Development of a Java Library with Bacterial Foraging Optimization for Feature Selection of High-Dimensional Data
Tessy Badriyah,
Iwan Syarif,
Fitriani Rohmah Hardiyanti
Abstract:High-dimensional data allows researchers to conduct comprehensive analyses. However, such data often exhibits characteristics like small sample sizes, class imbalance, and high complexity, posing challenges for classification. One approach employed to tackle high-dimensional data is feature selection. This study uses the Bacterial Foraging Optimization (BFO) algorithm for feature selection. A dedicated BFO Java library is developed to extend the capabilities of WEKA for feature selection purposes. Experimental… Show more
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