Claims
- 1. A moving imager camera comprising:
a first positioning mechanism capable of three-dimensional movement; a first imaging device having an imaging surface, the first imaging device being mounted upon a surface of the first positioning mechanism such that the first imaging device moves in concert with motion of the surface of the first positioning mechanism; a first measurement system operable to determine a position of the first imaging device within an external frame of reference defined by three axes X, Y, and Z; and a first lens having a focal surface and a field of coverage, the first lens arranged such that the focal surface coincides with the imaging surface of the first imaging device, the field of coverage of the first lens being larger than the optically sensitive area of the imaging surface.
- 2. A moving imager camera as recited in claim 1 further including a computer system for controlling motion of the first positioning mechanism.
- 3. A moving imager camera as recited in claim 1 wherein the first positioning mechanism includes first and second platforms, the first platform operable to move along the X axis of the external frame of reference, the second platform operable to move along the Y axis, the surface of the first positioning mechanism being arranged such that the surface moves in concert with the first and second platforms.
- 4. A moving imager camera as recited in claim 3 wherein the first positioning mechanism further includes a third platform operable to move along the Z axis of the external frame of reference and the surface of the first positioning mechanism is an upper surface of the third platform.
- 5. A moving imager camera as recited in claim 3 wherein the first positioning mechanism further includes at least one actuator for actuating one of the first and second platforms.
- 6. A moving imager camera as recited in claim 5 further including a control system for controlling the operation of the at least one actuator.
- 7. A moving imager camera as recited in claim 6 wherein the at least one actuator is a stepper motor.
- 8. A moving imager camera as recited in claim 7 wherein the control system is a differential control system capable of microstepping the stepper motor.
- 9. A moving imager camera as recited in claim 6 wherein the at least one actuator is a servo motor.
- 10. A moving imager camera as recited in claim 1 wherein the imaging device is a digital imaging device.
- 11. A moving imager camera as recited in claim 11 wherein the digital imaging device includes a photosensitive integrated circuit, the photosensitive integrated circuit having an array of photosensitive elements that is the imaging surface of the imaging device.
- 12. A moving imager camera as recited in claim 11 wherein the photosensitive integrated circuit is operable to process signals generated at the array of photosensitive elements.
- 13. A moving imager camera as recited in claim 10 wherein the imaging surface of the first imaging device is an array of imaging pixels, the resolution of the array being at least 512 pixels by 512 pixels.
- 14. A moving imager camera as recited in claim 1 wherein the first measurement system includes an interferometer system operable to determine the position of the first imaging device in the focal plane.
- 15. A moving imager camera as recited in claim 1 wherein the first measurement system is a sonar based ranging system operable to determine the position of the first imaging device in the focal plane.
- 16. A moving imager camera as recited in claim 1 wherein the first lens is a lens designed for a 35 millimeter camera.
- 17. A moving imager camera as recited in claim 1 wherein the first lens is a lens designed for an advanced photo system (APS) camera.
- 18. A moving imager camera as recited in claim 1 further comprising a computer controlled focusing mechanism.
- 19. A moving imager camera as recited in claim 18 wherein the computer controlled focusing mechanism is a lens focusing mechanism.
- 20. A moving imager camera as recited in claim 18 wherein the computer controlled focusing mechanism is a back focusing mechanism.
- 21. A moving imager camera as recited in claim 18 wherein the computer controlled focusing mechanism uses stereo-computed range to determine focusing distance.
- 22. A moving imager camera as recited in claim 1 further comprising a computer controlled zoom mechanism providing adaptive selection of the effective field of view.
- 23. A moving imager camera as recited in claim 1 further comprising
a second positioning mechanism capable of three-dimensional movement; a second imaging device having an imaging surface, the second imaging device being mounted upon a surface of the second positioning mechanism such that the second imaging device moves in concert with motion of the surface of the second positioning mechanism; a second measurement system operable to determine a position of the second imaging device in the focal plane; and a second lens having a focal surface and a field of coverage, the second lens arranged such that the focal surface of the second lens coincides with the imaging surface of the second imaging device, the field of coverage of the second lens being larger than the optically sensitive area of the imaging surface.
- 24. A moving imager camera as recited in claim 23 further including a control system operable to control motion of the first and second positioning mechanisms.
- 25. A moving imager camera as recited in claim 24 wherein the control system includes a first controller arranged to control the first positioning mechanism and a second controller arranged to control the second positioning mechanism.
- 26. A moving imager camera as recited in claim 23 further comprising an alignment mechanism operable to align the first and second imaging devices into substantially the same plane.
- 27. A moving imager camera as recited in claim 23 wherein the alignment mechanism includes a laser diode disposed within the first positioning mechanism and aimed at a mirror disposed within the second positioning mechanism, and a light sensor disposed within the first positioning mechanism, such that when the first and second positioning mechanisms are aligned into substantially the same plane, a beam of light generated by the laser diode will reflect off the mirror and return for measurement and optimization at the light sensor.
- 28. A moving imager camera as recited in claim 23 wherein the control system is operable to position the first and second positioning mechanisms in order to adjust a range of stereoscopic imaging available through the use of the first and second imaging devices.
- 29. A moving imager camera as recited in claim 1 wherein the first positioning mechanism, the first imaging device, the first measurement system, and the first lens all comprise a first moving imager, the first moving imager being one of a plurality of moving imagers.
- 30. A moving imager camera as recited in claim 29 further including an alignment mechanism operable to align the plurality of moving imagers into substantially the same plane.
- 31. A moving imager camera as recited in claim 1 further including a converting lens arranged between the first lens and the imaging surface of the first imaging device such that a large portion of the field of view of the first lens is projected onto the imaging surface.
- 32. A moving imager camera operable to generate stereoscopic images suitable for use in range computation, the moving imager camera comprising:
a first moving imager including:
a first positioning mechanism capable of two-dimensional movement; a first imaging device having an imaging surface, the first imaging device being mounted upon a surface of the first positioning mechanism such that the first imaging device moves in concert with motion of the surface of the first positioning mechanism; a first measurement system operable to determine a position of the first imaging device in the focal plane within an external frame of reference; and a first lens having a focal surface and a field of coverage, the first lens arranged such that the focal surface coincides with the imaging surface of the first imaging device, the field of coverage of the first lens being larger than the optically sensitive area of the imaging surface; and a second moving imager including:
a second Positioning mechanism capable of two-dimensional movement; a second imaging device having an imaging surface, the second imaging device being mounted upon a surface of the second positioning mechanism such that the second imaging device moves in concert with motion of the surface of the second positioning mechanism; a second measurement system operable to determine a position of the second imaging device in the focal plane within an external frame of reference; and a second lens having a focal surface and a field of coverage, the second lens arranged such that the focal surface coincides with the imaging surface of the second imaging device, the field of coverage of the second lens being larger than the optically sensitive area of the imaging surface; and a computer system operable to control the first and second moving imagers in order to adjust a range of stereoscopic imaging available through the use of the first and second moving imagers.
- 33. A moving imager camera as recited in claim 32 wherein the first positioning mechanism includes a first platform operable to move along both X and Y axes, the surface of the first positioning mechanism being arranged such that the surface of the first positioning mechanism moves in concert with the first platform.
- 34. A moving imager camera as recited in claim 33 wherein the first positioning mechanism further includes at least one stepper motor for actuating the first platform.
- 35. A moving imager camera as recited in claim 34 further including a control system for controlling the operation of the at least one stepper motor.
- 36. A moving imager camera as recited in claim 35 wherein the control system is a differential control system capable of microstepping the at least one stepper motor.
- 37. A moving imager camera as recited in claim 32 where the first imager is a digital imager, the imaging surface of the first imaging device is an array of imaging pixels, and the resolution of the array is at least 512 pixels by 512 pixels.
- 38. A moving imager camera as recited in claim 32 wherein the first measurement system includes an interferometer system operable to determine the position of the first imaging device in the focal plane.
- 39. A moving imager camera as recited in claim 32 wherein the first measurement system is a sonar based ranging system operable to determine the position of the first imaging device in the focal plane.
- 40. A moving imager camera as recited in claim 32 wherein both the first and second lenses are designed for use in a 35 millimeter camera.
- 41. A moving imager camera as recited in claim 32 further comprising an alignment mechanism operable to align the first and second imagers into substantially the same plane.
- 42. A moving imager camera as recited in claim 41 wherein the alignment mechanism includes a laser diode disposed within the first imager and aimed at mirrors disposed within the second imager, and a light sensor disposed within the first imager, such that when the first and second imagers are aligned into substantially the same plane, a beam of light generated by the laser diode will reflect off the mirrors and return for measurement at the light sensor.
- 43. A moving imager camera comprising:
a first positioning mechanism capable of motion along two degrees of freedom; a first imaging device having an imaging surface, the first imaging device being mounted upon a surface of the first positioning mechanism such that the first imaging device moves in concert with motion of the surface of the first positioning mechanism; a first measurement system operable to determine a position of the first imaging device within an external frame of reference defined by azimuth and elevation axes; and a first spherical lens having a spherical focal surface and a field of coverage, the first spherical lens arranged such that the spherical focal surface coincides with the imaging surface of the first imaging device, the field of coverage of the first lens being larger than the optically sensitive area of the imaging surface.
- 44. A moving imager camera as recited in claim 43 wherein the first positioning mechanism operates such that the two degrees of freedom correspond to motion along the azimuth and elevation axes respectively.
- 45. A moving imager camera as recited in claim 44 wherein the first positioning mechanism includes a first curved control path substantially aligned with the azimuth axis, and the first imaging device is coupled to the first positioning mechanism such that the first imaging device can move along the first curved control path.
- 46. A moving imager camera as recited in claim 44 wherein the first positioning mechanism includes a second curved control path substantially aligned with the elevation axis, and the first imaging device is coupled to the first positioning mechanism such that the first imaging device can move along the second curved control path.
- 47. A moving imager camera as recited in claim 43 wherein the imaging surface is formed to substantially correspond to the spherical focal surface of the first spherical lens.
- 48. A moving imager camera as recited in claim 47 wherein the imaging surface includes an array of fiber optic strands, the exposed surface of each fiber optic strand formed such that the imaging surface substantially corresponds to the spherical focal surface of the first spherical lens.
- 49. A moving imager camera as recited in claim 43 wherein the moving imager camera further comprises:
a second positioning mechanism capable of motion along two degrees of freedom; a second imaging device having an imaging surface, the second imaging device being mounted upon a surface of the second positioning mechanism such that the first imaging device moves in concert with motion of the surface of the second positioning mechanism; and a second measurement system operable to determine a position of the second imaging device within the external frame of reference; and a second spherical lens having a spherical focal surface and a field of coverage, the second spherical lens arranged such that the spherical focal surface of the second lens coincides with the imaging surface of the second imaging device, the field of coverage of the second lens being larger than the optically sensitive area of the imaging surface of the second imaging device.
- 50. A moving imager as recited in claim 49 further including a computer system operable to position the first and second imaging devices in order to obtain a larger field of stereoscopic images.
- 51. A moving imager as recited in claim 43 wherein the first positioning mechanism, the first imaging device, the first measurement system and the first spherical lens together comprise a first moving imager, and the first moving imager is one of a plurality of moving imagers comprising the moving imager.
- 52. An imager camera suitable for computational ranging, the imager camera comprising:
a first imaging device having an imaging surface; a first spherical lens having a spherical focal surface and a field of coverage, the first spherical lens arranged such that the spherical focal surface coincides with the imaging surface of the first imaging device, the field of coverage of the first lens being larger than the optically sensitive area of the imaging surface; a second imaging device having an imaging surface; a second spherical lens having a spherical focal surface and a field of coverage, the second spherical lens arranged such that the spherical focal surface of the second spherical lens coincides with the imaging surface of the second imaging device, the field of coverage of the second lens being larger than the optically sensitive area of the imaging surface of the second imaging device.
- 51. A method for reducing blur in a moving imager camera, the moving imager camera having a lens and a moving imager having an imaging surface residing in the focal plane of the lens, the method involving the steps of:
receiving an indication that the moving imager, positioned at a first position during a first image capture step, must be at a second position during a second image capture step that is performed after the first image capture step; determining an inactive time period between the stop of the first image capture step and the start of the second image capture step; determining that the first image capture step has stopped; and moving the imager to a desired new position during the inactive time period, whereby the moving imager is properly positioned and substantially stable in the focal plane of the lens during the second capture step.
- 52. A method as recited in claim 51 wherein the inactive period corresponds to a time period during which the imager is not acquiring light energy.
- 53. A method for reducing blur in a moving imager camera, the moving imager camera having a lens and a moving imager, the moving imager having an imaging surface residing in the focal plane of the lens, the method involving the steps of:
receiving an indication that an object that the moving imager camera is intended to capture will be moving; determining the impending motion of an image of the object that is projected onto the imaging surface; moving the imaging surface in accordance with the image of the object, whereby the moving imager captures the image of the object even though the object is moving.
- 54. A moving imager camera comprising:
a first positioning mechanism capable of two-dimensional movement; a first imaging device having an imaging surface, the first imaging device being mounted upon a surface of the first positioning mechanism such that the first imaging device moves in concert with motion of the surface of the first positioning mechanism; a first measurement system operable to determine a position of the first imaging device within an external frame of reference; a first lens having a focal surface and a field of coverage, the first lens arranged such that the focal surface coincides with the imaging surface of the first imaging device, the field of coverage of the first lens being larger than the optically sensitive area of the imaging surface; and a converting mechanism having a converting lens, the converting mechanism operable to dispose the converting lens in a first position between the first lens and the first imaging device, the converting lens operable such that when it is disposed in the first position a large portion of the field of view of the first lens is projected onto the imaging surface.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of Baker et al.'s copending U.S. Provisional Patent Application No. 60/302,761, entitled “MOVING IMAGER CAMERA FOR TRACKING, SCANNING, RANGE AND SUPER-RESOLUTION,” filed Dec. 11, 1996, which is incorporated herein by reference in its entirety. This application is related to Woodfill et al.'s copending U.S. patent application Ser. No. 08/839,767, filed Apr. 28, 1997, entitled “Data Processing System and Method,” which is incorporated herein by reference in its entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60032761 |
Dec 1996 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
08989202 |
Dec 1997 |
US |
Child |
10742311 |
Dec 2003 |
US |