Claims
- 1. A method, comprising:
optically filtering a modulated optical signal at a carrier frequency that has first and second sidebands at opposite sides of said carrier frequency to produce a first optical signal having a first spectral range that covers said first sideband and a second optical signal having a second, different spectral range that covers said second sideband; measuring a parameter from said first optical signal to obtain a first result; measuring said parameter from said second optical signal to obtain a second result; and obtaining a difference between said first and said second results to extract frequency-dependent information in said modulated optical signal.
- 2. The method as in claim 1, wherein said frequency-dependent information includes optical chromatic dispersion.
- 3. The method as in claim 2, further comprising:
placing a tunable optical dispersion element in an optical path of said modulated optical signal; and dynamically controlling optical chromatic dispersion in said modulated optical signal by adjusting said tunable optical dispersion element in response to measured optical chromatic dispersion.
- 4. The method as in claim 2, wherein said parameter includes an optical phase of each of said first and said second optical signals.
- 5. The method as in claim 4, further comprising recovering a clock signal in each optical signal and said optical phase is obtained from said clock signal.
- 6. The method as in claim 1, wherein said frequency-dependent information includes polarization-mode dispersion which includes an effect that is frequency dependent.
- 7. The method as in claim 6, further comprising:
prior to transmitting said modulated optical signal through an optical medium exhibiting optical birefringence, scrambling state of polarization of said modulated optical signal; performing said optical filtering after said modulated optical signal transmits through said optical medium; measuring state of polarization of each of said first and said second optical signals corresponding to each polarization input to said optical medium caused by said scrambling; determining an amount of polarization-mode dispersion of each of said first and said second optical signals; and determining frequency-dependent effects of polarization-mode dispersion from measurements of said first and said second optical signals.
- 8. The method as in claim 7, further comprising:
placing a tunable optical element in an optical path of said modulated optical signal to produce a variable polarization-mode dispersion; and dynamically controlling optical polarization-mode dispersion in said modulated optical signal by adjusting said tunable optical element in response to measured optical polarization-mode dispersion.
- 9. The method as in claim 1, further comprising:
using at least one tunable optical bandpass filter to perform said optical filtering; and tuning said tunable optical bandpass filter to wavelengths of different wavelength-division-multiplexed modulated optical signals, one at a time, to obtaining frequency-dependent information for different wavelength-division-multiplexed modulated optical signals.
- 10. A device, comprising:
means for optically filtering a modulated optical signal at a carrier frequency that has first and second sidebands at opposite sides of said carrier frequency to produce a first optical signal having a first spectral range that covers said first sideband and a second optical signal having a second, different spectral range that covers said second sideband; means for measuring a parameter from said first optical signal to obtain a first result and for measuring said parameter from said second optical signal to obtain a second result; and means for comparing said first and said second results to obtain a difference to extract frequency-dependent information in said modulated optical signal.
- 11. The device as in claim 10, wherein said means for optically filtering said modulated optical signal includes a tunable optical bandpass filter operable to change its transmission band to different spectral positions, and
said device further comprising a control unit to control said tunable optical bandpass filter to one side of said carrier frequency to obtain said first optical signal and subsequently to tune said tunable optical bandpass filter to another side of said carrier frequency to obtain said second optical signal.
- 12. The device as in claim 11, further comprising an optical detector to convert said first and said second optical signals into first and second electrical signals, and a signal processing unit to process said first and said second electrical signals to obtain said first and said second results.
- 13. The device as in claim 12, wherein said signal processing unit includes a phase-sensitive detector.
- 14. The device as in claim 11, further comprising a clock recovery unit between said optical detector and said signal processing unit.
- 15. The device as in claim 10, wherein said means for optically filtering said modulated optical signal includes:
an optical coupler to split said modulated optical signal into a first part and a second part in first and second optical paths, respectively; a first optical bandpass filter in said fist optical path to filter said first part to produce said first optical signal; and a second optical bandpass filter in said second optical path to filter said second part to produce said second optical signal.
- 16. A method, comprising:
optically filtering a modulated optical signal at a carrier frequency that has first and second sidebands at opposite sides of said carrier frequency to produce a first optical signal which spectrally covers said first sideband and said carrier frequency and a second optical signal which spectrally covers said second sideband and said carrier frequency; recovering a first clock signal from said first optical signal; recovering a second clock signal from said second optical signal; and obtaining a phase difference between said first and said second clock signals to extract information on optical dispersion in said modulated optical signal.
- 17. The method as in claim 16, wherein said first and said second optical signals are obtained by using a tunable optical bandpass filter to filter said modulated optical signal for a first time at one side of said carrier frequency and for a second time at the opposite side of said carrier frequency.
- 18. A device, comprising:
a tunable optical filter operable to change its transmission band to different spectral positions to filter a modulated optical signal at a carrier frequency that has first and second sidebands at opposite sides of said carrier frequency to produce a first optical signal having a first spectral range that covers said first sideband and a second optical signal having a second, different spectral range that covers said second sideband; a control unit to control said tunable optical bandpass filter to one side of said carrier frequency to obtain said first optical signal and subsequently to tune said tunable optical bandpass filter to another side of said carrier frequency to obtain said second optical signal; and a processing unit coupled to receive said first and said second optical signals and operable to measure a parameter from said first optical signal to obtain a first result and for measuring said parameter from said second optical signal to obtain a second results, and said processing unit further operable to compare said first and said second results to obtain a difference to extract frequency-dependent information in said modulated optical signal.
- 19. The device as in claim 18, wherein said processing unit includes an optical detector, and a processing circuit coupled to receive an output from said optical detector.
- 20. The device as in claim 18, further comprising a polarization scrambler to scramble state of polarization of said modulated optical signal and wherein said processing unit includes an optical polarimeter.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/304,221 filed on Jul. 9, 2001, the entire disclosure of which is incorporated herein by reference as part of this application.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60304221 |
Jul 2001 |
US |