Claims
- 1. An active monitoring system to monitor the integrity of a fiber optic communications link in which the fiber optic communications link carries user data within a user data light signal at a primary wavelength between two communication devices; wherein the active monitoring system uses a primary and a back-up user data light signal receive path to transmit a security light signal and uses a primary and a back-up user data light signal transmit path to receive a security light signal, comprising:
(a) a codec that digitally encodes and decodes administration messages; (b) a first light detector that measures the intensity of a received security light signal on the primary user data light signal transmit path; (c) a second light detector that measures the intensity of a received security light signal on the back-up user data light signal transmit path; (d) a decision analysis system, wherein said decision analysis system is coupled to said first light detector and said second light detector to assess the integrity of the fiber optic communications link and initiate a control action; (e) a first light source coupled to said codec that transmits a security light signal on the primary user data light signal receive path; (f) a second light source coupled to said codec that transmits a security light signal on the back-up user data light signal receive path; (g) a first switch (S1) coupled to said decision analysis system for switching a user data light signal transmit path between the primary user data light signal transmit path and the back-up user data light signal transmit path; and (h) a second switch (S3) coupled to said decision analysis system for switching a user data light signal receive path between the primary user data light signal receive path and the back-up user data light signal receive path.
- 2. The active monitoring system of claim 1, further comprising a third switch (S2) coupled to said decision analysis system for switching a user data light signal transmit path between the back-up user data light signal transmit path and an open optical path.
- 3. The active monitoring system of claim 1, further comprising:
(i) a first wavelength division multiplexer coupled to said first light source; and (j) a second wavelength division multiplexer coupled to said second light source.
- 4. The active monitoring system of claim 3, further comprising:
(k) a third wavelength division multiplexer coupled to said first light detector; and (l) a fourth wavelength division multiplexer coupled to said second light detector.
- 5. A decision analysis system to monitor the integrity of a fiber optic communications link, wherein a light detector coupled to the decision analysis system detects an intensity of a security light signal traveling through the fiber optic communications link, comprising:
(a) a light intensity analyzer that receives from the light detector measurements of the intensity of the security light signal and provides a plurality of outputs containing processed data about the intensity of the security light signal; (b) a codec that decodes and encodes administration messages; and (c) a decision maker coupled to said light intensity analyzer and said codec that takes control actions based on the plurality of outputs received from said light intensity analyzer and said codec.
- 6. The system of claim 5, wherein said plurality of outputs provided in step (a) comprise a sample measurement and a baseline measurement.
- 7. The system of claim 5, wherein a management system is coupled to said decision analysis system, said management system comprising an SNMP agent and an event characterization engine.
- 8. The system of claim 7, wherein said management system further comprises a terminal agent.
- 9. The system of claim 5, wherein said light intensity analyzer comprises:
(a) a sample queue that stores measurements received from the light detector; (b) an interim queue that stores measurements received from the light detector; (c) a baseline queue that stores average measurements, wherein each average measurement is an average of all of the measurements in said interim queue; and (d) a controller for managing the flow of data into and out of each of said sample queue, said interim queue and said baseline queue, wherein said controller further performs calculations on data stored in each of said sample queue, said interim queue and said baseline queue.
- 10. A decision maker that resides within a system to monitor the integrity of a fiber optic communications link in which a security light signal is exchanged between two systems, said security light signal being used to monitor the integrity of the fiber optic communications link, comprising:
(a) an intensity-based event security manager that analyzes intensity measurements of a received security light signal; (b) an administration security manager that analyzes administration messages received within a security light signal; and (c) a switch manager that controls switches used to determine a communications path between the two systems.
- 11. A management interface to support an active monitoring system, comprising:
(a) a menu of configuration options for the active monitoring system; (b) a menu of control operations for the active monitoring system; (c) a menu of status indications for the active monitoring system; and (d) a menu of event reporting and analysis options of the active monitoring system.
- 12. A method to transmit a security light signal by a local active monitoring system over a fiber optic communications link carrying a user data light signal, wherein the local active monitoring system is coupled to one end of the fiber optics communications link and a remote local active monitoring system is coupled to the opposite end of the fiber optics communications link, comprising:
(a) determining the status of the fiber optics communications link and the local active monitoring system; (b) determining a type of event that occurred; (c) generating an administration message; (d) transmitting a security light signal that contains said administration message; and (e) wavelength division multiplexing said security light signal with the user data light signal.
- 13. The method of claim 12, further comprising inserting an encryption code sequence in the administration message.
- 14. The method of claim 12, wherein a wavelength of the security light signal is different from a wavelength of the user data light signal.
- 15. The method of claim 12, wherein the security light signal is transmitted in a direction that is opposite to the direction of the user data light signal.
- 16. The method of claim 12, wherein the local active monitoring system uses a security light signal received from the remote active monitoring system on a user data light signal transmit path to monitor the user data light signal transmit path, wherein the user data light signal transmit path originates from a local communication equipment device that is coupled at the same end of the fiber optic communications link as the local active monitoring system.
- 17. The method of claim 12, wherein the security light signal is transmitted in a direction that is the same as the direction of the user data light signal.
- 18. The method of claim 12, wherein the security light signal is transmitted between active monitoring systems in a manner that is substantially transparent to communications equipment that is transmitting and receiving the user data light signals.
- 19. The method of claim 12, wherein steps (a) through (e) are performed without substantially impacting the user data light signal.
- 20. The method of claim 12, wherein steps (a) through (e) can be performed independent of a protocol used to transmit the user data light signal.
- 21. The method of claim 12, wherein the fiber optic communications link has a primary and back-up link in which either the primary or the back-up link will be active carrying the user data light signal and the other inactive and not carrying a user data light signal, wherein security light signals are used to monitor both the active and inactive links.
- 22. The method of claim 12, wherein prior to powering down, the local active monitoring system transmits an administration message to the remote active monitoring system, wherein upon receipt of the administration message the remote active monitoring system takes a control action to ensure continuity of the fiber optics communications link.
- 23. The method of claim 12, wherein said status in step (a) comprises:
(a) a primary fiber link status; (b) a back-up fiber link status; and (c) an active fiber link status.
- 24. A method to manage a fiber optic communications link that has a local active monitoring system coupled to one end of the fiber optics communications link and a remote active monitoring system coupled to the other end of the fiber optics communications link that transmits a security light signal to the local active monitoring system, comprising:
(a) processing the security light signal to extract an administration message; (b) monitoring the intensity of the security light signal; (c) taking a first control action when the intensity of the security light signal indicates that an event has occurred; (d) examining the administration message; and (e) taking a second control action when the administration message indicates that an event has occurred.
- 25. The method of claim 24, wherein said first control action consists of switching from a primary to back-up fiber optic path.
- 26. The method of claim 24, wherein said second control action consists of switching from a primary to back-up fiber optic path.
- 27. A method to manage a fiber optic communications link that has a local active monitoring system coupled to one end of the fiber optic communications link and a remote active monitoring system coupled to the other end of the fiber optic communications link in which a user data light signal travels through a fiber path established by the local and remote active monitoring system, comprising:
(a) passively monitoring the intensity of the user data light signal received at the local active monitoring; and (b) taking a control action based on the intensity of the user data light signal.
- 28. The method of claim 27, wherein said control action consists of opening the fiber path that the user data light signal was being carried on, such that the user data light signal can no longer pass through local active monitoring system, when the intensity of the user data signal exceeds a preset threshold.
- 29. The method of claim 27, wherein said control action consists of transmitting an administration message to the remote active monitoring system that identifies that a user data light signal is not being detected, when a user data light signal monitor does not detect a user data light signal, wherein upon receipt of the administration message the remote active monitoring system has the capability to determine whether a cable break has occurred or whether no user data light signal is being transmitted by a communications equipment device.
- 30. A method to characterize the type of event that occurred on a fiber optics communications link when the fiber optics communications link is coupled to an active monitoring system; wherein intensity measurements of a security light signal transmitted along the fiber optics communications link were stored for a pre-event period prior to the event, comprising:
(a) detecting an event; (b) capturing security light signal measurements for an event capture period following the event; and (c) analyzing the security light signal measurements collected during the pre-event period and during the event capture period to characterize the type of event that occurred.
- 31. The method of claim 30, wherein if a last measurement within the event capture period is lower than a first preset threshold, the type of event is determined to be a cable break.
- 32. The method of claim 30, wherein if a last measurement within the event capture period is higher than a second preset threshold, the type of event is determined to be a transient event.
- 33. The method of claim 30, wherein if a last measurement within the event capture period is within the first preset threshold and the second preset threshold, the type of event is determined to be an intrusion.
- 34. The method of claim 30, wherein step (c) comprises performing a Fourier transform of the captured light signal measurements and comparing the Fourier transform to a set of Fourier transforms of known types of events to determine the type of events.
- 35. The method of claim 30, wherein step (c) comprises determining second order derivatives of the captured light signal measurements and comparing them to second order derivatives of known types of events to determine the type of events.
CLAIM TO PRIORITY
[0001] This application claims the benefit of U.S. Provisional Application No. 60/359,305, filed Feb. 26, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60359305 |
Feb 2002 |
US |