Weak Convergence of Stochastic Processes With Applications to Statistical Limit Theorems.

The purpose of this book is to present results on the subject of weak convergence in function spaces to study invariance principles in statistical applications to dependent random variables, U-statistics, censor data analysis. Different techniques, formerly available only in a broad range of literat...

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Bibliographic Details
Main Author: Mandrekar, Vidyadhar S.
Format: eBook
Language:English
Published: Berlin/Boston, GERMANY De Gruyter, 2016.
Series:De Gruyter Textbook ; 64
Subjects:
Online Access:EBSCOhost
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Description
Summary:The purpose of this book is to present results on the subject of weak convergence in function spaces to study invariance principles in statistical applications to dependent random variables, U-statistics, censor data analysis. Different techniques, formerly available only in a broad range of literature, are for the first time presented here in a self-contained fashion. Contents:Weak convergence of stochastic processesWeak convergence in metric spacesWeak convergence on C[0, 1] and D[0,∞)Central limit theorem for semi-martingales and applicationsCentral limit theorems for dependent random variablesEmpirical processBibliography.
Physical Description:1 online resource (148).
ISBN:3110476312
9783110476316
9783110475456
3110475456