Weight matrix analysis for back reflection continuous wave diffuse optical tomography (CWDOT) systems: translational method

作者: Huseyin Ozgur Kazanci

DOI: 10.1007/S11082-015-0252-9

关键词:

摘要: Back reflection continuous wave diffuse optical tomography (CWDOT) systems use forward model photon fluence rate distributions for inverse problem solution to be able reconstruct images. Forward weight functions are also known as inside the homogenous media. The linearized equation used CWDOT imaging. To recover unknown delta absorption coefficients over background media system has solved. In this work matrix have been calculated according distribution of radiative transport in theoretical physics. After is set, mathematical methods applied. literature, nonlinear but they never popular. main goal study show alternative generation method. very important systems. Monte Carlo (MC) simulations create by using radiation via Rytov or Born approximation. sent into tissue, step distances each photons computed and scattering angles known. It occurrence probability voxel Henyey-Greenstein phase function. generated MC simulation data migrated from environment image reconstruction algorithm environment. successively explained translational

参考文章(11)
Steven L. Jacques, Lihong Wang, Monte Carlo Modeling of Light Transport in Tissues Springer. pp. 73- 100 ,(1995) , 10.1007/978-1-4757-6092-7_4
STEVEN L. JACQUES, SPECTRAL IMAGING AND ANALYSIS TO YIELD TISSUE OPTICAL PROPERTIES Journal of Innovative Optical Health Sciences. ,vol. 02, pp. 123- 129 ,(2009) , 10.1142/S1793545809000528
Lihong Wang, Steven L. Jacques, Liqiong Zheng, Conv—convolution for responses to a finite diameter photon beam incident on multi-layered tissues Computer Methods and Programs in Biomedicine. ,vol. 54, pp. 141- 150 ,(1997) , 10.1016/S0169-2607(97)00021-7
Steven L. Jacques, Modeling tissue optics using Monte Carlo modeling: a tutorial Optical Interactions with Tissue and Cells XIX. ,vol. 6854, ,(2008) , 10.1117/12.776997
Lihong Wang, Steven L. Jacques, Liqiong Zheng, MCML—Monte Carlo modeling of light transport in multi-layered tissues Computer Methods and Programs in Biomedicine. ,vol. 47, pp. 131- 146 ,(1995) , 10.1016/0169-2607(95)01640-F
Hüseyin Özgür Kazanci, Tanju Mercan, Murat Canpolat, Design and evaluation of a reflectance diffuse optical tomography system Optical and Quantum Electronics. ,vol. 47, pp. 257- 265 ,(2015) , 10.1007/S11082-014-9910-6
Shechao C. Feng, Fanan Zeng, Britton Chance, Monte Carlo simulations of photon migration path distributions in multiple scattering media Photon Migration and Imaging in Random Media and Tissues. ,vol. 1888, pp. 78- 89 ,(1993) , 10.1117/12.154624
Scott A Prahl, None, A Monte Carlo model of light propagation in tissue Advanced Optical Technologies. ,vol. 10305, pp. 1030509- ,(1989) , 10.1117/12.2283590
Lihong Wang, Steven L. Jacques, Optimized radial and angular positions in Monte Carlo modeling Medical Physics. ,vol. 21, pp. 1081- 1083 ,(1994) , 10.1118/1.597351
Huseyin O. Kazanci, Steven L. Jacques, Diffuse light tomography to detect blood vessels using Tikhonov regularization Saratov Fall Meeting 2015: Third International Symposium on Optics and Biophotonics and Seventh Finnish-Russian Photonics and Laser Symposium (PALS). ,vol. 9917, ,(2016) , 10.1117/12.2230074