株式会社極東書店トップ商品一覧High-Dimensional Covariance Matrix Estimation : An Introduction to Random Matrix Theory. 1st ed. 2021.

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High-Dimensional Covariance Matrix Estimation

High-Dimensional Covariance Matrix Estimation : An Introduction to Random Matrix Theory. 1st ed. 2021.

・ISBN 978-3-030-80064-2 paper EUR 64.99

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お気に入り
著者・編者Zagidullina, Aygul,
シリーズSpringerBriefs in Applied Statistics and Econometrics
出版社(Springer Nature Switzerland AG, SZ)
出版年月2021
ページ数115 pp.
言語ENG
ニュース番号<M25-7413>

解説

This book presents covariance matrix estimation and related aspects of random matrix theory. It focuses on the sample covariance matrix estimator and provides a holistic description of its properties under two asymptotic regimes: the traditional one, and the high-dimensional regime that better fits the big data context. It draws attention to the deficiencies of standard statistical tools when used in the high-dimensional setting, and introduces the basic concepts and major results related to spectral statistics and random matrix theory under high-dimensional asymptotics in an understandable and reader-friendly way. The aim of this book is to inspire applied statisticians, econometricians, and machine learning practitioners who analyze high-dimensional data to apply the recent developments in their work.