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Personalized Academic Research Paper Recommendation System

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arxiv 1304.5457 v1 pith:FDGQDZS2 submitted 2013-04-19 cs.IR cs.DLcs.LG

classification cs.IRcs.DLcs.LG
keywords researchsystemacademicconferencesjournalspersonalizedproposerecommendation
verification ladder T0 review T1 audit T2 compute T3 formal
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A huge number of academic papers are coming out from a lot of conferences and journals these days. In these circumstances, most researchers rely on key-based search or browsing through proceedings of top conferences and journals to find their related work. To ease this difficulty, we propose a Personalized Academic Research Paper Recommendation System, which recommends related articles, for each researcher, that may be interesting to her/him. In this paper, we first introduce our web crawler to retrieve research papers from the web. Then, we define similarity between two research papers based on the text similarity between them. Finally, we propose our recommender system developed using collaborative filtering methods. Our evaluation results demonstrate that our system recommends good quality research papers.

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Cited by 1 Pith paper

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  1. Multi-Facet Blending for Faceted Query-by-Example Retrieval

    cs.IR 2024-12 conditional novelty 6.0 of 10

    A synthetic-data augmentation method that decomposes documents into facets and recombines LLM-written similar and dissimilar fragments improves faceted query-by-example retrieval without citation labels.

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