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光学微循环皮肤模型:通过蒙特卡罗模拟结合体内激光多普勒血流仪进行评估。

Optical microcirculatory skin model: assessed by Monte Carlo simulations paired with in vivo laser Doppler flowmetry.

作者信息

Fredriksson Ingemar, Larsson Marcus, Strömberg Tomas

机构信息

Linköping University, Department of Biomedical Engineering, University Hospital, S-581 85 Linköping, Sweden.

出版信息

J Biomed Opt. 2008 Jan-Feb;13(1):014015. doi: 10.1117/1.2854691.

Abstract

An optical microvascular skin model, valid at 780 nm, was developed. The model consisted of six layers with individual optical properties and variable thicknesses and blood concentrations at three different blood flow velocities. Monte Carlo simulations were used to evaluate the impact of various model parameters on the traditional laser Doppler flowmetry (LDF) measures. A set of reference Doppler power spectra was generated by simulating 7000 configurations, varying the thickness and blood concentrations. Simulated spectra, at two different source detector separations, were compared with in vivo recorded spectra, using a nonlinear search algorithm for minimizing the deviation between simulated and measured spectra. The model was validated by inspecting the thickness and blood concentrations that generated the best fit. These four parameters followed a priori expectations for the measurement situations, and the simulated spectra agreed well with the measured spectra for both detector separations. Average estimated dermal blood concentration was 0.08% at rest and 0.63% during heat provocation (44 degrees C) on the volar side of the forearm and 1.2% at rest on the finger pulp. The model is crucial for developing a technique for velocity-resolved absolute LDF measurements with known sampling volume and can also be useful for other bio-optical modalities.

摘要

开发了一种在780纳米波长下有效的光学微血管皮肤模型。该模型由六层组成,各层具有独特的光学特性,且在三种不同血流速度下具有可变的厚度和血液浓度。使用蒙特卡罗模拟来评估各种模型参数对传统激光多普勒血流仪(LDF)测量结果的影响。通过模拟7000种配置,改变厚度和血液浓度,生成了一组参考多普勒功率谱。使用非线性搜索算法将在两个不同源探测器间距下的模拟光谱与体内记录的光谱进行比较,以最小化模拟光谱与测量光谱之间的偏差。通过检查产生最佳拟合的厚度和血液浓度来验证该模型。这四个参数符合测量情况的先验预期,并且对于两种探测器间距,模拟光谱与测量光谱都吻合得很好。在前臂掌侧,静息时平均估计的真皮血液浓度为0.08%,热激发(44摄氏度)时为0.63%;在手指 pulp,静息时为1.2%。该模型对于开发一种具有已知采样体积的速度分辨绝对LDF测量技术至关重要,并且对于其他生物光学模态也可能有用。

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