首页> 外文会议>IEEE Canadian Conference on Electrical and Computer Engineering >CHRONIC LYMPHOCYTIC LEUKEMIA CELL SEGMENTATION FROM MICROSCOPIC BLOOD IMAGES USING WATERSHED ALGORITHM AND OPTIMAL THRESHOLDING
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CHRONIC LYMPHOCYTIC LEUKEMIA CELL SEGMENTATION FROM MICROSCOPIC BLOOD IMAGES USING WATERSHED ALGORITHM AND OPTIMAL THRESHOLDING

机译:使用流域算法和最优阈值的微观血液图像的慢性淋巴细胞白血病细胞分割

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Chronic lymphocytic leukemia (CLL) is the most common type of blood cancer in Canadian adults. CLL cells are abnormal lymphocytes, which tend to be slightly larger than normal resting lymphocytes and have a condensed appearance to their chromatin. There is a low number of related works on this disease. This paper presents a method to segment normal and CLL lymphocytes into two parts: nucleus, and cytoplasm using a watershed algorithm and optimal thresholding. The goal of this work is reducing the over and under segmentation error of the watershed algorithm by suppressing 1% of the local minima. We tested 140 microscopic lymphocyte images (normal and CLL), and the algorithm obtained 99.92% maximum accuracy for nucleus segmentation, and 99.85% maximum accuracy for cell segmentation. The cytoplasm can be extracted with a 99.63% maximum accuracy with simple mask subtraction. The code for the presented algorithm is shared on the MATLAB file exchange website.
机译:慢性淋巴细胞白血病(CLL)是加拿大成年人最常见的血癌。 CLL细胞是异常的淋巴细胞,其趋于略大于正常静息淋巴细胞,并且对它们的染色质具有浓缩的外观。对这种疾病有少量的相关工程。本文介绍了将正常和CLL淋巴细胞分为两部分的方法:核,使用流域算法和最佳阈值的细胞质。这项工作的目标是通过抑制1%的局部最小值来减少流域算法的过度和分割误差。我们测试了140个微观淋巴细胞图像(正常和CLL),算法获得了99.92%的核细胞分割精度,最大的细胞分割的最高精度为99.85%。通过用简单的掩模减法,可以用99.63%的最高精度提取细胞质。呈现算法的代码在Matlab文件Exchange网站上共享。

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