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Using wavelet sub-band and fuzzy 2-partition entropy to segment chronic lymphocytic leukemia images

机译:使用小波亚带和模糊2分区熵分段慢性淋巴细胞白血病图像

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摘要

Histological images analysis is an important procedure to diagnose different types of cancer. One of them is the chronic lymphocytic leukemia (CLL), which can be identified by applying image segmentation techniques. This study presents an unsupervised method to segment neoplastic nuclei in CLL images. Firstly, deconvolution, histogram equalization and mean filter were applied to enhance nuclear regions. Then, a segmentation technique based on a combination of wavelet transform, fuzzy 2-partition entropy and genetic algorithm was used, followed by removal of false positive regions, and application of valley-emphasis and morphological operations. In order to evaluate the proposed algorithm H&E-stained histological images were used. In the accuracy metric, the proposed method attained more than 80%, which can surpass similar methods. This proposal presents spatial distribution that has a good consistency with a manual segmentation and lower overlapping rate than other techniques in the literature. (C) 2017 Elsevier B.V. All rights reserved.
机译:组织学图像分析是诊断不同类型癌症的重要程序。其中一个是慢性淋巴细胞白血病(CLL),其可以通过施加图像分割技术来鉴定。本研究提出了一种对CLL图像中的肿瘤核进行肿瘤核的无预测方法。首先,应用去卷积,直方图均衡和平均过滤器来增强核区域。然后,使用基于小波变换,模糊2分布熵和遗传算法的组合的分割技术,然后去除假阳性区域,并在谷重点和形态学操作中的应用。为了评估所提出的算法H和E染色的组织学图像。在准确度指标中,所提出的方法达到80%以上,可以超越类似的方法。该提案呈现空间分布,其具有良好的一致性,具有比文献中的其他技术更低的手动分段和更低的重叠率。 (c)2017 Elsevier B.v.保留所有权利。

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