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White Blood Cell Segmentation Based on Visual Attention Mechanism and Model Fitting

机译:基于视觉注意机制和模型配件的白细胞分割

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White blood cell segmentation is a crucial step in developing a computer-aided automatic cell analysis system. To improve the precision of the leukocyte segmentation, this paper presents a white blood cell segmentation algorithm based on visual attention mechanism and model-fitting. The proposed method first employs a color space volume based on visual attention mechanism and an adaptive threshold method to segment the nucleus. Then, the edge region of the image is removed and the initial white blood cell region at the center is obtained. After that, the edge detection is performed to extract the whole leukocyte. The cytoplasm of the leukocyte is obtained by subtracting the nucleus from the entire leukocyte. Finally, the model-fitting method is used to solve the problem of leukocyte adhesion. Experimental results on an image dataset containing 300 leukocyte images show that the proposed method performs well over the state-of-the-art methods.
机译:白细胞分割是开发计算机辅助自动细胞分析系统的关键步骤。为了提高白细胞分段的精度,本文介绍了一种基于视觉注意机制和模型配件的白细胞分段算法。所提出的方法首先采用基于视觉注意机制的颜色空间体积和分段核的自适应阈值方法。然后,去除图像的边缘区域,并获得中心处的初始白细胞区域。之后,进行边缘检测以提取整个白细胞。通过从整个白细胞中减去核来获得白细胞的细胞质。最后,使用模型配合方法来解决白细胞粘附的问题。含有300只白细胞图像的图像数据集上的实验结果表明该方法通过最先进的方法表现出良好的方法。

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