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首页> 外文期刊>Journal of Computing and Information Technology >A Framework for Efficient Recognition and Classification of Acute Lymphoblastic Leukemia with a Novel Customized-KNN Classifier
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A Framework for Efficient Recognition and Classification of Acute Lymphoblastic Leukemia with a Novel Customized-KNN Classifier

机译:新型定制的KNN分类器对急性淋巴细胞白血病进行有效识别和分类的框架

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摘要

Even in this modern era today, life's extent is still being challenged by many pathological diseases such as cancer. One such hazard is leukemia. Even a trivial setback in detecting leukemia lead to a severe outcome: the affected cells may eventually prove to be fatal. To combat this, we propose an algorithm to better segment the nucleus region of White Blood Cells (WBC) found in stained blood smear images with the intent of identifying Acute Lymphoblastic Leukemia (ALL). In our proposal, the image is made ready for segmentation in the preprocessing stage by changing its size, brightness, and contrast. In the segmentation stage, the nucleus region is segmented by mathematical operators and Otsu's thresholding. Then mathematical morphological operators are applied in post-processing stage, which makes the nucleus region convenient for feature extraction. Finally, the segmented regions are classified into ALL affected and regular cells by means of the proposed Customized K-Nearest Neighbor classifier algorithm. This work was experimented with over 80 images of the ALL-IDB2 dataset and attained an accuracy rate of 96.25%, 95% of sensitivity and 97% of specificity.
机译:即使在当今的这个现代时代,生命的范围仍然受到许多病理疾病(例如癌症)的挑战。一种这样的危害是白血病。甚至在检测白血病方面的小挫折也会导致严重的后果:受影响的细胞最终可能被证明是致命的。为了解决这个问题,我们提出了一种算法,可以更好地分割在染色涂片图像中发现的白细胞(WBC)的核区域,以识别急性淋巴细胞白血病(ALL)。在我们的建议中,通过更改图像的大小,亮度和对比度,可以在预处理阶段对图像进行分割。在分割阶段,通过数学运算符和Otsu的阈值分割核区域。然后在后处理阶段应用数学形态学算子,使核区域便于特征提取。最后,通过提出的定制的K-最近邻居分类器算法,将分割的区域分为所有受影响的单元格和常规单元格。这项工作用ALL-IDB2数据集的80幅图像进行了实验,获得了96.25%的准确率,95%的敏感性和97%的特异性。

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