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Diffuse optical fluorescence tomography using time-resolved data acquired in transmission

机译:漫射光学荧光层析成像,使用在传输中获取的时间分辨数据

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摘要

We present an algorithm using data acquired with a time-resolved system with the goal of reconstructing sources of fluorescence emanating from the deep interior of highly scattering biological tissues. A novelty in our tomography algorithm is the integration of a light transport model adapted to rodent geometries. For small volumes, our analysis suggest that neglecting the index of refraction mismatch between diffusive and non-diffusive regions, as well as the curved nature of the boundary, can have a profound impact on fluorescent images and spectroscopic applications relying on diffusion curve fitting. Moreover, we introduce a new least-squares solver with bound constraints adapted for optical problems where a physical non-negative constraint can be imposed. Finally, we find that maximizing the time-related information content of the data in the reconstruction process significantly enhances the quality of fluorescence images. Preliminary noise propagation and detector placement optimization analysis are also presented.
机译:我们提出了一种使用时间分辨系统获取的数据的算法,目的是重建从高度散射的生物组织的深层内部发出的荧光源。我们的层析成像算法的新颖之处在于整合了适合啮齿动物几何形状的光传输模型。对于小体积样品,我们的分析表明,忽略扩散区域和非扩散区域之间的折射率不匹配以及边界的弯曲性质,会对依赖于扩散曲线拟合的荧光图像和光谱应用产生深远影响。此外,我们引入了一种新的最小二乘求解器,其边界约束适用于光学问题,其中可以施加物理非负约束。最后,我们发现在重建过程中最大化数据的时间相关信息内容可以显着提高荧光图像的质量。还介绍了初步的噪声传播和检测器放置优化分析。

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