作者
Yong-Huan Yun, Jun Bin, Dong-Li Liu, Lin Xu, Ting-Liang Yan, Dong-Sheng Cao, Qing-Song Xu
发表日期
2019/6/13
期刊
Analytica chimica acta
卷号
1058
页码范围
58-69
出版商
Elsevier
简介
When analyzing high-dimensional near-infrared (NIR) spectral datasets, variable selection is critical to improving models' predictive abilities. However, some methods have many limitations, such as a high risk of overfitting, time-intensiveness, or large computation demands, when dealing with a high number of variables. In this study, we propose a hybrid variable selection strategy based on the continuous shrinkage of variable space which is the core idea of variable combination population analysis (VCPA). The VCPA-based hybrid strategy continuously shrinks the variable space from big to small and optimizes it based on modified VCPA in the first step. It then employs iteratively retaining informative variables (IRIV) and a genetic algorithm (GA) to carry out further optimization in the second step. It takes full advantage of VCPA, GA, and IRIV, and makes up for their drawbacks in the face of high numbers of variables …
引用总数
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