Personalization in professional academic search

In this paper, we investigated how academic search can profit from personalization by incorporating query history and background knowledge in the ranking of the results. We implemented both techniques in a language modelling framework, using the Indri search engine. For our experiments, we used the iSearch data collection, a large corpus of documents from the physics domain together with 65 search topics from scientists and students. We found that it is possible to improve academic search by taking into account query history. However, we have not been able to prove that terms extracted from the user's background data can improve academic search.

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Publication Details

Published
2026-09-07
DOI
https://doi.org/10.82135/tno-523281
Citations
3
Primary Topic
Advanced Text Analysis Techniques
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article
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Personalization in professional academic search

Maya Sappelli, Diana Ransgaard Sørensen, Suzan Verberne, Wessel Kraaij
3 citations
Advanced Text Analysis Techniques
article

Personalization in professional academic search

Maya Sappelli, Diana Ransgaard Sørensen, Suzan Verberne, Wessel Kraaij
article en
3 citations

Abstract

In this paper, we investigated how academic search can profit from personalization by incorporating query history and background knowledge in the ranking of the results. We implemented both techniques in a language modelling framework, using the Indri search engine. For our experiments, we used the iSearch data collection, a large corpus of documents from the physics domain together with 65 search topics from scientists and students. We found that it is possible to improve academic search by taking into account query history. However, we have not been able to prove that terms extracted from the user's background data can improve academic search.

Radboud University Nijmegen (NL), University of Amsterdam (NL)
Quality Education
Openalex Percentile: Top 100%
Advanced Text Analysis Techniques
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