Comparative analysis of similarity measures for sentence level semantic measurement of text
The accuracy of similarity measurement between sentences is critical to the performance of several applications such as text mining, question answering, and text summarization. This paper focuses on calculating semantic similarities between sentences and performing a comparative analysis among ident...
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my.uum.repo.102592014-02-23T09:19:54Z http://repo.uum.edu.my/10259/ Comparative analysis of similarity measures for sentence level semantic measurement of text Mohd Saad, Sazianti Kamarudin, Siti Sakira QA76 Computer software The accuracy of similarity measurement between sentences is critical to the performance of several applications such as text mining, question answering, and text summarization. This paper focuses on calculating semantic similarities between sentences and performing a comparative analysis among identified similarity measurement techniques.Comparison between three popular similarity measurements which are Jaccard, Cosine and Dice similarity measures has been conducted.The performance of each identified measurement was evaluated and recorded.In this paper, we use a large lexical database of English known as WordNet to calculate the world-toward semantic similarity.The result of this research concludes that the Jaccard and Dice performs better in measuring the semantic similarity between sentences. 2013-11-29 Conference or Workshop Item PeerReviewed application/pdf en http://repo.uum.edu.my/10259/1/22.pdf Mohd Saad, Sazianti and Kamarudin, Siti Sakira (2013) Comparative analysis of similarity measures for sentence level semantic measurement of text. In: 2013 IEEE International Conference on Control System, Computing and Engineering, 29 Nov. - 1 Dec. 2013, Penang, Malaysia. http://acscrg.com/iccsce/2013/ |
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QA76 Computer software Mohd Saad, Sazianti Kamarudin, Siti Sakira Comparative analysis of similarity measures for sentence level semantic measurement of text |
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The accuracy of similarity measurement between sentences is critical to the performance of several applications such as text mining, question answering, and text summarization. This paper focuses on calculating semantic similarities between sentences and performing a comparative analysis among identified similarity measurement techniques.Comparison between three popular similarity measurements which are Jaccard, Cosine and Dice similarity measures has been conducted.The performance of each identified measurement was evaluated and recorded.In this paper, we use a large lexical database of English known as WordNet to calculate the world-toward semantic similarity.The result of this research concludes that the Jaccard and Dice performs better in measuring the semantic similarity between sentences. |
format |
Conference or Workshop Item |
author |
Mohd Saad, Sazianti Kamarudin, Siti Sakira |
author_facet |
Mohd Saad, Sazianti Kamarudin, Siti Sakira |
author_sort |
Mohd Saad, Sazianti |
title |
Comparative analysis of similarity measures for sentence level semantic measurement of text |
title_short |
Comparative analysis of similarity measures for sentence level semantic measurement of text |
title_full |
Comparative analysis of similarity measures for sentence level semantic measurement of text |
title_fullStr |
Comparative analysis of similarity measures for sentence level semantic measurement of text |
title_full_unstemmed |
Comparative analysis of similarity measures for sentence level semantic measurement of text |
title_sort |
comparative analysis of similarity measures for sentence level semantic measurement of text |
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2013 |
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http://repo.uum.edu.my/10259/1/22.pdf http://repo.uum.edu.my/10259/ http://acscrg.com/iccsce/2013/ |
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