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Explicit diversification of search results across multiple dimensions for educational search

Author

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  • Sevgi Yigit‐Sert
  • Ismail Sengor Altingovde
  • Craig Macdonald
  • Iadh Ounis
  • Özgür Ulusoy

Abstract

Making use of search systems to foster learning is an emerging research trend known as search as learning. Earlier works identified result diversification as a useful technique to support learning‐oriented search, since diversification ensures a comprehensive coverage of various aspects of the queried topic in the result list. Inspired by this finding, first we define a new research problem, multidimensional result diversification, in the context of educational search. We argue that in a search engine for the education domain, it is necessary to diversify results across multiple dimensions, that is, not only for the topical aspects covered by the retrieved documents, but also for other dimensions, such as the type of the document (e.g., text, video, etc.) or its intellectual level (say, for beginners/experts). Second, we propose a framework that extends the probabilistic and supervised diversification methods to take into account the coverage of such multiple dimensions. We demonstrate its effectiveness upon a newly developed test collection based on a real‐life educational search engine. Thorough experiments based on gathered relevance annotations reveal that the proposed framework outperforms the baseline by up to 2.4%. An alternative evaluation utilizing user clicks also yields improvements of up to 2% w.r.t. various metrics.

Suggested Citation

  • Sevgi Yigit‐Sert & Ismail Sengor Altingovde & Craig Macdonald & Iadh Ounis & Özgür Ulusoy, 2021. "Explicit diversification of search results across multiple dimensions for educational search," Journal of the Association for Information Science & Technology, Association for Information Science & Technology, vol. 72(3), pages 315-330, March.
  • Handle: RePEc:bla:jinfst:v:72:y:2021:i:3:p:315-330
    DOI: 10.1002/asi.24403
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    References listed on IDEAS

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    1. Klaar Vanopstal & Robert Vander Stichele & Godelieve Laureys & Joost Buysschaert, 2012. "PubMed searches by Dutch-speaking nursing students: The impact of language and system experience," Journal of the Association for Information Science & Technology, Association for Information Science & Technology, vol. 63(8), pages 1538-1552, August.
    2. Ahmet Murat Ozdemiray & Ismail Sengor Altingovde, 2015. "Explicit search result diversification using score and rank aggregation methods," Journal of the Association for Information Science & Technology, Association for Information Science & Technology, vol. 66(6), pages 1212-1228, June.
    3. Claudio Carpineto & Stefano Mizzaro & Giovanni Romano & Matteo Snidero, 2009. "Mobile information retrieval with search results clustering: Prototypes and evaluations," Journal of the American Society for Information Science and Technology, Association for Information Science & Technology, vol. 60(5), pages 877-895, May.
    4. Klaar Vanopstal & Robert Vander Stichele & Godelieve Laureys & Joost Buysschaert, 2012. "PubMed searches by Dutch‐speaking nursing students: The impact of language and system experience," Journal of the American Society for Information Science and Technology, Association for Information Science & Technology, vol. 63(8), pages 1538-1552, August.
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