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A Combined Approach on RBC Image Segmentation through Shape Feature Extraction

机译:形状特征提取的红细胞图像分割组合方法

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The classification of erythrocyte plays an important role in clinic diagnosis. In terms of the fact that the shape deformability of red blood cell brings more difficulty in detecting and recognize for operating automatically, we believed that the recovered 3D shape surface feature would give more information than traditional 2D intensity image processing methods. This paper proposed a combined approach for complex surface segmentation of red blood cell based on shape-from-shading technique and multiscale surface fitting. By means of the image irradiance equation under SEM imaging condition, the 3D height field could be recovered from the varied shading. Afterwards the depth maps of each point on the surfaces were applied to calculate Gaussian curvature and mean curvature, which were used to produce surface-type label image. Accordingly the surface was segmented into different parts through multiscale bivariate polynomials function fitting. The experimental results showed that this approach was easily implemented and promising.
机译:红细胞的分类在临床诊断中起着重要的作用。考虑到红细胞的形状可变形性给自动操作的检测和识别带来更多困难,我们相信,与传统的2D强度图像处理方法相比,恢复的3D形状表面特征将提供更多的信息。本文提出了一种基于形状遮蔽技术和多尺度表面拟合的红细胞复杂表面分割组合方法。通过在SEM成像条件下的图像辐照度方程,可以从变化的阴影中恢复3D高度场。然后,应用表面上每个点的深度图来计算高斯曲率和平均曲率,这些高斯曲率和平均曲率用于生成表面类型的标签图像。因此,通过多尺度二元多项式函数拟合将表面划分为不同的部分。实验结果表明,该方法易于实现且很有希望。

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