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Automatic segmentation of brain infarction in diffusion weighted MR images

机译:在弥散加权MR图像中自动分割脑梗塞

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It is important to detect the site and size of infarction volume in stroke patients. An automatic method for segmenting brain infarction lesion from diffusion weighted magnetic resonance (MR) images of patients has been developed. The method uses an integrated approach which employs image processing techniques based on anisotropic filters and atlas-based registration techniques. It is a multi-stage process, involving first images preprocessing, then global and local registration between the anatomical brain atlas and the patient, and finally segmentation of infarction volume based on region splitting and merging and multi-scale adaptive statistical classification. The proposed multi-scale adaptive statistical classification model takes into account spatial, intensity gradient, and contextual information of the anatomical brain atlas and the patient. Application of the method to diffusion weighted imaging (DWI) scans of twenty patients with clinically determined infarction was carried out. It shows that the method got a satisfied segmentation even in the presence of radio frequency (RF) inhomogeneities. The results were compared with lesion delineations by human experts, showing the identification of infarction lesion with accuracy and reproducibility.
机译:重要的是要检测中风患者的梗塞体积的部位和大小。已经开发了一种从患者的弥散加权磁共振(MR)图像中分割脑梗塞病变的自动方法。该方法使用集成方法,该方法采用基于各向异性滤波器的图像处理技术和基于图集的配准技术。这是一个多阶段的过程,涉及首先进行图像预处理,然后在解剖脑图谱和患者之间进行全局和局部配准,最后基于区域划分和合并以及多尺度自适应统计分类对梗死体积进行分割。所提出的多尺度自适应统计分类模型考虑了解剖脑图谱和患者的空间,强度梯度和上下文信息。将该方法应用于临床确定为梗塞的20例患者的弥散加权成像(DWI)扫描。结果表明,即使存在射频不均匀性,该方法也能得到满意的分割效果。将结果与人类专家的病灶描述进行了比较,显示了对梗死灶的鉴定具有准确性和可重复性。

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