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HDEC: A Heterogeneous Dynamic Ensemble Classifier for Binary Datasets
2020
Computational Intelligence and Neuroscience
In recent years, ensemble classification methods have been widely investigated in both industry and literature in the field of machine learning and artificial intelligence. The main advantage of this approach is to benefit from a set of classifiers instead of using a single classifier with the aim of improving the prediction performance, such as accuracy. Selecting the base classifiers and the method for combining them are the most challenging issues in the ensemble classifiers. In this paper,
doi:10.1155/2020/8826914
pmid:33488690
pmcid:PMC7803144
fatcat:vu5a55bktndytniudmyv2agzxa