Publication | Closed Access
Cumulative citation recommendation
33
Citations
14
References
2013
Year
Unknown Venue
Ranking AlgorithmEngineeringIntelligent Information RetrievalRich FeatureLearning To RankBibliometricsCorpus LinguisticsText MiningNatural Language ProcessingInformation RetrievalData ScienceData MiningTime-ordered CorpusRelevance FeedbackDocument ClassificationCumulative Citation RecommendationCitation AnalysisStatisticsKnowledge DiscoveryCitation GraphRanking-based Approach
Cumulative citation recommendation refers to the task of filtering a time-ordered corpus for documents that are highly relevant to a predefined set of entities. This task has been introduced at the TREC Knowledge Base Acceleration track in 2012, where two main families of approaches emerged: classification and ranking. In this paper we perform an experimental comparison of these two strategies using supervised learning with a rich feature set. Our main finding is that ranking outperforms classification on all evaluation settings and metrics. Our analysis also reveals that a ranking-based approach has more potential for future improvements.
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