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Journal Abstract Search


484 related items for PubMed ID: 15364223

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  • 3. Spectral-domain optical coherence tomography with multiple B-scan averaging for enhanced imaging of retinal diseases.
    Sakamoto A, Hangai M, Yoshimura N.
    Ophthalmology; 2008 Jun; 115(6):1071-1078.e7. PubMed ID: 18061270
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  • 4. Spectral optical coherence tomography: a novel technique for cornea imaging.
    Kaluzny BJ, Kałuzny JJ, Szkulmowska A, Gorczyńska I, Szkulmowski M, Bajraszewski T, Wojtkowski M, Targowski P.
    Cornea; 2006 Sep; 25(8):960-5. PubMed ID: 17102675
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  • 5. In vivo three-dimensional high-resolution imaging of rodent retina with spectral-domain optical coherence tomography.
    Ruggeri M, Wehbe H, Jiao S, Gregori G, Jockovich ME, Hackam A, Duan Y, Puliafito CA.
    Invest Ophthalmol Vis Sci; 2007 Apr; 48(4):1808-14. PubMed ID: 17389515
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  • 6. Ocular tissue imaging using ultrahigh-resolution, full-field optical coherence tomography.
    Grieve K, Paques M, Dubois A, Sahel J, Boccara C, Le Gargasson JF.
    Invest Ophthalmol Vis Sci; 2004 Nov; 45(11):4126-31. PubMed ID: 15505065
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  • 7. Spectral optical coherence tomography in video-rate and 3D imaging of contact lens wear.
    Kaluzny BJ, Fojt W, Szkulmowska A, Bajraszewski T, Wojtkowski M, Kowalczyk A.
    Optom Vis Sci; 2007 Dec; 84(12):1104-9. PubMed ID: 18091301
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  • 10. Spectral optical coherence tomography: a new imaging technique in contact lens practice.
    Kałuzny BJ, Kaluzny JJ, Szkulmowska A, Gorczyńska I, Szkulmowski M, Bajraszewski T, Targowski P, Kowalczyk A.
    Ophthalmic Physiol Opt; 2006 Mar; 26(2):127-32. PubMed ID: 16460312
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  • 12. Imaging of the lens capsule with an ultrahigh-resolution spectral optical coherence tomography prototype based on a femtosecond laser.
    Kaluzny BJ, Gora M, Karnowski K, Grulkowski I, Kowalczyk A, Wojtkowski M.
    Br J Ophthalmol; 2010 Mar; 94(3):275-7. PubMed ID: 20215371
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  • 13. Three-dimensional imaging of the foveal photoreceptor layer in central serous chorioretinopathy using high-speed optical coherence tomography.
    Ojima Y, Hangai M, Sasahara M, Gotoh N, Inoue R, Yasuno Y, Makita S, Yatagai T, Tsujikawa A, Yoshimura N.
    Ophthalmology; 2007 Dec; 114(12):2197-207. PubMed ID: 17507096
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  • 14. [Optical coherence tomography: from retina imaging to intraoperative use - a review].
    Hüttmann G, Lankenau E, Schulz-Wackerbarth C, Müller M, Steven P, Birngruber R.
    Klin Monbl Augenheilkd; 2009 Dec; 226(12):958-64. PubMed ID: 20108189
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  • 15. Features of age-related macular degeneration assessed with three-dimensional Fourier-domain optical coherence tomography.
    Menke MN, Dabov S, Sturm V.
    Br J Ophthalmol; 2008 Nov; 92(11):1492-7. PubMed ID: 18703554
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  • 16. Retinal nerve fiber layer imaging with spectral-domain optical coherence tomography: a variability and diagnostic performance study.
    Leung CK, Cheung CY, Weinreb RN, Qiu Q, Liu S, Li H, Xu G, Fan N, Huang L, Pang CP, Lam DS.
    Ophthalmology; 2009 Jul; 116(7):1257-63, 1263.e1-2. PubMed ID: 19464061
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  • 17. Three-dimensional spectral-domain optical coherence tomography images of the retina in the presence of epiretinal membranes.
    Legarreta JE, Gregori G, Knighton RW, Punjabi OS, Lalwani GA, Puliafito CA.
    Am J Ophthalmol; 2008 Jun; 145(6):1023-1030. PubMed ID: 18342830
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  • 18. Imaging the infant retina with a hand-held spectral-domain optical coherence tomography device.
    Scott AW, Farsiu S, Enyedi LB, Wallace DK, Toth CA.
    Am J Ophthalmol; 2009 Feb; 147(2):364-373.e2. PubMed ID: 18848317
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  • 19. Quantitative thickness measurement of retinal layers imaged by optical coherence tomography.
    Shahidi M, Wang Z, Zelkha R.
    Am J Ophthalmol; 2005 Jun; 139(6):1056-61. PubMed ID: 15953436
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  • 20. Comparing retinal thickness measurements from Cirrus spectral domain- and Stratus time domain-optical coherence tomography.
    Geitzenauer W, Kiss CG, Durbin MK, Abunto MT, Callan TM, Stetson PF, Wieland MR, Bressler NM, Gregori G, Schmidt-Erfurth UM.
    Retina; 2010 Apr; 30(4):596-606. PubMed ID: 20098347
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