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Innovation

Effect of translation and rotation fitting on analysis of corneal topography

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Pages 309-315 | Received 04 Nov 2014, Accepted 07 Apr 2015, Published online: 17 Jul 2015

References

  • Fatt, I., 1978, Physiology of the eye: An introduction to the vegetative functions (London: Butterworths). pp. 1–42
  • Klyce, S.D., 1984, Computer-assisted corneal topography. High-resolution graphic presentation and analysis of keratoscopy. Investigative Ophthalmology & Visual Science, 25, 1426–1435
  • Karabatsas, C.H., Cook, S.D., Figueiredo, F.C., Diamond, J.P., and Easty, D.L., 1998, Surgical control of late postkeratoplasty astigmatism with or without the use of computerized video keratography: A prospective, randomized study. Ophthalmology, 105, 1999–2006
  • Alessio, G., Boscia, F., La Tegola, M.G., and Sborgia, C., 2001, Topography-driven excimer laser for the retreatment of decentralized myopic photorefractive keratectomy. Ophthalmology, 108, 1695–1703
  • Maeda, N., Klyce, S., and Smolek, M., 1995, Comparison of methods for detecting keratoconus using videokeratography. Archives of Ophthalmology, 7, 870–874
  • Levy, D., Hutchings, H., Rouland, J.F., Guell, J., Burillon, C., Arné, J.L., Colin, J., Laroche, L., Montard, M., Delbosc, B., Aptel, I., Ginisty, H., Grandjean, H., Malecaze, F., 2004, Videokeratographic anomalies in familial keratoconus. Ophthalmology, 111, 867–874
  • Szczotka, L.B., 1997, Clinical evaluation of a topographically based contact lens fitting software. Optometry & Vision Science, 74, 14–19
  • Bhatoa, N.S., Hau, S., and Ehrlich, D.P., 2010, A comparison of a topography-based rigid gas permeable contact lens design with a conventionally fitted lens in patients with keratoconus. Contact Lens & Anterior Eye, 33, 128–135
  • Guillon, M., Lydon, D.P., and Wilson, C., 1986, Corneal topography: A clinical model. Ophthalmic & Physiological Optics, 6, 47–56
  • Schwiegerling, J., Greivenkamp, J.E., and Miller, J.M., 1995, Representation of videokeratoscopic height data with Zernike polynomials. Journal of the Optical Society of America A: Optics, Image, Science & Vision, 12, 2105–2113
  • Salmon, T.O., and Thibos, L.N., 2002, Videokeratoscope-line-of-sight misalignment and its effect on measurements of corneal and internal ocular aberrations. Journal of the Optical Society of America A: Optics, Image, Science & Vision, 19, 657–669
  • Mandell, R.B., Chiang, C.S., and Yee, L., 1996, Asymmetric corneal toricity and pseudokeratoconus in videokeratography. Journal of the American Optometric Association, 67, 540–547
  • McMonnies, C.W., 2012, Assessing corneal hysteresis using the ocular response analyzer. Optometry & Vision Science, 89, E343–E349
  • Iskander, D.R., 2009, Modeling videokeratoscopic height data with spherical harmonics. Optometry & Vision Science, 86, 542–547
  • Schwiegerling, J. and Snyder, R.W., 1998, Custom photorefractive keratectomy ablations for the correction of spherical and cylindrical refractive error and higher-order aberration. Journal of the Optical Society of America A: Optics, Image, Science & Vision, 15, 2572–2579
  • Marcos, S., Cano, D., and Barbero, S., 2003, Increase in corneal asphericity after standard laser in situ keratomileusis for myopia is not inherent to the Munnerlyn algorithm. Journal of Refractive Surgery, 19, S592–596
  • Navarro, R., Gonzalez, L., and Hernandez, J.L., 2006, Optics of the average normal cornea from general and canonical representations of its surface topography. Journal of the Optical Society of America A: Optics, Image, Science & Vision, 23, 219–232
  • Wang, Z., 2002, A universal image quality index. IEEE Signal Processing Letters, 9, 81–84
  • Wang, Z., Bovik, A.C., Sheikh, H.R., and Simoncelli, E.P., 2004, Image quality assessment: From error visibility to structural similarity. IEEE on Transactions Image Processing, 13, 600–612
  • Schwiegerling, J., and Snyder, R.W., 2000, Corneal ablation patterns to correct for spherical aberration in photorefractive keratectomy. Journal of Cataract & Refractive Surgery, 26, 214–221
  • Patterson, T., 2008, Creating a national greographic-style physical. 6th ICA mountain cartography workshop on Mountain Mapping and Visualisation, Lenk, Switzerland, 155–161
  • Xu, J., Bao, J., Lu, F., and He, J.C., 2012, An indirect method to compare the reference centres for corneal measurements. Ophthalmic & Physiological Optics, 32, 125–132
  • Tejedor, J., and Guirao, A., 2012, Diagnosis and imaging of corneal astigmatism 2. In: Goggin M, eds. Astigmatism - Optics, Physiology and Management. (Croatia: Intech). pp. 75–90
  • Zhang, Z., Wang, J., Niu, W., Ma, M., Jiang, K., Zhu, P., Ke, B., 2011, Corneal asphericity and its related factors in 1052 Chinese subjects. Optometry & Vision Science, 88, 1232–1239
  • Carney, L.G., Mainstone, J.C., and Henderson, B.A., 1997, Corneal topography and myopia. A cross-sectional study. Investigative Ophthalmology & Visual Science, 38, 311–320
  • Webb, R.H., 1992, Zernike polynomial description of ophthalmic surfaces. Ophthalmic and Visual Optics vol 3 Technical Digest Series (Washington, DC: Optical Society of America). pp. 28–31
  • Iskander, D.R., Morelande, M.R., Collins, M.J., and Davis, B., 2002, Modeling of corneal surfaces with radial polynomials. IEEE Transactions on Biomedical Engineering, 49, 320–328
  • Martinez-Finkelshtein, A., Delgado, A.M., Castro, G.M., Zarzo, A., and Alio, J.L., 2009, Comparative analysis of some modal reconstruction methods of the shape of the cornea from corneal elevation data. Investigative Ophthalmology & Visual Science, 50, 5639–5645
  • Spoerl, E., Huhle, M., and Seiler, T., 1998, Induction of cross-links in corneal tissue. Experimental Eye Research, 66, 97–103
  • Zhu, Z., Janunts, E., Eppig, T., Sauer, T., and Langenbucher, A., 2010, Iteratively re-weighted bi-cubic spline representation of corneal topography and its comparison to the standard methods. Zeitschrift fur Medizinische Physik, 20, 287–298
  • Halstead, M.A., Barsky, B.A., Klein, S.A., and Mandell, R.B., 1995, A spline surface algorithm for reconstruction of corneal topography from a videokeratographic reflection pattern. Optometry & Vision Science, 72, 821–827
  • Schneider, M., Iskander, D.R., and Collins, M.J., 2009, Modeling corneal surfaces with rational functions for high-speed videokeratoscopy data compression. IEEE Transactions on Biomedical Engineering, 56, 493–499

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