首页> 外文会议>2012 International Conference on Computer Communication and Informatics >Finding suspicious masses of breast cancer in mammography images using particle swarm algorithm and its classification using fuzzy methods
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Finding suspicious masses of breast cancer in mammography images using particle swarm algorithm and its classification using fuzzy methods

机译:粒子群算法在乳腺X线摄影图像中发现可疑肿块及其模糊分类

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摘要

Mammography images which are one of the latest methods of breast imaging can largely help in detecting tumors. But, because of error possibility in determining benign and malignant tumors by physicians, an intelligent system for interpreting these images and diagnosing calcium tissues can always prevent from unnecessary biopsy and human visual errors. The objective of this article is this and there is an attempt to use wavelet transform to extract image features; then, using the particle swarm algorithm, the features which were more important and effective were selected. Finally, the obtained results were converted to fuzzy rules, an inference was made of these rules and the images were diagnosed and classified. The results were tested on MIAS database and the accuracy of 93.41 percent was obtained. These results were compared with those of three others. Also, the criteria of sensitivity and specificity were improved.
机译:作为乳房成像的最新方法之一的乳腺X射线摄影图像可以在很大程度上帮助检测肿瘤。但是,由于医师在确定良性和恶性肿瘤时可能会出现错误,因此用于解释这些图像和诊断钙组织的智能系统始终可以防止不必要的活检和人眼视觉错误。本文的目的是这样,并且尝试使用小波变换来提取图像特征。然后,使用粒子群算法,选择了更重要,更有效的特征。最后,将获得的结果转换为模糊规则,对这些规则进行推断,并对图像进行诊断和分类。结果在MIAS数据库上进行了测试,准确性达到93.41%。将这些结果与其他三个结果进行了比较。而且,敏感性和特异性的标准得到了改善。

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