| Literature DB >> 18317526 |
Chintha C Handapangoda1, Malin Premaratne.
Abstract
An approximate numerical technique for modeling optical pulse propagation through weakly scattering biological tissue is developed by solving the photon transport equation in biological tissue that includes varying refractive index and varying scattering/absorption coefficients. The proposed technique involves first tracing the ray paths defined by the refractive index profile of the medium by solving the eikonal equation using a Runge-Kutta integration algorithm. The photon transport equation is solved only along these ray paths, minimizing the overall computational burden of the resulting algorithm. The main advantage of the current algorithm is that it enables to discretise the pulse propagation space adaptively by taking optical depth into account. Therefore, computational efficiency can be increased without compromising the accuracy of the algorithm.Entities:
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Year: 2008 PMID: 18317526 PMCID: PMC2248613 DOI: 10.1155/2008/784354
Source DB: PubMed Journal: J Biomed Biotechnol ISSN: 1110-7243
Figure 1A set of possible ray paths in a Maxwell's fish-eye.
Figure 3Few ray paths for a medium with a refractive index profile given by (14).
Figure 4Intensity a mm for different asymmetry factor () values.
Figure 5Forward intensity at different locations for isotropic () scattering.