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Clinical Application of Fiber Visualization with LIC Maps Using Multidirectional Anisotropic Glyph Samples (A-Glyph LIC)

机译:利用多向各向异性字形样品(A-Glyphic)对Lic地图光纤可视化的临床应用

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摘要

Recently, a fiber visualization method for high-angular resolution diffusion-weighted magnetic resonance imaging (MRI) data was proposed using a multiple-kernel line integral convolution (LIC) algorithm and an anisotropic spot pattern. This processing routine leads to high contrast color-coded LIC maps that are capable of visualizing local anisotropy information and regional fiber architecture. In this paper, we evaluate and validate this method by applying it to simulated datasets and to in vivo diffusion MRI data of children and adults with different disease conditions and healthy volunteers. Compared to routine clinical fiber visualization (color-coded fractional anisotropy, FA maps, and fiber tractography), it has the advantage of visualizing complex local fiber architecture in a fully automated way. The results indicate that this method is capable of reliably delineating normal fiber architecture and fibers infiltrated, displaced, or disrupted by lesions and is therefore a promising tool in the clinical context.
机译:最近,使用多核积分卷积(LIC)算法和各向异性点模式提出了一种用于高角度分辨率扩散加权磁共振成像(MRI)数据的光纤可视化方法。该处理例程导致高对比度颜色编码的LIC地图,其能够可视化局部各向异性信息和区域光纤架构。在本文中,我们通过将其应用于模拟数据集以及具有不同疾病条件和健康志愿者的儿童和成人的体内扩散MRI数据来评估和验证该方法。与常规临床光纤可视化相比(颜色编码的分数各向异性,FA映射和光纤牵引),它具有以全自动方式可视化复杂的本地光纤架构的优点。结果表明,该方法能够可靠地描绘透明透射,移除或破坏病变的纤维,因此是临床环境中的有希望的工具。

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