Formulas Useful for Linear Regression Analysis and Related Matrix Theory [electronic resource] : It's Only Formulas But We Like Them / by Simo Puntanen, George P. H. Styan, Jarkko Isotalo.

Por: Puntanen, Simo [author.]Colaborador(es): Styan, George P. H [author.] | Isotalo, Jarkko [author.]Tipo de material: TextoTextoSeries SpringerBriefs in StatisticsEditor: Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer, 2013Descripción: XII, 125 p. 3 illus., 2 illus. in color. online resourceTipo de contenido: text Tipo de medio: computer Tipo de portador: online resourceISBN: 9783642329319Trabajos contenidos: SpringerLink (Online service)Tema(s): Statistics | Matrix theory | Mathematical statistics | Economics -- Statistics | Econometrics | Statistics | Statistical Theory and Methods | Linear and Multilinear Algebras, Matrix Theory | Econometrics | Statistics for Business/Economics/Mathematical Finance/InsuranceFormatos físicos adicionales: Sin títuloClasificación CDD: 519.5 Clasificación LoC:QA276-280Recursos en línea: de clik aquí para ver el libro electrónico
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Springer eBooksResumen: This is an unusual book because it contains a great deal of formulas. Hence it is a blend of monograph, textbook, and handbook. It is intended for students and researchers who need quick access to useful formulas appearing in the linear regression model and related matrix theory. This is not a regular textbook - this is supporting material for courses given in linear statistical models. Such courses are extremely common at universities with quantitative statistical analysis programs.
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The Model Matrix -- Fitted Values and Residuals -- Regression Coefficients -- Alternative Estimators -- Decompositions of Sums of Squares -- Partial Correlations -- Distributions -- Testing Hypotheses -- Diagnostics -- BLUE: Some Helpful Identities -- Estimability -- Best Linear Unbiased Estimator -- The Watson Efficiency -- Linear Sufficiency and Admissibility -- Best Linear Unbiased Predictor -- Mixed Model -- Multivariate Linear Model -- Inverse of a Partitioned Matrix -- Generalized Inverses -- Projectors -- Eigenvalues -- Discriminant Analysis -- Factor Analysis -- Canonical Correlations -- Matrix Decompositions -- Principal Component Analysis -- Lȵwner Ordering -- Rank Rules -- Inequalities -- Kronecker Product -- Matrix Derivatives.

This is an unusual book because it contains a great deal of formulas. Hence it is a blend of monograph, textbook, and handbook. It is intended for students and researchers who need quick access to useful formulas appearing in the linear regression model and related matrix theory. This is not a regular textbook - this is supporting material for courses given in linear statistical models. Such courses are extremely common at universities with quantitative statistical analysis programs.

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