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Surface-Based Imaging Methods for High-Resolution Functional Magnetic Resonance Imaging

机译:高分辨率功能磁共振成像的基于表面的成像方法

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Functional magnetic resonance imaging (fMRI) has become an exceedingly popular technique for studies of human brain activity. Typically, fMRI is performed with >3-mm sampling, so that the imaging data can be regarded as two-dimensional samples that roughly average through the typically 1.5-4-mm thickness of cerebral cortex. The use of higher spatial resolutions, <1.5-mm sampling, complicates the use of fMRI, as one must now consider activity variations within the depth of the brain. We present a set of surface-based methods to exploit the use of high-resolution fMRI for depth analysis. These methods utilize white-matter segmentations coupled with deformable-surface algorithms to create a smooth surface representation at the gray-white interface. These surfaces provide vertex positions and surface normals, vector references for depth calculations. That information enables averaging schemes that can increase contrast-to-noise ratio, as well as permitting the direct analysis of depth profiles of functional activity in the human brain.
机译:功能磁共振成像(fMRI)已成为研究人脑活动的一种非常流行的技术。通常,fMRI是通过> 3 mm的采样执行的,因此可以将成像数据视为二维样本,该样本在整个大脑皮层的典型1.5-4-mm厚度中大致取平均值。使用更高的空间分辨率(<1.5毫米采样)会使功能核磁共振成像的使用变得复杂,因为现在必须考虑大脑深度范围内的活动变化。我们提出了一套基于表面的方法,以利用高分辨率功能磁共振成像技术进行深度分析。这些方法利用白色物质分割与可变形表面算法相结合,在灰白色界面上创建平滑的表面表示。这些曲面提供顶点位置和曲面法线,以及用于深度计算的矢量参考。该信息可以实现平均方案,该方案可以提高对比度和噪声比,并可以直接分析人脑功能活动的深度分布。

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