Linear Models and the Relevant Distributions and Matrix Algebra

Linear Models and the Relevant Distributions and Matrix Algebra

by David A. Harville
Epub (Kobo), Epub (Adobe)
Publication Date: 22/03/2018

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Linear Models and the Relevant Distributions and Matrix Algebra provides in-depth and detailed coverage of the use of linear statistical models as a basis for parametric and predictive inference. It can be a valuable reference, a primary or secondary text in a graduate-level course on linear models, or a resource used (in a course on mathematical statistics) to illustrate various theoretical concepts in the context of a relatively complex setting of great practical importance.


Features:



  • Provides coverage of matrix algebra that is extensive and relatively self-contained and does so in a meaningful context

  • Provides thorough coverage of the relevant statistical distributions, including spherically and elliptically symmetric distributions

  • Includes extensive coverage of multiple-comparison procedures (and of simultaneous confidence intervals), including procedures for controlling the k-FWER and the FDR

  • Provides thorough coverage (complete with detailed and highly accessible proofs) of results on the properties of various linear-model procedures, including those of least squares estimators and those of the F test.

  • Features the use of real data sets for illustrative purposes

  • Includes many exercises

ISBN:
9781351264662
9781351264662
Category:
Probability & statistics
Format:
Epub (Kobo), Epub (Adobe)
Publication Date:
22-03-2018
Language:
English
Publisher:
CRC Press

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