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首页> 外文期刊>Computers & Industrial Engineering >Taiwanese export trade forecasting using firefly algorithm based K-means algorithm and SVR with wavelet transform
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Taiwanese export trade forecasting using firefly algorithm based K-means algorithm and SVR with wavelet transform

机译:基于萤火虫算法的K均值算法和带小波变换的SVR的台湾出口贸易预测

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摘要

In order to develop a prediction system for export trade value, this study proposes a three-stage forecasting model which integrates wavelet transform, firefly algorithm-based K-means algorithms and firefly algorithm-based support vector regression (SVR). First, wavelet transform is utilized to reduce the noise in data preprocessing. Then, the firefly algorithm-based K-means algorithm is employed for cluster analysis. Finally, a forecasting model is built for each cluster individually. For evaluation, this study compares methods with and without clustering. In addition, both non-wavelet transform and wavelet transform for data preprocessing are investigated. The experimental results indicate that the forecasting algorithm with both wavelet transform and clustering has better performance. Besides, firefly algorithm-based SVR outperforms the other algorithms.
机译:为了建立出口贸易价值预测系统,本研究提出了一个三阶段预测模型,该模型将小波变换,基于萤火虫算法的K-means算法和基于萤火虫算法的支持向量回归(SVR)相集成。首先,利用小波变换来减少数据预处理中的噪声。然后,将基于萤火虫算法的K-means算法用于聚类分析。最后,为每个集群分别构建一个预测模型。为了进行评估,本研究比较了有无聚类的方法。另外,还研究了用于数据预处理的非小波变换和小波变换。实验结果表明,小波变换和聚类的预测算法具有较好的性能。此外,基于萤火虫算法的SVR优于其他算法。

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