作者
Yong-Huan Yun, Wei-Ting Wang, Min-Li Tan, Yi-Zeng Liang, Hong-Dong Li, Dong-Sheng Cao, Hong-Mei Lu, Qing-Song Xu
发表日期
2014/1/7
期刊
Analytica chimica acta
卷号
807
页码范围
36-43
出版商
Elsevier
简介
Nowadays, with a high dimensionality of dataset, it faces a great challenge in the creation of effective methods which can select an optimal variables subset. In this study, a strategy that considers the possible interaction effect among variables through random combinations was proposed, called iteratively retaining informative variables (IRIV). Moreover, the variables are classified into four categories as strongly informative, weakly informative, uninformative and interfering variables. On this basis, IRIV retains both the strongly and weakly informative variables in every iterative round until no uninformative and interfering variables exist. Three datasets were employed to investigate the performance of IRIV coupled with partial least squares (PLS). The results show that IRIV is a good alternative for variable selection strategy when compared with three outstanding and frequently used variable selection methods such as …
引用总数
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