Providing personalized offers, and services in general, for the users of a system requires perceiving the context in which the users’ preferences are rooted. Accordingly, context modeling is becoming a relevant issue and an expanding research field. Moreover, the frequent changes of context may induce a change in the current preferences; thus, appropriate learning methods should be employed for the system to adapt automatically. In this work, we introduce a methodology based on the so-called Context Dimension Tree—a model for representing the possible contexts in the very first stages of Application Design—as well as an appropriate conceptual architecture to build a recommender system for travelers.

Towards learning travelers’ preferences in a context-aware fashion

Javadian Sabet A.;Rossi M.;Schreiber F. A.;Tanca L.
2020-01-01

Abstract

Providing personalized offers, and services in general, for the users of a system requires perceiving the context in which the users’ preferences are rooted. Accordingly, context modeling is becoming a relevant issue and an expanding research field. Moreover, the frequent changes of context may induce a change in the current preferences; thus, appropriate learning methods should be employed for the system to adapt automatically. In this work, we introduce a methodology based on the so-called Context Dimension Tree—a model for representing the possible contexts in the very first stages of Application Design—as well as an appropriate conceptual architecture to build a recommender system for travelers.
2020
Advances in Intelligent Systems and Computing
978-3-030-58355-2
978-3-030-58356-9
Context Dimension Tree
Data tailoring
Journey planning
Preferences
Recommender systems
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/1166953
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