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Text classification of railway safety fault based on TF-IDF evolutionary integrated classifier
Diànzǐ jìshù yīngyòng, 2021-04, Vol.47 (4), p.71-76
[Peer Reviewed Journal]
ISSN: 0258-7998 ;DOI: 10.16157/j.issn.0258-7998.200284
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Title:
Text classification of railway safety fault based on TF-IDF evolutionary integrated classifier
Author:
Gao Fan
;
Wang Fuzhang
;
Zhang Ming
;
Zhao Junhua
;
Li Gaoke
Subjects:
base classifier
;
evolutionary integration classifier
;
integrated classifier
;
software railway safety problems
;
tf-idf
Is Part Of:
Diànzǐ jìshù yīngyòng, 2021-04, Vol.47 (4), p.71-76
Description:
Railway safety is the core of railway transportation guarantee. The unstructured text data of railway safety problems is large, and the content of the text has no specific rules, which makes it very difficult to comprehensively analyze and solve the safety problems. Aiming at the intelligent classification of railway safety data, an evolutionary ensemble classifier model is proposed. By analyzing the characteristics of the catenary security issues of data, TF-IDF model is adopted to realize the feature extraction. Bagging ensemble classifier which uses Decision Tree as the base classifier classifies the text data, in the process of classification of Bagging, for the combined solution set of base classifier generated by Bagging Algorithm, Genetic Algorithm is proposed to optimize it to generate the combined solution set of base classifier with better classification results. Based on the safety problem of power supply contact network of a railway bureau, the experimental analysis shows that the TF-IDF+Bagging+G
Publisher:
National Computer System Engineering Research Institute of China
Language:
Chinese
Identifier:
ISSN: 0258-7998
DOI: 10.16157/j.issn.0258-7998.200284
Source:
DOAJ Directory of Open Access Journals
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