Claims
- 1. A system, comprising:
a polarization-mode dispersion (PMD) compensator operable to guide a plurality of wavelength-division multiplexed (WDM) optical channels through a common optical path to modify a differential group delay (DGD) in each channel, said PMD compensator operable to adjust said DGD in response to a control signal; and a feedback control coupled to measure a property of said channels as a whole and operable to generate said control signal according to said property.
- 2. The system as in claim 1, wherein said property includes an AC electrical power proportional to a current or voltage that represents a total optical power of said channels.
- 3. The system as in claim 2, wherein said feedback control adjusts said PMD compensator to increase said AC electrical power.
- 4. The system as in claim 1, wherein said PMD compensator includes a polarization controller operable to adjust an output polarization in response to said control signal, and a polarization-maintaining fiber.
- 5. The system as in claim 1, wherein said PMD compensator includes a plurality of units connected in series, each unit including a polarization controller operable to adjust an output polarization in response to said control signal and a polarization-maintaining fiber.
- 6. The system as in claim 1, wherein said feedback control includes:
an optical coupler disposed to couple a portion of an output signal from said PMD compensator that combines said channels; an optical detector to convert said portion into an electrical signal; an electrical power detector to detect an AC power of said electrical signal; and a control circuit to generate said control signal to increase said AC power.
- 7. The system as in claim 6, wherein said electrical power detector includes an electrical bandpass filter to select said AC power in a frequency band to increase response sensibility of said feedback control.
- 8. The system as in claim 6, wherein said electrical power detector includes at least two electrical bandpass filters with different frequency bands to select said AC power in one of said frequency bands to increase response sensibility of said feedback control.
- 9. A method, comprising:
directing each of a plurality of wavelength-division multiplexed (WDM) optical channels through a common optical path to modify a differential group delay (DGD) in each channel so as to produce an output with modified WDM channels; measuring power of an AC portion of said output; and modifying the DGD to increase said power.
- 10. The method as in claim 9, wherein said modification includes adjusting a polarization of each channel relative to a principal axis of a polarization-maintaining fiber in said common optical path.
- 11. The method as in claim 9, further comprising:
filtering said power in frequency to select a portion of said power in a selected frequency band; and wherein the DGD is modified to increase said portion in said selected frequency band.
- 12. The method as in claim 9, further comprising:
filtering said power in frequency to select a first portion of said power in a first selected frequency band; filtering said power in frequency to select a second portion of said power in a second selected frequency band; and selecting one of said first and said portions to be increased by modifying the DGD.
- 13. The method as in claim 9, wherein said measuring power of said AC portion of said output includes:
tapping an output of said common optical path to produce an optical monitor signal; converting said optical monitor signal into an electrical signal; measuring an AC electrical power of said electrical signal; and filtering said AC electrical power in frequency to produce said AC portion.
- 14. The method as in claim 9, wherein said common optical path includes a first optical polarization controller and a first polarization-maintaining fiber, and wherein said first optical polarization controller is adjusted to modify the DGD.
- 15. The method as in claim 9, wherein said common optical path includes a plurality of pairs of a polarization controller and a polarization-maintaining fiber connected in series, wherein each optical polarization controller is adjusted to modify the DGD.
- 16. A system, comprising:
a polarization-mode dispersion (PMD) compensator operable to guide a plurality of wavelength-division multiplexed (WDM) optical channels through a common optical path to modify a differential group delay (DGD) in each channel, said common optical path comprising a plurality of adjustable units connected in series respectively operable to adjust the DGD in response to a plurality of control signals, respectively; and a feedback control coupled to measure a property of said channels as a whole after transmitting through said common optical path and operable to generate said control signals according to said property.
- 17. The system as in claim 16, wherein each adjustable unit includes a polarization controller operable to adjust an output polarization in response to a respective control signal and a polarization-maintaining fiber.
- 18. The system as in claim 16, wherein said feedback control includes:
an optical coupler disposed to couple a portion of an output signal from said PMD compensator that combines said channels; an optical detector to convert said portion into an electrical signal; an electrical power detector to detect an AC power of said electrical signal; and a control circuit to generate said control signals to increase said AC power.
- 19. A method, comprising:
directing each of a plurality of wavelength-division multiplexed (WDM) optical channels through a common optical path to modify a differential group delay (DGD) in each channel so as to produce an output with modified WDM channels; and controlling said DGD to reduce an overall signal fading in said output caused by polarization-mode dispersion (PMD) on all of said channels without separately compensating PMD in each channel.
- 20. The method as in claim 19, further comprising:
measuring power of an AC portion of said output; and modifying the DGD to increase said power.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/187,126, filed on Mar. 6, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60187126 |
Mar 2000 |
US |