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Advances in Automatic Differentiation / edited by Christian H. Bischof, H. Martin Bücker, Paul Hovland, Uwe Naumann, Jean Utke
(Lecture Notes in Computational Science and Engineering. ISSN:21977100 ; 64)

1st ed. 2008.
出版者 (Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer)
出版年 2008
本文言語 英語
大きさ XVIII, 368 p. 111 illus : online resource
著者標目 Bischof, Christian H editor
Bücker, H. Martin editor
Hovland, Paul editor
Naumann, Uwe editor
Utke, Jean editor
SpringerLink (Online service)
件 名 LCSH:Mathematics -- Data processing  全ての件名で検索
LCSH:Mathematical optimization
LCSH:Computer science
LCSH:Electrical engineering
LCSH:Computer science -- Mathematics  全ての件名で検索
FREE:Computational Science and Engineering
FREE:Optimization
FREE:Theory of Computation
FREE:Computational Mathematics and Numerical Analysis
FREE:Electrical and Electronic Engineering
FREE:Mathematics of Computing
一般注記 Reverse Automatic Differentiation of Linear Multistep Methods -- Call Tree Reversal is NP-Complete -- On Formal Certification of AD Transformations -- Collected Matrix Derivative Results for Forward and Reverse Mode Algorithmic Differentiation -- A Modification of Weeks’ Method for Numerical Inversion of the Laplace Transform in the Real Case Based on Automatic Differentiation -- A Low Rank Approach to Automatic Differentiation -- Algorithmic Differentiation of Implicit Functions and Optimal Values -- Using Programming Language Theory to Make Automatic Differentiation Sound and Efficient -- A Polynomial-Time Algorithm for Detecting Directed Axial Symmetry in Hessian Computational Graphs -- On the Practical Exploitation of Scarsity -- Design and Implementation of a Context-Sensitive, Flow-Sensitive Activity Analysis Algorithm for Automatic Differentiation -- Efficient Higher-Order Derivatives of the Hypergeometric Function -- The Diamant Approach for an Efficient Automatic Differentiation of the Asymptotic Numerical Method -- Tangent-on-Tangent vs. Tangent-on-Reverse for Second Differentiation of Constrained Functionals -- Parallel Reverse Mode Automatic Differentiation for OpenMP Programs with ADOL-C -- Adjoints for Time-Dependent Optimal Control -- Development and First Applications of TAC++ -- TAPENADE for C -- Coping with a Variable Number of Arguments when Transforming MATLAB Programs -- Code Optimization Techniques in Source Transformations for Interpreted Languages -- Automatic Sensitivity Analysis of DAE-systems Generated from Equation-Based Modeling Languages -- Index Determination in DAEs Using the Library indexdet and the ADOL-C Package for Algorithmic Differentiation -- Automatic Differentiation for GPU-Accelerated 2D/3D Registration -- Robust Aircraft Conceptual Design UsingAutomatic Differentiation in Matlab -- Toward Modular Multigrid Design Optimisation -- Large Electrical Power Systems Optimization Using Automatic Differentiation -- On the Application of Automatic Differentiation to the Likelihood Function for Dynamic General Equilibrium Models -- Combinatorial Computation with Automatic Differentiation -- Exploiting Sparsity in Jacobian Computation via Coloring and Automatic Differentiation: A Case Study in a Simulated Moving Bed Process -- Structure-Exploiting Automatic Differentiation of Finite Element Discretizations -- Large-Scale Transient Sensitivity Analysis of a Radiation-Damaged Bipolar Junction Transistor via Automatic Differentiation
This collection covers advances in automatic differentiation theory and practice. Computer scientists and mathematicians will learn about recent developments in automatic differentiation theory as well as mechanisms for the construction of robust and powerful automatic differentiation tools. Computational scientists and engineers will benefit from the discussion of various applications, which provide insight into effective strategies for using automatic differentiation for inverse problems and design optimization
HTTP:URL=https://doi.org/10.1007/978-3-540-68942-3
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Springer eBooks 9783540689423
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データ種別 電子ブック
分 類 LCC:QA71-90
DC23:003.3
書誌ID 4000116278
ISBN 9783540689423

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