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Comparative performance evaluation of automated segmentation methods of hippocampus from magnetic resonance images of temporal lobe epilepsy patients

机译:颞叶癫痫患者磁共振图像自动分割方法对比较绩效评价

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Purpose: Segmentation of the hippocampus from magnetic resonance (MR) images is a key task in the evaluation of mesial temporal lobe epilepsy (mTLE) patients. Several automated algorithms have been proposed although manual segmentation remains the benchmark. Choosing a reliable algorithm is problematic since structural definition pertaining to multiple edges, missing and fuzzy boundaries, and shape changes varies among mTLE subjects. Lack of statistical references and guidance for quantifying the reliability and reproducibility of automated techniques has further detracted from automated approaches. The purpose of this study was to develop a systematic and statistical approach using a large dataset for the evaluation of automated methods and establish a method that would achieve results better approximating those attained by manual tracing in the epileptogenic hippocampus.
机译:目的:来自磁共振的海马(MR)图像的分割是评估患有患者颞叶癫痫(MTAL)患者的关键任务。 已经提出了几种自动化算法,尽管手动分割仍然是基准。 选择可靠的算法是有问题的,因为与多个边缘,缺失和模糊边界有关的结构定义,以及形状变化在粪便受试者之间变化。 量化自动化方法的可靠性和再现性缺乏统计参考和用于量化可靠性和再现性的指导。 本研究的目的是利用大型数据集进行系统和统计方法,用于评估自动化方法,并建立一种方法,该方法将达到癫痫发育海马中手动跟踪所获得的近似的方法。

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