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| 1 | Monte Carlo方法模拟光在生物组织中传播的新进展显示文摘Monte Carlo方法已被广泛用于模拟复杂的随机介质如生物组织中光的辐射传输.在生物光子应用中,早期的Monte Carlo模拟模型忽略了光在组织中传输的波动性,而用中性粒子光子包来模拟其传播过程.然而,许多光学诊断技术是基于光在组织中的偏振效应和多重散射的相干性来揭示组织的生理和病理信息,这就要涉及光辐射的波动性.本文阐述了用Monte Carlo方法模拟光在生物组织中传播的最新进展. | 邓勇 Igor Meglinski | 2010 | 物理学报2010,59,2: | 5 |
| 2 | Human tissue color as viewed in high dynamic range optical spectral transmission measurements 显示文摘 | Petrov GI Doronin A Whelan HT Meglinski I Yakovlev VV | 2012 | Biomed Opt Express2012,3,9: | 1 |
| 3 | New Monte Carlo model of laser radiation propagation in sprays, aerosols and other complex polydisperse turbid media 显示文摘 | BERROCAL E JERMY M MEGLINSKI I V | 2006 | SPIE2006,6163,: | 1 |
| 4 | Online object oriented Monte Carlo computational tool for the needs of biomedical optics 显示文摘 | Doronin A Meglinski I | 2011 | Biomedical Optics Express2011,2,9: | 1 |
| 5 | Quantitative assessment of skin layers absorption and skin reflectance spec- tra simulation in the visible and near-infrared spec- tral regions 显示文摘 | Meglinski I V Matcher S J | 2002 | Physiological Measurement2002,23,4: | 1 |
| 6 | Backscattering of circular polarized light from a disperse random medium influenced by optical clearing 显示文摘 | Macdonald C Meglinski I | 2011 | Laser Physics Letters2011,8,4: | 1 |
| 7 | Modelling the sampling volume for skin blood oxygenation measurements显示文摘 | MEGLINSKY I V MATCHER S J | 2001 | Med Biol Eng Comput2001,39,1: | 1 |
| 8 | Quantitative assessment of skin layers absorption and skin reflectance spectra simulation in the visible and near-infrared spectral regions显示文摘 | Meglinsky IV Matcher SJ | 2002 | Physiol Measur2002,23,: | 1 |
| 9 | New Monte Carlo model of laser radiation propagation in sprays, aerosols and other complex polydisperse turbid media 显示文摘 | Berrocal Jermy E Meglinski M | 2006 | SPIE2006,6163,: | 1 |
| 10 | Modelling the sampling volume for the skin blood oxygenation measurements显示文摘 | Meglinsky IV Marcher SJ | 2001 | Med Biol Eng Comput2001,39,: | 1 |
| 11 | Modelling the sampling vol- ume for skin blood ox ygenation measurements显示文摘 | Meglinsky I V Marcher S J | 2001 | Med Biol Eng Comput2001,39,1: | 1 |
| 12 | Monte Carlo Modeling of Polarized Light Propagation in Biological Tissues 显示文摘 | Gangnus S V Matcher S J Meglinski I V | 2004 | Laser Physics2004,14,6: | 1 |
| 13 | Monte Carlo Modeling of Polarized Light Propagation in Biological Tissues显示文摘 | Gangnus S V Matcher S J Meglinski I V | | 0,,06: | 1 |
| 14 | APPLICATION OF DOPPLER OPTICAL COHERENCE TOMOGRAPHY IN RHEOLOGICAL STUDIES:BLOOD FLOW AND VESSELS MECHANICAL PROPERTIES EVALUATION显示文摘Doppler Optical Coherence Tomography(DOCT)is a noninvasive optical diagnostic technique,which is well suited for the quantitative mapping of microflow velocity profiles and the analysis of flow-vessel interactions.The noninvasive imaging and quantitative analysis of blood flow in the complex-structured vascular bed is required in many biomedical applications,including those where the determination of mechanical properties of vessels or the knowledge of the mechanic interactions between the flow and the housing medium plays a key role.The change of microvessel wall elasticity could be a potential indicator of cardiovascular disease at the very early stage,whilst monitoring the blood flow dynamics and associated temporal and spatial variations in vessel’s wall shear stress could help predicting the possible rupture of atherosclerotic plaques.The results of feasibility studies of application of DOCT for the evaluation of mechanical properties of elastic vessel model are presented.The technique has also been applied for imaging of sub-cranial rat blood flow in vivo. | MARCO BONESI ANEURIN J.KENNERLEY IGOR MEGLINSKI STEPHEN MATCHER | 2009 | Journal of Innovative Optical Health Sciences2009,2,4: | 1 |
| 15 | Introduction to the special issue on polarization of light in biomedical applications显示文摘Although birefringence was discovered just three years after white light was separated into different colors,polarimetry has lagged behind spectroscopy in characterizing diverse materials,likely due to our naked eyes'limited sensitivity to polarizations.Recent advancements in light sources,polarization optics,detectors,displays,data processing,and feature extraction techniques are rapidly propelling polarimetry as a convenient and potent tool for probing the distinct properties of complex and turbid materials.It is well known now that polarization properties of a material encode rich information on its distinct features,including not only the bulk optical properties related with dispersions and absorptions,but also distribution and microstructural properties of the scattering particles in turbid media such as the size,shape,orientation and alignment,surface morphology and internal structure,etc.All these features can be used for differentiating different materials,sensing ambient environment around scatterers,or monitoring dynamic processes in complex systems. | Igor Meglinski Lingyan Shi Ma Hui | 2023 | Journal of Innovative Optical Health Sciences2023,16,5: | 0 |