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An incremental learning strategy for search results optimization

  • Harbin Institute of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The traditional search engines rarely consider features of the document set, so the retrieval results are not so satisfactory after new documents are added into the retrieval system. In this paper we combine the features of document set with traditional retrieval models and propose an incremental learning strategy to optimize the retrieval results. We got a feature thesaurus by extracting the document set. Then we collected some new features from the newly added documents and refreshed the feature thesaurus. Finally, the search results were reordered according to how well they matched the feature thesaurus with a query. Several parts of experiments show that this method averagely rises by 9.4% in precision, 14.9% in MAP, 4.6% in DCG towards the top 10 results than traditional retrieval means, which means that it processes better while making a query, even better while querying to the newly added documents, and faster while locating the required information.

Original languageEnglish
Title of host publicationProceedings of the 2013 International Conference on Machine Learning and Cybernetics, ICMLC 2013
PublisherIEEE Computer Society
Pages491-495
Number of pages5
ISBN (Electronic)9781479902576
DOIs
StatePublished - 2013
Event12th International Conference on Machine Learning and Cybernetics, ICMLC 2013 - Tianjin, China
Duration: 14 Jul 201317 Jul 2013

Publication series

NameProceedings - International Conference on Machine Learning and Cybernetics
Volume1
ISSN (Print)2160-133X
ISSN (Electronic)2160-1348

Conference

Conference12th International Conference on Machine Learning and Cybernetics, ICMLC 2013
Country/TerritoryChina
CityTianjin
Period14/07/1317/07/13

Keywords

  • Feature thesaurus
  • incremental learning
  • reorder
  • search results optimization

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