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An Automatic Segmentation Approach for Boundary Delineation of Corpus Callosum Based on Cell Competition

机译:基于细胞竞争的基因胼callosum界界划分的自动分割方法

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The size and shape of corpus callosum are important indicators for assisting diagnosis of many neurological diseases involving morphological changes of corpus callosum. A new automatic segmentation approach was proposed in this paper for boundary delineation of corpus callosum. The basic idea of the proposed approach was to perform segmentation on the red component of color-coded map of diffusion tensor magnetic resonance image (MR-DTI). The boundary of corpus callosum was delineated in two phases. Firstly, a rough boundary surrounding corpus callosum was derived by using a built-in contour function in Matlab. Then, this cell competition algorithm was applied to the area inside the rough boundary derived in the first phase. The proposed segmentation approach has been evaluated and compared to the Chan and Vese level set method by using the MR-DTI images of a healthy volunteer and a systemic lupus erythematorsus (SLE) patient. The implementation results showed that the proposed approach could delineate the boundaries of corpus callosum reasonably well for both cases, whereas the Chan and Vese level set method failed to catch the weak edge for the SLE patient.
机译:胼callosum的尺寸和形状是辅助诊断许多神经疾病的重要指标,涉及语料库胼callosum的形态变化。本文提出了一种新的自动分割方法,用于胼calloSum的边界描绘。所提出的方法的基本思想是在扩散张量磁共振图像(MR-DTI)的颜色编码地图的红色分量上进行分割。胼um胼um的边界分为两相逐个划清。首先,通过使用MATLAB中的内置轮廓函数来导出周围围绕语料库的粗糙边界。然后,将该细胞竞争算法应用于在第一阶段导出的粗略边界内的区域。通过使用健康志愿者的MR-DTI图像和全身狼疮性红斑(SLE)患者,已经评估了所提出的分割方法和与陈和VESE水平集法进行评估。实施结果表明,该方法可相当于两种情况描绘胼calloso鱼的界限,而陈和VESE水平设定方法未能捕捉到SLE患者的弱边缘。

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