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Econometric foundations / Ron C. Mittelhammer, George G. Judge, Douglas J. Miller.

By: Mittelhammer, RonContributor(s): Judge, George G | Miller, Douglas, 1965-Material type: TextTextLanguage: English Publication details: New York : Cambridge University Press, 2000. Description: xxviii, 756 p. : ill. ; 26 cm. +ISBN: 0521623944 hb; 9780521623940 hbSubject(s): EconometricsDDC classification: 330.015195 LOC classification: HB139 | .M575 2000Online resources: WorldCat details
Contents:
TOC The process of econometric information recovery -- Probability-econometric models -- The multivariate normal linear regression model: ML estimation -- The multivariate normal linear regression model: inference -- The linear semiparametric regression model: least-squares estimation -- The linear semiparametric regression model: inference -- Extremum estimators and nonlinear and nonnormal regression models -- The nonlinear semiparametric regression model: estimation and inference -- Nonlinear and nonnormal parametric regression models -- Stochastic regressors and moment-based estimation -- Quasi-maximum likelihood and estimating equations -- Empirical likelihood estimation and inference -- Information theoretic-entropy approaches to estimation and inference -- Regression models with a known general noise covariance matrix -- Regression models with an unknown general noise covariance matrix -- Generalized moment-based estimation and inference -- Simultaneous equations econometric models: estimation and inference -- Model discovery: the problem of variable selection and conditioning -- Model discovery: the problem of noise covariance matrix specification -- Qualitative-censored response models -- Introduction to nonparametric density and regression analysis -- Bayesian estimation: general principles with a regression focus -- Alternative Bayes formulations for the regression model -- Bayesian inference -- Appendix: Introduction to computer simulation and resampling methods.
Summary: Summary: This textbook and accompanying CD-ROM develop step by step a modern approach to econometric problems.
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Item type Current library Collection Call number Copy number Status Date due Barcode Item holds
Text Text Dr. S. R. Lasker Library, EWU
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Non-fiction 330.015195 MIE 2000 (Browse shelf(Opens below)) C-1 Not For Loan 27331
CDs & DVDs CDs & DVDs Dr. S. R. Lasker Library, EWU
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Non-fiction 330.015195 MIE 2000 (Browse shelf(Opens below)) C-1 Available CD-1509
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Includes bibliographical references and index.

TOC The process of econometric information recovery --
Probability-econometric models --
The multivariate normal linear regression model: ML estimation --
The multivariate normal linear regression model: inference --
The linear semiparametric regression model: least-squares estimation --
The linear semiparametric regression model: inference --
Extremum estimators and nonlinear and nonnormal regression models --
The nonlinear semiparametric regression model: estimation and inference --
Nonlinear and nonnormal parametric regression models --
Stochastic regressors and moment-based estimation --
Quasi-maximum likelihood and estimating equations --
Empirical likelihood estimation and inference --
Information theoretic-entropy approaches to estimation and inference --
Regression models with a known general noise covariance matrix --
Regression models with an unknown general noise covariance matrix --
Generalized moment-based estimation and inference --
Simultaneous equations econometric models: estimation and inference --
Model discovery: the problem of variable selection and conditioning --
Model discovery: the problem of noise covariance matrix specification --
Qualitative-censored response models --
Introduction to nonparametric density and regression analysis --
Bayesian estimation: general principles with a regression focus --
Alternative Bayes formulations for the regression model --
Bayesian inference --
Appendix: Introduction to computer simulation and resampling methods.

Summary:
This textbook and accompanying CD-ROM develop step by step a modern approach to econometric problems.

Economics

Saifun Momota

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