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Matrix Analysis and Computations introduces the basics of matrix
analysis and presents representative methods and their
corresponding theories in matrix computations. In this textbook,
readers will find: The matrix theory necessary for direct and
iterative methods for solving systems of linear equations.
Systematic methods and rigorous theory on matrix splitting
iteration methods and Krylov subspace iteration methods. Current
results on preconditioning and iterative methods for solving
standard and generalized saddle-point linear systems. Exercises at
the end of each chapter for applying learned methods. This book is
intended for graduate students, researchers, and engineers
interested in matrix analysis and matrix computations. It is
appropriate for the following courses: Advanced Numerical Analysis,
Special Topics on Numerical Analysis, Topics on Data Science,
Topics on Numerical Optimization, and Topics on Approximation
Theory.
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