IP Library › Granted Patent US 11,277,217
Granted Patent B2
US 11,277,217 · App. 16/564,498 · Granted Mar 15, 2022

Flexible Ethernet switching systems and methods

Inventors: Sebastien Gareau (Ottawa, CA); James Tierney (Ottawa, CA); David Stuart (Toronto, CA)
Assignee: Ciena Corporation
H04J3/1611H04J3/1658H04L25/49H04L49/351H04Q11/04H04J2203/0003H04J2203/0089H04L49/20H04Q2213/13389
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 11,277,217
App. No.
16/564,498
Granted
Mar 15, 2022
Kind
B2
Abstract

A switch system includes interface circuitry configured to ingress and egress clients each including a stream of encoded blocks; and switch circuitry configured to switch the clients between the interface circuitry based on block boundaries of the stream of encoded blocks. The stream of encoded blocks can include 64 b/66 b encoding. Each block in the stream of encoded blocks can be switched intact.

Claims (28)

1. A switch system comprising:

interface circuitry connected to ports, wherein the ports receive and transmit clients, each client includes a sequence of encoded blocks and each block is one of a data block and a control block, wherein the interface circuitry performs idle adaptation; and

switch circuitry that switches at least one of the clients between the ports via the interface circuitry, wherein the sequence of encoded blocks of the at least one of the clients is switched at corresponding block boundaries, and wherein the sequence of encoded blocks include flexible ethernet clients.

2. The switch system of claim 1 , wherein the respective sequence of encoded blocks for each client utilizes 64b/66b encoding.

3. The switch system of claim 1 , wherein each block in the respective sequence of encoded blocks is switched intact.

4. The switch system of claim 1 , wherein the switch circuitry utilizes a synchronous switching scheme.

5. The switch system of claim 1 , wherein the switch circuitry includes a cell switch, and wherein the respective sequence of encoded blocks of the clients are SARed (Segmentation and Reassembly) using Optical Transport Network (OTN) over Packet (OFP) techniques and switched as a sequence across the cell switch.

6. The switch system of claim 5 , wherein the OFP techniques accumulate the respective sequence of encoded blocks of one or more calendar slots in a calendar with packets sized by +/−one byte to a signal source rate with timing transfer.

7. The switch system of claim 5 , wherein the OFP techniques accumulate the respective sequence of encoded blocks of one or more calendar slots in a calendar with fixed sized packets with no timing transfer.

8. The switch system of claim 5 , wherein the cell switch utilizes a phase aligned clock to deskew at an egress of the clients.

9. The switch system of claim 1 , wherein the switch circuitry accumulates 66b blocks of one or more calendar slots in a calendar from the clients and transcodes the 66b blocks into 257b blocks.

10. The switch system of claim 1 , wherein the interface circuitry performs timing synchronization including phase and frequency alignment between the block boundaries.

11. A switch system comprising:

interface circuitry connected to ports, wherein the ports receive and transmit clients, each client includes a sequence of encoded blocks and each block is one of a data block and a control block; and

switch circuitry that switches at least one of the clients between the ports via the interface circuitry, wherein the sequence of encoded blocks of the at least one of the clients is switched at corresponding block boundaries, and wherein the sequence of encoded blocks include flexible ethernet clients,

wherein the switch circuitry includes a cell switch, and wherein the respective sequence of encoded blocks of the clients are SARed (Segmentation and Reassembly) using Optical Transport Network (OTN) over Packet (OFP) techniques and switched as a sequence across the cell switch.

12. The switch system of claim 11 , wherein the respective sequence of encoded blocks for each client utilizes 64b/66b encoding.

13. The switch system of claim 11 , wherein the OFP techniques accumulate the respective sequence of encoded blocks of one or more calendar slots in a calendar with packets sized by +/−one byte to a signal source rate with timing transfer.

14. The switch system of claim 11 , wherein the OFP techniques accumulate the respective sequence of encoded blocks of one or more calendar slots in a calendar with fixed sized packets with no timing transfer.

15. The switch system of claim 11 , wherein the cell switch utilizes a phase aligned clock to deskew at an egress of the clients.

16. The switch system of claim 11 , wherein the interface circuitry performs timing synchronization including phase and frequency alignment between the block boundaries.

17. A switch system comprising:

interface circuitry connected to ports, wherein the ports receive and transmit clients, each client includes a sequence of encoded blocks and each block is one of a data block and a control block; and

switch circuitry that switches at least one of the clients between the ports via the interface circuitry, wherein the sequence of encoded blocks of the at least one of the clients is switched at corresponding block boundaries,

wherein the switch circuitry accumulates 66b blocks of one or more calendar slots in a calendar from the clients and transcodes the 66b blocks into 257b blocks, and wherein the sequence of encoded blocks include flexible ethernet clients.

18. The switch system of claim 17 , wherein each block in the respective sequence of encoded blocks is switched intact.

19. The switch system of claim 17 , wherein the switch circuitry utilizes a synchronous switching scheme.

20. The switch system of claim 17 , wherein the switch circuitry includes a cell switch, and wherein the respective sequence of encoded blocks of the clients are SARed (Segmentation and Reassembly) using Optical Transport Network (OTN) over Packet (OFP) techniques and switched as a sequence across the cell switch.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2019
From: GAREAU, SEBASTIEN; TIERNEY, JAMES; STUART, DAVID
To: CIENA CORPORATION
Reel/Frame 050314/0682 →
Continuity (4)
Continuation 15718151 · Sep 28, 2017
Continuation 14855857 · Sep 16, 2015
Provisional Application 62186489 · Jun 30, 2015
Related Publication 20200007255A1 · Jan 2, 2020
Cited By (2)
US 12,633,945 US 12,671,517