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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Automated segmentation of lateral ventricles from human and primate magnetic resonance images using cognition network technology
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Automated segmentation of lateral ventricles from human and primate magnetic resonance images using cognition network technology

机译:使用认知网络技术从人和灵长类磁共振图像自动分割侧脑室

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Automatic segmentation of different types of tissue from magnetic resonance images is of great importance for clinical and research applications, particularly large-scale and longitudinal studies of brain pathology. We developed a fully automated algorithm for the segmentation of lateral ventricles from cranial magnetic resonance images. This problem is of interest in the study of schizophrenia, dementia and other neuropsychiatric disorders. Our algorithm achieves comparable results to expert human raters. The theoretical approach, which is based on an emerging object-oriented technology that has been adapted and evaluated to process 3D data for the first time, may, in the future, be transferred to other important problems of magnetic resonance image analysis like gray/white matter segmentation. (c) 2006 Elsevier lnc. All rights reserved.
机译:从磁共振图像自动分割不同类型的组织对于临床和研究应用,尤其是脑病理学的大规模和纵向研究具有重要意义。我们开发了一种用于从颅磁共振图像中分割侧脑室的全自动算法。在精神分裂症,痴呆症和其他神经精神疾病的研究中,这个问题是令人感兴趣的。我们的算法可达到与专业人类评分者相当的结果。该理论方法基于一种新兴的面向对象技术,该技术已经过调整和评估以首次处理3D数据,将来可能会转移到磁共振图像分析的其他重要问题,例如灰度/白色物质细分。 (c)2006年爱思唯尔公司。版权所有。

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