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Sequential multi-criteria feature selection algorithm based on agent genetic algorithm

机译:基于Agent遗传算法的顺序多准则特征选择算法

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摘要

A multi-criteria feature selection method-sequential multi-criteria feature selection algorithm (SMCFS) has been proposed for the applications with high precision and low time cost. By combining the consistency and otherness of different evaluation criteria, the SMCFS adopts more than one evaluation criteria sequentially to improve the efficiency of feature selection. With one novel agent genetic algorithm (chain-like agent GA), the SMCFS can obtain high precision of feature selection and low time cost that is similar as filter method with single evaluation criterion. Several groups of experiments are carried out for comparison to demonstrate the performance of SMCFS. SMCFS is compared with different feature selection methods using three datasets from UCI database. The experimental results show that the SMCFS can get low time cost and high precision of feature selection, and is very suitable for this kind of applications of feature selection.
机译:提出了一种多准则特征选择方法-顺序多准则特征选择算法(SMCFS),用于高精度和低时间成本的应用。通过结合不同评估标准的一致性和其他性,SMCFS依次采用了多个评估标准,以提高特征选择的效率。 SMCFS借助一种新颖的代理遗传算法(链状代理GA),可以实现特征选择的高精度和低时间成本,类似于具有单一评估标准的过滤方法。进行了几组实验以进行比较,以证明SMCFS的性能。使用UCI数据库中的三个数据集,将SMCFS与不同的特征选择方法进行了比较。实验结果表明,SMCFS具有较低的时间成本和较高的特征选择精度,非常适合此类特征选择应用。

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