Introduction to high-dimensional statistics

著者

    • Giraud, Christophe

書誌事項

Introduction to high-dimensional statistics

Christophe Giraud

(Monographs on statistics and applied probability, 168)

CRC Press, Taylor & Francis Group, 2022

2nd ed.

  • :hbk.

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注記

Includes bibliographical references and index

内容説明・目次

内容説明

Revised chapters from the previous edition, with the inclusion of many additional materials on some important topics, including compress sensing, estimation with convex constraints, the slope estimator, simultaneously low rank and row sparse linear regression, or aggregation of a continuous set of estimators. Three new chapters on iterative algorithms, clustering and minimax lower bounds. Enhanced appendices,minimax lower-bounds mainly with the addition of Davis-Kahan perturbation bound and of two simple versions of Hanson-Wright concentration inequality.

目次

1. Introduction. 2. Model Selection. 3. Minimax Lower Bounds. 4. Aggregation of Estimators. 5. Convex Criteria. 6. Iterative Algorithms. 7. Estimator Selection. 8. Multivariate Regression. 9. Graphical Models. 10. Multiple Testing. 11. Supervised Classification. 12. Clustering.

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詳細情報

  • NII書誌ID(NCID)
    BC1029275X
  • ISBN
    • 9780367716226
  • 出版国コード
    us
  • タイトル言語コード
    eng
  • 本文言語コード
    eng
  • 出版地
    Boca Raton
  • ページ数/冊数
    xvii, 345 p.
  • 大きさ
    24 cm
  • 分類
  • 件名
  • 親書誌ID
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