In vivo characterization of structural and optical properties of human skin by combined photothermal radiometry and diffuse reflectance spectroscopy
暂无分享,去创建一个
Matija Milanič | Boris Majaron | Luka Vidovič | Nina Verdel | Ana Marin | B. Majaron | N. Verdel | A. Marin | M. Milanič | L. Vidovič
[1] H.J.C.M. Sterenborg,et al. Skin optics , 1989, IEEE Transactions on Biomedical Engineering.
[2] Matija Milanič,et al. Objective characterization of bruise evolution using photothermal depth profiling and Monte Carlo modeling , 2015, Journal of biomedical optics.
[3] L Wang,et al. MCML--Monte Carlo modeling of light transport in multi-layered tissues. , 1995, Computer methods and programs in biomedicine.
[4] Matija Milanič,et al. Experimental analysis of bruises in human volunteers using radiometric depth profiling and diffuse reflectance spectroscopy , 2015, European Conference on Biomedical Optics.
[5] L. T. Norvang,et al. Laser treatment of port wine stains: therapeutic outcome in relation to morphological parameters , 1996, The British journal of dermatology.
[6] Matija Milanič,et al. Applicability of diffusion approximation in analysis of diffuse reflectance spectra from healthy human skin , 2013, Biophotonics-Riga.
[7] B. Majaron,et al. Computational model to evaluate port wine stain depth profiling using pulsed photothermal radiometry. , 2004, Journal of biomedical optics.
[8] Matija Milanič,et al. Quantitative characterization of traumatic bruises by combined pulsed photothermal radiometry and diffuse reflectance spectroscopy , 2015, Photonics West - Biomedical Optics.
[9] Steven L Jacques,et al. Optical assessment of cutaneous blood volume depends on the vessel size distribution: a computer simulation study , 2009, Journal of biophotonics.
[10] I. S. Saidi,et al. Mie and Rayleigh modeling of visible-light scattering in neonatal skin. , 1995, Applied optics.
[11] S. Jacques. Optical properties of biological tissues: a review , 2013, Physics in medicine and biology.
[12] B. S. Tanenbaum,et al. Depth profiling of laser-heated chromophores in biological tissues by pulsed photothermal radiometry. , 1995, Journal of the Optical Society of America. A, Optics, image science, and vision.
[13] Valery V. Tuchin,et al. Optical properties of the subcutaneous adipose tissue in the spectral range 400–2500 nm , 2005 .
[14] Elena Salomatina,et al. Optical properties of normal and cancerous human skin in the visible and near-infrared spectral range. , 2006, Journal of biomedical optics.
[15] Boris Majaron,et al. Elimination of single-beam substitution error in diffuse reflectance measurements using an integrating sphere , 2013, Photonics West - Biomedical Optics.
[16] A. Chatziioannou,et al. Tomographic bioluminescence imaging by use of a combined optical-PET (OPET) system: a computer simulation feasibility study , 2005, Physics in medicine and biology.
[17] Valery V. Tuchin,et al. Tissue Optical Properties , 2011 .
[18] B. Majaron,et al. A spectrally composite reconstruction approach for improved resolution of pulsed photothermal temperature profiling in water-based samples , 2009, Physics in medicine and biology.
[19] A. N. Bashkatov,et al. Optical properties of human skin, subcutaneous and mucous tissues in the wavelength range from 400 to 2000 nm , 2005 .
[20] M. Kohl,et al. Near-infrared optical properties of ex vivo human skin and subcutaneous tissues measured using the Monte Carlo inversion technique. , 1998, Physics in medicine and biology.
[21] W. Zijlstra,et al. Visible and Near Infrared Absorption Spectra of Human and Animal Haemoglobin : Determination and Application , 2000 .