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利用水平集演化对MRI上的局灶性皮质发育异常病变进行分割。

Segmentation of focal cortical dysplasia lesions on MRI using level set evolution.

作者信息

Colliot O, Mansi T, Bernasconi N, Naessens V, Klironomos D, Bernasconi A

机构信息

Department of Neurology and Neurosurgery and McConnell Brain Imaging Center, Montreal Neurological Institute, 3801 University Street, Montreal, Quebec, Canada H3A 2B4.

出版信息

Neuroimage. 2006 Oct 1;32(4):1621-30. doi: 10.1016/j.neuroimage.2006.04.225. Epub 2006 Aug 2.

Abstract

Focal cortical dysplasia (FCD) is the most frequent malformation of cortical development in patients with medically intractable epilepsy. On MRI, FCD lesions are not easily differentiable from the normal cortex and defining their spatial extent is challenging. In this paper, we introduce a method to segment FCD lesions on T1-weighted MRI. It relies on two successive three-dimensional deformable models, whose evolutions are based on the level set framework. The first deformable model is driven by probability maps obtained from three MRI features: cortical thickness, relative intensity and gradient. These features correspond to the visual characteristics of FCD and allow discriminating lesions and normal tissues. In a second stage, the previous result is expanded towards the underlying and overlying cortical boundaries, throughout the whole cortical section. The method was quantitatively evaluated by comparison with manually traced labels in 18 patients with FCD. The automated segmentations achieved a strong agreement with the manuals labels, demonstrating the applicability of the method to assist the delineation of FCD lesions on MRI. This new approach may become a useful tool for the presurgical evaluation of patients with intractable epilepsy related to cortical dysplasia.

摘要

局灶性皮质发育不良(FCD)是药物难治性癫痫患者中最常见的皮质发育畸形。在磁共振成像(MRI)上,FCD病变不易与正常皮质区分开来,确定其空间范围具有挑战性。在本文中,我们介绍了一种在T1加权MRI上分割FCD病变的方法。它依赖于两个连续的三维可变形模型,其演化基于水平集框架。第一个可变形模型由从三个MRI特征获得的概率图驱动:皮质厚度、相对强度和梯度。这些特征对应于FCD的视觉特征,能够区分病变和正常组织。在第二阶段,将先前的结果在整个皮质切片中朝着下方和上方的皮质边界扩展。通过与18例FCD患者的手动追踪标记进行比较,对该方法进行了定量评估。自动分割结果与手动标记高度一致,证明了该方法在辅助MRI上FCD病变描绘方面的适用性。这种新方法可能成为术前评估与皮质发育不良相关的难治性癫痫患者的有用工具。

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