Detection of Leukemia in microscopic images using image processing

C. Raje, J. Rangole
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引用次数: 36

Abstract

Leukemia occurs when lot of abnormal white blood cells produced by the bone marrow. Hematologist makes use of microscopic study of human blood, which leads to need of methods, including microscopic color imaging, segmentation, classification and clustering that can allow identification of patients suffering from Leukemia. The microscopic images will be inspected visually by hematologists and the process is time consuming and tiring. The automatic image processing system is urgently needed and can overcome related constraints in visual inspection. The proposed system will be on microscopic images to detect Leukemia. The early and fast identification of Leukemia greatly aids in providing the appropriate treatment. Initial segmentation is done using Statistical parameters such as mean, standard deviation which segregates white blood cells from other blood components i.e. erythrocytes and platelets. Geometrical features such as area, perimeter of the white blood cell nucleusis investigated for diagnostic prediction of Leukemia. The proposed method is successfully applied to a large number of images, showing promising results for varying image quality. Different image processing algorithms such as Image Enhancement, Thresholding, Mathematical morphology and Labelling are implemented using LabVIEW and MATLAB.
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利用图像处理技术检测显微图像中的白血病
当骨髓产生大量异常白细胞时,就会发生白血病。血液学家用显微镜对人体血液进行研究,这就需要显微镜彩色成像、分割、分类和聚类等方法来识别白血病患者。显微镜图像将由血液学家目视检查,这个过程既耗时又累人。自动图像处理系统是迫切需要的,它可以克服视觉检测中的相关限制。该系统将通过显微镜图像来检测白血病。白血病的早期和快速识别极大地有助于提供适当的治疗。初始分割使用统计参数,如平均值,标准偏差,从其他血液成分,即红细胞和血小板分离白细胞。白细胞核的面积、周长等几何特征可用于白血病的诊断预测。该方法成功地应用于大量图像,在不同图像质量下显示出良好的效果。利用LabVIEW和MATLAB实现了图像增强、阈值分割、数学形态学和标记等不同的图像处理算法。
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