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Leukemia Image Segmentation Using a Hybrid Histogram-Based Soft Covering Rough K-Means Clustering Algorithm

机译:使用混合直方图的软覆盖粗糙k均值聚类算法的白血病图像分割

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Segmenting an image of a nucleus is one of the most essential tasks in a leukemia diagnostic system. Accurate and rapid segmentation methods help the physicians identify the diseases and provide better treatment at the appropriate time. Recently, hybrid clustering algorithms have started being widely used for image segmentation in medical image processing. In this article, a novel hybrid histogram-based soft covering rough k-means clustering (HSCRKM) algorithm for leukemia nucleus image segmentation is discussed. This algorithm combines the strengths of a soft covering rough set and rough k-means clustering. The histogram method was utilized to identify the number of clusters to avoid random initialization. Different types of features such as gray level co-occurrence matrix (GLCM), color, and shape-based features were extracted from the segmented image of the nucleus. Machine learning prediction algorithms were applied to classify the cancerous and non-cancerous cells. The proposed strategy is compared with an existing clustering algorithm, and the efficiency is evaluated based on the prediction metrics. The experimental results show that the HSCRKM method efficiently segments the nucleus, and it is also inferred that logistic regression and neural network perform better than other prediction algorithms.
机译:分割核的图像是白血病诊断系统中最基本的任务之一。准确和快速的分割方法有助于医生识别疾病并在适当的时间提供更好的治疗方法。最近,混合聚类算法已经开始广泛用于医学图像处理中的图像分割。在本文中,讨论了一种新的混合直方图的软覆盖粗糙k-means聚类(Hscrkm)算法,用于白血病核图像分割。该算法结合了软覆盖粗糙集的强度和粗糙的k均值聚类。直方图方法用于识别避免随机初始化的簇的数量。从细胞核的分段图像中提取不同类型的特征,例如灰度共发生矩阵(GLCM),颜色和基于形状的特征。应用机器学习预测算法对癌性和非癌细胞进行分类。将该策略与现有聚类算法进行比较,并且基于预测度量评估效率。实验结果表明,HSCRKM方法有效地分段核,也推断出逻辑回归和神经网络比其他预测算法更好。

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