DocumentCode :
556332
Title :
Applications of Bayesian Network in Fault Diagnosis of Braking Deviation System
Author :
Zhou, Yan ; Zhang, Yijing
Author_Institution :
Inf. Technol. Coll., Eastern Liaoning Univ., Dandong, China
Volume :
1
fYear :
2011
fDate :
28-30 Oct. 2011
Firstpage :
170
Lastpage :
173
Abstract :
Braking deviation system is an important piece of automotive operating equipment, targeting on the problems of complex fault mechanisms of automotive hydraulic braking system and uncertainty between fault type and fault symptoms, the method of Bayesian network fault diagnosis in baking deviation system has been raised. In the learning process of Bayesian network structure, this algorithm adopts statistical strategy for the rule library provided by many experts, discard rules with relatively weak casual relationship, and retain rules with stronger causal relationship, thereby set up the fault diagnosis hierarchical structure model in braking deviation system based on Bayesian network. Experimental data analysis shows that the Bayesian network fault diagnosis model has higher accuracy than fuzzy logic diagnosis method, effectively solving the uncertainties in fault diagnosis.
Keywords :
automotive components; belief networks; brakes; condition monitoring; expert systems; fault diagnosis; hydraulic systems; knowledge based systems; mechanical engineering computing; statistical analysis; Bayesian network; automotive operating equipment; experts system; fault diagnosis hierarchical structure model; fuzzy logic diagnosis method; hydraulic braking deviation system; rule library; statistical strategy; Accuracy; Bayesian methods; Fault diagnosis; Network topology; Topology; Uncertainty; Bayesian network; braking deviation; fault diagnosis; uncertainty;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Intelligence and Design (ISCID), 2011 Fourth International Symposium on
Conference_Location :
Hangzhou
Print_ISBN :
978-1-4577-1085-8
Type :
conf
DOI :
10.1109/ISCID.2011.51
Filename :
6079663
Link To Document :
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