DocumentCode :
442165
Title :
Case study on human reliability using artificial neural networks
Author :
Zhang, Zhi-Cheng ; Vanderhaegen, Frederic ; Millot, Patrick
Author_Institution :
Div. of I&C & Electr. Syst., Framatome ANP, Paris, France
Volume :
8
fYear :
2005
fDate :
18-21 Aug. 2005
Firstpage :
4794
Abstract :
This paper contributes to the analysis and the prediction by the artificial neural networks, taking into account uncertainty, of the deviated intentional behaviours of the human operators in the human-machine systems. This type of behaviours is a particular violation called barrier removal. The objective of the paper is to propose a predictive Benefit-Cost-Deficit model by considering a multi-reference, multi-factor and multi-criterion based evaluation. Human operator´s evaluation can be uncertain. Uncertainty on their subjective judgements is therefore integrated in the prediction of the barrier removal. The proposed approach is validated through a railway application within the framework of a European project Urban Guided Transport Management System. Finally, the prediction convergence of the uncertainty-integrated model is demonstrated.
Keywords :
data mining; man-machine systems; neural nets; uncertainty handling; Benefit-Cost-Deficit model; Urban Guided Transport Management System; artificial neural networks; barrier removal; human reliability; human-machine systems; intentional behaviours; railway application; uncertainty-integrated model; Accidents; Artificial neural networks; Computer aided software engineering; Convergence; Humans; Man machine systems; Predictive models; Rail transportation; Safety; Uncertainty; Artificial Neural Networks; Barrier Removal; Data-Mining; Human Factors Engineering; Human Reliability; Human-Machine System; Prediction; Uncertainty; Violation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Machine Learning and Cybernetics, 2005. Proceedings of 2005 International Conference on
Conference_Location :
Guangzhou, China
Print_ISBN :
0-7803-9091-1
Type :
conf
DOI :
10.1109/ICMLC.2005.1527786
Filename :
1527786
Link To Document :
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