of the traffic;

wherein the network controller is adapted to provision the traffic through the transport network via the optical fabric, the electrical fabric, and the packet fabric at each of the plurality of network elements.

2. The system of claim 1 , wherein the network controller is adapted to provision each network element on a path for a flow of encapsulated packets, based on one or more fields in a Media Access Control header.

3. The system of claim 1 , wherein the network controller is adapted to provision each network element in the transport network a specific path that is identified in Provider Backbone Bridging-Traffic Engineering.

4. The system of claim 1 , wherein the network controller is aware of a configuration of each of the plurality of network elements.

5. The system of claim 1 , wherein the network controller is adapted to provision each lambda at each of the plurality of network elements at a packet level.

6. The system of claim 1 , wherein the network controller is adapted to automatically provision a network element remotely based on fiber patching on the network element.

7. The system of claim 1 , wherein the network controller is adapted to automatically provision a lambda for each transceiver at the plurality of network elements.

8. The system of claim 1 , wherein the network controller is adapted to provision continuity checks for 1:1 path protection on the traffic in the transport network.

9. The system of claim 1 , wherein the network controller is adapted to provision two flows of packets that are respectively received at two external interfaces of a three-fabric shelf on a same lambda.

10. A transport network supporting traffic through at least three switching modes, the transport network comprising:

a plurality of network elements, wherein each of the plurality of network elements comprise a plurality of an optical fabric adapted to perform lambda switching of the traffic, an electrical fabric adapted to perform time-division-multiplexed (TDM) of the traffic, and a packet fabric adapted to perform packet switching of the traffic; and

a network controller communicatively coupled to the plurality of network elements;

wherein the network controller is adapted to provision the traffic through the transport network via the optical fabric, the electrical fabric, and the packet fabric at each of the plurality of network elements.

11. The transport network of claim 10 , wherein the network controller is adapted to provision each network element on a path for a flow of encapsulated packets, based on one or more fields in a Media Access Control header.

12. The transport network of claim 10 , wherein the network controller is adapted to provision each network element in the transport network a specific path that is identified in Provider Backbone Bridging-Traffic Engineering.

13. The transport network of claim 10 , wherein the network controller is aware of a configuration of each of the plurality of network elements.

14. The transport network of claim 10 , wherein the network controller is adapted to provision each lambda at each of the plurality of network elements at a packet level.

15. The transport network of claim 10 , wherein the network controller is adapted to automatically provision a network element remotely based on fiber patching on the network element.

16. The transport network of claim 10 , wherein the network controller is adapted to automatically provision a lambda for each transceiver at the plurality of network elements.

17. The transport network of claim 10 , wherein the network controller is adapted to provision continuity checks for 1:1 path protection on the traffic in the transport network.

18. The transport network of claim 10 , wherein the network controller is adapted to provision two flows of packets that are respectively received at two external interfaces of a three-fabric shelf on a same lambda.

19. A method adapted to provision traffic in a transport network through at least three switching modes in a transport network, the method comprising:

providing a network controller communicatively coupled to a plurality of network elements in the transport network, wherein each of the plurality of network elements comprise a plurality of an optical fabric adapted to perform lambda switching of the traffic, an electrical fabric adapted to perform time-division-multiplexed (TDM) of the traffic, and a packet fabric adapted to perform packet switching of the traffic;

wherein the network controller is adapted to provision the traffic through the transport network via the optical fabric, the electrical fabric, and the packet fabric at each of the plurality of network elements.

20. The method of claim 19 , wherein the network controller is adapted to provision each lambda at each of the plurality of network elements at a packet level.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 2, 2015
From: WEST, STEPHEN J.; PRADELS, SCOTT
To: CYAN OPTICS, INC.
Reel/Frame 037191/0813 →
MERGER Recorded Dec 2, 2015
From: CYAN, INC.
To: CIENA CORPORATION
Reel/Frame 037191/0867 →
CHANGE OF NAME Recorded Dec 2, 2015
From: CYAN OPTICS, INC.
To: CYAN, INC.
Reel/Frame 037196/0204 →
Continuity (4)
Continuation 14473973 · Aug 29, 2014
Continuation 13405330 · Feb 26, 2012
Division 12148281 · Apr 16, 2008
Related Publication 20160088376A1 · Mar 24, 2016