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Semantic enriched category recommendation system for large-scale emails exploiting big data processing technologies

Title
Semantic enriched category recommendation system for large-scale emails exploiting big data processing technologies
Author
이동호
Keywords
Big data; Distributed server environment; Email clustering; LDA algorithm; Semantic categorizing
Issue Date
2015-07
Publisher
IEEE
Citation
Proceedings - IEEE Computer Society's International Computer Software and Applications Conference, v. 3, article no. 7273445, Page. 642-643
Abstract
Nowadays, people who use the Internet have at least one email account. Email is important means of information sharing and communications. For example, email is used for business communications or business advertisements, and personal use, such as checking bills or keeping in touch with others. However, it has become difficult to manage email as the amount of email usage increases. In this paper, we propose a semantic enriched category recommendation system for large-scale emails exploiting big data technologies. First of all, an email pre-processing process is performed. And then, through Latent Dirichlet Allocation (LDA) algorithm from Mahout the email contents in distributed server environment are clustered. A word representing the cluster, the category, from extracted cluster should determine. That way, the semantic relationships of cluster inner words analyze using the Flickr. Finally, the semantic enriched category is recommended to user. © 2015 IEEE.
URI
https://ieeexplore.ieee.org/document/7273445/https://repository.hanyang.ac.kr/handle/20.500.11754/186038
ISSN
0730-6512
DOI
10.1109/COMPSAC.2015.96
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ETC[S] > ETC
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