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An improved study of multilevel semantic network visualization for analyzing sentiment word of movie review dataoa mark
  • Ha, Hyoji ;
  • Han, Hyunwoo ;
  • Mun, Seongmin ;
  • Bae, Sungyun ;
  • Lee, Jihye ;
  • Lee, Kyungwon
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Publication Year
2019-06-01
Publisher
MDPI AG
Citation
Applied Sciences (Switzerland), Vol.9
Keyword
Collaborative schemes of sentiment analysis and sentiment systemsReview data miningSemantic networksSentiment word analysis
All Science Classification Codes (ASJC)
Materials Science (all)InstrumentationEngineering (all)Process Chemistry and TechnologyComputer Science ApplicationsFluid Flow and Transfer Processes
Abstract
This paper suggests a method for refining a massive amount of collective intelligence data and visualizing it with a multilevel sentiment network in order to understand the relevant information in an intuitive and semantic way. This semantic interpretation method minimizes network learning in the system as a fixed network topology only exists as a guideline to help users understand. Furthermore, it does not need to discover every single node to understand the characteristics of each clustering within the network. After extracting and analyzing the sentiment words from the movie review data, we designed a movie network based on the similarities between the words. The network formed in this way will appear as a multilevel sentiment network visualization after the following three steps: (1) design a heatmap visualization to effectively discover the main emotions on each movie review; (2) create a two-dimensional multidimensional scaling (MDS) map of semantic word data to facilitate semantic understanding of network and then fix the movie network topology on the map; (3) create an asterism graphic with emotions to allow users to easily interpret node groups with similar sentiment words. The research also presents a virtual scenario about how our network visualization can be used as a movie recommendation system. We next evaluated our progress to determine whether it would improve user cognition for multilevel analysis experience compared to the existing network system. Results showed that our method provided improved user experience in terms of cognition. Thus, it is appropriate as an alternative method for semantic understanding.
ISSN
2076-3417
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/30793
DOI
https://doi.org/10.3390/app9122419
Fulltext

Type
Article
Funding
Funding: This research was funded by [the Ministry of Education of the Republic of Korea and the National Research Foundation of Korea] grant number [NRF-2018S1A5B6075104] And [Brain Korea 21 Plus Digital Therapy Research Team] grant number [NRF31Z20130012946].
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