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Regression rank: Learning to meet the opportunity of descriptive queries

conference contribution
posted on 2024-10-31, 10:47 authored by Matthew Lease, James Allan, Bruce Croft
We present a new learning to rank framework for estimating context-sensitive term weights without use of feedback. Specifically,knowledge of effective term weights on past queries is used to estimate term weights for new queries. This generalization is achieved by introducing secondary features correlated with term weights and applying regression to predict term weights given features. To improve support for more focused retrieval like question answering, we conduct document retrieval experiments with TREC description queries on three document collections. Results show significantly improved retrieval accuracy.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1007/978-3-642-00958-7_11
  2. 2.
    ISBN - Is published in 9783642009570 (urn:isbn:9783642009570)

Start page

90

End page

101

Total pages

12

Outlet

Proceedings of the 31st European Conference on Information Retrieval (ECIR 09)

Editors

Mohand Boughanem, Catherine Berrut, Josiane Mothe, Chantal Soule-Dupuy

Name of conference

31st European Conference on Information Retrieval (ECIR 09)

Publisher

Springer

Place published

Berlin, Germany

Start date

2009-04-06

End date

2009-04-09

Language

English

Copyright

© Springer-Verlag Berlin Heidelberg 2009

Former Identifier

2006024327

Esploro creation date

2020-06-22

Fedora creation date

2011-10-28

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