Bootstrap confidence intervals

Бутстреповские доверительные интервалы
Thomas J. DiCiccio, Bradley Efron
1996-09-01

ABC methodBCa methodbootstrap confidence intervalsbootstrap-tlikelihood-based confidence intervals
This article surveys bootstrap methods for producing good approximate confidence intervals. The goal is to improve by an order of magnitude upon the accuracy of the standard intervals $\hat{\theta} \pm z^{(\alpha)} \hat{\sigma}$, in a way that allows routine application even to very complicated problems. Both theory and examples are used to show how this is done. The first seven sections provide a heuristic overview of four bootstrap confidence interval procedures: $BC_a$, bootstrap-t , ABC and calibration. Sections 8 and 9 describe the theory behind these methods, and their close connection with the likelihood-based confidence interval theory developed by Barndorff-Nielsen, Cox and Reid and others.
1
It presents four procedures for constructing approximate bootstrap confidence intervals: BC_a, bootstrap-t, ABC, and calibration.
2
The article surveys bootstrap methods designed to improve confidence-interval accuracy by an order of magnitude over standard normal-theory intervals.
3
The methods are intended for routine application to very complicated statistical problems, supported by both theoretical analysis and examples.
4
The paper combines a heuristic overview of the procedures with a formal account of their underlying theory.
5
The theoretical sections establish close connections between bootstrap confidence-interval methods and likelihood-based confidence-interval theory.

bootstrap confidence interval procedures

improving the accuracy of approximate confidence intervals by an order of magnitude for routine application to complex problems

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Publication Date
1996-09-01
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Authors
Thomas J. DiCiccio
Bradley Efron
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