An Adaptive Variable Selection Algorithm for Gated Recurrent Unit Based on Sensitivity Analysis and Nonnegative Garrote

Cong Xu, Chunlai Yan, Xiuliang Wu, Changchun Pan, Kai Sun
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引用次数: 2

Abstract

In this study, sensitivity analysis and nonnegative garrote (NNG) are combined to realize adaptive variable selection for gated recurrent unit (GRU). Firstly, the sensitivity analysis based on variance decomposition is used to quantify the correlation between each input variable and the output variable, and the total sensitivity index of each input variable is calculated. Secondly, the total sensitivity index is added to the NNG as an adaptive weight vector to achieve adaptive variable selection. Finally, an artificial dataset with the characteristic of time series is used to verify the effectiveness of the proposed algorithm. Simulation results show that the proposed algorithm can identify the relevant variables effectively and improve the predictive performance of the model.
基于灵敏度分析和非负绞喉的门控循环单元自适应变量选择算法
本研究将灵敏度分析与非负绞喉法(NNG)相结合,实现了门控循环单元(GRU)的自适应变量选择。首先,采用基于方差分解的敏感性分析,量化各输入变量与输出变量之间的相关性,计算各输入变量的总敏感性指数;其次,将总灵敏度指标作为自适应权向量加入到NNG中,实现自适应变量选择;最后,利用具有时间序列特征的人工数据集验证了算法的有效性。仿真结果表明,该算法能有效识别相关变量,提高模型的预测性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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