JOURNAL ARTICLE

Online Multi-Label Streaming Feature Selection Based on Label Group Correlation and Feature Interaction

Jinghua LiuSongwei YangHongbo ZhangZhenzhen SunJi‐Xiang Du

Year: 2023 Journal:   Entropy Vol: 25 (7)Pages: 1071-1071   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

Multi-label streaming feature selection has received widespread attention in recent years because the dynamic acquisition of features is more in line with the needs of practical application scenarios. Most previous methods either assume that the labels are independent of each other, or, although label correlation is explored, the relationship between related labels and features is difficult to understand or specify. In real applications, both situations may occur where the labels are correlated and the features may belong specifically to some labels. Moreover, these methods treat features individually without considering the interaction between features. Based on this, we present a novel online streaming feature selection method based on label group correlation and feature interaction (OSLGC). In our design, we first divide labels into multiple groups with the help of graph theory. Then, we integrate label weight and mutual information to accurately quantify the relationships between features under different label groups. Subsequently, a novel feature selection framework using sliding windows is designed, including online feature relevance analysis and online feature interaction analysis. Experiments on ten datasets show that the proposed method outperforms some mature MFS algorithms in terms of predictive performance, statistical analysis, stability analysis, and ablation experiments.

Keywords:
Feature selection Computer science Feature (linguistics) Correlation Artificial intelligence Stability (learning theory) Mutual information Pattern recognition (psychology) Relevance (law) Machine learning Multi-label classification Data mining Mathematics

Metrics

2
Cited By
0.51
FWCI (Field Weighted Citation Impact)
52
Refs
0.65
Citation Normalized Percentile
Is in top 1%
Is in top 10%

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