scholarly journals Estimation of Photon Distribution within Biological Tissue Using Monte Carlo Simulation

Author(s):  
Hyun Soo Lim
2021 ◽  
Vol 12 (4) ◽  
pp. 259-271
Author(s):  
N. V. Bezuglaya ◽  
A. A. Haponiuk ◽  
D. V. Bondariev ◽  
S. A. Poluectov ◽  
V. A. Chornyi ◽  
...  

Biomedical photometersʼ information-measuring systems with ellipsoidal reflectors have acceptable results in determining of biological tissues optical properties in the visible and near-infrared spectral range. These photometers make it possible to study the optical radiation propagation in turbid media for direct and inverse problems of light-scattering optics. The purpose of this work is to study the influence of the ellipsoidal reflectors design parameters on the results of biomedical photometry when simulating the optical radiation propagation in a system of biological tissue and reflectors in transmitted and reflected light.The paper substantiates the choice of the ellipsoidal reflectors’ focal parameter for efficient registration of forward and backscattered light. The methodology of the process is illustrated by the results of a model experiment using the Monte Carlo simulation for samples of human brain white and gray matter at the visible range of 405 nm, 532 nm, and 650 nm. The total transmittance, diffuse reflectance, and absorption graphs depending on the sample thickness were obtained. Based on the introduced concepts of the ellipsoidal reflector efficiency index and its efficiency factor, the expediency of choosing the ellipsoidal reflectors focal parameter is analyzed to ensure the registration of the maximum amount of scattered light. The graphs of efficiency index in reflected and transmitted light for different thickness samples of white and gray matter and efficiency factors depending on the sample thickness were obtained.The influence of the reflectors ellipticity on the illuminance of various zones of photometric images using the example of an absorbing biological medium – pig liver tissue – at wavelength of 405 nm with a Monte Carlo simulation was analyzed.The optical properties of biological media (scattering and absorption coefficients, scattering anisotropy factor, refractive index) and the samples’ geometric dimensions, particularly the thickness, are predetermined when choosing the ellipsoidal reflectors parameters for registration of the scattered light. Coordinates of the output of photons and their statistical weight obtained in the Monte Carlo simulation of light propagation in biological tissue have a physical effect on a characteristic scattering spot formation in the receiving plane of a biomedical photometer with ellipsoidal reflectors.


2018 ◽  
Vol 11 (12) ◽  
pp. e201800036 ◽  
Author(s):  
K. L. Barry Fung ◽  
Masood Samim ◽  
Adam Gribble ◽  
Virginijus Barzda ◽  
I. Alex Vitkin

2018 ◽  
Vol 1147 ◽  
pp. 12-17
Author(s):  
Gamoltip Kaewboonrueng ◽  
Yiğiter Özmen ◽  
Sarai Lekchaum ◽  
Kitsakorn Locharoenrat

We have investigated a possibility of photon propagation into the human tissue model (skin, fat, and skeletal muscle) by Monte Carlo method using Matlab program. There were some parameters of each tissue layer effecting on the light packet, for instance the absorption coefficient, scattering coefficient, anisotropy factor and thickness. It was found that the photon distribution on the surface of the human tissue and photon penetration into the human tissue under the propagation of 100,000 photons were - 0.8580 cm to + 0.7030 cm (served as two detection points) and 0.7220 cm respectively. Therefore, the simulation result gave the photon penetration depth of 0.2220 cm at the skeletal muscle. These numbers could be primarily used as a standard for design and construction of the tissue diagnostic instrument.


2002 ◽  
Author(s):  
Sergei V. Gangnus ◽  
Stephen J. Matcher ◽  
Igor V. Meglinski

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