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Statistics and computing share many close relationships. Computing
now permeates every aspect of statistics, from pure description to
the development of statistical theory. At the same time, the
computational methods used in statistical work span much of
computer science. Elements of Statistical Computing covers the
broad usage of computing in statistics. It provides a comprehensive
account of the most important computational statistics. Included
are discussions of numerical analysis, numerical integration, and
smoothing.
The author give special attention to floating point standards and
numerical analysis; iterative methods for both linear and nonlinear
equation, such as Gauss-Seidel method and successive
over-relaxation; and computational methods for missing data, such
as the EM algorithm. Also covered are new areas of interest, such
as the Kalman filter, projection-pursuit methods, density
estimation, and other computer-intensive techniques.
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