Multi document summarization based on cross-document relation using voting technique
News articles which are available through online search often provide readers with large collection of texts. Especially in the case of news story, different news sources reporting on the same event usually returns multiple articles in response to a reader's search. In this work, we first ident...
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my.utm.511842017-06-27T04:36:50Z http://eprints.utm.my/id/eprint/51184/ Multi document summarization based on cross-document relation using voting technique Kumar, Yogan Jaya Salim, Naomie Abuobieda, Albaraa Tawfik, Ameer QA75 Electronic computers. Computer science News articles which are available through online search often provide readers with large collection of texts. Especially in the case of news story, different news sources reporting on the same event usually returns multiple articles in response to a reader's search. In this work, we first identify cross-document relations from un-annotated texts using Genetic-CBR approach. Following that, we develop a new sentence scoring model based on voting technique over the identified cross-document relations. Our experiments show that incorporating the proposed methods in the summarization process yields substantial improvement over the mainstream methods. The performances of all methods were evaluated using ROUGE - a standard evaluation metric used in text summarization. 2013 Conference or Workshop Item PeerReviewed Kumar, Yogan Jaya and Salim, Naomie and Abuobieda, Albaraa and Tawfik, Ameer (2013) Multi document summarization based on cross-document relation using voting technique. In: 2013 International Conference on Computer, Electrical and Electronics Engineering: 'Research Makes a Difference', ICCEEE 2013, 2013, Sudan. http://dx.doi.org/10.1109/ICCEEE.2013.6634009 |
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QA75 Electronic computers. Computer science Kumar, Yogan Jaya Salim, Naomie Abuobieda, Albaraa Tawfik, Ameer Multi document summarization based on cross-document relation using voting technique |
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News articles which are available through online search often provide readers with large collection of texts. Especially in the case of news story, different news sources reporting on the same event usually returns multiple articles in response to a reader's search. In this work, we first identify cross-document relations from un-annotated texts using Genetic-CBR approach. Following that, we develop a new sentence scoring model based on voting technique over the identified cross-document relations. Our experiments show that incorporating the proposed methods in the summarization process yields substantial improvement over the mainstream methods. The performances of all methods were evaluated using ROUGE - a standard evaluation metric used in text summarization. |
format |
Conference or Workshop Item |
author |
Kumar, Yogan Jaya Salim, Naomie Abuobieda, Albaraa Tawfik, Ameer |
author_facet |
Kumar, Yogan Jaya Salim, Naomie Abuobieda, Albaraa Tawfik, Ameer |
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Kumar, Yogan Jaya |
title |
Multi document summarization based on cross-document relation using voting technique |
title_short |
Multi document summarization based on cross-document relation using voting technique |
title_full |
Multi document summarization based on cross-document relation using voting technique |
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Multi document summarization based on cross-document relation using voting technique |
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Multi document summarization based on cross-document relation using voting technique |
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multi document summarization based on cross-document relation using voting technique |
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2013 |
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http://eprints.utm.my/id/eprint/51184/ http://dx.doi.org/10.1109/ICCEEE.2013.6634009 |
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