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Approximation Methods for Polynomial Optimization: Models,...

Approximation Methods for Polynomial Optimization: Models, Algorithms, and Applications

Zhening Li, Simai He, Shuzhong Zhang (auth.)
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Polynomial optimization have been a hot research topic for the past few years and its applications range from Operations Research, biomedical engineering, investment science, to quantum mechanics, linear algebra, and signal processing, among many others. In this brief the authors discuss some important subclasses of polynomial optimization models arising from various applications, with a focus on approximations algorithms with guaranteed worst case performance analysis. The brief presents a clear view of the basic ideas underlying the design of such algorithms and the benefits are highlighted by illustrative examples showing the possible applications.

This timely treatise will appeal to researchers and graduate students in the fields of optimization, computational mathematics, Operations Research, industrial engineering, and computer science.

种类:
年:
2012
出版:
1
出版社:
Springer-Verlag New York
语言:
english
页:
124
ISBN 10:
1461439841
ISBN 13:
9781461439844
系列:
SpringerBriefs in optimization
文件:
PDF, 734 KB
IPFS:
CID , CID Blake2b
english, 2012
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