Research Status and Prospect of Ensemble Learning
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Graphical Abstract
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Abstract
Ensemble learning is an important research topic of machine learning. By integrating or combining existing machine learning models, ensemble learning can make the performance of the integrated model exceed any single model., The theory of the effectiveness of ensemble learning is summarized and analyzed from two aspects: ensemble regression and ensemble classification; the methods to achieve diversity of ensemble learning are analyzed; the research progress of the main ensemble learning methods such as bagging, boosting, stacking, multi-kernel learning and ensemble deep learning is analyzed; the key issues of ensemble learning in the future are discussed..
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