Effects of probe geometry on transscleral diffuse optical spectroscopy
暂无分享,去创建一个
Stefan Andersson-Engels | Pontus Svenmarker | Jørgen Krohn | Can T. Xu | S. Andersson-Engels | P. Svenmarker | J. Krohn
[1] A Roggan,et al. Optical properties of ocular fundus tissues--an in vitro study using the double-integrating-sphere technique and inverse Monte Carlo simulation. , 1995, Physics in medicine and biology.
[2] B. Wilson,et al. Absorption spectroscopy in tissue-simulating materials: a theoretical and experimental study of photon paths. , 1995, Applied optics.
[3] Nirmala Ramanujam,et al. Effect of fiber optic probe geometry on depth-resolved fluorescence measurements from epithelial tissues: a Monte Carlo simulation. , 2003, Journal of biomedical optics.
[4] B. Pogue,et al. Tutorial on diffuse light transport. , 2008, Journal of biomedical optics.
[5] C. Shields,et al. PSEUDOMELANOMAS OF THE POSTERIOR UVEAL TRACT: The 2006 Taylor R. Smith Lecture , 2005, Retina.
[6] A. Wells,et al. Visual field changes after transient elevation of intraocular pressure in eyes with and without glaucoma. , 2008, Ophthalmology.
[7] A. Yodh,et al. Diffuse optics for tissue monitoring and tomography , 2010, Reports on progress in physics. Physical Society.
[8] Ian A Sigal,et al. Dimensions of the human sclera: Thickness measurement and regional changes with axial length. , 2009, Experimental eye research.
[9] J. Krohn,et al. Posterior uveal melanoma treated with I-125 brachytherapy or primary enucleation , 2008, Eye.
[10] Stefan Andersson-Engels,et al. Comparison of spatially and temporally resolved diffuse-reflectance measurement systems for determination of biomedical optical properties. , 2003, Applied optics.
[11] Stefan Andersson-Engels,et al. Transscleral visible/near-infrared spectroscopy for quantitative assessment of melanin in a uveal melanoma phantom of ex vivo porcine eyes. , 2010, Experimental eye research.
[12] W. Hubbard,et al. Porcine sclera: thickness and surface area. , 2002, Investigative ophthalmology & visual science.
[13] N Kollias,et al. Spectroscopic characteristics of human melanin in vivo. , 1985, The Journal of investigative dermatology.
[14] T. Meredith,et al. Principles and Practice of Ophthalmology , 1982 .
[15] J. Krohn,et al. Light microscopy of uveoscleral drainage routes after gelatine injections into the suprachoroidal space. , 1998, Acta ophthalmologica Scandinavica.
[16] I. Rennie. Things that go bump in the light. The differential diagnosis of posterior uveal melanomas , 2002, Eye.
[17] H. Höh,et al. Kontinuierliche mehrtägige intraokulare Augeninnendruckmessung mit dem CODMAN-Mikrosensor - Ein Fallbericht , 1999 .
[18] B. Pogue,et al. Review of tissue simulating phantoms for optical spectroscopy, imaging and dosimetry. , 2006, Journal of biomedical optics.
[19] J. W. Evans,et al. Anatomy and Histology of the Eye and Orbit in Domestic Animals. , 1961 .
[20] H F Edelhauser,et al. Human sclera: thickness and surface area. , 1998, American journal of ophthalmology.
[21] W. Zijlstra,et al. Visible and Near Infrared Absorption Spectra of Human and Animal Haemoglobin : Determination and Application , 2000 .
[22] Renato Marchesini,et al. In vivo characterization of melanin in melanocytic lesions: spectroscopic study on 1671 pigmented skin lesions. , 2009, Journal of biomedical optics.
[23] T Joshua Pfefer,et al. Selective detection of fluorophore layers in turbid media: the role of fiber-optic probe design. , 2003, Optics letters.
[24] G. Brown,et al. The differential diagnosis of posterior uveal melanoma. , 1980, Ophthalmology.
[25] Can T. Xu,et al. Transscleral visible/near‐infrared spectroscopy for quantitative assessment of haemoglobin in experimental choroidal tumours , 2012, Acta ophthalmologica.
[26] Dudley A. Williams,et al. Optical properties of water in the near infrared. , 1974 .
[27] Sander Schutte,et al. Elasticity, viscosity, and deformation of orbital fat. , 2006, Investigative ophthalmology & visual science.
[28] Karthik Vishwanath,et al. Advances in quantitative UV-visible spectroscopy for clinical and pre-clinical application in cancer. , 2009, Current opinion in biotechnology.
[29] Wei-Chiang Lin,et al. Effects of probe contact pressure on in vivo optical spectroscopy. , 2008, Optics express.
[30] B. Cameron,et al. Laser in situ keratomileusis-induced optic neuropathy. , 2001, Ophthalmology.