Categorization of Malay documents using latent semantic indexing
Document categorization is a widely researched area of information retrieval.A popular approach to categorize documents is the Vector Space Model(VSM), which represents texts with feature vectors.The categorizing based on the VSM suffers from noise caused by synonymy and polysemy.Thus, an approach...
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my.uum.repo.112862014-06-05T02:32:21Z http://repo.uum.edu.my/11286/ Categorization of Malay documents using latent semantic indexing Ab Samat, Nordianah Azmi Murad, Masrah Azrifah Atan, Rodziah Abdullah, Muhammad Taufik PL Languages and literatures of Eastern Asia, Africa, Oceania QA76 Computer software Document categorization is a widely researched area of information retrieval.A popular approach to categorize documents is the Vector Space Model(VSM), which represents texts with feature vectors.The categorizing based on the VSM suffers from noise caused by synonymy and polysemy.Thus, an approach for the clustering of Malay documents based on semantic relations between words is proposed in this paper.The method is based on the model first formulated in the context o f information retrieval, called Latent Semantic Indexing (LSI).This model leads to a vector representation of each document using Singular Value Decomposition(SVD),where familiar clustering techniques can be applied in this space.LSI produced good document clustering by obtaining relevant subjects appearing in a cluster. 2008-06-10 Conference or Workshop Item PeerReviewed application/pdf en http://repo.uum.edu.my/11286/1/87-91-CR74.pdf Ab Samat, Nordianah and Azmi Murad, Masrah Azrifah and Atan, Rodziah and Abdullah, Muhammad Taufik (2008) Categorization of Malay documents using latent semantic indexing. In: Knowledge Management International Conference 2008 (KMICe2008), 10-12 June 2008, Langkawi, Malaysia. http://www.kmice.uum.edu.my |
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PL Languages and literatures of Eastern Asia, Africa, Oceania QA76 Computer software Ab Samat, Nordianah Azmi Murad, Masrah Azrifah Atan, Rodziah Abdullah, Muhammad Taufik Categorization of Malay documents using latent semantic indexing |
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Document categorization is a widely researched area of information retrieval.A popular approach to categorize documents is the Vector Space Model(VSM), which represents texts with feature vectors.The categorizing based on the VSM suffers from noise caused by synonymy and polysemy.Thus, an approach
for the clustering of Malay documents
based on semantic relations between words
is proposed in this paper.The method is based on the model first formulated in the context o
f information retrieval, called Latent Semantic Indexing (LSI).This model leads to a vector representation of each document using Singular Value Decomposition(SVD),where familiar clustering techniques can be applied
in this space.LSI produced good document clustering by obtaining relevant subjects appearing in a cluster. |
format |
Conference or Workshop Item |
author |
Ab Samat, Nordianah Azmi Murad, Masrah Azrifah Atan, Rodziah Abdullah, Muhammad Taufik |
author_facet |
Ab Samat, Nordianah Azmi Murad, Masrah Azrifah Atan, Rodziah Abdullah, Muhammad Taufik |
author_sort |
Ab Samat, Nordianah |
title |
Categorization of Malay documents using latent semantic indexing |
title_short |
Categorization of Malay documents using latent semantic indexing |
title_full |
Categorization of Malay documents using latent semantic indexing |
title_fullStr |
Categorization of Malay documents using latent semantic indexing |
title_full_unstemmed |
Categorization of Malay documents using latent semantic indexing |
title_sort |
categorization of malay documents using latent semantic indexing |
publishDate |
2008 |
url |
http://repo.uum.edu.my/11286/1/87-91-CR74.pdf http://repo.uum.edu.my/11286/ http://www.kmice.uum.edu.my |
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1644280601390350336 |
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13.209306 |