A survey on concept drift adaptation

Обзор адаптации к дрейфу концепций
Mykola Pechenizkiy, João Gama, Indrė Žliobaitė, Albert Bifet, Abdelhamid Bouchachia
2014-03-01

adaptive algorithm evaluationadaptive learningconcept drift adaptationconcept drift detectiononline supervised learning
Concept drift primarily refers to an online supervised learning scenario when the relation between the input data and the target variable changes over time. Assuming a general knowledge of supervised learning in this article, we characterize adaptive learning processes; categorize existing strategies for handling concept drift; overview the most representative, distinct, and popular techniques and algorithms; discuss evaluation methodology of adaptive algorithms; and present a set of illustrative applications. The survey covers the different facets of concept drift in an integrated way to reflect on the existing scattered state of the art. Thus, it aims at providing a comprehensive introduction to the concept drift adaptation for researchers, industry analysts, and practitioners.
1
Concept drift is defined as an online supervised-learning setting where the relationship between input data and target variables changes over time.
2
It reviews representative, distinct, and widely used techniques and algorithms for concept-drift adaptation.
3
The paper discusses evaluation methodologies for adaptive algorithms and presents illustrative applications.
4
The survey characterizes adaptive learning processes and categorizes existing strategies for handling concept drift.
5
The survey integrates fragmented research on concept drift adaptation into a comprehensive introduction for researchers and practitioners.

Concept drift in online supervised learning

adaptation strategies, learning processes, algorithms, and evaluation methods for handling concept drift

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Publication Date
2014-03-01
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Authors
Mykola Pechenizkiy
João Gama
Indrė Žliobaitė
Albert Bifet
Abdelhamid Bouchachia
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