Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46) - Info and Reading Options
By Daniel Kressner

"Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46)" is published by Springer in Jan 20, 2006 - Berlin, Heidelberg and it has 258 pages.
“Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46)” Metadata:
- Title: ➤ Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46)
- Author: Daniel Kressner
- Number of Pages: 258
- Publisher: Springer
- Publish Date: Jan 20, 2006
- Publish Location: Berlin, Heidelberg
“Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46)” Subjects and Themes:
- Subjects: ➤ Eigenvalues - Mathematics - System theory - Computer science - Computational Mathematics and Numerical Analysis - Control Systems Theory - Computational Science and Engineering
Edition Identifiers:
- The Open Library ID: OL26738998M - OL19079711W
- ISBN-13: 9783540285021
- ISBN-10: 3540285024
- All ISBNs: 3540285024 - 9783540285021
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"Numerical Methods for General and Structured Eigenvalue Problems (Lecture Notes in Computational Science and Engineering Book 46)" Description:
Open Data:
This book is about computing eigenvalues, eigenvectors and invariant subspaces of matrices. The treatment includes generalized and structured eigenvalue problems, such as Hamiltonian or product eigenvalue problems. All vital aspects of eigenvalue computations are covered: theory, perturbation analysis, algorithms, high performance methodologies and software. The reader will learn about recently developed techniques which substantially improve the performance of some of the most widely numerical methods, the QR and the QZ algorithm as well as Krylov subspace methods. A unique feature of this book is the detailed treatment of structured eigenvalue problems, providing insight on accuracy and efficiency gains to be expected from algorithms that take the structure of a matrix into account
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