Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/8513
Title: Double-layered hybrid neural network approach for solving mixed integer quadratic bilevel problems
Authors: Shamshul Bahar, Yaakob, Prof. Madya
Watada, Junzo
Keywords: Bilevel programming
Double-layered hybrid neural network
Neural network
Issue Date: 2010
Publisher: Springer-Verlag Berlin Heidelberg
Citation: Intergrated uncertainty management and applications, vol. 68, p. 221-230
Series/Report no.: Advances in Soft Computing
Abstract: In this paper we build a double-layered hybrid neural network method to solve mixed integer quadratic bilevel programming problems. Bilevel programming problems arise when one optimization problem, the upper problem, is constrained by another optimization, the lower problem. In this paper, mixed integer quadratic bilevel programming problem is transformed into a double-layered hybrid neural network. We propose an efficient method for solving bilevel programming problems which employs a double-layered hybrid neural network. A two-layered neural network is formulate by comprising a Hopfield network, genetic algorithm, and a Boltzmann machine in order to effectively and efficiently select the limited number of units from those available. The Hopfield network and genetic algorithm are employed in the upper layer to select the limited number of units, and the Boltzmann machine is employed in the lower layer to decide the optimal solution/units from the limited number of units selected by the upper layer.The proposed method leads the mixed integer quadratic bilevel programming problem to a global optimal solution. To illustrate this approach, several numerical examples are solved and compared.
Description: Link to publisher's homepage at http://www.springerlink.com/
URI: http://www.springerlink.com/content/v26546r72u7023l7/
http://dspace.unimap.edu.my/123456789/8513
ISBN: 978-3-642-11960-6
Appears in Collections:Chapter in Book

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