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A hybrid genetic based functional link artificial neural network with a statistical comparison of classifiers over multiple datasets

机译:基于混合遗传的功能链接人工神经网络,对多个数据集的分类器进行统计比较

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This paper proposed a hybrid genetic based functional link artificial neural network (HFLANN) with simultaneous optimization of input features for the purpose of solving the problem of classification in data mining. The aim of the proposed approach is to choose an optimal subset of input features using genetic algorithm by eliminating features with little or no predictive information and increase the comprehensibility of resulting HFLANN. Using the functionally expanded of selected features, HFLANN overcomes the nonlinearity nature of problems, which is commonly encountered in single-layer neural networks. The features like simplicity of the architecture and low computational complexity of the network encourage us to use it in classification task of data mining. Further, the issue of statistical tests for comparison of algorithms on multiple datasets, which is even more essential to typical machine learning and data mining studies, has been all but ignored. In this work, we recommend a set of simple, yet safe and robust parametric and nonparametric tests for statistical comparisons of HFLANN with FLANN and RBF classifiers over multiple datasets by an extensive simulation studies.
机译:为了解决数据挖掘中的分类问题,本文提出了一种基于混合遗传的功能链接人工神经网络(HFLANN),同时优化了输入特征。提出的方法的目的是通过消除具有很少或没有预测信息的特征,并使用遗传算法选择输入特征的最佳子集,并提高所得HFLANN的可理解性。使用所选功能的功能扩展,HFLANN克服了单层神经网络中常见的非线性问题。诸如体系结构简单和网络计算复杂度低的特征鼓励我们将其用于数据挖掘的分类任务。此外,用于比较多个数据集上的算法的统计测试问题(对于典型的机器学习和数据挖掘研究而言甚至更为重要)几乎被忽略了。在这项工作中,我们建议通过一系列广泛的模拟研究,对多个数据集上的HFLANN与FLANN和RBF分类器进行统计比较,以提供一组简单而又安全可靠的参数和非参数测试。

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