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A Heat Kernel Based Cortical Thickness Estimation Algorithm

机译:基于热核的皮层厚度估计算法

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摘要

Cortical thickness estimation in magnetic resonance imaging (MRI) is an important technique for research on brain development and neurodegenerative diseases. This paper presents a heat kernel based cortical thickness estimation algorithm, which is driven by the graph spectrum and the heat kernel theory, to capture the grey matter geometry information in the in vivo brain MR images. First, we use the harmonic energy function to establish the tetrahedral mesh matching with the MR images and generate the Laplace-Beltrami operator matrix which includes the inherent geometric characteristics of the tetrahedral mesh. Second, the isothermal surfaces are computed by the finite element method with the volumetric Laplace-Beltrami operator and the direction of the steamline is obtained by tracing the maximum heat transfer probability based on the heat kernel diffusion. Thereby we can calculate the cerebral cortex thickness information between the point on the outer surface and the corresponding point on the inner surface. The method relies on intrinsic brain geometry structure and the computation is robust and accurate. To validate our algorithm, we apply it to study the thickness differences associated with Alzheimer's disease (AD) and mild cognitive impairment (MCI) on the Alzheimer's Disease Neuroimaging Initiative (ADNI) dataset. Our preliminary experimental results in 151 subjects (51 AD, 45 MCI, 55 controls) show that the new algorithm successfully detects statistically significant difference among patients of AD, MCI and healthy control subjects. The results also indicate that the new method may have better performance than the Freesurfer software.
机译:磁共振成像(MRI)中的皮质厚度估计是研究大脑发育和神经退行性疾病的重要技术。本文提出了一种基于热核的皮层厚度估计算法,该算法由图谱和热核理论驱动,以捕获体内大脑MR图像中的灰质几何信息。首先,我们使用谐波能量函数建立与MR图像匹配的四面体网格,并生成包含四面体网格固有几何特征的Laplace-Beltrami算子矩阵。其次,利用体积Laplace-Beltrami算子通过有限元方法计算出等温面,并通过跟踪基于热核扩散的最大传热概率来获得蒸汽线的方向。因此,我们可以计算外表面上的点与内表面上的对应点之间的大脑皮质厚度信息。该方法依赖于固有的大脑几何结构,并且计算是鲁棒且准确的。为了验证我们的算法,我们将其应用于研究与阿尔茨海默氏病神经影像计划(ADNI)数据集有关的阿尔茨海默氏病(AD)和轻度认知障碍(MCI)的厚度差异。我们在151位受试者(51位AD,45位MCI,55位对照)中的初步实验结果表明,该新算法成功地检测出AD,MCI患者和健康对照组的统计学差异。结果还表明,新方法可能比Freesurfer软件具有更好的性能。

著录项

  • 来源
    《Multimodal brain image analysis》|2013年|233-245|共13页
  • 会议地点 Nagoya(JP)
  • 作者单位

    School of Computer Science and Technology, Ludong University, P.R. China ,School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, USA;

    School of Computer Science and Technology, Ludong University, P.R. China;

    School of Computer Science and Technology, Ludong University, P.R. China;

    School of Physics Photoelectric, Ludong University, P.R. China;

    School of Computer Science and Technology, Ludong University, P.R. China;

    School of Mathematics Statistics Science, Ludong University, P.R. China;

    School of Computer Science and Technology, Ludong University, P.R. China;

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, USA;

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, USA;

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cortical thickness; Heat Kernel; Tetrahedral Mesh; Streamline; False Discovery Rate;

    机译:皮质厚度;热核;四面体网格精简;错误发现率;

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