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Radiative transfer equation for predicting light propagation in biological media: comparison of a modified finite volume method, the Monte Carlo technique, and an exact analytical solution

Identifieur interne : 003F08 ( Hal/Curation ); précédent : 003F07; suivant : 003F09

Radiative transfer equation for predicting light propagation in biological media: comparison of a modified finite volume method, the Monte Carlo technique, and an exact analytical solution

Auteurs : Fatmir Asllanaj [France] ; Sylvain Contassot-Vivier [France]

Source :

RBID : Hal:hal-01101260

English descriptors

Abstract

The use of visible or NIR (Near Infrared) light provides many possibilities, particularly forapplications in biomedical treatment and diagnosis, such as optical tomography, laser surgery,and photodynamic therapy. To develop an efficient tool, it is essential to have high orderaccuracy models for predicting light propagation within inhomogeneous, absorbing andhighly forward scattering media, typical for biological tissues. Modelling of light propagationthrough biological tissues has traditionally been done with the Diffusion Approximation (DA)or the statistical Monte Carlo (MC) method.

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Hal:hal-01101260

Le document en format XML

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<affiliation ref="#struct-205117"></affiliation>
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<title>International Conferences on Laser Applications in Life Sciences (LALS)</title>
<date type="start">2014-06-29</date>
<date type="end">2014-07-02</date>
<settlement>ULM</settlement>
<country key="DE">Germany</country>
</meeting>
<imprint>
<date type="datePub">2014-07</date>
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<ref type="publisher">http://lals2014.ilm-ulm.de/home.html</ref>
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<language ident="en">English</language>
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<term xml:lang="en">Physics Based Simulation</term>
<term xml:lang="en">Computer science</term>
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<classCode scheme="halDomain" n="info.info-dc">Computer Science [cs]/Distributed, Parallel, and Cluster Computing [cs.DC]</classCode>
<classCode scheme="halTypology" n="COMM">Conference papers</classCode>
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<abstract xml:lang="en">The use of visible or NIR (Near Infrared) light provides many possibilities, particularly forapplications in biomedical treatment and diagnosis, such as optical tomography, laser surgery,and photodynamic therapy. To develop an efficient tool, it is essential to have high orderaccuracy models for predicting light propagation within inhomogeneous, absorbing andhighly forward scattering media, typical for biological tissues. Modelling of light propagationthrough biological tissues has traditionally been done with the Diffusion Approximation (DA)or the statistical Monte Carlo (MC) method.</abstract>
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   |texte=   Radiative transfer equation for predicting light propagation in biological media: comparison of a modified finite volume method, the Monte Carlo technique, and an exact analytical solution
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