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Automatic Recognition of Five Types of White Blood Cells in Peripheral Blood

机译:自动识别外周血中五种类型的白细胞

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An automatic system which is capable of recognizing white blood cells can assist hematologists in the diagnosis of many diseases. In this paper, we propose a new system based on image processing techniques in order to recognize five types of white blood cells in the peripheral blood. To segment nucleus and cytoplasm, a Gram-Schmidt orthogonalization method and a snake algorithm are applied, respectively. Moreover, three kinds of features are extracted from the segmented areas and two groups of textural features extracted by Local Binary Pattern (LBP) and co-occurrence matrix are evaluated. Best features are selected using a Sequential Forward Selection (SFS) algorithm and performances of two classifiers, ANN and SVM, are compared. In this application, the best result is obtained using LBP as the textural feature and SVM as the classifier. In sum, the results demonstrate that the methods are accurate and fast enough to execute in hematological laboratories.
机译:能够识别白细胞的自动系统可以帮助血液学家诊断许多疾病。在本文中,我们提出了一种基于图像处理技术的新系统,以识别外周血中的五种白细胞。为了分割核和细胞质,分别应用了Gram-Schmidt正交化方法和snake算法。此外,从分割区域中提取了三种特征,并评估了通过局部二值模式(LBP)和共现矩阵提取的两组纹理特征。使用顺序前向选择(SFS)算法选择最佳功能,并比较两个分类器ANN和SVM的性能。在此应用中,使用LBP作为纹理特征并使用SVM作为分类器可获得最佳结果。总而言之,结果表明该方法准确,快速,足以在血液学实验室中执行。

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