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Automated volumetry for unilateral hippocampal sclerosis detection in patients with temporal lobe epilepsy

机译:颞叶癫痫患者单侧海马硬化自动容积检测

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Hippocampal sclerosis (HS) is the most common cause of temporal lobe epilepsy (TLE) and can be identified in magnetic resonance imaging as hippocampal atrophy and subsequent volume loss. Detecting this kind of abnormalities through simple radiological assessment could be difficult, even for experienced radiologists. For that reason, hippocampal volumetry is generally used to support this kind of diagnosis. Manual volumetry is the traditional approach but it is time consuming and requires the physician to be familiar with neuroimaging software tools. In this paper, we propose an automated method, written as a script that uses FSL-FIRST, to perform hippocampal segmentation and compute an index to quantify hippocampi asymmetry (HAI). We compared the automated detection of HS (left or right) based on the HAI with the agreement of two experts in a group of 19 patients and 15 controls, achieving 84.2% sensitivity, 86.7% specificity and a Cohen's kappa coefficient of 0.704. The proposed method is integrated in the “Advanced Brain Imaging Lab” (ABrIL) cloud neurocomputing platform. The automated procedure is 77% (on average) faster to compute vs. the manual volumetry segmentation performed by an experienced physician.
机译:海马硬化(HS)是颞叶癫痫(TLE)的最常见原因,可以在磁共振成像中鉴定为海马萎缩和随后的体积减少。即使对于有经验的放射科医生来说,通过简单的放射学评估来检测这种异常情况也可能很困难。因此,通常使用海马容积法来支持这种诊断。手动体积测量是传统方法,但是很耗时,并且需要医生熟悉神经成像软件工具。在本文中,我们提出了一种使用FSL-FIRST编写为脚本的自动化方法,以执行海马分割并计算指标以量化海马不对称性(HAI)。我们将基于HAI的HS的自动检测(左或右)与一组19位患者和15位对照的两名专家的协议进行了比较,实现了84.2%的敏感性,86.7%的特异性和0.704的Cohenκ系数。所提出的方法已集成到“高级大脑成像实验室”(ABrIL)云神经计算平台中。与经验丰富的医生执行的手动容积分割相比,自动化程序的计算速度(平均而言)快77%。

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