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Word Embedding Based Knowledge Representation with Extracting Relationship Between Scientific Terminologiesopen access

Authors
Kim, MucheolKim, JunhoShin, Mincheol
Issue Date
Mar-2020
Publisher
TSI PRESS
Keywords
Word Embedding; Text Mining; Web Technology; Big Data; Information Retrieval
Citation
INTELLIGENT AUTOMATION AND SOFT COMPUTING, v.26, no.1, pp 141 - 147
Pages
7
Journal Title
INTELLIGENT AUTOMATION AND SOFT COMPUTING
Volume
26
Number
1
Start Page
141
End Page
147
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/38153
DOI
10.31209/2019.100000135
ISSN
1079-8587
2326-005X
Abstract
With the trends of big data era, many people want to acquire the reliable and refined information from web environments. However, it is difficult to find appropriate information because the volume and complexity of web information is increasing rapidly. So many researchers are focused on text mining and personalized recommendation for extracting users' interests. The proposed approach extracted semantic relationship between scientific terminologies with word embedding approach. We aggregated science data in BT for supporting users' wellness. In our experiments, query expansion is performed with relationship between scientific terminologies with user's intention.
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소프트웨어대학 (소프트웨어학부)
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