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Lagrange-Type Functions in Constrained Non-Convex Optimization

Lagrange-Type Functions in Constrained Non-Convex Optimization( )
Author: Rubinov, Aleksandr Moiseevich
Yang, Xiaoqi
Series title:Applied Optimization Ser.
ISBN:978-1-4020-7627-5
Publication Date:Jan 2003
Publisher:Springer London, Limited
Book Format:Hardback
List Price:AUD $356.95
Book Description:

Lagrange and penalty function methods provide a powerful approach, both as a theoretical tool and a computational vehicle, for the study of constrained optimization problems. However, for a nonconvex constrained optimization problem, the classical Lagrange primal-dual method may fail to find a mini­ mum as a zero duality gap is not always guaranteed. A large penalty parameter is, in general, required for classical quadratic penalty functions in order that minima of penalty problems are...
More Description

Book Details
Pages:286
Detailed Subjects: Mathematics / Optimization
Physical Dimensions (W X L X H):15.5 x 23.5 cm
Book Weight:1.33 Kilograms



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