首页> 外文会议>Image Processing pt.3; Progress in Biomedical Optics and Imaging; vol.7 no.30 >Enhanced Techniques for Asymmetry Quantification in Brain Imagery
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Enhanced Techniques for Asymmetry Quantification in Brain Imagery

机译:脑图像中不对称量化的增强技术

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We present an automated generic methodology for symmetry identification and asymmetry quantification, novel method of identifying and delineation of brain pathology by analyzing the opposing sides of the brain utilizing of inherent left-right symmetry in the brain. After symmetry axis has been detected, we apply non-parametric statistical tests operating on the pairs of samples to identify initial seeds points which is defined defined as the pixels where the most statistically significant difference appears. Local region growing is performed on the difference map, from where the seeds are aggregating until it captures all 8-way connected high signals from the difference map. We illustrate the capability of our method with examples ranging from tumors in patient MR data to animal stroke data. The validation results on Rat stroke data have shown that this approach has promise to achieve high precision and full automation in segmenting lesions in reflectional symmetrical objects.
机译:我们提出了一种用于对称性识别和不对称性定量的自动化通用方法,一种通过分析大脑相对的两侧,利用固有的左右对称性来识别和描绘大脑病理的新颖方法。在检测到对称轴之后,我们对样本对应用非参数统计测试,以识别初始种子点,该初始种子点定义为出现统计学上最显着差异的像素。在差异图上执行局部区域生长,从那里聚集种子,直到种子捕获差异图上所有8路相连的高信号为止。我们举例说明了我们方法的能力,示例涉及从患者MR数据中的肿瘤到动物中风数据。对大鼠卒中数据的验证结果表明,该方法有望在分割对称反射物体的病变方面实现高精度和全自动控制。

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