Claims
- 1. Stereoscopic device, comprising:
an image directing assembly, having a first light inlet for receiving a first image and a second light inlet for receiving a second image, said first light inlet being spaced apart from said second light inlet; an image differentiator, differentiating between said first image and said second image; and an image detector, wherein said image directing assembly directs said first image to said image detector via a common path, and wherein said image directing assembly directs said second image to said image detector via said common path.
- 2. The stereoscopic device according to claim 1, wherein said inlets define a first pupil and a second pupil.
- 3. The stereoscopic device according to claim 1, further comprising an optical assembly located in front of said image detector.
- 4. The stereoscopic device according to claim 1, wherein said image differentiator includes a first light filter and a second light filter,
wherein said first light filter admits light in a first range of filter wavelengths, and wherein said second light filter admits light in a second range of filter wavelengths.
- 5. The stereoscopic device according to claim 4, further comprising:
a first illuminator emitting light at a first illuminating wavelength included in said first range of filter wavelengths and excluded from said second range of filter wavelengths; a second illuminator emitting light at a second illuminating wavelength included in said second range of filter wavelengths and excluded from said first range of filter wavelengths; and a controller coupled with said image detector, said first illuminator and to said second illuminator, wherein said controller alternately operates said first illuminator and said second illuminator, wherein said controller enables said image detector to detect said first image when said first illuminator emits light, and wherein said controller enables said image detector to detect said second image when said second illuminator emits light.
- 6. The stereoscopic device according to claim 5, further comprising a storage unit coupled with said controller, for storing said first image and said second image.
- 7. The stereoscopic device according to claim 6, further comprising an image processor coupled with said controller, wherein said image processor produces a stereoscopic image according to said first image and to said second image.
- 8. The stereoscopic device according to claim 4, wherein each of said first range of filter wavelengths and said second range of filter wavelengths is selected from the list consisting of:
substantially visible red color light; substantially visible green color light; substantially visible blue color light; substantially visible cyan color light; substantially visible yellow color light; substantially visible magenta color light; substantially infra-red light; substantially ultra-violet light; and visible light.
- 9. The stereoscopic device according to claim 3, further comprising a controller coupled with said image detector.
- 10. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator,
wherein said image differentiator is a partially-transparent rotating disk located where said first image and said second image are two distinct images, in front of said common path, wherein said partially-transparent rotating disk has a transparent portion and an opaque portion, wherein said partially-transparent rotating disk admits said first image through said transparent portion when said partially-transparent rotating disk rotates to a first position, and said partially-transparent rotating disk admits said second image through said transparent portion when said partially-transparent rotating disk rotates to a second position, and wherein said controller enables said image detector to detect images according to the angular position of said partially-transparent rotating disk.
- 11. The stereoscopic device according to claim 10, further comprising an illuminator which emits light at a predetermined illuminating wavelength.
- 12. The stereoscopic device according to claim 11, wherein said predetermined illuminating wavelength is selected from the list consisting of:
substantially visible red color light; substantially visible green color light; substantially visible blue color light; substantially visible cyan color light; substantially visible yellow color light; substantially visible magenta color light; substantially infra-red light; substantially ultra-violet light; and visible light.
- 13. The stereoscopic device according to claim 10, further comprising an illuminator which sequentially emits light at different predetermined illuminating wavelengths, said illuminator coupled with said controller,
wherein said controller controls the operation of said illuminator, wherein said controller enables said image detector to detect said first image at each one of said different predetermined illuminating wavelengths, and said second image at each one of said different predetermined illuminating wavelengths, according to the angular position of said partially-transparent rotating disk and according to the state of said illuminator.
- 14. The stereoscopic device according to claim 13, wherein each of said different predetermined illuminating wavelengths is selected from the list consisting of:
substantially visible red color light; substantially visible green color light; substantially visible blue color light; substantially visible cyan color light; substantially visible yellow color light; substantially visible magenta color light; substantially infra-red light; substantially ultra-violet light; and visible light.
- 15. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator,
wherein said image differentiator is a multi-wavelength rotating disk located where said first image and said second image are two distinct images, in front of said common path, said multi-wavelength rotating disk comprises a plurality of filtering sectors, wherein each of said filtering sectors admits light in a different predetermined range of filter wavelengths, and wherein said controller enables said image detector to detect said first image and said second image at each one of said different predetermined ranges of filter wavelengths, according to the angular position of said multi-wavelength rotating disk.
- 16. The stereoscopic device according to claim 15, wherein said multi-wavelength rotating disk further comprises at least one opaque sector.
- 17. The stereoscopic device according to claim 15, further comprising an illuminator.
- 18. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator, said image differentiator is located where said first image and said second image are two distinct images, in front of said common path,
wherein said image differentiator is a multiple aperture having a first aperture and a second aperture, wherein said controller alternately controls the opening of said first aperture and said second aperture, and wherein said controller enables said image detector to detect said first image and said second image, according to an open state of either of said first aperture or said second aperture, respectively.
- 19. The stereoscopic device according to claim 18, further comprising an illuminator which sequentially emits light at different predetermined illuminating wavelengths, wherein said controller enables said image detector to detect images, corresponding to a predetermined combination of an open state of a selected aperture of said multiple aperture and a selected one of said different predetermined illuminating wavelengths.
- 20. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator, said image differentiator comprising:
a first polarizer located in the path of said first image, before said common path; a second polarizer located in the path of said second image, before said common path; and a third polarizer located in front of said image detector, wherein said controller controls the polarization angle of at least one of said first polarizer, said second polarizer and said third polarizer, and wherein said controller enables said image detector to detect images, according to the polarization angle of said first polarizer and said second polarizer, relative to the polarization angle of said third polarizer.
- 21. The stereoscopic device according to claim 20, wherein said first polarizer and said second polarizer are static and said third polarizer is dynamic.
- 22. The stereoscopic device according to claim 20, wherein said first polarizer and said second polarizer are dynamic and said third polarizer is static.
- 23. The stereoscopic device according to claim 20, wherein said first polarizer and said second polarizer are located on a rotating disk.
- 24. The stereoscopic device according to claim 20, wherein said image differentiator further comprises at least one polarization rotating cell.
- 25. The stereoscopic device according to claim 9, wherein said image differentiator is a lenticular lens layer, including a plurality of lenticular elements, located in front of said image detector,
wherein said lenticular elements enable said lenticular lens layer to differentiate between said first image and said second image, wherein said lenticular lens layer directs said first image and said second image to said image detector, and wherein said controller enables said image detector to detect said first image and said second image.
- 26. The stereoscopic device according to claim 25, wherein each of said lenticular elements is shaped in a general semi-cylindrical shape.
- 27. The stereoscopic device according to claim 9, wherein said image directing assembly further comprises:
a first mirror for receiving said first image; a second mirror for receiving said second image; a first center mirror for directing said first image from said first mirror to said common path; and a second center mirror for directing said second image from said second mirror to said common path.
- 28. The stereoscopic device according to claim 27, wherein said first mirror, said second mirror, said first center mirror and said second center mirror are fixed.
- 29. The stereoscopic device according to claim 27, wherein said first mirror rotates about a first hinge, said second mirror rotates about a second hinge, and said first center mirror and said second center mirror rotate about a center hinge.
- 30. The stereoscopic device according to claim 27, wherein said controller enables said image detector to detect said first image and said second image, according to the state of said image differentiator.
- 31. The stereoscopic device according to claim 1, wherein said image directing assembly comprises:
a first parallelogramic prism for directing said first image to said common path; and a second parallelogramic prism for directing said second image to said common path, and wherein said detector detects said first image and said second image.
- 32. The stereoscopic device according to claim 31, further comprising:
a rail; and a hinge sliding in said rail, wherein said first parallelogramic prism and said second parallelogramic prism are coupled with said hinge, wherein said first parallelogramic prism and said second parallelogramic prism move from a retracted position to an extended position, by rotating about said hinge when said hinge moves within said rail.
- 33. The stereoscopic device according to claim 32, wherein the rotation of said first prism and said second prism about said hinge, is symmetric.
- 34. The stereoscopic device according to claim 1, wherein said image directing assembly is tilted at a direction other than the longitudinal axis of said stereoscopic device.
- 35. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator, said image directing assembly comprising:
a first parallelogramic prism for directing said first image to said common path; and a second parallelogramic prism for directing said second image to said common path, wherein said image differentiator directs said first image to said image detector, when said image differentiator is in a first state, wherein said image differentiator directs said second image to said image detector, when said image differentiator is in a second state, and wherein said controller enables said image detector to detect said first image and said second image, according to the state of said image differentiator.
- 36. The stereoscopic device according to claim 35, further comprising:
a rail; and a hinge sliding in said rail, wherein said first parallelogramic prism and said second parallelogramic prism are coupled with said hinge, wherein said first parallelogramic prism and said second parallelogramic prism move from a retracted position to an extended position, by rotating about said hinge when said hinge moves within said rail.
- 37. The stereoscopic device according to claim 9, said image differentiator comprising:
a first mirror for receiving said first image; a second mirror for receiving said second image; and a rotating mirror coupled with said controller, said rotating mirror rotating between a first angular position and a second angular position, wherein said rotating mirror directs said first image to said common path when in said first angular position and wherein said rotating mirror directs said second image to said common path when in said second angular position, and wherein said controller enables said image detector to detect said first image and said second image, according to the angular position of said rotating mirror.
- 38. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator, said image directing assembly comprising:
a first fiberscope located between said first light inlet and said common path, said first fiberscope having a first light outlet; and a second fiberscope located between said second light inlet and said common path, said second fiberscope having a second light outlet, wherein said first fiberscope directs said first image from said first light inlet to said first light outlet, wherein said second fiberscope directs said second image from said second light inlet to said second light outlet, and wherein said controller enables said image detector to detect said first image and said second image, according to the state of said image differentiator.
- 39. The stereoscopic device according to claim 9, wherein said controller is further coupled with said image differentiator, said image directing assembly comprising:
a plurality of split fibers located between said first light inlet, said second light inlet and said common path, said split fibers having a light outlet, each said split fibers having a first arm, a second arm and a common arm, wherein said first arms direct said first image from said first light inlet to said common path via said light outlet, wherein said second arms direct said second image from said second light inlet to said common path via said light outlet, and wherein said controller enables said image detector to detect said first image and said second image, according to the state of said image differentiator.
- 40. The stereoscopic device according to claim 9, wherein said image detector comprises:
a one-dimensional light sensor array; and a scanner, wherein said scanner scans an object and directs a plurality of lines of an image of said object to said one-dimensional light sensor array, wherein said controller is further coupled with said scanner, and wherein said controller enables said one-dimensional light sensor array to detect each of said lines, according to the angular position of said scanner.
- 41. The stereoscopic device according to claim 40, wherein said scanner is selected from the list consisting of:
flat mirror; prism; lens; spherical mirror; and aspherical mirror.
- 42. The stereoscopic device according to claim 9, wherein said image detector comprises:
a two-dimensional light sensor array; and a scanner, wherein said scanner scans an object and directs a plurality of two-dimensional images of said object to said two-dimensional light sensor array, wherein said controller is further coupled with said scanner, wherein said controller controls the operation of said two-dimensional light sensor array in a time delay integration mode, and wherein said controller enables said two-dimensional light sensor array to detect said two-dimensional images, according to the angular position of said scanner.
- 43. The stereoscopic device according to claim 42, wherein said scanner is selected from the list consisting of:
flat mirror; prism; lens; spherical mirror; and aspherical mirror.
- 44. The stereoscopic device according to claim 3, wherein said image directing assembly is located between an object and said optical assembly, said optical assembly is located between said image directing assembly and said image differentiator, and said image differentiator is located between said optical assembly and said image detector.
- 45. The stereoscopic device according to claim 3, wherein said image directing assembly is located between an object and said image differentiator, said image differentiator is located between said image directing assembly and said optical assembly, and said optical assembly is located between said image differentiator and said image detector.
- 46. The stereoscopic device according to claim 3, wherein said image differentiator is located between an object and said image directing assembly, said image directing assembly is located between said image differentiator and said optical assembly, and said optical assembly is located between said image directing assembly and said image detector.
- 47. The stereoscopic device according to claim 3, wherein said image directing assembly, said optical assembly, said image differentiator and said image detector are located in an endoscope.
- 48. Method for producing a stereoscopic image, the method comprising the procedures of:
receiving images of different sides of an object, through two spaced apart apertures; directing said images to a common path; and differentiating between said images.
- 49. The method according to claim 48, wherein said apertures define a first pupil and a second pupil.
- 50. The method according to claim 48, further comprising a procedure of detecting said differentiated images.
- 51. The method according to claim 48, wherein an optical assembly forms said common path.
- 52. The method according to claim 48, wherein said procedure of differentiating is controlled, thereby synchronizing differentiation of said images with detection of said images.
- 53. The method according to claim 48, further comprising a procedure of illuminating said object.
- 54. The method according to claim 48, further comprising a procedure of sequentially illuminating at different illuminating wavelengths.
- 55. The method according to claim 48, wherein said procedure of receiving further comprises a sub-procedure of scanning said object.
- 56. The method according to claim 50, further comprising a procedure of storing said detected images.
- 57. The method according to claim 48, further comprising a procedure of processing said images, thereby producing a three dimensional image.
- 58. The method according to claim 57, further comprising a procedure of displaying a stereoscopic image according to said processed images.
- 59. Stereoscopic device comprising:
a first light filter admitting light at a plurality of first ranges of filter wavelengths; a second light filter admitting light at a plurality of second ranges of filter wavelengths; a sequential wavelength differentiator associated with a first set of differentiating wavelengths and a second set of differentiating wavelengths; an image detector, receiving images from said first light filter and said second light filter; and an optical assembly located in front of said image detector, wherein said first set of differentiating wavelengths is included in at least one of said first ranges of filter wavelengths and excluded from said second ranges of filter wavelengths, and wherein said second set of differentiating wavelengths is included in at least one of said second ranges of filter wavelengths and excluded from said first ranges of filter wavelengths.
- 60. The stereoscopic device according to claim 59, further comprising a controller coupled with said image detector and to said sequential wavelength differentiator,
wherein said controller operates said image detector to detect images, according to the sequencing state of said sequential wavelength differentiator.
- 61. The stereoscopic device according to claim 59, wherein at least one of said first ranges of filter wavelengths is located between two of said second ranges of filter wavelengths.
- 62. The stereoscopic device according to claim 59, wherein at least one of said second ranges of filter wavelengths is located between two of said first ranges of filter wavelengths.
- 63. The stereoscopic device according to claim 59, wherein said first ranges of filter wavelengths said second ranges of filter wavelengths are mutually exclusive.
- 64. The stereoscopic device according to claim 60, wherein said sequential wavelength differentiator is a sequential illuminator, sequentially emitting light at at least a portion of said first set of differentiating wavelengths and at at least a portion of said second set of differentiating wavelengths.
- 65. The stereoscopic device according to claim 60, wherein said sequential wavelength differentiator is a filtering differentiator, differentiating between at least a portion of said first ranges of filter wavelengths and at least a portion of said second ranges of filter wavelengths.
- 66. The stereoscopic device according to claim 65, wherein said filtering differentiator is a multi-wavelength rotating disk located in front of said image detector, said multi-wavelength rotating disk comprising a plurality of filtering sectors,
wherein each of said filtering sectors admits light at different wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths, wherein said multi-wavelength rotating disk sequentially filters light at said common path, and wherein said controller enables said image detector to detect images, according to the angular position of said multi-wavelength rotating disk.
- 67. The stereoscopic device according to claim 66, wherein said multi-wavelength rotating disk further comprises at least one opaque sector.
- 68. The stereoscopic device according to claim 66, further comprising an illuminator.
- 69. The stereoscopic device according to claim 65, wherein said filtering differentiator is a multi-mode filter, admitting light at different wavelengths in a plurality of filtering modes, and
wherein each of said filtering modes is associated with a different set of wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths.
- 70. The stereoscopic device according to claim 65, wherein said filtering differentiator is a multi-state flipping filter, admitting light at different wavelengths in a plurality of flipping states, and
wherein each of said flipping states is associated with a different set of wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths.
- 71. The stereoscopic device according to claim 60, wherein said sequential wavelength differentiator is a reflecting multi-wavelength differentiator, differentiating between at least a portion of said first ranges of filter wavelengths and at least a portion of said second ranges of filter wavelengths.
- 72. The stereoscopic device according to claim 71, wherein said reflective multi-wavelength differentiator is a flipping mirror located in front of said image detector, said flipping mirror reflecting light at different wavelengths in a plurality of flipping states, and
wherein each of said flipping states is associated with a different set of wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths.
- 73. The stereoscopic device according to claim 71, wherein said reflective multi-wavelength differentiator is a rotating reflective disk located in front of said image detector,
wherein said rotating reflective disk includes a plurality of reflective sectors, wherein each of said reflective sectors reflects light, at different wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths, wherein said rotating reflective disk sequentially directs images at said different wavelengths to said image detector, and wherein said controller enables said image detector to detect said images, according to the angular position of said rotating reflective disk.
- 74. The stereoscopic device according to claim 71, wherein said reflective multi-wavelength differentiator is a partially reflective mirror located in front of said image detector, said partially reflective mirror reflecting light at different wavelengths in a plurality of reflecting states, and
wherein each of said reflecting states is associated with a different set of wavelengths selected from one of said first set of differentiating wavelengths and said second set of differentiating wavelengths.
- 75. The stereoscopic device according to claim 60, wherein said image detector comprises:
a one-dimensional light sensor array; and a scanner, wherein said scanner scans an object and directs a plurality of lines of an image of said object to said one-dimensional light sensor array, wherein said controller is further coupled with said scanner, and wherein said controller enables said one-dimensional light sensor array to detect each of said lines, according to the angular position of said scanner.
- 76. The stereoscopic device according to claim 60, wherein said image detector comprises:
a two-dimensional light sensor array; and a scanner, wherein said scanner scans an object and directs a plurality of two-dimensional images of said object to said two-dimensional light sensor array, wherein said controller is further coupled with said scanner, wherein said controller controls the operation of said two-dimensional light sensor array in a time delay integration mode, and wherein said controller enables said two-dimensional light sensor array to detect said two-dimensional images, according to the angular position of said scanner.
- 77. The stereoscopic device according to claim 59, wherein each of said first ranges of filter wavelengths and said second ranges of filter wavelengths is selected from the list consisting of:
substantially visible red color light; substantially visible green color light; substantially visible blue color light; substantially visible cyan color light; substantially visible yellow color light; substantially visible magenta color light; substantially infra-red light; substantially ultra-violet light; and visible light.
- 78. The stereoscopic device according to claim 59, wherein the wavelength in said first set of differentiating wavelengths and in said second set of differentiating wavelengths is selected from the list consisting of:
substantially visible red color light; substantially visible green color light; substantially visible blue color light; substantially visible cyan color light; substantially visible yellow color light; substantially visible magenta color light; substantially infra-red light; substantially ultra-violet light; and visible light.
- 79. Method for detecting a first image and a second image, the method comprising the procedures of:
determining a plurality of first ranges of filter wavelengths for a first pupil and a plurality of second ranges of filter wavelengths for a second pupil; sequentially differentiating between a first set of differentiating wavelengths and a second set of differentiating wavelengths, and detecting said first image when said first set of differentiating wavelengths is present, and detecting said second image when said second set of differentiating wavelengths is present, wherein said first set of differentiating wavelengths is included in said first ranges of filter wavelengths and excluded from said second ranges of filter wavelengths, and wherein said second set of differentiating wavelengths is included in said second ranges of filter wavelengths and excluded from said first ranges of filter wavelengths.
- 80. The method according to claim 79, wherein said first ranges of filter wavelengths and said second ranges of filter wavelengths are mutually exclusive.
- 81. The method according to claim 79, wherein said procedure of determining includes admitting said first ranges of filter wavelengths for said first pupil, and admitting said second ranges of filter wavelengths for said second pupil.
- 82. The method according to claim 79, wherein said procedure of differentiating further comprises a sub-procedure of sequentially illuminating an object at at least a portion of said first set of differentiating wavelengths and at at least a portion of said second set of differentiating wavelengths.
- 83. The method according to claim 79, wherein said procedure of differentiating further comprises a sub-procedure of sequentially filtering light at at least a portion of said first set of differentiating wavelengths and at at least a portion of said second set of differentiating wavelengths.
- 84. The method according to claim 83, further comprising a procedure of illuminating an object, before said sub-procedure of filtering.
- 85. The method according to claim 79, wherein said procedure of differentiating further comprises a sub-procedure of sequentially reflecting light at at least a portion of said first set of differentiating wavelengths and at at least a portion of said second set of differentiating wavelengths.
- 86. The method according to claim 85, further comprising a procedure of illuminating an object, before said sub-procedure of reflecting.
- 87. The method according to claim 79, further comprising a procedure of scanning an object.
- 88. Stereoscopic device, comprising:
means for directing an image and having a first light inlet for receiving a first image and a second light inlet for receiving a second image, said first light inlet being spaced apart from said second light inlet; means for differentiating between said first image and said second image; and means for detecting an image, wherein said means for directing said image, directs said first image to said means for detecting, via a common path, and wherein said means for directing said image, directs said second image to said means for detecting said image, via said common path.
- 89. Stereoscopic device comprising:
first filtering means admitting light at a plurality of first ranges of filter wavelengths; second filtering means admitting light at a plurality of second ranges of filter wavelengths; means for sequentially differentiating between wavelengths and being associated with a first set of differentiating wavelengths and a second set of differentiating wavelengths; image detecting means receiving images from said first filtering means and said second filtering means; and focusing means located in front of said image detecting means, wherein said first set of differentiating wavelengths is included in at least one of said first ranges of filter wavelengths and excluded from said second ranges of filter wavelengths, and wherein said second set of differentiating wavelengths is included in at least one of said second ranges of filter wavelengths and excluded from said first ranges of filter wavelengths.
- 90. Stereoscopic device, comprising:
a first pupil receiving a first image; a second pupil receiving a second image; an image differentiator, differentiating between said first image and said second image; at least one image detector, detecting said first image and said second image; and an objective lens assembly, directing said first image and said second image toward said image detector.
- 91. The stereoscopic device according to claim 90, wherein said first pupil and said second pupil do not overlap.
- 92. The stereoscopic device according to claim 90, wherein said first pupil and said second pupil are hard pupils.
- 93. The stereoscopic device according to claim 90, wherein said first pupil and said second pupil are soft pupils.
- 94. The stereoscopic device according to claim 90, wherein said first pupil and said second pupil are virtual pupils.
- 95. The stereoscopic device according to claim 90, wherein said objective lens assembly is telecentric.
Parent Case Info
[0001] This application is a continuation-in-part of application Ser. Nos. 09/785,791, filed on Feb. 16, 2001 and 09/785,512, filed on Feb. 16, 2001, which are continuation-in-parts of application Ser. No. 09/699,624, filed on Oct. 30, 2001, which is a continuation-in-part of application Ser. No. 09/257,850, filed on Feb. 25, 1999.
Continuation in Parts (3)
|
Number |
Date |
Country |
Parent |
09785791 |
Feb 2001 |
US |
Child |
10145418 |
May 2002 |
US |
Parent |
09785512 |
Feb 2001 |
US |
Child |
10145418 |
May 2002 |
US |
Parent |
09257850 |
Feb 1999 |
US |
Child |
09699624 |
Oct 2000 |
US |