2020
DOI: 10.3390/informatics7040050
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Investigation of Combining Logitboost(M5P) under Active Learning Classification Tasks

Abstract: Active learning is the category of partially supervised algorithms that is differentiated by its strategy to combine both the predictive ability of a base learner and the human knowledge so as to exploit adequately the existence of unlabeled data. Its ambition is to compose powerful learning algorithms which otherwise would be based only on insufficient labelled samples. Since the latter kind of information could raise important monetization costs and time obstacles, the human contribution should be seriously … Show more

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Cited by 4 publications
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