首页> 外文会议>2011 8th IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Automatic segmentation of age-related white matter changes on flair images: Method and multicentre validation
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Automatic segmentation of age-related white matter changes on flair images: Method and multicentre validation

机译:自动分割天赋图像上与年龄相关的白质变化:方法和多中心验证

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White matter hyperintensities (WMH) are commonly seen on T2-weighted images in elderly people. They are considered as a potential marker of vascular pathology and have been associated with motor and cognitive deficits. In this paper, non linear diffusion was applied to FLAIR images and combined with precise anatomical knowledge extracted from T1-weighted images to automatically segment WMH. Evaluation was performed on 24 patients with mild cognitive impairment (MCI) from 5 different centres. Results showed excellent volume agreement with manual delineation (Pearson coefficient: r=0.98, p<0.001) and substantial spatial correspondence (Similarity index: 66%±17%). Our method appeared robust to acquisition differences across the centres.
机译:在老年人的T2加权图像上通常可以看到白质高信号(WMH)。它们被认为是血管病理的潜在标志物,并与运动和认知功能障碍有关。本文将非线性扩散应用于FLAIR图像,并与从T1加权图像中提取的精确解剖学知识相结合,以自动分割WMH。对来自5个不同中心的24例轻度认知障碍(MCI)患者进行了评估。结果表明,具有良好的体积一致性,并具有人工勾画(皮尔森系数:r = 0.98,p <0.001)和相当大的空间对应性(相似指数:66%±17%)。我们的方法对于跨中心的采集差异显得很稳健。

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