Claims
- 1. A ring network comprising:
a plurality of nodes; a first link capable of carrying a first data in a first optical signal having a first wavelength from a first node to a second node; and a second link capable of carrying the first data in a second optical signal having the first wavelength from the first node to the second node, wherein at least one of said first and second optical signals passes through at least one other node between the first node and the second node.
- 2. The ring network according to claim 1, wherein the first optical signal on the first link does not interfere with the second optical signal on the second link.
- 3. The ring network according to claim 1, wherein the first node comprises a first OADM (optical add-drop multiplexer) and a second OADM, wherein the first OADM adds the first optical signal on the first link and the second OADM adds the second optical signal on the second link.
- 4. The ring network according to claim 3, wherein the first node further comprises an electro-optic (E/O) transmitter capable of receiving an electrical signal representative of the first data and converting said electrical signal to an optical signal having the first wavelength.
- 5. The ring network according to claim 4, wherein the first node further comprises a beam splitter capable of splitting said optical signal to the first and second optical signals having the first wavelength and providing them, respectively, to the first and second OADMs.
- 6. The ring network according to claim 1, wherein the first link is capable of carrying a plurality of first data portions in a plurality of first optical signals having a plurality of first wavelengths from the first node to the second node, and the second link is capable of carrying said first data portions in a plurality of second optical signals having said first wavelengths from the first node to the second node,
wherein at least one of said first optical signals and said second optical signals pass through said at least one other node between the first node and the second node, wherein the first node comprises a first OADM and a second OADM, and wherein the first OADM adds said first optical signals on the first link and the second OADM adds said second optical signals on the second link.
- 7. The ring network according to claim 1, further comprising:
a third link capable of carrying a second data in a third optical signal having a second wavelength from a third node to the first node; and a fourth link capable of carrying the second data in a fourth optical signal having the second wavelength from the third node to the first node, wherein at least one of said third and fourth optical signals passes through at least one other node between the third node and the first node.
- 8. The ring network according to claim 7, wherein the first node comprises a first OADM and a second OADM, wherein the first OADM filters the third optical signal off the third link and the second OADM filters the fourth optical signal off the fourth link.
- 9. The ring network according to claim 8, wherein the first node further comprises:
a first electro-optic (E/O) receiver capable of receiving the third optical signal, and of converting the third optical signal into a first electrical signal representative of the second data; a second E/O receiver capable of receiving the fourth optical signal, and of converting the fourth optical signal into a second electrical signal representative of the second data; and a selector capable of receiving and using the first and second electrical signals to output an electrical signal representative of the second data.
- 10. The ring network according to claim 9, wherein the selector selects between the first and second electrical signals to output one of the first and second electrical signals that has a better quality.
- 11. The ring network according to claim 9, wherein the selector combines the first and second electrical signals to generate the output electrical signal.
- 12. The ring network according to claim 9, wherein the first node further comprises a data network element capable of handling protocol data units (PDUs) comprising the second data.
- 13. The ring network according to claim 12, wherein the data network element is a router box, a switch (ATM, MPLS or RPR), an aggregator or an optical cross connect.
- 14. The ring network of claim 12, wherein the first node is coupled to at least one network device, wherein the PDUs are forwarded to said at least one network device, and wherein the first node receives PDUs comprising the first data from said at least one network device and uses them to generate the first and second optical signals.
- 15. The ring network according to claim 7, wherein the third link is capable of carrying a plurality of second data portions in a plurality of third optical signals having a plurality of second wavelengths from the third node to the first node, and the fourth link is capable of carrying said second data portions in a plurality of fourth optical signals having said second wavelengths from the third node to the first node,
wherein at least one of said third and fourth optical signals pass through said at least one other node between the third node and the first node, wherein the first node comprises a first OADM and a second OADM, wherein the first OADM filters said third optical signals off the third link and the second OADM filters the fourth optical signals off the fourth link.
- 16. The ring network according to claim 1, wherein two nodes use at least two wavelengths to establish bi-directional communications.
- 17. A ring network comprising:
a plurality of nodes arranged in a ring configuration; and a plurality of pairs of links, each pair of links together forming a circle of the ring configuration, each node capable of transmitting at least one pair of redundant optical signals having a predetermined wavelength to at least one other node over at least one pair of links, wherein each pair of redundant optical signals have the predetermined wavelength different from the wavelengths of all other pairs of redundant optical signals, and said at least one other node receives said at least one pair of optical signals by taking them off the respective links through a physical layer interface.
- 18. The ring network according to claim 17, wherein each node comprises a pair of optical add-drop multiplexers (OADMs),
wherein each node adds said at least one pair of redundant optical signals onto said at least one pair of links using the pair of OADMs, and wherein said at least one other node takes said at least one pair of redundant optical signals off the respective links by filtering them using the pair of OADMs.
- 19. The method according to claim 17, wherein the ring network has a star configuration, wherein one of the nodes transmits at least one pair of redundant optical signals to each of all other nodes, and receives at least one pair of redundant optical signals from each of said all other nodes.
- 20. A method of providing redundancy in a ring network comprising a plurality of nodes, the method comprising:
transmitting a first optical signal representing a first data and having a first wavelength from a first node to a second node over a first link; and transmitting a second optical signal representing the first data and having the first wavelength from the first node to the second node over a second link, wherein at least one of said first and second optical signals passes through at least one other node between the first node and the second node.
- 21. The method according to claim 20, wherein the first optical signal on the first link does not interfere with the second optical signal on the second link.
- 22. The method according to claim 20, wherein transmitting the first optical signal comprises transmitting a plurality of first optical signals, each representing one of a plurality of first data portions and having one of a plurality of first wavelengths, from the first node to the second node over the first link,
wherein transmitting the second optical signal comprises transmitting a plurality of second optical signals, each representing one of said plurality of first data portions and having one of said plurality of first wavelengths, from the first node to the second node over the second link, and wherein at least one of said first optical signals and said second optical signals pass through said at least one other node between the first node and the second node.
- 23. The method according to claim 20, wherein the first node comprises a first OADM and a second OADM, and wherein transmitting the first optical signal comprises adding the first optical signal on the first link through the first OADM, and transmitting the second optical signal comprises adding the second optical signal on the second link through the second OADM.
- 24. The method according to claim 20, further comprising:
receiving at the first node a plurality of PDUs representative of the first data from a network device; generating an optical signal representative of the first data using the PDUs; and splitting the optical signal to generate the first and second optical signals.
- 25. The method according to claim 20, further comprising:
receiving at the first node a third optical signal representing a second data and having a second wavelength from a third node over a third link; and receiving at the first node a fourth optical signal representing the second data and having the second wavelength from the third node over a fourth link, wherein at least one of said third and fourth optical signals passes through at least one other node between the third node and the first node.
- 26. The method according to claim 25, wherein the first node comprises a first OADM and a second OADM, and wherein receiving the third optical signal comprises taking the third optical signal off the third link through the first OADM, and receiving the fourth optical signal comprises taking the fourth optical signal off the fourth link through the second OADM.
- 27. The method according to claim 25, further comprising:
converting the third optical signal into a first electrical signal representative of the second data; converting the fourth optical signal into a second electrical signal representative of the second data; generating an electrical signal representative of the second data using the first and second electrical signals.
- 28. The method according to claim 27, wherein generating comprises selecting one of the first and second electrical signals that has a better quality.
- 29. The method according to claim 27, wherein generating comprises combining the first and second electrical signals.
- 30. The method according to claim 27, wherein the second data comprises a plurality of PDUs, the method further comprising routing the PDUs to one or more network devices.
- 31. A ring network comprising:
a plurality of nodes arranged in a ring topology, wherein each node transmits same data on the ring both in a clockwise direction and a counter-clockwise direction concurrently.
- 32. The ring network according to claim 31, wherein the data in at least one of the clockwise and counter-clockwise directions passes through at least one other node before being received by one of the nodes.
- 33. The ring network according to claim 31, wherein the data transmitted by a particular node in both the clockwise and counter-clockwise directions are carried on a same wavelength.
- 34. The ring network according to claim 34, wherein the wavelength used by the particular node is different from wavelengths used by all of other nodes on the ring network.
- 35. The ring network according to claim 31, wherein the same data transmitted by a particular node in both the clockwise and counter-clockwise directions are received by a same node.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority of U.S. Provisional Application No. 60/355,717 entitled “High Speed Healing Ring for IP Networks” filed Feb. 7, 2002, the contents of which are fully incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60355717 |
Feb 2002 |
US |