DocumentCode :
3301942
Title :
A Transport Mode Selection Method for Multimodal Transportation Based on an Adaptive ANN System
Author :
Qu, Lili ; Chen, Yan ; Mu, Xiangwei
Author_Institution :
Dalian Maritime Univ., Dalian
Volume :
3
fYear :
2008
fDate :
18-20 Oct. 2008
Firstpage :
436
Lastpage :
440
Abstract :
Multimodal transportation is a complex network, in which all the components should be seamlessly linked and efficiently coordinated. Considered many noncommensurable, nonlinear even conflicting criteria simultaneously, the transport mode selection in multimodal transportation is studied within the framework of multicriteria decision making (MCDM). The theoretical basis for feedforward artificial neural network (FANN) to solve this MCDM problem is presented. With the initial topology predetermined by fuzzy analysis hierarchy process (AHP), an adaptive ANN system is proposed, in which the number of ANN input nodes adapts the decision makerspsila preference threshold and the initial input weights are determined by fuzzy AHP. Empirical results evidently show this MCDM method is an accurate, flexible and efficient transport mode selection model.
Keywords :
complex networks; decision making; feedforward neural nets; fuzzy set theory; topology; transportation; adaptive ANN system; complex network; feedforward artificial neural network; fuzzy analysis hierarchy process; multicriteria decision making; multimodal transportation; topology; transport mode selection method; Adaptive systems; Artificial neural networks; Complex networks; Computer networks; Decision making; Fuzzy systems; Network topology; Neural networks; Power system modeling; Transportation; Multimodal transportation; feedforward artificial neural network; fuzzy analysis hierarchy process; multicriteria decision making; transport mode selection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Natural Computation, 2008. ICNC '08. Fourth International Conference on
Conference_Location :
Jinan
Print_ISBN :
978-0-7695-3304-9
Type :
conf
DOI :
10.1109/ICNC.2008.165
Filename :
4667176
Link To Document :
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