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Matrix algebra : theory, computations, and applications in statistics

Part of the Springer texts in statistics series
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Matrix algebra is one of the most important areas of mathematics for data analysis and for statistical theory.

This much-needed work presents the relevant aspects of the theory of matrix algebra for applications in statistics.

It moves on to consider the various types of matrices encountered in statistics, such as projection matrices and positive definite matrices, and describes the special properties of those matrices.

Finally, it covers numerical linear algebra, beginning with a discussion of the basics of numerical computations, and following up with accurate and efficient algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors.

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Product Details
1441924248 / 9781441924247
Paperback / softback
19/11/2010
United States
English
530 p. : ill.
24 cm
Professional & Vocational Learn More
Reprint. Originally published: 2007.