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The Importance of Context When Recommending TV Content: Dataset and Algorithms

  • IEEE Transactions on Multimedia
  • Institute of Electrical and Electronics Engineers
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Abstract

Home entertainment systems feature in a variety of usage scenarios with one or more simultaneous users, for whom the complexity of choosing media to consume has increased rapidly over the last decade. Users' decision processes are complex and highly influenced by contextual settings, but data supporting the development and evaluation of context-aware recommender systems are scarce. In this paper we present a dataset of self-reported TV consumption enriched with contextual information of viewing situations. We show how choice of genre associates with, among others, the number of present users and users' attention levels. Furthermore, we evaluate the performance of predicting chosen genres given different configurations of contextual information, and compare the results to contextless predictions. The results suggest that including contextual features in the prediction cause notable improvements, and both temporal and social context show significant contributions.

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Publication details

DOI
10.1109/tmm.2019.2944214
OpenAlex
W2976494695
Document type
article
Language
EN
Source
IEEE Transactions on Multimedia
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