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Method and apparatus for using adaptive optics in a scanning laser ophthalmoscope 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • A61B-003/00
  • A61B-003/10
  • G02B-026/08
출원번호 US-0125331 (2005-05-10)
발명자 / 주소
  • Roorda,Austin
출원인 / 주소
  • University of Rochester
대리인 / 주소
    Blank Rome LLP
인용정보 피인용 횟수 : 31  인용 특허 : 13

초록

A scanning laser ophthalmoscope incorporates adaptive optics to compensate for wavefront aberrations in the eye. Light from a light source is scanned onto the retina. Light reflected from the retina is detected for imaging and is also used for wavefront sensing. The sensed wavefront aberrations are

대표청구항

What is claimed is: 1. A method of imaging an area of a retina of a living eye, the method comprising: (a) providing light from a light source; (b) injecting the light from the light source into a common optical path; (c) performing a two-dimensional transverse scan of a focused spot of the light f

이 특허에 인용된 특허 (13)

  1. Josef Bille DE, Aberration-free imaging of the fundus of the human eye.
  2. Peyman, Gholam; Khoobehi, Bahram, Analysis of blood flow.
  3. Krause Andrew W. (Baltimore MD) Marianik Charles G. (Plainsboro NJ) Kovach Ronald J. (Langhorne PA), Dual-wavelength spectrophotometry system.
  4. Neal, Daniel R.; Armstrong, Darrell J.; Topa, Daniel M.; Copland, Richard J., Dynamic range extension techniques for a wavefront sensor including use in ophthalmic measurement.
  5. Pflibsen Kent P. (Franklin MA) Milbocker Michael T. (Boston MA), Eye fundus tracker/stabilizer.
  6. Le Gargasson, Jean-Fran.cedilla.ois; Lena, Pierre; Boccara, Claude; Dubois, Arnaud, High resolution device for observing a body.
  7. Kudryashov Alexis,RUX ; Larichev Andrey Viktorovich,RUX ; Otten ; III Leonard John, High resolution, multispectral, wide field of view retinal imager.
  8. Bille Josef (Heidelberg DEX), Method and apparatus for forming an image of the ocular fundus.
  9. Williams David R. ; Liang Junzhong, Method and apparatus for improving vision and the resolution of retinal images.
  10. Levine, Bruce Martin, Method of treating the human eye with a wavefront sensor-based ophthalmic instrument.
  11. Hauber Frederick A., Mixed optics intraocular achromatic lens.
  12. Pines Michael Y. (Los Angeles CA) Demas Themi H. (Los Angeles CA) Schaefer Robert D. (Huntington Beach CA), Multiple field of view sensor.
  13. Williams David R. ; Vaughn William J. ; Singer Benjamin D. ; Hofer Heidi ; Yoon Geun-Young, Rapid, automatic measurement of the eye's wave aberration.

이 특허를 인용한 특허 (31)

  1. Hirose, Futoshi, Adaptive optical apparatus and imaging apparatus having the same.
  2. Saito, Kenichi, Adaptive optical apparatus and ophthalmic apparatus.
  3. Hammer, Daniel X.; Ferguson, R. Daniel; Mujat, Mircea; Iftimia, Nicusor V., Adaptive optics line scanning ophthalmoscope.
  4. Stack, Matthew E., Application of smooth pursuit cognitive testing paradigms to clinical drug development.
  5. Wright, Dawn D.; Zanini, Diana; Balasubramanian, Kanda Kumar; Spaulding, Terry L.; Evans, Douglas L.; Roffman, Jeffrey H.; McCarthy, Karin D., Cosmetic contact lenses having a sparkle effect.
  6. Sharma, Utkarsh; Everett, Matthew J., Data acquisition methods for reduced motion artifacts and applications in OCT angiography.
  7. Nozato, Koji; Saito, Kenichi; Yang, Qiang, Enhanced algorithm for the detection of eye motion from fundus images.
  8. Chen, Diana C.; Olivier, Scot S.; Jones, Steven M., High-resolution adaptive optics scanning laser ophthalmoscope with multiple deformable mirrors.
  9. Ferguson, R. Daniel; Hammer, Daniel X.; Iftimia, Nicusor V.; Bigelow, Chad, Hybrid spectral domain optical coherence tomography line scanning laser ophthalmoscope.
  10. Ferguson, R. Daniel; Hammer, Daniel X.; Iftimia, Nicusor V.; Bigelow, Chad, Hybrid spectral domain optical coherence tomography line scanning laser ophthalmoscope.
  11. Ferguson, R. Daniel; Hammer, Daniel X.; Iftimia, Nicusor V.; Bigelow, Chad, Hybrid spectral domain optical coherence tomography line scanning laser ophthalmoscope.
  12. Ferguson, R. Daniel; Hammer, Daniel X.; Iftimia, Nicusor V.; Bigelow, Chad, Hybrid spectral domain optical coherence tomography line scanning laser ophthalmoscope.
  13. Miller,Donald T.; Jonnal,Ravi S.; Qu,Junle; Thorn,Karen E., Method and apparatus for improving both lateral and axial resolution in ophthalmoscopy.
  14. Everett, Matthew J.; Flachenecker, Claus; Hacker, Martin; Meyer, Scott A.; O'Hara, Keith E.; Williams, Rick A., Method and apparatus for measuring motion of a subject using a series of partial images from an imaging system.
  15. Everett, Matthew J.; Flachenecker, Claus; Hacker, Martin; Meyer, Scott A.; O'Hara, Keith E.; Williams, Rick A., Method and apparatus for measuring motion of a subject using a series of partial images from an imaging system.
  16. Everett, Matthew J.; Flachenecker, Claus; Hacker, Martin; Meyer, Scott A.; O'Hara, Keith E.; Williams, Rick A., Method and apparatus for measuring motion of a subject using a series of partial images from an imaging system.
  17. Everett, Matthew J.; Flachenecker, Claus; Hacker, Martin; Meyer, Scott A.; O'Hara, Keith E.; Williams, Rick A., Method and apparatus for measuring motion of a subject using a series of partial images from an imaging system.
  18. Everett, Matthew J.; Flachenecker, Claus; Hacker, Martin; Meyer, Scott A.; O'Hara, Keith E.; Williams, Rick A., Method and apparatus for measuring motion of a subject using a series of partial images from an imaging system.
  19. Everett, Matthew J.; O'Hara, Keith E., Method of motion correction in optical coherence tomography imaging.
  20. Everett, Matthew J.; O'Hara, Keith E., Method of motion correction in optical coherence tomography imaging.
  21. Everett, Matthew J.; O'Hara, Keith E., Method of motion correction in optical coherence tomography imaging.
  22. Hammer, Daniel X.; Ferguson, R. Daniel; Mujat, Mircea; Patel, Anket H.; Iftimia, Nicusor V.; Burns, Stephen, Multi-functional adaptive optics retinal imaging.
  23. Saito, Kenichi, Optical image acquisition apparatus having adaptive optics and control method for the same.
  24. Stack, Matthew E., Optical neuroinformatics.
  25. Hammer, Daniel X.; Ferguson, R. Daniel; Iftimia, Nicusor V.; Ustun, Teoman E., Stabilized retinal imaging with adaptive optics.
  26. Hammer, Daniel X.; Ferguson, R. Daniel; Iftimia, Nicusor V.; Ustun, Teoman E., Stabilized retinal imaging with adaptive optics.
  27. Hammer, Daniel X.; Ferguson, R. Daniel; Iftimia, Nicusor V.; Ustun, Teoman E., Stabilized retinal imaging with adaptive optics.
  28. Schallek, Jesse, System and method for observing an object in a blood vessel.
  29. Narasimha-Iyer, Harihar; Everett, Matthew J., Systems and methods for efficiently obtaining measurements of the human eye using tracking.
  30. Narasimha-Iyer, Harihar; Everett, Matthew J., Systems and methods for efficiently obtaining measurements of the human eye using tracking.
  31. Bagherinia, Homayoun; Sharma, Utkarsh, Systems and methods for enhanced accuracy in OCT imaging of the cornea.
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