1Victoria Univ. of Wellington (New Zealand) 2Lab. de Physique des Interfaces et des Couches Minces, CNRS (France) 3Institut Polytechnique de Paris (France) 4Aston Univ. (United Kingdom) 5Optoelectronics and Measurement Techniques, Univ. of Oulu (Finland) 6Univ. of Oulu (Finland)
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Current report considers further development of an online, cloud-based application for polarized light propagation in turbid scattering media its practical use in the creation of novel optical biopsy and sensing techniques. As a part of the ongoing effort to create a generalized platform, we implemented a Monte Carlo based technique based on the tracking of the transformations of the electric field amplitudes as well as the Stokes vectors along the photon packet trajectories. The results are compared with exact analytical solutions, phantom studies and experimental data obtained during laboratory studies. Computational solutions are accelerated by parallel programming on graphics processing units (GPUs), offer a responsive web interface and provide nearly real time access to the results of simulations.
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Alexander Doronin, Hee Ryung Lee, Igor Meglinski, Alexander Bykov, Tatiana Novikova, "Cloud-based online application for imitation of polarized light propagation in turbid scattering media," Proc. SPIE 11484, Optical Modeling and Performance Predictions XI, 1148409 (20 August 2020); https://doi.org/10.1117/12.2568271