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Journal Article

Citation

Liu Y, Yi TH, Xu ZJ. ScientificWorldJournal 2013; 2013: 178954.

Affiliation

College of Architectural Engineering, Qingdao Agricultural University, Qingdao 266109, China.

Copyright

(Copyright © 2013, ScientificWorld, Ltd.)

DOI

10.1155/2013/178954

PMID

24191134

Abstract

As a high-risk subindustry involved in construction projects, highway construction safety has experienced major developments in the past 20 years, mainly due to the lack of safe early warnings in Chinese construction projects. By combining the current state of early warning technology with the requirements of the State Administration of Work Safety and using case-based reasoning (CBR), this paper expounds on the concept and flow of highway construction safety early warnings based on CBR. The present study provides solutions to three key issues, index selection, accident cause association analysis, and warning degree forecasting implementation, through the use of association rule mining, support vector machine classifiers, and variable fuzzy qualitative and quantitative change criterion modes, which fully cover the needs of safe early warning systems. Using a detailed description of the principles and advantages of each method and by proving the methods' effectiveness and ability to act together in safe early warning applications, effective means and intelligent technology for a safe highway construction early warning system are established.


Language: en

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