Diffuse optical tomography of the brain: effects of inaccurate baseline optical parameters and refinements using learned post-processing

IF 2.9 2区 医学 Q2 BIOCHEMICAL RESEARCH METHODS Biomedical optics express Pub Date : 2024-06-25 DOI:10.1364/boe.524245
Meghdoot Mozumder, Pauliina Hirvi, Ilkka Nissilä, Andreas Hauptmann, Jorge Ripoll, David E. Singh
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Abstract

Diffuse optical tomography (DOT) uses near-infrared light to image spatially varying optical parameters in biological tissues. In functional brain imaging, DOT uses a perturbation model to estimate the changes in optical parameters, corresponding to changes in measured data due to brain activity. The perturbation model typically uses approximate baseline optical parameters of the different brain compartments, since the actual baseline optical parameters are unknown. We simulated the effects of these approximate baseline optical parameters using parameter variations earlier reported in literature, and brain atlases from four adult subjects. We report the errors in estimated activation contrast, localization, and area when incorrect baseline values were used. Further, we developed a post-processing technique based on deep learning methods that can reduce the effects due to inaccurate baseline optical parameters. The method improved imaging of brain activation changes in the presence of such errors.
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脑弥散光学断层成像:基线光学参数不准确的影响以及利用学习后处理技术进行的改进
弥散光学断层成像(DOT)利用近红外线对生物组织中空间变化的光学参数进行成像。在脑功能成像中,DOT 使用扰动模型来估计光学参数的变化,这些变化与大脑活动导致的测量数据变化相对应。由于实际基线光学参数未知,扰动模型通常使用不同脑区的近似基线光学参数。我们利用文献中早先报道的参数变化和四个成年受试者的脑图谱模拟了这些近似基线光学参数的影响。我们报告了在使用不正确的基线值时,估计激活对比度、定位和面积的误差。此外,我们还开发了一种基于深度学习方法的后处理技术,可以减少因基线光学参数不准确而造成的影响。该方法改善了存在此类误差时大脑激活变化的成像。
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来源期刊
Biomedical optics express
Biomedical optics express BIOCHEMICAL RESEARCH METHODS-OPTICS
CiteScore
6.80
自引率
11.80%
发文量
633
审稿时长
1 months
期刊介绍: The journal''s scope encompasses fundamental research, technology development, biomedical studies and clinical applications. BOEx focuses on the leading edge topics in the field, including: Tissue optics and spectroscopy Novel microscopies Optical coherence tomography Diffuse and fluorescence tomography Photoacoustic and multimodal imaging Molecular imaging and therapies Nanophotonic biosensing Optical biophysics/photobiology Microfluidic optical devices Vision research.
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