Claims
- 1. A method for determining optical communication links between two adjacent network elements in an optical communication system, each network element comprising a number of transmit interfaces and a number of receive interfaces, the method comprising:
causing a first one of the network elements to generate an optical signal over one of its transmit interfaces; causing the optical signal to be received at one of:
a receive interface of a second one of the network elements; and a receive interface of said first one of the network elements; and detecting an optical communication link between the transmit interface of the first network element and the receive interface of the second network element and a corresponding optical communication link between the transmit interface of the second network element and the receive interface of the first network element based upon at least the received optical signal.
- 2. The method of claim 1, wherein the optical signal comprises at least one of:
a sustained light on condition; a sustained light off condition; a plurality of successive light on and light off conditions that vary according to a predetermined pattern; an optical signal that is modulated according to a predetermined data sequence; an optical signal that is modulated according to a pilot tone; an optical signal at an unused wavelength; amplified spontaneous emission noise; an alarm signal; and an optical signal that produces an invalid received signal at the receive interface.
- 3. The method of claim 1, wherein causing the first network element to generate the optical signal over one of its transmit interfaces comprises:
instructing the first network element to generate the optical signal by the second network element using a predetermined protocol.
- 4. The method of claim 1, wherein causing the first network element to generate the optical signal over one of its transmit interfaces comprises:
allocating a test transmitter; and crossconnecting the test transmitter to the transmit interface of the first network element.
- 5. The method of claim 1, wherein causing the optical signal to be received at the receive interface of the first network element comprises:
receiving the optical signal at a receive interface of the second network element; and causing the optical signal to be looped back from the receive interface of the second network element to a transmit interface of the second network element.
- 6. The method of claim 1, wherein causing the optical signal to be received at the receive interface of the first network element comprises:
allocating a test receiver; and crossconnecting the test receiver to the receive interface of the first network element.
- 7. The method of claim 1, wherein the optical signal comprises an identity pattern that uniquely identifies the transmit port of the first network element, and wherein detecting the optical communication link between the transmit interface of the first network element and the receive interface of the network element comprises:
recovering the identity pattern from the received optical signal; and detecting the optical communication link based upon the recovered identity pattern.
- 8. The method of claim 7, wherein detecting the optical communication link based upon the recovered identity pattern comprises:
obtaining a table that maps each of a number of identity patterns to a corresponding transmit interface of the first network element; and determining from the table that the recovered identity pattern maps to the transmit interface of the first network element.
- 9. The method of claim 8, wherein the table further maps each identity pattern and corresponding transmit interface of the first network element to a corresponding receive interface of the first network element, and wherein detecting the optical communication link between the transmit interface of the second network element and the receive interface of the first network element comprises:
inferring the optical communication link from the mapping in the table.
- 10. A method for failure isolation in an optical communication system, the method comprising:
establishing a lightpath from a first end-node to a second end-node through a number of photonic cross-connect devices and associated optical devices; generating defect indications by a number of devices in response to a failure in the optical communication system; receiving the defect indications by at least one of the photonic cross-connect devices; and isolating the failure based upon the defect indications received by the photonic cross-connect devices.
- 11. The method of claim 10, further comprising:
updating a link state database to indicate the status of each of a number of links associated with the lightpath.
- 12. The method of claim 10, wherein generating defect indications by a number of devices in response to a failure in the optical communication system comprises at least one of:
turning off a laser; producing an invalid received signal condition; producing a loss of light condition; producing a loss of signal condition; producing a loss of frame condition; producing a loss of transitions condition; and producing an alarm indication signal.
- 13. The method of claim 10, further comprising:
passing a defect indication from a photonic cross-connect device to an end-node through a device adjacent to the end-node or through an out-of-band signaling mechanism.
- 14. The method of claim 10, wherein isolating the failure based upon the defect indications received by the photonic cross-connect devices comprises:
identifying the first photonic cross-connect device along the lightpath to receive a defect indication; determining a port of said first photonic cross-connect device on which the defect indication was detected; and isolating the failure based upon said port.
- 15. The method of claim 10, wherein isolating the failure based upon the defect indications received by the photonic cross-connect devices comprises:
carrying out a link verification process on all links associated with the failed lightpath to determine a status for each link; and isolating the failure based upon the status for each link as determined by the link verification process.
- 16. The method of claim 10, wherein the optical communication system comprises a wrapper-based wavelength division multiplexed network supporting fault type fault location with a wrapper overhead, and wherein generating defect indications by a number of devices in response to a failure in the optical communication system comprises:
generating the defect indications based upon fault type fault location information in the wrapper overhead.
- 17. An optical communication system comprising:
a plurality of interconnected network elements, each network element comprising a number of transmit interfaces and a number of receive interfaces; means for automatically discovering optical communication links between adjacent network elements; and means for verifying the optical communication links.
- 18. The optical communication system of claim 17, wherein the means for automatically discovering optical communication links between adjacent network elements comprises:
means for causing a first one of the network elements to generate an optical signal over one of its transmit interfaces; means for causing the optical signal to be received at one of:
a receive interface of a second one of the network elements; and a receive interface of said first one of the network elements; and means for detecting an optical communication link between the transmit interface of the first network element and the receive interface of the second network element and a corresponding optical communication link between the transmit interface of the second network element and the receive interface of the first network element based upon at least the received optical signal.
- 19. The optical communication system of claim 17, further comprising:
means for isolating a failure in the optical communication system.
- 20. The optical communication system of claim 19, wherein the means for isolating a failure in the optical communication system comprises:
means for generating defect indications by a number of network elements in response to the failure; means for receiving the defect indications by at least one photonic cross-connect device among the plurality of interconnected network elements; and means for isolating the failure based upon the defect indications received by the at least one photonic cross-connect device.
PRIORITY
[0001] The present application claims priority from the following commonly-owned provisional patent applications, which are hereby incorporated herein by reference in their entireties:
[0002] U.S. Provisional Patent Application No. 60/326,034 filed Oct. 1, 2001; and
[0003] U.S. Provisional Patent Application No. 60/399,604 filed Jul. 30, 2002.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60326034 |
Oct 2001 |
US |
|
60399604 |
Jul 2002 |
US |