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On Latin hypercube sampling

delete1996-10-01
delete416
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Loh, WL *
DOI:10.1214/aos/1069362310delete
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摘要

摘要

En 中文
This paper contains a collection of results on Latin hypercube sampling. The first result is a Berry-Esseen-type bound for the multivariate central limit theorem of the sample mean <(mu)over cap>(n) based on a Latin hypercube sample. The second establishes sufficient conditions on the convergence rate in the strong law for <(mu)over cap>(n). Finally motivated by the concept of empirical likelihood, a way of constructing nonparametric confidence regions based on Latin hypercube samples is proposed for vector means.
Keyword:
Berry-Esseen bound
confidence regions
Latin hypercube sampling
multivariate central limit theorem
Stein's method
strong law of large numbers
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Annals of Statistics 封面图
Annals of Statistics
IF:
3.7
论文数:
2.8K
被引数:
2.9W

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