Claims
- 1. An apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image, the apparatus comprising:
an optical device for viewing a spatial region of the retinal image, the optical device being optically connected to a high efficiency spatially modulated Fourier imaging interferometer; an illumination source for illuminating the spatial region; and at least one monitor for displaying a spectral signature of the spatial region imaged.
- 2. The apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image as described in claim 1, wherein the spatial region of the retinal image is illuminated by a single exposure of light.
- 3. The apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image as described in claim 1, wherein the intensity of the illumination source is normalized with an embedded calibration source for calibrating the illumination intensity from the illuminated spatial region, the calibration source having an embedded illumination intensity variability compensator within the optical device.
- 4. An apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image, the apparatus comprising:
an optical device for viewing the spatial region of the retinal image, the optical device being optically connected to a high efficiency spatially modulated Fourier imaging interferometer; an illumination source for illuminating the spatial region with a single exposure of light; calibration source for calibrating the illumination intensity from the illuminated spatial region, the calibration source having an embedded illumination intensity variability compensator; and at least one monitor for displaying a calibrated image of a spectral signature of the spatial region.
- 5. The apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image as described in claim 4, wherein the optical device is a fundus camera.
- 6. The apparatus for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image as described in claim 4, wherein the intensity of the illumination source is normalized with an embedded calibration source for calibrating the illumination intensity from the illuminated spatial region, the calibration source having an embedded illumination intensity variability compensator within the optical device.
- 7. An apparatus for measuring a spectral intensity of a scene as a function of wavelength for a spatial region of the scene, the apparatus comprising:
a high efficiency spatially modulated Fourier imaging interferometer; a camera for observing a spatial region to be illuminated; means for illuminating the spatial region with a single exposure of light; means for collecting light from the spatial region illuminated; optics adapted to pass collected light from the spatial region illuminated through the interferometer to one or more detectors thereby creating an image; means for calibrating the illumination intensity from the illuminated spatial region, the means for calibrating having an embedded illumination intensity variability compensator within the device; and an output monitor for displaying a calibrated spectral signature of the spatial region.
- 8. The apparatus for measuring a spectral intensity of a scene as a function of wavelength for a spatial region of the scene as described in claim 7, wherein the camera comprises a fundus camera.
- 9. The apparatus for measuring a spectral intensity of a scene as a function of wavelength for a spatial region of the scene as described in claim 7, further comprising:
means for analyzing the calibrated spectral signature using a program adapted to perform a fast-ICA algorithm analysis of the calibrated spectral signature.
- 10. The apparatus for measuring a spectral intensity of a scene as a function of wavelength for a spatial region of the scene as described in claim 7, further comprising:
means for analyzing the calibrated spectral signature using a program adapted to perform an extended spatial decorrelation algorithm analysis of the calibrated spectral signature.
- 11. A method for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image, the method comprising:
observing the spatial region with a scene camera; illuminating the spatial region with a single exposure of light; collecting the light from the spatial region illuminated; passing collected light through a high efficiency spatially modulated Fourier interferometer to one or more detectors; calibrating the image collected with an embedded illumination intensity variability compensator; and viewing the calibrated spectral signature of the spatial region.
- 12. A method for measuring a spectral intensity of a retinal image as a function of wavelength for a spatial region of the retinal image, the method comprising:
illuminating the spatial region with a single exposure of light; viewing the spatial region for image capture with a scene camera; encoding the spectral data with a high efficiency spatially modulated Fourier interferometer; obtaining spectral data as a function of wavelength for a large spatial region; and calibrating illumination source signatures for each exposure.
- 13. A method for assessing metabolic function change of a retina based on hyperspectral images of the retina, the method comprising:
illuminating a spatial region of a retina with a single exposure of light at a first time; collecting the light from the spatial region illuminated at the first time; passing light collected at the first time through a high efficiency spatially modulated Fourier interferometer to one or more detectors; calibrating a first hyperspectral image of the retina from the light passed through the high efficiency spatially modulated Fourier interferometer at the first time with an illumination intensity variability compensator embedded at the first time; recording the first hyperspectral image; illuminating the spatial region of the retina with a single exposure of light at a second time; collecting the light from the spatial region illuminated at the second time; passing light collected at the second time through the high efficiency spatially modulated Fourier interferometer to the one or more detectors; calibrating a second hyperspectral image of the retina from the light passed through the high efficiency spatially modulated Fourier interferometer at the second time with an illumination intensity variability compensator embedded at the second time; recording the second hyperspectral image; and assessing metabolic function change of the retina based upon differences in spectral intensity between the first image and the second image.
- 14. The method for assessing metabolic function change of a retina as recited in claim 13, wherein assessing comprises applying principal components analysis to the reflectance differences.
- 15. The method for assessing metabolic function change of a retina as recited in claim 13, wherein assessing comprises applying a fast-ICA algorithm to the first and second images.
- 16. The method for assessing metabolic function change of a retina as recited in claim 13, wherein assessing comprises applying an extended spatial decorrelation algorithm to the images.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit under 35 U.S.C. § 119(e) of provisional application No. 60/407,330, filed Aug. 29, 2002, which is incorporated by reference herein, in its entirety, for all purposes.
STATEMENT OF GOVERNMENT INTEREST
[0002] This invention was made with government support under Contract No. 2000-153-KESTREL-SOLIZ awarded by the National Medical Technology Testbed, Inc. The government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60407330 |
Aug 2002 |
US |