Claims
- 1. A method for automatic initialization of an optical link in an optical network, comprising the steps of:
(a) determining a span loss of each fiber span in the link; (b) setting a target gain of each amplifier in the link based on the span losses of the fiber spans in the link; (c) selecting an optical channel to be transmitted through the link and turning on the channel power; (d) setting a signal power level at a transmitter for said channel on the link so that to provide transmittance of said channel through the link while the channel is amplified by the amplifier in the link; (e) setting a signal power level at a receiver for said channel on the link so as to provide that the power level at the receiver is within a predetermined range; (f) repeating the steps (c) to (e) until all channels to be transmitted through the link are selected.
- 2. A method as claimed in claim 1 wherein the step (d) of setting the signal power level at the transmitter comprises setting the attenuation of an attenuator at the transmitter.
- 3. A method as claimed in claim 1 wherein the step (e) of setting the signal power level at the receiver comprises setting the attenuation of an attenuator at the receiver.
- 4. A method as claimed in claim 1 wherein the step (d) of setting the signal power level at the transmitter comprises setting the signal power level at the transmitter to be substantially equal to one of the following:
the maximum power PTx max of the transmitter, if the loss L0 of the fiber span located between the transmitter and the optical amplifier nearest to the transmitter (a first fiber span) is greater than or equal to a minimum span loss Lmin specified for the network; and PTx max−Lmin+L0, if the loss L0 of said first fiber span is less than the minimum span loss Lmin.
- 5. A claim as claimed in claim 1 wherein the step (b) of setting the target gain of each amplifier comprises setting the target gain so as to provide that the power at the output of each amplifier is substantially equal to a maximum specified power Pmax for a channel in the optical network.
- 6. A method as claimed in claim 1 wherein the step (e) of setting the signal power level at the receiver comprises setting the signal power level at the receiver to be substantially equal to PRx max−Pmargin, wherein Pmargin is a specified power margin for the channel and PRx max is a maximum specified channel power to the receiver.
- 7. A claim as claimed in claim 1 wherein the step (e) of setting the signal power level at the receiver further comprises the steps of:
(g) decreasing the signal power level at the receiver for said channel to the level below a signal detection limit of the receiver; (h) increasing the signal power level at the receiver for said channel until it reaches the signal detection limit of the receiver; (j) storing said signal power level at the receiver from the step (h); and (k) calculating a operating power margin for said channel as being equal to the difference between the signal power level at the receiver in the step (e) and in the step (j), the steps (g), (h), and (j) being performed before the step (e).
- 8. A method as claimed in claim 5 wherein the step of setting the target gain of each amplifier comprises the steps of:
setting a target gain G1 of the optical amplifier nearest to the transmitter to be substantially equal to the following value: G1=(Pmax−PTx)+L0 wherein Pmax is the maximum specified power for a channel in the optical network, and PTx is an average power of the transmitters in the link; and setting a target gain Gi of each of the remaining amplifiers in the link to be substantially equal to the loss Li of the fiber span following each of said amplifiers.
- 9. A method as claimed in claim 1 wherein the step (c) further comprises dynamically regulating the target gain of each amplifier in the link.
- 10. A method as claimed in claim 9 wherein the step of dynamically regulating target gain comprises:
regulating the target gain of each amplifier so as to provide that the gain for each optical channel passing through the amplifier is within a gain ripple A of the amplifier, the gain ripple Δ being a variation of the amplifier gain profile with channel wavelength.
- 11. A method as claimed in claim 1 further comprising the step of adjusting the signal power levels at the transmitters in the link so as to provide that the variation in power for different channels transmitted through the link is opposite to the cumulative gain ripple of the amplifiers in the link, the cumulative gain ripple of the amplifiers being a variation of the amplifiers cumulative gain profile with channel wavelength.
- 12. A method as claimed in claim 1 wherein the step (a) of determining the span loss comprises determining the span loss of each fiber span in the link remotely.
- 13. A method as claimed in claim 12 wherein the step of remotely determining the span loss comprises:
(i) selecting a channel on the optical link and turning on the channel power at the corresponding transmitter; (ii) increasing the power at said transmitter until the signal power level at the amplifier nearest to said transmitter reaches a predetermined power level; (iii) varying a target gain of said amplifier until the signal power level at the network element nearest to the amplifier reaches said predetermined power level; (iv) repeating the step (iii) until the signal power level at all network elements on the optical link reaches the same said predetermined power level; (v) determining the span loss of each fiber span as being equal to the following value:
the difference between the power at the transmitter in the step (ii) and said predetermined power level, if the fiber span is located between said transmitter and the optical amplifier nearest to the transmitter; and the target gain of the amplifier immediately preceding the fiber span, the target gain being set in the step (iii), if the fiber span is any of the remaining spans of fiber.
- 14. A method as claimed in claim 13 wherein the step (ii) of increasing the power at said transmitter comprises decreasing the attenuation of an attenuator at said transmitter.
- 15. A method as claimed in claim 13 wherein the step (ii) of increasing the power at said transmitter comprises increasing the power until the signal power level at the amplifier nearest to said transmitter reaches the predetermined power level defined as the minimum specified input power of the amplifier.
- 16. A method as claimed in claim 13 wherein the step (ii) of increasing the power at said transmitter comprises increasing the power until the signal power level at the amplifier nearest to said transmitter reaches the predetermined power level defined as the average specified input power of the amplifier.
- 17. A method as claimed in claim 12 wherein the step of remotely determining the span loss comprises:
determining a signal power level at an input of a fiber span in the optical link; determining a signal power level at an output of the fiber span in the optical link; and determining the loss for the fiber span to be equal to the difference between said signal power level at the input of the fiber span and said signal power level at the output of the fiber span.
- 18. A method for automatic initialization of an optical network having a plurality of optical links, comprising the steps of:
(l) selecting an optical link; (m) initializing said link according to the method of claim 1; and (n) repeating the steps (l) to (m) until all links from the plurality of links in the network are initialized.
- 19. A method as claimed in claim 18 wherein the step (l) of selecting an optical link comprises selecting the optical link so as to optimize the initialization of the optical network.
- 20. A method as claimed in claim 19 wherein the step of selecting the optical link comprises selecting the optical link having the highest number of fiber spans among the remaining links to be initialized in the network.
- 21. A method as claimed in claim 18 wherein the step (c) further comprises dynamically regulating the target gain of each amplifier in the link.
- 22. A method as claimed in claim 21 wherein the step of dynamically regulating target gain comprises:
regulating the target gain of each amplifier so as to provide that the gain for each optical channel passing through the amplifier is within a gain ripple Δ of the amplifier, the gain ripple A being a variation of the amplifier gain profile with channel wavelength.
- 23. A method as claimed in claim 18 wherein the step (m) of initializing the link further comprises the step of adjusting the signal power levels at the transmitters in the link so as to provide that the variation in power for different channels transmitted through the link is opposite to the cumulative gain ripple of the amplifiers in the link, the cumulative gain ripple of the amplifiers being a variation of the amplifiers cumulative gain profile with channel wavelength.
- 24. A method as claimed in claim 18 wherein the step (a) of determining the span loss comprises determining the span loss, of each fiber span in the link remotely.
- 25. A method as claimed in claim 24 wherein the step of remotely determining the span loss comprises:
(i) selecting a channel on the optical link and turning on the channel power at the corresponding transmitter; (ii) increasing the power at said transmitter until the signal power level at the amplifier nearest to said transmitter reaches a predetermined power level; (iii) varying a target gain of said amplifier until the signal power level at the network element nearest to the amplifier reaches said predetermined power level; (iv) repeating the step (c) until the signal power level at all network elements on the optical link reaches the same said predetermined power level; (v) determining the span loss of each fiber span as being equal to the following value:
the difference between the power at the transmitter in the step (ii) and said predetermined power level, if the fiber span is located between said transmitter and the optical amplifier nearest to the transmitter; and the target gain of the amplifier immediately preceding the fiber span, the target gain being set in the step (iii), if the fiber span is any of the remaining spans of fiber.
- 26. A method as claimed in claim 24 wherein the step of remotely determining the span loss comprises:
determining a signal power level at an input of a fiber span in the optical link; determining a signal power level at an output of the fiber span in the optical link; and determining the loss for the fiber span to be equal to the difference between said signal power level at the input of the fiber span and said signal power level at the output of the fiber span.
- 27. A system for automatic initialization of an optical link in an optical network, comprising:
(a) means for determining a span loss of each fiber span in the link; (b) means for setting a target gain of each amplifier in the link based on the span losses of the fiber spans in the link; (c) means for selecting an optical channel to be transmitted through the link and turning on the channel power; (d) means for setting a signal power level at a transmitter for said channel on the link so that to provide transmittance of said channel through the link while the channel is amplified by the amplifier in the link; (e) means for setting a signal power level at a receiver for said channel on the link so as to provide that the power level at the receiver is within a predetermined range; and (f) means for repeating the steps (c) to (e) until all channels to be transmitted through the link are selected.
- 28. A system for automatic initialization of an optical network having a plurality of optical links, comprising:
(l) means for selecting an optical link; (m) the system for automatic initialization of the optical link as described in claim 27; and (n) means for repeating the steps (l) to (m) until all links from the plurality of links in the network are initialized.
- 29. A method for automatic and remote determining of a span loss of fiber spans in an optical network, comprising the steps of:
(i) selecting a channel on the optical link and turning on the channel power at the corresponding transmitter; (ii) increasing the power at said transmitter until the signal power level at the amplifier nearest to said transmitter reaches a predetermined power level; (iii) varying a target gain of said amplifier until the signal power level at the network element nearest to the amplifier reaches said predetermined power level; (iv) repeating the step (iii) until the signal power level at all network elements on the optical link reaches the same said predetermined power level; (v) determining the span loss of each fiber span as being equal to the following value:
the difference between the power at the transmitter in the step (ii) and said predetermined power level, if the fiber span is located between said transmitter and the optical amplifier nearest to the transmitter; and the target gain of the amplifier immediately preceding the fiber span, the target gain being set in the step (iii), if the fiber span is any of the remaining spans of fiber.
- 30. A method as described in claim 29, wherein the step of selecting the channel comprises selecting the channel comprises selecting the channel having the highest loss on the line.
- 31. A method as described in claim 29, wherein the step of selecting the channel comprises selecting the channel having the lowest loss on the line.
RELATED APPLICATIONS
[0001] This application claims benefit of U.S. Provisional Patent Application to Ng et al, Serial No. 60/348,612 filed on 17 Jan. 2002; and of U.S. Provisional Patent Application to Ng et al, Serial No. 60/354,025 filed on 5 Feb. 2002; U.S. Provisional Application to Wan et al, Serial No. 60/365,779 filed on 21 Mar. 2002; and of U.S. Provisional Patent Application to Ng et al, Serial No. 60/365,791 filed on 21 Mar. 2002; and of U.S. Patent Application to Ng et al, Serial No. 10/195,495 filed on 16 Jul. 2002 entitled “Method and Apparatus for Gain Excursion Minimization in Automatic Gain Controlled Optical Systems”; and is related to a U.S. patent application to Ng et al, entitled “Method and System for Multi-Level Power Management in an Optical Network”, filed concurrently herewith.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60348612 |
Jan 2002 |
US |
|
60354025 |
Feb 2002 |
US |
|
60365779 |
Mar 2002 |
US |
|
60365791 |
Mar 2002 |
US |