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Image Quality Analysis of High-Density Diffuse Optical Tomography Incorporating a Subject-Specific Head Model

机译:结合特定主题的头部模型的高密度漫射光学层析成像的图像质量分析

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摘要

High-density diffuse optical tomography (HD-DOT) methods have shown significant improvement in localization accuracy and image resolution compared to traditional topographic near infrared spectroscopy of the human brain. In this work we provide a comprehensive evaluation of image quality in visual cortex mapping via a simulation study with the use of an anatomical head model derived from MRI data of a human subject. A model of individual head anatomy provides the surface shape and internal structure that allow for the construction of a more realistic physical model for the forward problem, as well as the use of a structural constraint in the inverse problem. The HD-DOT model utilized here incorporates multiple source-detector separations with continuous-wave data with added noise based on experimental results. To evaluate image quality we quantify the localization error and localized volume at half maximum (LVHM) throughout a region of interest within the visual cortex and systematically analyze the use of whole-brain tissue spatial constraint within image reconstruction. Our results demonstrate that an image quality with less than 10 mm in localization error and 1000 m3 in LVHM can be obtained up to 13 mm below the scalp surface with a typical unconstrained reconstruction and up to 18 mm deep when a whole-brain spatial constraint based on the brain tissue is utilized.
机译:与人脑的传统地形近红外光谱法相比,高密度漫射光学层析成像(HD-DOT)方法已显示出定位精度和图像分辨率方面的显着改善。在这项工作中,我们通过使用来自人类受试者MRI数据的解剖学头部模型的模拟研究,对视觉皮层映射中的图像质量进行了全面评估。单个头部解剖模型提供表面形状和内部结构,从而可以为正向问题构造更逼真的物理模型,并在反问题中使用结构约束。根据实验结果,此处使用的HD-DOT模型将多个源探测器分离与连续波数据结合在一起,并增加了噪声。为了评估图像质量,我们量化了视觉皮层内整个感兴趣区域的定位误差和半最大值的局部体积(LVHM),并系统分析了图像重建中全脑组织空间约束的使用。我们的结果表明,在典型的无约束重建条件下,可以在头皮表面以下13 mm处获得定位误差小于10 mm且在LVHM中为1000 m 3 的图像质量,深度可达18 mm当利用基于脑组织的全脑空间约束时。

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