A graph-based recommender system for digital library
Графовая рекомендательная система для цифровой библиотеки
2002-07-14
SCID: 54.1/tn5pb4bu
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Hopfield netdigital librarygraph-based recommender systemhybrid recommendationprecision and recall
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Abstract (AI)
Research shows that recommendations comprise a valuable service for users of a digital library [11]. While most existing recommender systems rely either on a content-based approach or a collaborative approach to make recommendations, there is potential to improve recommendation quality by using a combination of both approaches (a hybrid approach). In this paper, we report how we tested the idea of using a graph-based recommender system that naturally combines the content-based and collaborative approaches. Due to the similarity between our problem and a concept retrieval task, a Hopfield net algorithm was used to exploit high-degree book-book, user-user and book-user associations. Sample hold-out testing and preliminary subject testing were conducted to evaluate the system, by which it was found that the system gained improvement with respect to both precision and recall by combining content-based and collaborative approaches. However, no significant improvement was observed by exploiting high-degree associations.
Key Findings
1
A Hopfield network exploits book-book, user-user, and book-user associations to model recommendation relationships as a concept-retrieval problem.
2
Exploiting high-degree associations did not produce a significant additional improvement in recommendation performance.
3
Hold-out and preliminary subject testing showed improved precision and recall when content-based and collaborative approaches were combined.
4
The study evaluates a graph-based recommender system for digital libraries that combines content-based and collaborative recommendation approaches.
Research Object
digital library recommender system
Research Subject
recommendation quality, specifically precision and recall, achieved by combining content-based and collaborative approaches and exploiting high-degree associations
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2002-07-14
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