Claims
- 1. A polarization controller, comprising:
a succession of optical elements arranged along a path of a light beam between an input and an output; wherein the succession of optical elements includes at least two optical elements in said succession, that are controllable for determining a polarization state of the output, said polarization state being defined by at least two independent variables; wherein the succession of optical elements comprises at least one additional optical element that is controllable for determining the polarization state of the output, wherein interaction of the at least two optical elements with the additional element is such that a given polarization state of the output can be achieved by a plurality of alternative sets of control settings for the at least two optical elements and the additional optical element.
- 2. The polarization controller of claim 1, further comprising a controller operable to select among said alternative sets of control settings.
- 3. The polarization controller of claim 2, wherein the controller is operable to select among the alternative sets so as to minimize at least one error function.
- 4. The polarization controller of claim 3, wherein the at least one error function is chosen from a set consisting of an error between the polarization state of the output versus a desired polarization state, an error defined by a difference in values of the control settings between a present set of control settings and a next set of control settings, and an error defined by a position of the values of the control settings within a range of possible values of the control settings.
- 5. The polarization controller of claim 1, wherein the succession of optical elements comprises at least three electro-optic elements that are controllable to alter a polarization state of the light beam when passing through said elements.
- 6. The polarization controller of claim 5, wherein the electro-optic elements are liquid crystal devices.
- 7. The polarization controller of claim 1, wherein the optical elements comprise a series of birefringent elements that are successively oriented such that their principle axes are oriented at 45° relative to one another, and impart differential retardation to polarization components of the beam of light.
- 8. The polarization controller of claim 1, wherein the output is controlled to maintain a transformation of a polarization state of the input.
- 9. The polarization controller of claim 1, wherein the output is controlled to obtain a randomized polarization state.
- 10. The polarization controller of claim 1, further comprising at least one additional polarization control device, and at least one additional optical element, in cascade with said succession of optical elements, whereby the polarization controller and the polarization control device provide independent polarization controls, of which at least one is over-parameterized with at least one controllable variable in excess of a minimum number needed to obtain a unique polarization alteration.
- 11. The polarization controller of claim 10, wherein the optical element is sensitive to a resulting transformed polarization state due to the first polarization controller and is capable of providing feedback control for the said polarization controller.
- 12. The polarization controller of claim 1, further comprising a detector operable to determine a transformed polarization state produced at least in part by the polarization controller and further comprising a feedback control coupled between the detector and the polarization controller for the said polarization controller.
- 13. A light processing apparatus, comprising:
a plurality of electrically controllable optical elements arranged along a path of a light beam between an input and an output, wherein each of said optical elements is controllable via an control signal having a value within a range, to impart a corresponding differential retardation to polarization components of the beam, thereby altering a polarization state of the light beam; wherein the apparatus is over-parameterized by having a larger number of said controllable optical elements than a minimum number required to obtain a given alteration of the polarization state of the light beam, thereby providing alternative sets of electric signal values that can achieve the given alteration; a controller coupled to said larger number of said controllable optical elements, wherein the controller is operable to control said controllable optical elements for obtaining the given polarization state at the output.
- 14. The apparatus of claim 13, wherein the given polarization state at the output is one of a predetermined polarizations state, a predetermined transformation, a time varying transformation and a randomized polarization state.
- 15. The apparatus of claim 13, wherein the controller is operable to choose among alternatives sets of said control signal values for achieving the given polarization state at the output.
- 16. The apparatus of claim 15, wherein the controller is operable to choose among said alternatives so as to minimize at least one error function chosen from a set consisting of an error between the polarization state of the output versus a desired polarization state, an error defined by a difference in values of the control settings between a present set of control settings and a next set of control settings, and an error defined by a position of the values of the control settings within a range of possible values of the control settings.
- 17. The apparatus of claim 16, wherein the controller is operable to choose among said alternatives so as to minimize at least two error functions chosen from said set.
- 18. The apparatus of claim 13, wherein the optical elements comprise a series of at least four birefringent elements that are successively oriented such that their principle axes are oriented at 45° relative to one another, and impart differential retardation to polarization components of the light beam.
- 19. The apparatus of claim 13, wherein the optical elements comprise a series of at least six elements that impart differential retardation to polarization components of the light beam.
- 20. The apparatus of claim 19, wherein the controller is operable to select the sets to maintain each value at a point spaced from a limit of a respective said range applicable to a corresponding one of the controllable elements.
- 21. The apparatus of claim 13, wherein the controller is operable concurrently to control selection among the alternative sets of values in a control process operable to minimize errors related to at least one of:
a signal proportional to a difference between a polarization of the output and a target polarization; a signal proportional to a difference between a current parameter value and predetermined point in a corresponding potential range of the parameter value; and, a signal proportional to a difference between a next parameter value and a previous parameter value.
- 22. The apparatus of claim 13, further comprising at least one additional polarization control device, and at least one additional optical element, in cascade with said succession of optical elements, whereby the polarization controller and the polarization control device provide independent polarization controls, of which at least one is over-parameterized with at least one controllable variable in excess of a minimum number needed to obtain a unique polarization alteration.
- 23. The apparatus of claim 22, wherein the optical element is sensitive to a resulting transformed polarization state due to the first polarization controller and is capable of providing feedback control for the said polarization controller.
- 24. The apparatus of claim 13, further comprising a detector operable to determine a transformed polarization state produced at least in part by the polarization controller and further comprising a feedback control coupled between the detector and the polarization controller for the said polarization controller.
- 25. A method for controlling a state of an output signal derived from an input signal, comprising the steps of:
providing a succession of control stages that concurrently affect the output signal, wherein the state of the output signal is a function of control values applied to said control stages; providing a greater number of said control stages than a minimum number necessary uniquely to determine the state of the output, thereby providing alternative sets of control values that achieve a same state of the output; repetitively applying a present set of control values to the control stages to set a state of the output, and selecting among the alternative sets of control values to set a next set of the control values, wherein the selecting among the alternative sets includes choosing selections that minimize at least one error chosen from the set consisting of:
an error between the state of the output versus a desired state, an error defined by a difference in control values between the present set and the next, and an error defined by a position of the control values within a range of possible values.
- 26. The method of claim 25, wherein the state of the output is a polarization state of a light beam comprising the output signal, as derived from the input signal, and the control stages are differential retardation stages that contribute to retardation of polarization components of the input signal.
- 27. The method of claim 25, wherein the minimum number of control stages is two and the greater number of said control stages is at least four.
- 28. The method of claim 25, wherein the minimum number of control stages is at least two and the greater number of said control stages is at least six.
- 29. The method of claim 25, further comprising coupling an output of said control stages to at least one additional polarization control device, and at least one additional optical element, in cascade, and controlling an output via cascaded polarization controls of which at least one is over-parameterized, and employing an excess of a minimum number of control variables needed to obtain a unique polarization alteration.
- 30. The method of claim 29, wherein the optical element is sensitive to a resulting transformed polarization state due to the first polarization controller and provides feedback control for the said polarization controller.
- 31. The method of claim 25, further comprising coupling an output of said control stages to a detector operable to determine a transformed polarization state produced and further comprising feeding back a control signal for adjustment of at least a subset of the control stages.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the priority of U.S. Provisional Patent Applications Ser. No. 60/364,854, filed Mar. 14, 2002 and Ser. No. 60/370,830, filed Apr. 8, 2002.
Provisional Applications (2)
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Number |
Date |
Country |
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60364854 |
Mar 2002 |
US |
|
60370830 |
Apr 2002 |
US |