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Elements of Computational Statistics / by James E. Gentle
(Statistics and Computing. ISSN:21971706)

Edition 1st ed. 2002.
Publisher (New York, NY : Springer New York : Imprint: Springer)
Year 2002
Language English
Size XVIII, 420 p : online resource
Authors *Gentle, James E author
SpringerLink (Online service)
Subjects LCSH:Mathematical statistics -- Data processing  All Subject Search
FREE:Statistics and Computing
Notes Methods of Computational Statistics -- Preliminaries -- Monte Carlo Methods for Inference -- Randomization and Data Partitioning -- Bootstrap Methods -- Tools for Identification of Structure in Data -- Estimation of Functions -- Graphical Methods in Computational Statistics -- Data Density and Structure -- Estimation of Probability Density Functions Using Parametric Models -- Nonparametric Estimation of Probability Density Functions -- Structure in Data -- Statistical Models of Dependencies
This book describes techniques used in computational statistics and considers some of the areas of applications, such as density estimation and model building, in which computationally intensive methods are useful. In computational statistics, computation is viewed as an instrument of discovery; the role of the computer is not just to store data, perform computations, and produce graphs and tables, but additionally to suggest to the scientist alternative models and theories. Another characteristic of computational statistics is the computational intensity of the methods; even for datasets of medium size, high performance computers are required to perform the computations. Graphical displays and visualization methods are usually integral features of computational statistics
HTTP:URL=https://doi.org/10.1007/b97337
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E-Book オンライン 電子ブック

Springer eBooks 9780387216119
電子リソース
EB00226573

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Material Type E-Book
Classification LCC:QA276.4-.45
DC23:519.5
ID 4000104390
ISBN 9780387216119

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