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Analyzing blood cell image to distinguish its abnormalities (poster session)

机译:分析血细胞图像以区分其异常(海报会议)

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摘要

In this paper, we show the blood-cell image classification system to be able to analyze and distinguish blood cells in the peripheral blood image. To distinguish their abnormalities, we segment red and white-blood cell in an image acquired from microscope with CCD camera and then, apply the various feature extraction algorithms to classify them. In addition to, we use neural network model to reduce multi-variate feature number based on PCA(Principal Component Analysis) to make classifier more efficient. Finally we show that our system has a good experimental result and can be applied to build an aiding system for pathologist.

机译:

在本文中,我们展示了一种血细胞图像分类系统,该系统能够分析和区分外周血图像中的血细胞。为了区分它们的异常,我们将红色和白色血细胞分割为使用CCD相机从显微镜获得的图像,然后应用各种特征提取算法对它们进行分类。此外,我们使用神经网络模型基于主成分分析(PCA)来减少多元特征数,从而使分类器更有效。最后,我们证明了该系统具有良好的实验效果,可用于构建病理学家的辅助系统。

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