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应用基于时变二维辐射传输方程的生物组织光学新计算方法。

Applying a new computational method for biological tissue optics based on the time-dependent two-dimensional radiative transfer equation.

机构信息

Université de Lorraine, LEMTA, UMR 7563, Vandœuvre-lés-Nancy, F-54500, France.

出版信息

J Biomed Opt. 2012 Jul;17(7):075007. doi: 10.1117/1.JBO.17.7.075007.

Abstract

Optical tomography is a medical imaging technique based on light propagation in the near infrared (NIR) part of the spectrum. We present a new way of predicting the short-pulsed NIR light propagation using a time-dependent two-dimensional-global radiative transfer equation in an absorbing and strongly anisotropically scattering medium. A cell-vertex finite-volume method is proposed for the discretization of the spatial domain. The closure relation based on the exponential scheme and linear interpolations was applied for the first time in the context of time-dependent radiative heat transfer problems. Details are given about the application of the original method on unstructured triangular meshes. The angular space (4πSr) is uniformly subdivided into discrete directions and a finite-differences discretization of the time domain is used. Numerical simulations for media with physical properties analogous to healthy and metastatic human liver subjected to a collimated short-pulsed NIR light are presented and discussed. As expected, discrepancies between the two kinds of tissues were found. In particular, the level of light flux was found to be weaker (inside the medium and at boundaries) in the healthy medium than in the metastatic one.

摘要

光学层析成像技术是一种基于近红外(NIR)光在生物组织中传播的医学成像技术。我们提出了一种新的方法来预测短脉冲近红外光在吸收和强各向异性散射介质中的传播,使用依赖于时间的二维全局辐射传递方程。提出了一种用于离散空间域的单元顶点有限体积法。基于指数方案和线性插值的封闭关系首次应用于时变辐射传热问题中。详细介绍了原始方法在非结构三角网格上的应用。角空间(4πSr)被均匀地细分为离散方向,并使用时域的有限差分离散化。针对类似于健康和转移性人类肝脏的具有物理特性的介质进行了数值模拟,并对模拟结果进行了讨论。正如预期的那样,两种组织之间存在差异。特别是,在健康组织中,光通量(在介质内部和边界处)比在转移性组织中弱。

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