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Linear-Scaling Techniques in Computational Chemistry and Physics

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Cover of 'Linear-Scaling Techniques in Computational Chemistry and Physics'

Table of Contents

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    Book Overview
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    Chapter 1 Plane-Wave Based Low-Scaling Electronic Structure Methods for Molecules
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    Chapter 2 Mathematical Formulation of the Fragment Molecular Orbital Method
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    Chapter 3 Linear Scaling Second Order Møller Plesset Perturbation Theory
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    Chapter 4 Perturbative Approximations to Avoid Matrix Diagonalization
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    Chapter 5 Divide-and-Conquer Approaches to Quantum Chemistry: Theory and Implementation
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    Chapter 6 Linear Scaling Methods Using Additive Fuzzy Density Fragmentation
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    Chapter 7 Fragmentation Selection Strategies in Linear Scaling Methods
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    Chapter 8 Linear-Scaling Techniques in Computational Chemistry and Physics
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    Chapter 9 Elongation Method: Towards Linear Scaling for Electronic Structure of Random Polymers and other Quasilinear Materials
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    Chapter 10 Molecular Tailoring: An Art of the Possible for Ab Initio Treatment of Large Molecules and Molecular Clusters
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    Chapter 11 Some Thoughts on the Scope of Linear Scaling Self-Consistent Field Electronic Structure Methods
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    Chapter 12 Methods for Hartree-Fock and Density Functional Theory Electronic Structure Calculations with Linearly Scaling Processor Time and Memory Usage
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    Chapter 13 Cholesky Decomposition Techniques in Electronic Structure Theory
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    Chapter 14 Local Approximations for an Efficient and Accurate Treatment of Electron Correlation and Electron Excitations in Molecules
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    Chapter 15 The Linear Scaling Semiempirical LocalSCF Method and the Variational Finite LMO Approximation
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    Chapter 16 Density Matrix Methods in Linear Scaling Electronic Structure Theory
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    Chapter 17 Linear Scaling for Metallic Systems by the Korringa-Kohn-Rostoker Multiple-Scattering Method
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Title
Linear-Scaling Techniques in Computational Chemistry and Physics
Published by
Springer Netherlands, March 2011
DOI 10.1007/978-90-481-2853-2
ISBNs
978-9-04-812852-5, 978-9-04-812853-2
Editors

Zalesny, Robert, Papadopoulos, Manthos G., Mezey, Paul G., Leszczynski, Jerzy

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 101 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Norway 2 2%
United States 2 2%
Spain 2 2%
Cyprus 1 <1%
El Salvador 1 <1%
Brazil 1 <1%
Canada 1 <1%
China 1 <1%
Unknown 90 89%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 37 37%
Researcher 25 25%
Professor 8 8%
Professor > Associate Professor 7 7%
Student > Master 7 7%
Other 12 12%
Unknown 5 5%
Readers by discipline Count As %
Chemistry 61 60%
Physics and Astronomy 17 17%
Computer Science 3 3%
Materials Science 3 3%
Engineering 2 2%
Other 4 4%
Unknown 11 11%