Analysis of Image Segmentation Algorithms for the Effective Detection of Leukemic Cells

T. Bhagya, K. Anand, D. S. Kanchana, Ajai A S Remya
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引用次数: 6

Abstract

Image segmentation plays a vital role in medical image processing. Different pre-processing methods yield different results. The pre-processing methods such as histogram stretching with erosion and dilation, average filter and median filter along with histogram stretching is applied to the four different segmentation algorithms which are Otsu's thresholding, Watershed based segmentation, Canny edge detection and K-mean clustering. These algorithms are used to segment Acute Lymphoblastic Leukemia datasets and the parameters such as precision, accuracy and sensitivity of the results are calculated so as to find a better algorithm which is suitable for segmentation of the leukemic cells.
有效检测白血病细胞的图像分割算法分析
图像分割在医学图像处理中起着至关重要的作用。不同的预处理方法产生不同的结果。对Otsu阈值分割算法、分水岭分割算法、Canny边缘检测算法和k均值聚类算法四种不同的分割算法分别采用侵蚀扩张直方图拉伸、平均滤波和中值滤波以及直方图拉伸等预处理方法。利用这些算法对急性淋巴细胞白血病数据集进行分割,并对结果的精密度、准确度、灵敏度等参数进行计算,以期找到一种更适合白血病细胞分割的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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