Krasnikov Ilya, Seteikin Alexey, Roth Bernhard
1Amur State University, Ignat'evskoe shosse 21, Blagoveshchensk, Russia 675027.
2Immanuel Kant Baltic Federal University, A. Nevskogo Str. 14, Kaliningrad, Russia 236041.
Biomed Eng Lett. 2019 Jul 25;9(3):327-337. doi: 10.1007/s13534-019-00123-x. eCollection 2019 Aug.
Monte Carlo (MC) simulation for light propagation in scattering and absorbing media is the gold standard for studying the interaction of light with biological tissue and has been used for years in a wide variety of cases. The interaction of photons with the medium is simulated based on its optical properties and the original approximation of the scattering phase function. Over the past decade, with the new measurement geometries and recording techniques invented also the corresponding sophisticated methods for the description of the underlying light-tissue interaction taking into account realistic parameters and settings were developed. Applications, such as multiple scattering, optogenetics, optical coherence tomography, Raman spectroscopy, polarimetry and Mueller matrix measurement have emerged and are still constantly improved. Here, we review the advances and recent applications of MC simulation for the active field of the life sciences and the medicine pointing out the new insights enabled by the theoretical concepts.
蒙特卡罗(MC)模拟用于光在散射和吸收介质中的传播,是研究光与生物组织相互作用的金标准,多年来已在各种情况下得到应用。光子与介质的相互作用是根据其光学特性和散射相位函数的原始近似进行模拟的。在过去十年中,随着新的测量几何结构和记录技术的发明,也开发了相应的复杂方法来描述考虑实际参数和设置的潜在光-组织相互作用。诸如多次散射、光遗传学、光学相干断层扫描、拉曼光谱、偏振测量和穆勒矩阵测量等应用已经出现,并且仍在不断改进。在这里,我们回顾了MC模拟在生命科学和医学活跃领域的进展和近期应用,指出了理论概念带来的新见解。