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首页> 外文期刊>Hippocampus >Parametric surface modeling and registration for comparison of manual and automated segmentation of the hippocampus.
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Parametric surface modeling and registration for comparison of manual and automated segmentation of the hippocampus.

机译:参数化的表面建模和配准,用于比较海马体的手动和自动分割。

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摘要

Accurate and efficient segmentation of the hippocampus from brain images is a challenging issue. Although experienced anatomic tracers can be reliable, manual segmentation is a time consuming process and may not be feasible for large-scale neuroimaging studies. In this article, we compare an automated method, FreeSurfer (V4), with a published manual protocol on the determination of hippocampal boundaries from magnetic resonance imaging scans, using data from an existing mild cognitive impairment/Alzheimer's disease cohort. To perform the comparison, we develop an enhanced spherical harmonic processing framework to model and register these hippocampal traces. The framework treats the two hippocampi as a single geometric configuration and extracts the positional, orientation, and shape variables in a multiobject setting. We apply this framework to register manual tracing and FreeSurfer results together and the two methods show stronger agreement on position and orientation than shape measures. Work is in progress to examine a refined FreeSurfer segmentation strategy and an improved agreement on shape features is expected.
机译:从大脑图像准确,有效地分割海马是一个具有挑战性的问题。尽管经验丰富的解剖示踪剂可能是可靠的,但手动分割是一个耗时的过程,对于大规模的神经影像学研究而言可能不可行。在本文中,我们使用现有轻度认知障碍/阿尔茨海默氏病队列的数据,比较了自动方法FreeSurfer(V4)和已发布的手动协议,该协议可通过磁共振成像扫描确定海马边界。为了进行比较,我们开发了增强的球谐处理框架,以建模和注册这些海马迹线。该框架将两个海马体视为单个几何配置,并在多对象设置中提取位置,方向和形状变量。我们将此框架应用于将手动跟踪和FreeSurfer结果一起注册,并且这两种方法在位置和方向上比形状度量显示出更强的一致性。目前正在研究完善的FreeSurfer分割策略,并且有望在形状特征方面达成更好的协议。

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