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Autotract: Automatic cleaning and tracking of fibers

机译:Autotract:自动清洁和跟踪纤维

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We propose a new tool named Autotract to automate fiber tracking in diffusion tensor imaging (DTI). Autotract uses prior knowledge from a source DTI and a set of corresponding fiber bundles to extract new fibers for a target DTI. Autotract starts by aligning both DTIs and uses the source fibers as seed points to initialize a tractography algorithm. We enforce similarity between the propagated source fibers and automatically traced fibers by computing metrics such as fiber length and fiber distance between the bundles. By analyzing these metrics, individual fiber tracts can be pruned. As a result, we show that both bundles have similar characteristics. Additionally, we compare the automatically traced fibers against bundles previously generated and validated in the target DTI by an expert. This work is motivated by medical applications in which known bundles of fiber tracts in the human brain need to be analyzed for multiple datasets.
机译:我们提出了一种名为Autotract的新工具,以在扩散张量成像(DTI)中自动进行纤维跟踪。 Autotract使用来自源DTI和一组相应光纤束的先验知识来提取目标DTI的新光纤。 Autotract首先将两个DTI对齐,然后使用源光纤作为种子点来初始化tractography算法。通过计算度量值(例如纤维长度和束之间的纤维距离),我们可以在传播的源纤维和自动跟踪的纤维之间实现相似性。通过分析这些指标,可以修剪单个纤维束。结果,我们表明两个束具有相似的特性。此外,我们将自动跟踪的光纤与先前由目标专家在目标DTI中生成和验证的光纤束进行了比较。这项工作是由医学应用推动的,在医学应用中,需要分析人脑中已知的纤维束束以获取多个数据集。

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