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Automatic Differentiation of Algorithms
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Automatic Differentiation of Algorithms

Engelsk
Automatic Differentiation (AD) is a maturing computational technology and has become a mainstream tool used by practicing scientists and computer engineers. The rapid advance of hardware computing power and AD tools has enabled practitioners to quickly generate derivative-enhanced versions of their code for a broad range of applications in applied research and development.
Automatic Differentiation of Algorithms provides a comprehensive and authoritative survey of all recent developments, new techniques, and tools for AD use. The book covers all aspects of the subject: mathematics, scientific programming (i.e., use of adjoints in optimization) and implementation (i.e., memory management problems). A strong theme of the book is the relationships between AD tools and other software tools, such as compilers and parallelizers. A rich variety of significant applications are presented as well, including optimum-shape design problems, for which AD offers more efficient tools and techniques.
Undertittel
From Simulation to Optimization
Opplag
Softcover reprint of the original 1st ed. 2002
ISBN
9781461265436
Språk
Engelsk
Vekt
310 gram
Utgivelsesdato
27.1.2014
Antall sider
432