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Titlebook: Stream Data Mining: Algorithms and Their Probabilistic Properties; Leszek Rutkowski,Maciej Jaworski,Piotr Duda Book 2020 Springer Nature S

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select, implement, and analyze a group sequential stopping rule. Throughout, we illustrate trial design and monitoring in the context of a group sequential survival trial of an experimental monoclonal antibody in patients with relapsed chronic lymphocytic leukemia (CLL).
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Book 2020y, an extremely challenging problem that involves designing ensembles and automatically choosing their sizes is described and solved. Given its scope, the book is intended for a professional audience of researchers and practitioners who dealwith stream data, e.g. in telecommunication, banking, and sensor networks..
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Hybrid Splitting Criteria a new kind of splitting criteria can be proposed, which combine together two different single criteria in a heuristic manner. We refer to them as hybrid splitting criteria. In this chapter, we discuss premises which demonstrate that such an approach may lead to satisfactory results.
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Classificationoduced modification allows increasing the diversity of the ensemble components. The problem of selection component is an essential issue for every ensemble algorithm [.,.,.,.,.,.,.,.], however, only few of them are not heuristic procedures [., .].
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Misclassification Error Impurity Measureum of random variables. In this chapter, a split measure based on the misclassification error impurity measure is proposed [., .], which has the mentioned above property. In the case of misclassification error, the bounds obtained using the Hoeffding’s inequality and the McDiarmid’s inequality are equivalent.
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