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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >An efficient forward model based on the Lattice Boltzmann method for optical tomography
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An efficient forward model based on the Lattice Boltzmann method for optical tomography

机译:一种基于晶格Boltzmann方法的光学断层扫描方法的高效前进模型

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摘要

Optical tomography is a powerful tool for preclinical and clinical biomedical research, which enables quantitative observation and precise localization of regions of interest within biological tissues. However, the excessive time caused by the forward model of optical tomography is the main limitation of its application in many fields, such as the dynamic imaging. In this paper, we present an efficient forward model based on the Lattice Boltzmann method (LBM), which is realized by radiation transfer equation discretization to simplify the mathematical structures and apply it for optical tomography. To demonstrate the feasibility of the proposed model for optical tomography, we carried out numerical cylinder simulation to validate the simulated light source distribution. To evaluate the performance of the proposed model for optical tomography, we performed a numerical phantom and a physical phantom experiments on a hybrid fluorescence diffuse optical tomography/X-CT imaging system to observe the tomographic reconstruction, by using the simulated phantom data and the experimental phantom data, respectively. The results showed that our proposed forward model obtained similar light source distribution comparing with the standard Monte Carlo method and the cosine similarity was about 96%. Further, our proposed forward model greatly improves the efficiency of optical tomography without a degradation of quality. The LBM provided about 5 times speed enhancement for phantom experiment and 2 times contrast-to-noise ratio boost for physical phantom experiment. Experimental results showed that our proposed model has large potential for performance improvement in optical tomography.
机译:光学断层扫描是一种强大的临床前和临床生物医学研究工具,它能够定量观察和精确定位生物组织内的感兴趣区域。然而,由光学层析成像的前向模型引起的过度时间是其在许多领域中应用的主要限制,例如动态成像。在本文中,我们介绍了一种基于晶格Boltzmann方法(LBM)的高效前进模型,其通过辐射传输方程离散化来实现,以简化数学结构并将其应用于光学断层扫描。为了证明所提出的光学层析造影模型的可行性,我们进行了数控模拟以验证模拟光源分布。为了评估所提出的光学断层扫描模型的性能,我们在混合荧光漫射光学断层扫描/ X-CT成像系统上进行了数值模拟和物理幻影实验,以观察到断层重建,通过使用模拟的幻像数据和实验幻象数据分别。结果表明,我们提出的前瞻性模型获得了与标准蒙特卡罗方法相比的类似光源分布,余弦相似度约为96%。此外,我们提出的前瞻性模型大大提高了光学断层扫描的效率而不会降低质量。 LBM为幻影实验和物理幻影实验进行了幻影实验和2倍对比度噪声比率增强了约5倍的速度增强。实验结果表明,我们所提出的模型具有巨大的性能改善潜力。

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