IL290885A

Light field vision testing device, adjusted pixel rendering method therefor, and vision testing system and method using same

Abstract

This record has no abstract on file.

IL290885A, drawing sheet 1
Sheet 1 of 32

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Published
  4. Today

42 claims: 24 independent, 18 dependent

  1. 1
    What is claimed is:1. A device operable to dynamically adjust user perception of an input image, the device comprising: an array of digital display pixels;a corresponding array of light field shaping elements (LFSEs) shaping a light field emanating from said pixels;and a hardware processor operable on pixel data for the input image to output adjusted image pixel data to be rendered via said LFSEs to dynamically adjust user perception of the input image as rendered therethrough by: digitally mapping the input image on an adjusted image plane corresponding to a designated vision correction parameter associated with a given visual acuity level;for each given pixel, digitally: projecting an adjusted image ray trace between said given pixel and a user pupil location to intersect said adjusted image plane at a given adjusted image location given a direction of a light field emanated by said given pixel based on a given LFESE intersected thereby;and associating an adjusted image pixel value designated for said given adjusted image location with said given pixel based on said mapping;rendering each said given pixel according to said adjusted pixel value, thereby rendering a perceptively adjusted version of the input image that at least partially accommodates said given visual acuity level;and adjusting said designated vision correction parameter to accommodate for a distinct visual acuity level until an optimal visual acuity level is identified.
  2. 6
    The device of any one of claims 1 to 5, wherein the device is operable to dynamically adjust user perception of distinct image portions by:digitally processing each given image portion to be perceptively rendered according to distinct vision correction parameters to accommodate for distinct visual acuity levels for comparative purposes;and adjusting said distinct vision correction parameters until said optimal visual acuity level is identified.
  3. 9
    The device of any one of claims 6 to 8, wherein said distinct image portions comprise two side-by-side image portions.
  4. 10
    The device of any one of claims 6 to 8, wherein said distinct image portions comprises an array or grid of image portions.
  5. 11
    The device of any one of claims 6 to 10, further comprising an adjustable refractive optical system interposed between said array of pixels and said user pupil location so to set a selectable common coarse refractive correction and thus further refract and thus redirect said light field emanated by each said given pixel, wherein the device is further operable to digitally process each said given image portion to be perceptively rendered according to said distinct vision correction parameters based on a current common coarse refractive correction.
  6. 12
    The device of any one of claims 1 to 11, wherein the device is a refractor or phoropter.
  7. 13
    The device of any one of claims 1 to 12, further comprising a user eye alignment structure or a pupil tracking device to define said user pupil location.
  8. 14
    The device of any one of claims 1 to 13, further comprising an optical reflector to fold an optical path between said user pupil location and said array of digital display pixels.
  9. 15
    The device of any one of claims 1 to 14, wherein said adjusted image plane comprises one of a virtual image plane virtually positioned relative to the digital display to correspond with said given visual acuity level or a user retinal plane based on a user eye focus parameter corresponding with said given visual acuity level.
  10. 16
    A subjective eye test device comprising:an array of digital display pixels;a corresponding array of light field shaping elements (LFSEs) shaping a light field emanating from said pixels;and a hardware processor operable on pixel data for a defined optotype to output adjusted image pixel data to be rendered via said LFSEs to dynamically adjust user perception of said defined optotype as rendered therethrough by: digitally mapping said defined optotype on an adjusted image plane corresponding to a designated vision correction parameter associated with a given visual acuity level;for each given pixel, digitally: projecting an adjusted image ray trace between said given pixel and a user pupil location to intersect said adjusted image plane at a given adjusted image location given a direction of a light field emanated by said given pixel based on a given LFESE intersected thereby;and associating an adjusted image pixel value designated for said given adjusted image location with said given pixel based on said mapping;and rendering each said given pixel according to said adjusted pixel value, thereby rendering a perceptively adjusted version of said defined optotype that at least partially accommodates said given visual acuity level;and adjusting said designated vision correction parameter to accommodate for a distinct visual acuity level until an optimal visual acuity level is identified.
  11. 17
    A computer-implemented method, automatically implemented by one or more digital processors, to dynamically adjust user perception of an input image to be rendered by an array of digital display pixels via a corresponding array of light field shaping elements (LFSE), the method comprising:digitally mapping the input image on an adjusted image plane corresponding to a designated vision correction parameter associated with a given visual acuity level;for each given pixel, digitally: projecting an adjusted image ray trace between said given pixel and a user pupil location to intersect said adjusted image plane at a given adjusted image location given a direction of a light field emanated by said given pixel based on a given LFESE intersected thereby;and associating an adjusted image pixel value designated for said given adjusted image location with said given pixel based on said mapping;rendering each said given pixel according to said adjusted pixel value, thereby rendering a perceptively adjusted version of the input image that at least partially accommodates said given visual acuity level;and adjusting said designated vision correction parameter to accommodate for a distinct visual acuity level until an optimal visual acuity level is identified.
  12. 21
    The method of any one of claims 17 to 20, wherein said adjusted image plane comprises one of a virtual image plane virtually positioned relative to the digital display to correspond with said given visual acuity level or a user retinal plane based on a user eye focus parameter corresponding with said given visual acuity level.
  13. 22
    The method of any one of claims 17 to 21, further comprising, prior to said projecting:calculating a vector between said given pixel and said user pupil location;and approximating said direction of said light field emanated by said given pixel based on said given LFSE intersected by said vector.
  14. 23
    The method of any one of claims 17 to 22, further comprising digitally accounting for an adjustable refractive optical system interposed between said array of pixels and said user pupil location so to set a selectable coarse refractive correction and thus further refract and thus redirect said light field emanated by each said given pixel, wherein said adjusted image ray trace is further projected between said given pixel and said user pupil location to intersect said adjusted image plane at said given adjusted image location based on said given LFSE and a current coarse refractive correction of said adjustable refractive optical system, wherein said optimal visual acuity level is identified as a function of said designated vision correction parameter and said current coarse refractive correction.
  15. 24
    A non-transitory computer-readable medium comprising digital instructions to be implemented by one or more digital processors to dynamically adjust user perception of an input image to be rendered by an array of digital display pixels via a corresponding array of light field shaping elements (LFSE), by:digitally mapping the input image on an adjusted image plane corresponding to a designated vision correction parameter associated with a given visual acuity level;for each given pixel, digitally: projecting an adjusted image ray trace between said given pixel and a user pupil location to intersect said adjusted image plane at a given adjusted image location given a direction of a light field emanated by said given pixel based on a given LFESE intersected thereby;and associating an adjusted image pixel value designated for said given adjusted image location with said given pixel based on said mapping;rendering each said given pixel according to said adjusted pixel value, thereby rendering a perceptively adjusted version of the input image that at least partially accommodates said given visual acuity level;and adjusting said designated vision correction parameter to accommodate for a distinct visual acuity level until an optimal visual acuity level is identified.
  16. 28
    The non-transitory computer-readable medium of any one of claims 24 to 27, wherein said adjusted image plane comprises one of a virtual image plane virtually positioned relative to the digital display to correspond with said given visual acuity level or a user retinal plane based on a user eye focus parameter corresponding with said given visual acuity level.
  17. 29
    The non-transitory computer-readable medium of any one of claims 24 to 28, further comprising instructions for, prior to said projecting:calculating a vector between said given pixel and said user pupil location;and approximating said direction of said light field emanated by said given pixel based on said given LFSE intersected by said vector.
  18. 30
    The non-transitory computer-readable medium of any one of claims 24 to 29, further comprising digital instructions to be implemented to account for an adjustable refractive optical system interposed between said array of pixels and said user pupil location so to set a selectable coarse refractive correction and thus further refract and thus redirect said light field emanated by each said given pixel, wherein said adjusted image ray trace is further projected between said given pixel and said user pupil location to intersect said adjusted image plane at said given adjusted image location based on said given LFSE and a current coarse refractive correction of said adjustable refractive optical system, wherein said optimal visual acuity level is identified as a function of said designated vision correction parameter and said current coarse refractive correction.
  19. 31
    A computer-implemented method, automatically implemented by one or more digital processors, to automatically adjust user perception of distinct image portions to be rendered on a digital display via a set of pixels thereof, wherein the digital display has an array of light field shaping elements (LFSE), the method comprising:digitally processing each given image portion to be perceptively rendered at a corresponding perceived image depth by, for each given pixel in at least some of the pixels, digitally: calculating a vector between said given pixel and a user pupil location;approximating a direction of a light field emanated by said given pixel based on a given LFSE intersected by said vector;projecting an adjusted image ray trace between said given pixel and said given LFSE to identify a corresponding adjusted image location for a first perceived image depth given said direction;upon said adjusted image ray trace intersecting said given image portion associated with said first perceived image depth, associating with said given pixel an adjusted image portion value designated for said corresponding adjusted image location based on said intersection;otherwise repeating said projecting and associating for a subsequent perceived image depth;and rendering for each said given pixel said adjusted image portion value associated therewith, thereby rendering distinctly perceptively adjusted image portions.
  20. 34
    The computer-implemented method of any one of claims 31 to 33, wherein said projecting and associating are implemented in parallel for each said given pixel of at least a subset of said pixels.
  21. 35
    A non-transitory computer-readable medium comprising digital instructions to be implemented by one or more digital processors to automatically adjust user perception of distinct image portions to be rendered on a digital display via a set of pixels thereof, wherein the digital display has an array of light field shaping elements (LFSE), by:digitally processing each given image portion to be perceptively rendered at a corresponding perceived image depth by, for each given pixel in at least some of the pixels, digitally: calculating a vector between said given pixel and a user pupil location;approximating a direction of a light field emanated by said given pixel based on a given LFSE intersected by said vector;projecting an adjusted image ray trace between said given pixel and said given LFSE to identify a corresponding adjusted image location for a first perceived image depth given said direction;upon said adjusted image ray trace intersecting said given image portion associated with said first perceived image depth, associating with said given pixel an adjusted image portion value designated for said corresponding adjusted image location based on said intersection;otherwise repeating said projecting and associating for a subsequent perceived image depth;and rendering for each said given pixel said adjusted image portion value associated therewith, thereby rendering distinctly perceptively adjusted image portions.
  22. 36
    A digital display device operable to automatically adjust user perception of distinct image portions to be rendered thereon, the device comprising:a digital display medium comprising an array of pixels and operable to render a pixelated image accordingly;an array of light field shaping elements (LFSEs) to shape a light field emanating from said pixels and thereby at least partially govern a projection thereof from said display medium toward the user;and a hardware processor operable on pixel data for the input image portions to output adjusted image pixel data to be rendered via said LFSEs to adjust user perception of said input image portions as rendered therethrough by: digitally processing each given image portion to be perceptively rendered at a corresponding perceived image depth by, for each given pixel in at least some of the pixels, digitally: calculating a vector between said given pixel and a user pupil location;approximating a direction of a light field emanated by said given pixel based on a given LFSE intersected by said vector;projecting an adjusted image ray trace between said given pixel and said given LFSE to identify a corresponding adjusted image location for a first perceived image depth given said direction;upon said adjusted image ray trace intersecting said given image portion associated with said first perceived image depth, associating with said given pixel an adjusted image portion value designated for said corresponding adjusted image location based on said intersection;otherwise repeating said projecting and associating for a subsequent perceived image depth;and rendering for each said given pixel said adjusted image portion value associated therewith, thereby rendering distinctly perceptively adjusted image portions.
  23. 39
    A refractor using the digital display of any one of claims 36 to 38, wherein each of said image portions correspond to an optotype that are rendered side-by-side at distinct perceived image depths.
  24. 40
    A device for subjective vision testing of a user having a reduced visual acuity, the device comprising:the digital display of any one of claims 36 to 38;wherein each of said image portions corresponds to an optotype;and wherein the display is operable to simultaneously render said optotype in each of said portions side-by-side at distinct perceived image depths.
Independent claims24