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A framework for informing segmentation of in vivo MRI with information derived from ex vivo imaging: Application in the medial temporal lobe

机译:利用来自离体成像的信息通知体内MRI分割的框架:在内侧颞叶中的应用

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摘要

Automatic segmentation of cortical and subcortical structures is commonplace in brain MRI literature and is frequently used as the first step towards quantitative analysis of structural and functional neuroimaging. Most approaches to brain structure segmentation are based on propagation of anatomical information from example MRI datasets, called atlases or templates, that are manually labeled by experts. The accuracy of automatic segmentation is usually validated against the “bronze” standard of manual segmentation of test MRI datasets. However, good performance vis-a-vis manual segmentation does not imply accuracy relative to the underlying true anatomical boundaries. In the context of segmentation of hippocampal subfields and functionally related medial temporal lobe cortical subregions, we explore the challenges associated with validating existing automatic segmentation techniques against underlying histologically-derived anatomical “gold” standard; and, further, developing automatic in vivo MRI segmentation techniques informed by histological imaging.
机译:皮质和皮质下结构的自动分割在脑MRI文献中很常见,经常被用作对结构和功能性神经影像进行定量分析的第一步。脑结构分割的大多数方法都是基于来自示例MRI数据集的解剖信息的传播,这些信息被称为图集或模板,由专家手动标记。自动分割的准确性通常根据测试MRI数据集的手动分割的“青铜”标准进行验证。但是,相对于手动分割,良好的性能并不意味着相对于基本的真实解剖学边界而言是准确的。在海马亚区域和功能相关的内侧颞叶皮质亚区域的分割的背景下,我们探讨了与针对基础的组织学衍生的解剖“金”标准验证现有自动分割技术相关的挑战;并且,进一步开发了以组织学影像学为基础的体内MRI自动分割技术。

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