A New Modeling to Feature Selection Based on the Fuzzy Rough Set Theory in Normal and Optimistic States on Hybrid Information Systems
Mohammad Hossein Safarpour, Seyed Majid Alavi, Mohammad Izadikhah, Hossein Dibachi

TL;DR
This paper introduces FSbuHD, a novel feature selection model based on fuzzy rough set theory that reformulates the problem as an optimization task, improving efficiency and effectiveness in high-dimensional data analysis.
Contribution
The paper proposes a new fuzzy rough set-based feature selection model that uses combined object distances and reformulates the problem as an optimization task, addressing high-dimensional challenges.
Findings
FSbuHD outperforms existing methods in efficiency and effectiveness.
The model operates in normal and optimistic modes for flexible feature selection.
Experimental results on UCI datasets validate the approach's superiority.
Abstract
Considering the high volume, wide variety, and rapid speed of data generation, investigating feature selection methods for big data presents various applications and advantages. By removing irrelevant and redundant features, feature selection reduces data dimensions, thereby facilitating optimal decision-making within decision systems. One of the key tools for feature selection in hybrid information systems is fuzzy rough set theory. However, this theory faces two significant challenges: First, obtaining fuzzy equivalence relations through intersection operations in high-dimensional spaces can be both time-consuming and memory-intensive. Additionally, this method may produce noisy data, complicating the feature selection process. The purpose and innovation of this paper are to address these issues. We proposed a new feature selection model that calculates the combined distance between…
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Taxonomy
TopicsRough Sets and Fuzzy Logic · Fuzzy and Soft Set Theory · Data Mining Algorithms and Applications
