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Choice of data types in time resolved fluorescence enhanced diffuse optical tomography.

机译:时间分辨荧光增强扩散光学层析成像中数据类型的选择。

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In this paper we examine possible data types for time resolved fluorescence enhanced diffuse optical tomography (FDOT). FDOT is a particular case of diffuse optical tomography, where our goal is to analyze fluorophores deeply embedded in a turbid medium. We focus on the relative robustness of the different sets of data types to noise. We use an analytical model to generate the expected temporal point spread function (TPSF) and generate the data types from this. Varying levels of noise are applied to the TPSF before generating the data types. We show that local data types are more robust to noise than global data types, and should provide enhanced information to the inverse problem. We go on to show that with a simple reconstruction algorithm, depth and lifetime (the parameters of interest) of the fluorophore are better reconstructed using the local data types. Further we show that the relationship between depth and lifetime is better preserved for the local data types, suggesting they are in some way not only more robust, but also self-regularizing. We conclude that while the local data types may be more expensive to generate in the general case, they do offer clear advantages over the standard global data types.
机译:在本文中,我们研究了时间分辨荧光增强扩散光学层析成像(FDOT)的可能数据类型。 FDOT是漫射光学层析成像的一种特殊情况,我们的目标是分析深埋在混浊介质中的荧光团。我们关注于不同类型的数据类型对噪声的相对鲁棒性。我们使用分析模型来生成预期的时间点扩展函数(TPSF),并从中生成数据类型。在生成数据类型之前,将不同级别的噪声应用于TPSF。我们表明,本地数据类型比全局数据类型对噪声更强健,并且应该为反问题提供增强的信息。我们继续表明,使用简单的重建算法,可以使用局部数据类型更好地重建荧光团的深度和寿命(感兴趣的参数)。进一步,我们表明对于本地数据类型,深度和生存期之间的关系得到了更好的保留,这表明它们在某种程度上不仅更健壮,而且具有自我规范性。我们得出的结论是,尽管在一般情况下生成本地数据类型可能会更昂贵,但与标准的全局数据类型相比,它们确实具有明显的优势。

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