Machine Learning for User Modeling

At first blush, user modeling appears to be a prime candidate for straightforward application of standard machine learning techniques. Observations of the user's behavior can provide training examples that a machine learning system can use to form a model designed to predict future actions. How...

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Veröffentlicht in:User modeling and user-adapted interaction 2001-01, Vol.11 (1-2), p.19-29
Hauptverfasser: Webb, Geoffrey I, Pazzani, Michael J, Billsus, Daniel
Format: Artikel
Sprache:eng
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Zusammenfassung:At first blush, user modeling appears to be a prime candidate for straightforward application of standard machine learning techniques. Observations of the user's behavior can provide training examples that a machine learning system can use to form a model designed to predict future actions. However, user modeling poses a number of challenges for machine learning that have hindered its application in user modeling, including: the need for large data sets; the need for labeled data; concept drift; and computational complexity. This paper examines each of these issues and reviews approaches to resolving them. [PUBLICATION ABSTRACT]
ISSN:0924-1868
1573-1391
DOI:10.1023/A:1011117102175