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Non-asymptotic analysis of approxima...
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Fujikoshi, Yasunori.
Non-asymptotic analysis of approximations for multivariate statistics
Record Type:
Electronic resources : Monograph/item
Title/Author:
Non-asymptotic analysis of approximations for multivariate statisticsby Yasunori Fujikoshi, Vladimir V. Ulyanov.
Author:
Fujikoshi, Yasunori.
other author:
Ulyanov, Vladimir V.
Published:
Singapore :Springer Singapore :2020.
Description:
ix, 130 p. :ill., digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Multivariate analysis.
Online resource:
https://doi.org/10.1007/978-981-13-2616-5
ISBN:
9789811326165$q(electronic bk.)
Non-asymptotic analysis of approximations for multivariate statistics
Fujikoshi, Yasunori.
Non-asymptotic analysis of approximations for multivariate statistics
[electronic resource] /by Yasunori Fujikoshi, Vladimir V. Ulyanov. - Singapore :Springer Singapore :2020. - ix, 130 p. :ill., digital ;24 cm. - SpringerBriefs in statistics, JSS research series in statistics. - SpringerBriefs in statistics.JSS research series in statistics..
1. Introduction -- 2. Correlation Coefficient -- 3. MANOVA Test Statistics -- 4. Linear and Quadratic Discriminant Functions -- 5. Bootstrap Confidence Sets -- 6. Gaussian Comparison -- 7. Cornish-Fisher Expansions -- 8 Approximations for Statistics Based on Random Sample Sizes -- 9. Power-divergence Statistics -- 10.General Approach to Construct Non-asymptotic Bounds -- 11 - Other Topics -- Index.
This book presents recent non-asymptotic results for approximations in multivariate statistical analysis. The book is unique in its focus on results with the correct error structure for all the parameters involved. Firstly, it discusses the computable error bounds on correlation coefficients, MANOVA tests and discriminant functions studied in recent papers. It then introduces new areas of research in high-dimensional approximations for bootstrap procedures, Cornish-Fisher expansions, power-divergence statistics and approximations of statistics based on observations with random sample size. Lastly, it proposes a general approach for the construction of non-asymptotic bounds, providing relevant examples for several complicated statistics. It is a valuable resource for researchers with a basic understanding of multivariate statistics.
ISBN: 9789811326165$q(electronic bk.)
Standard No.: 10.1007/978-981-13-2616-5doiSubjects--Topical Terms:
181905
Multivariate analysis.
LC Class. No.: QA278 / .F855 2020
Dewey Class. No.: 519.535
Non-asymptotic analysis of approximations for multivariate statistics
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1. Introduction -- 2. Correlation Coefficient -- 3. MANOVA Test Statistics -- 4. Linear and Quadratic Discriminant Functions -- 5. Bootstrap Confidence Sets -- 6. Gaussian Comparison -- 7. Cornish-Fisher Expansions -- 8 Approximations for Statistics Based on Random Sample Sizes -- 9. Power-divergence Statistics -- 10.General Approach to Construct Non-asymptotic Bounds -- 11 - Other Topics -- Index.
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This book presents recent non-asymptotic results for approximations in multivariate statistical analysis. The book is unique in its focus on results with the correct error structure for all the parameters involved. Firstly, it discusses the computable error bounds on correlation coefficients, MANOVA tests and discriminant functions studied in recent papers. It then introduces new areas of research in high-dimensional approximations for bootstrap procedures, Cornish-Fisher expansions, power-divergence statistics and approximations of statistics based on observations with random sample size. Lastly, it proposes a general approach for the construction of non-asymptotic bounds, providing relevant examples for several complicated statistics. It is a valuable resource for researchers with a basic understanding of multivariate statistics.
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Mathematics and Statistics (Springer-11649)
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EB QA278 .F961 2020 2020
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