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http://dx.doi.org/10.7472/jksii.2018.19.6.21

An Artificial Neural Network Based Phrase Network Construction Method for Structuring Facility Error Types  

Roh, Younghoon (Industrial and Management Engineering, Kyonggi University)
Choi, Eunyoung (Industrial and Management Engineering, Kyonggi University)
Choi, Yerim (Industrial and Management Engineering, Kyonggi University)
Publication Information
Journal of Internet Computing and Services / v.19, no.6, 2018 , pp. 21-29 More about this Journal
Abstract
In the era of the 4-th industrial revolution, the concept of smart factory is emerging. There are efforts to predict the occurrences of facility errors which have negative effects on the utilization and productivity by using data analysis. Data composed of the situation of a facility error and the type of the error, called the facility error log, is required for the prediction. However, in many manufacturing companies, the types of facility error are not precisely defined and categorized. The worker who operates the facilities writes the type of facility error in the form with unstructured text based on his or her empirical judgement. That makes it impossible to analyze data. Therefore, this paper proposes a framework for constructing a phrase network to support the identification and classification of facility error types by using facility error logs written by operators. Specifically, phrase indicating the types are extracted from text data by using dictionary which classifies terms by their usage. Then, a phrase network is constructed by calculating the similarity between the extracted phrase. The performance of the proposed method was evaluated by using real-world facility error logs. It is expected that the proposed method will contribute to the accurate identification of error types and to the prediction of facility errors.
Keywords
Smart factory; Facility error; Phrase network; Text mining; Artificial neural network; word2vec;
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Times Cited By KSCI : 6  (Citation Analysis)
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