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首页> 外文期刊>Biocybernetics and biomedical engineering >Simultaneous feature weighting and parameter determination of Neural Networks using Ant Lion Optimization for the classification of breast cancer
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Simultaneous feature weighting and parameter determination of Neural Networks using Ant Lion Optimization for the classification of breast cancer

机译:使用蚂蚁狮子优化对乳腺癌分类的同时特征加权和参数测定

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摘要

In this paper, feature weighting is used to develop an effective computer-aided diagnosis system for breast cancer. Feature weighting is employed because it boosts the classification performance more as compared to feature subset selection. Specifically, a wrapper method utilizing the Ant Lion Optimization algorithm is presented that searches for best feature weights and parametric values of Multilayer Neural Network simultaneously. The selection of hidden neurons and backpropagation training algorithms are used as parameters of neural networks. The performance of the proposed approach is evaluated on three breast cancer datasets. The data is initially normalized using tanh method to remove the effects of dominant features and outliers. The results show that the proposed wrapper method has a better ability to attain higher accuracy as compared to the existing techniques. The obtained high classification performance validates the work which has the potential for becoming an alternative to the other well-known techniques. (c) 2019 Nalecz Institute of Biocybernetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier B.V. All rights reserved.
机译:本文采用特征加权来开发乳腺癌有效的计算机辅助诊断系统。采用特征加权,因为它与特征子集选择相比,它更多地提升了分类性能。具体地,介绍了利用蚂蚁优化算法的包装方法,其同时搜索多层神经网络的最佳特征权重和参数值。隐藏的神经元和背部衰老训练算法的选择用作神经网络的参数。在三种乳腺癌数据集中评估所提出的方法的性能。数据最初使用Tanh方法标准化,以消除主导特征和异常值的效果。结果表明,与现有技术相比,所提出的包装方法具有更好的达到更高精度的能力。获得的高分类性能验证了有可能成为其他知名技术的替代方案的工作。 (c)2019年纳雷斯州博士科学学院生物医学研究所。 elsevier b.v出版。保留所有权利。

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