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心脏光学成像的生物光子学建模

Biophotonic Modelling of Cardiac Optical Imaging.

作者信息

Bishop Martin J, Plank Gernot

机构信息

Department of Biomedical Engineering, King's College London, St. Thomas' Hospital, London, SE1 7EM, UK,

出版信息

Adv Exp Med Biol. 2015;859:367-404. doi: 10.1007/978-3-319-17641-3_15.

Abstract

Computational models have been recently applied to simulate and better understand the nature of fluorescent photon scattering and optical signal distortion during cardiac optical imaging. The goal of such models is both to provide a useful post-processing tool to facilitate a more accurate and faithful comparison between computational simulations of electrical activity and experiments, as well as providing essential insight into the mechanisms underlying this distortion, suggesting ways in which it may be controlled or indeed utilised to maximise the information derived from the recorded fluorescent signal. Here, we present different modelling methodologies developed and used in the field to simulate both the explicit processes involved in optical signal synthesis and the resulting consequences of the effects of photon scattering within the myocardium upon the optically-detected signal. We focus our attentions to two main types of modelling approaches used to simulate light transport in cardiac tissue, specifically continuous (reaction-diffusion) and discrete stochastic (Monte Carlo) methods. For each method, we provide both a summary of the necessary methodological details of such models, in addition to brief reviews of relevant application studies which have sought to apply these methods to elucidate important information regarding experimentally-recorded optical signals under different circumstances.

摘要

计算模型最近已被用于模拟和更好地理解心脏光学成像过程中荧光光子散射和光信号失真的本质。此类模型的目标既是提供一个有用的后处理工具,以促进电活动的计算模拟与实验之间进行更准确和可靠的比较,也是深入洞察这种失真背后的机制,提出控制或利用这种失真的方法,以最大化从记录的荧光信号中获取的信息。在此,我们介绍该领域开发和使用的不同建模方法,以模拟光信号合成中涉及的具体过程以及心肌内光子散射对光学检测信号的影响所产生的后果。我们将注意力集中在用于模拟心脏组织中光传输的两种主要建模方法上,特别是连续(反应扩散)方法和离散随机(蒙特卡洛)方法。对于每种方法,我们不仅提供此类模型必要的方法细节总结,还简要回顾相关应用研究,这些研究试图应用这些方法来阐明不同情况下实验记录的光学信号的重要信息。

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