10 Layer Segmentation and Analysis for Retina with Diseases
277
30. D. Hochbaum, A new-old algorithm for minimum-cut and maximum-flow in closure graphs.
Networks 37, 171–193 (2001)
31. J. Picard, Maximal closure of a graph and applications to combinatorial problems. Manage.
Sci. 22, 1268–1272 (1976)
32. C. Tomasi, R. Manduchi, Bilateral filtering for gray and color images, in Proceedings of IEEE
ICCV (1998), pp. 839–846
33. S. Paris, F. Durand, A fast approximation of the bilateral filter using a signal processing
approach. Int. J. Comput. Vis. 81(1), 24–52 (2009)
34. N. Otsu, A threshold selection method from gray-level histograms. IEEE Trans. Syst. Man
Cybern. 9(1), 62–66 (1979)
35. N. Bhagat, R.A. Grigorian, A. Tutela, M.A. Zarbin, Diabetic macular edema: pathogenesis and
treatment. Surv. Ophthalmol. 54, 1–32 (2009)
36. T.A. Ciulla, A.G. Amador, B. Zinman, Diabetic retinopathy and diabetic macular edema:
pathophysiology, screening, and novel therapies. Diab. Care 26, 2653–2664 (2003)
37. A. Goldin, J.A. Beckman, A.M. Schmidt, M.A. Creager, Advanced glycation end products:
sparking the development of diabetic vascular injury. Circulation 114, 597–605 (2006)
38. M.R. Hee, C.A. Puliafito, J.S. Duker, E. Reichel, J.G. Coker, J.R. Wilkins, J.S. Schuman,
E.A. Swanson, J.G. Fujimoto, Topography of diabetic macular edema with optical coherence
tomography. Ophthalmology 105, 360–370 (1998)
39. N. Ahmed, Advanced glycation end products—role in pathology of diabetic complications.
Diab. Res. Clin. Pract. 67, 3–21 (2005)
40. M.D. Abr‘amoff, M.K. Garvin, M. Sonka, Retinal imaging and image analysis. IEEE Trans.
Med. Imaging 3, 169–208 (2010)
41. W. Soliman, B. Sander, T.M. Jørgensen, Enhanced optical coherence patterns of diabetic macular oedema and their correlation with the pathophysiology. Acta Ophthalmol. Scand. 85,
613–617 (2007)
42. T. Wakabayashi, M. Fujiwara, H. Sakaguchi, S. Kusaka, Y. Oshima, Foveal microstructure
and visual acuity in surgically closed macular holes: spectral-domain optical coherence tomographic analysis. Ophthalmology 117, 1815–1824 (2010)
43. A. Sakamoto, K. Nishijima, M. Kita, H. Oh, A. Tsujikawa, N. Yoshimura, Association between
foveal photoreceptor status and visual acuity after resolution of diabetic macular edema by pars
plana vitrectomy. Graefes Arch. Clin. Exp. Ophthalmol. 247, 1325–1330 (2009)
44. R.A. Costa, D. Calucci, M. Skaf, J.A. Cardillo, J.C. Castro, L.A. Melo Jr., M.C. Martins,
P.K. Kaiser, Optical coherence tomography 3: automatic delineation of the outer neural retinal
boundary and its influence on retinal thickness measurements. Invest. Ophthalmol. Vis. Sci.
45, 2399–2406 (2004)
45. T. Otani, Y. Yamaguchi, S. Kishi, Correlation between visual acuity and foveal microstructural
changes in diabetic macular edema. Retina 30, 774–780 (2010)
46. C.K. Leung, S. Lam, R.N. Weinreb et al., Retinal nerve fiber layer imaging with spectral-domain
optical coherence tomography: analysis of the retinal nerve fiber layer map for glaucoma
detection. Ophthalmology 117, 1684–1691 (2010)
47. T. Wakabayashi, Y. Oshima, H. Fujimoto et al., Foveal microstructure and visual acuity after
retinal detachment repair: imaging analysis by Fourier-domain optical coherence tomography.
Ophthalmology 116, 519–528 (2009)
48. P.G. Theodossiadis, V.G. Grigoropoulos, G.P. Theodossiadis, The significance of the external
limiting membrane in the recovery of photoreceptor layer after successful macular hole closure:
a study by spectral domain optical coherence tomography. Ophthalmologica 225, 176–184
(2011)
49. E.J. Fern´andez, B. Povazay, B. Hermann, et al., Three-dimensional adaptive optics ultrahighresolution optical coherence tomography using a liquid crystal spatial light modulator. Vis.
Res. 45, 3432–3444 (2005)
50. S. Schmitz-Valckenberg, M. Fleckenstein, A.P. G¨obel, T.C. Hohman, F.G. Holz, Optical coherence tomography and autofluorescence findings in areas with geographic atrophy due to age
related macular degeneration. Invest Ophthalmol. Vis. Sci. 52, 1–6 (2011)
277
30. D. Hochbaum, A new-old algorithm for minimum-cut and maximum-flow in closure graphs.
Networks 37, 171–193 (2001)
31. J. Picard, Maximal closure of a graph and applications to combinatorial problems. Manage.
Sci. 22, 1268–1272 (1976)
32. C. Tomasi, R. Manduchi, Bilateral filtering for gray and color images, in Proceedings of IEEE
ICCV (1998), pp. 839–846
33. S. Paris, F. Durand, A fast approximation of the bilateral filter using a signal processing
approach. Int. J. Comput. Vis. 81(1), 24–52 (2009)
34. N. Otsu, A threshold selection method from gray-level histograms. IEEE Trans. Syst. Man
Cybern. 9(1), 62–66 (1979)
35. N. Bhagat, R.A. Grigorian, A. Tutela, M.A. Zarbin, Diabetic macular edema: pathogenesis and
treatment. Surv. Ophthalmol. 54, 1–32 (2009)
36. T.A. Ciulla, A.G. Amador, B. Zinman, Diabetic retinopathy and diabetic macular edema:
pathophysiology, screening, and novel therapies. Diab. Care 26, 2653–2664 (2003)
37. A. Goldin, J.A. Beckman, A.M. Schmidt, M.A. Creager, Advanced glycation end products:
sparking the development of diabetic vascular injury. Circulation 114, 597–605 (2006)
38. M.R. Hee, C.A. Puliafito, J.S. Duker, E. Reichel, J.G. Coker, J.R. Wilkins, J.S. Schuman,
E.A. Swanson, J.G. Fujimoto, Topography of diabetic macular edema with optical coherence
tomography. Ophthalmology 105, 360–370 (1998)
39. N. Ahmed, Advanced glycation end products—role in pathology of diabetic complications.
Diab. Res. Clin. Pract. 67, 3–21 (2005)
40. M.D. Abr‘amoff, M.K. Garvin, M. Sonka, Retinal imaging and image analysis. IEEE Trans.
Med. Imaging 3, 169–208 (2010)
41. W. Soliman, B. Sander, T.M. Jørgensen, Enhanced optical coherence patterns of diabetic macular oedema and their correlation with the pathophysiology. Acta Ophthalmol. Scand. 85,
613–617 (2007)
42. T. Wakabayashi, M. Fujiwara, H. Sakaguchi, S. Kusaka, Y. Oshima, Foveal microstructure
and visual acuity in surgically closed macular holes: spectral-domain optical coherence tomographic analysis. Ophthalmology 117, 1815–1824 (2010)
43. A. Sakamoto, K. Nishijima, M. Kita, H. Oh, A. Tsujikawa, N. Yoshimura, Association between
foveal photoreceptor status and visual acuity after resolution of diabetic macular edema by pars
plana vitrectomy. Graefes Arch. Clin. Exp. Ophthalmol. 247, 1325–1330 (2009)
44. R.A. Costa, D. Calucci, M. Skaf, J.A. Cardillo, J.C. Castro, L.A. Melo Jr., M.C. Martins,
P.K. Kaiser, Optical coherence tomography 3: automatic delineation of the outer neural retinal
boundary and its influence on retinal thickness measurements. Invest. Ophthalmol. Vis. Sci.
45, 2399–2406 (2004)
45. T. Otani, Y. Yamaguchi, S. Kishi, Correlation between visual acuity and foveal microstructural
changes in diabetic macular edema. Retina 30, 774–780 (2010)
46. C.K. Leung, S. Lam, R.N. Weinreb et al., Retinal nerve fiber layer imaging with spectral-domain
optical coherence tomography: analysis of the retinal nerve fiber layer map for glaucoma
detection. Ophthalmology 117, 1684–1691 (2010)
47. T. Wakabayashi, Y. Oshima, H. Fujimoto et al., Foveal microstructure and visual acuity after
retinal detachment repair: imaging analysis by Fourier-domain optical coherence tomography.
Ophthalmology 116, 519–528 (2009)
48. P.G. Theodossiadis, V.G. Grigoropoulos, G.P. Theodossiadis, The significance of the external
limiting membrane in the recovery of photoreceptor layer after successful macular hole closure:
a study by spectral domain optical coherence tomography. Ophthalmologica 225, 176–184
(2011)
49. E.J. Fern´andez, B. Povazay, B. Hermann, et al., Three-dimensional adaptive optics ultrahighresolution optical coherence tomography using a liquid crystal spatial light modulator. Vis.
Res. 45, 3432–3444 (2005)
50. S. Schmitz-Valckenberg, M. Fleckenstein, A.P. G¨obel, T.C. Hohman, F.G. Holz, Optical coherence tomography and autofluorescence findings in areas with geographic atrophy due to age
related macular degeneration. Invest Ophthalmol. Vis. Sci. 52, 1–6 (2011)
