Maximum Likelihood and GMM Estimation of Dynamic Panel Data Models with Fixed Effects

Maximum Likelihood and GMM Estimation of Dynamic Panel Data Models with Fixed Effects
Title Maximum Likelihood and GMM Estimation of Dynamic Panel Data Models with Fixed Effects PDF eBook
Author Hugo Kruiniger
Publisher
Pages 0
Release 2002
Genre
ISBN

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This paper considers inference procedures for two types of dynamic linear panel data models with fixed effects (FE). First, it shows that the closures of stationary ARMAFE models can be consistently estimated by Conditional Maximum Likelihood Estimators and it derives their asymptotic distributions. Then it presents an asymptotically equivalent Minimum Distance Estimator which permits an analytic comparison between the CMLE for the ARFE (1) model and the GMM estimators that have been considered in the literature. The CMLE is shown to be asymptotically less efficient than the most efficient GMM estimator when N approaches the limit infinity but T is fixed. Under normality some of the moment conditions become asymptotically redundant and the CMLE attains the Cramer-Rao lowerbound when T approaches the limit infinity as well. The paper also presents likelihood based unit root tests. Finally, the properties of CML, GMM, and Modified ML estimators for dynamic panel data models that condition on the initial observations are studied and compared. It is shown that for finite T the MMLE is less efficient than the most efficient GMM estimator.

Estimation of Spatial Panels

Estimation of Spatial Panels
Title Estimation of Spatial Panels PDF eBook
Author Lung-fei Lee
Publisher Now Publishers Inc
Pages 178
Release 2011
Genre Business & Economics
ISBN 160198426X

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Estimation of Spatial Panels provides some recent developments on the specification and estimation of spatial panel models.

Maximum Likelihood Estimation of Fixed Effects Dynamic Panel Data Models Covering Short Time Periods

Maximum Likelihood Estimation of Fixed Effects Dynamic Panel Data Models Covering Short Time Periods
Title Maximum Likelihood Estimation of Fixed Effects Dynamic Panel Data Models Covering Short Time Periods PDF eBook
Author Cheng Hsiao
Publisher
Pages 27
Release 1998
Genre
ISBN

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Transformed Maximum Likelihood Estimation of Short Dynamic Panel Data Models with Interactive Effects

Transformed Maximum Likelihood Estimation of Short Dynamic Panel Data Models with Interactive Effects
Title Transformed Maximum Likelihood Estimation of Short Dynamic Panel Data Models with Interactive Effects PDF eBook
Author Kazuhiko Hayakawa
Publisher
Pages 40
Release 2014
Genre
ISBN

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Econometric Models with Panel Data : Applications with STATA

Econometric Models with Panel Data : Applications with STATA
Title Econometric Models with Panel Data : Applications with STATA PDF eBook
Author César Pérez López
Publisher CESAR PEREZ
Pages 188
Release 2022
Genre Business & Economics
ISBN 1008984132

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"The data panels are a special type of samples in which the behavior of a certain number of economic agents is followed over time. In this way, the researcher can perform economic analysis and specify models with the data of cross section that are obtained when all operators are considered in an instant of time. Different patterns of behaviour of all agents together studied in the different temporal moments may thus be assessed. Alternatively, you can perform the same analysis considering time series given by the evolution of each economic agent throughout all the periods of the sample. This book explores the panel data econometrics through STATA. The most important topics are the following: Linear regression estimators in panel data models, fixed and random effects, heteroskedasticity and autocorrelation in panel data models, instrumental variables and two stage least squares in panel data models, dynamic panel data models, logit and probit panel data models, censored panel data models, count panel data models, Tobit panel data models, Poisson panel data models, negative binomial panel data models and others models with panel data.".

Econometric Analysis of Panel Data

Econometric Analysis of Panel Data
Title Econometric Analysis of Panel Data PDF eBook
Author Badi Baltagi
Publisher John Wiley & Sons
Pages 239
Release 2008-06-30
Genre Business & Economics
ISBN 0470518863

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Written by one of the world's leading researchers and writers in the field, Econometric Analysis of Panel Data has become established as the leading textbook for postgraduate courses in panel data. This new edition reflects the rapid developments in the field covering the vast research that has been conducted on panel data since its initial publication. Featuring the most recent empirical examples from panel data literature, data sets are also provided as well as the programs to implement the estimation and testing procedures described in the book. These programs will be made available via an accompanying website which will also contain solutions to end of chapter exercises that will appear in the book. The text has been fully updated with new material on dynamic panel data models and recent results on non-linear panel models and in particular work on limited dependent variables panel data models.

The Econometrics of Panel Data

The Econometrics of Panel Data
Title The Econometrics of Panel Data PDF eBook
Author László Mátyás
Publisher Springer Science & Business Media
Pages 944
Release 2013-12-01
Genre Business & Economics
ISBN 9400901372

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The aim of this volume is to provide a general overview of the econometrics of panel data, both from a theoretical and from an applied viewpoint. Since the pioneering papers by Edwin Kuh (1959), Yair Mundlak (1961), Irving Hoch (1962), and Pietro Balestra and Marc Nerlove (1966), the pooling of cross sections and time series data has become an increasingly popular way of quantifying economic relationships. Each series provides information lacking in the other, so a combination of both leads to more accurate and reliable results than would be achievable by one type of series alone. Over the last 30 years much work has been done: investigation of the properties of the applied estimators and test statistics, analysis of dynamic models and the effects of eventual measurement errors, etc. These are just some of the problems addressed by this work. In addition, some specific diffi culties associated with the use of panel data, such as attrition, heterogeneity, selectivity bias, pseudo panels etc., have also been explored. The first objective of this book, which takes up Parts I and II, is to give as complete and up-to-date a presentation of these theoretical developments as possible. Part I is concerned with classical linear models and their extensions; Part II deals with nonlinear models and related issues: logit and pro bit models, latent variable models, duration and count data models, incomplete panels and selectivity bias, point processes, and simulation techniques.