Bootstrapping: A Nonparametric Approach to Statistical Inference - Quantitative Applications in the Social Sciences - Christopher Z. Mooney - Libros - SAGE Publications Inc - 9780803953819 - 29 de septiembre de 1993
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Bootstrapping: A Nonparametric Approach to Statistical Inference - Quantitative Applications in the Social Sciences

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Bootstrapping, a computational nonparametric technique for "re-sampling," enables researchers to draw a conclusion about the characteristics of a population strictly from the existing sample rather than by making parametric assumptions about the estimator. Using real data examples from per capita personal income to median preference differences between legislative committee members and the entire legislature, Mooney and Duval discuss how to apply bootstrapping when the underlying sampling distribution of the statistics cannot be assumed normal, as well as when the sampling distribution has no analytic solution. In addition, they show the advantages and limitations of four bootstrap confidence interval methods: normal approximation, percenti


80 pages, illustrations

Medios de comunicación Libros     Paperback Book   (Libro con tapa blanda y lomo encolado)
Publicado 29 de septiembre de 1993
ISBN13 9780803953819
Editores SAGE Publications Inc
Páginas 80
Dimensiones 137 × 216 × 4 mm   ·   100 g
Lengua Inglés  

Mas por Christopher Z. Mooney

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