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High-Resolution Mesoscopic Fluorescence Molecular Tomography Based on Compressive Sensing

机译:基于压缩传感的高分辨率介观荧光分子层析成像

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摘要

Mesoscopic fluorescence molecular tomography (MFMT) is new imaging modality aiming at 3-D imaging of molecular probes in a few millimeter thick biological samples with high-spatial resolution. In this paper, we develop a compressive sensing-based reconstruction method with l1-norm regularization for MFMT with the goal of improving spatial resolution and stability of the optical inverse problem. Three-dimensional numerical simulations of anatomically accurate microvasculature and real data obtained from phantom experiments are employed to evaluate the merits of the proposed method. Experimental results show that the proposed method can achieve 80 μm spatial resolution for a biological sample of 3 mm thickness and more accurate quantifications of concentrations and locations for the fluorophore distribution than those of the conventional methods.
机译:介观荧光分子层析成像(MFMT)是一种新的成像方式,旨在对具有高空间分辨率的几毫米厚的生物样品中的分子探针进行3D成像。在本文中,我们开发了一种基于l1-范数正则化的基于压缩传感的MFMT重构方法,旨在提高光学反问题的空间分辨率和稳定性。三维解剖学精确的微血管数值模拟和从幻像实验获得的真实数据被用来评估该方法的优点。实验结果表明,与传统方法相比,该方法可对3 mm厚的生物样品实现80μm的空间分辨率,并能更准确地定量荧光团分布的浓度和位置。

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