Econometric Analysis Of Cross Section And Panel Data
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Author |
: Jeffrey M. Wooldridge |
Publisher |
: MIT Press |
Total Pages |
: 1095 |
Release |
: 2010-10-01 |
ISBN-10 |
: 9780262232586 |
ISBN-13 |
: 0262232588 |
Rating |
: 4/5 (86 Downloads) |
Synopsis Econometric Analysis of Cross Section and Panel Data, second edition by : Jeffrey M. Wooldridge
The second edition of a comprehensive state-of-the-art graduate level text on microeconometric methods, substantially revised and updated. The second edition of this acclaimed graduate text provides a unified treatment of two methods used in contemporary econometric research, cross section and data panel methods. By focusing on assumptions that can be given behavioral content, the book maintains an appropriate level of rigor while emphasizing intuitive thinking. The analysis covers both linear and nonlinear models, including models with dynamics and/or individual heterogeneity. In addition to general estimation frameworks (particular methods of moments and maximum likelihood), specific linear and nonlinear methods are covered in detail, including probit and logit models and their multivariate, Tobit models, models for count data, censored and missing data schemes, causal (or treatment) effects, and duration analysis. Econometric Analysis of Cross Section and Panel Data was the first graduate econometrics text to focus on microeconomic data structures, allowing assumptions to be separated into population and sampling assumptions. This second edition has been substantially updated and revised. Improvements include a broader class of models for missing data problems; more detailed treatment of cluster problems, an important topic for empirical researchers; expanded discussion of "generalized instrumental variables" (GIV) estimation; new coverage (based on the author's own recent research) of inverse probability weighting; a more complete framework for estimating treatment effects with panel data, and a firmly established link between econometric approaches to nonlinear panel data and the "generalized estimating equation" literature popular in statistics and other fields. New attention is given to explaining when particular econometric methods can be applied; the goal is not only to tell readers what does work, but why certain "obvious" procedures do not. The numerous included exercises, both theoretical and computer-based, allow the reader to extend methods covered in the text and discover new insights.
Author |
: Jeffrey M. Wooldridge |
Publisher |
: MIT Press |
Total Pages |
: 784 |
Release |
: 2002 |
ISBN-10 |
: 0262232197 |
ISBN-13 |
: 9780262232197 |
Rating |
: 4/5 (97 Downloads) |
Synopsis Econometric Analysis of Cross Section and Panel Data by : Jeffrey M. Wooldridge
A comprehensive state-of-the-art text on microeconometric methods.
Author |
: Jeffrey M. Wooldridge |
Publisher |
: MIT Press |
Total Pages |
: 391 |
Release |
: 2011-06-24 |
ISBN-10 |
: 9780262300070 |
ISBN-13 |
: 0262300079 |
Rating |
: 4/5 (70 Downloads) |
Synopsis Student's Solutions Manual and Supplementary Materials for Econometric Analysis of Cross Section and Panel Data, second edition by : Jeffrey M. Wooldridge
This is the essential companion to the second edition of Jeffrey Wooldridge's widely used graduate econometrics text. The text provides an intuitive but rigorous treatment of two state-of-the-art methods used in contemporary microeconomic research. The numerous end-of-chapter exercises are an important component of the book, encouraging the student to use and extend the analytic methods presented in the book. This manual contains advice for answering selected problems, new examples, and supplementary materials designed by the author, which work together to enhance the benefits of the text. Users of the textbook will find the manual a necessary adjunct to the book.
Author |
: Panchanan Das |
Publisher |
: Springer Nature |
Total Pages |
: 574 |
Release |
: 2019-09-05 |
ISBN-10 |
: 9789813290198 |
ISBN-13 |
: 9813290196 |
Rating |
: 4/5 (98 Downloads) |
Synopsis Econometrics in Theory and Practice by : Panchanan Das
This book introduces econometric analysis of cross section, time series and panel data with the application of statistical software. It serves as a basic text for those who wish to learn and apply econometric analysis in empirical research. The level of presentation is as simple as possible to make it useful for undergraduates as well as graduate students. It contains several examples with real data and Stata programmes and interpretation of the results. While discussing the statistical tools needed to understand empirical economic research, the book attempts to provide a balance between theory and applied research. Various concepts and techniques of econometric analysis are supported by carefully developed examples with the use of statistical software package, Stata 15.1, and assumes that the reader is somewhat familiar with the Strata software. The topics covered in this book are divided into four parts. Part I discusses introductory econometric methods for data analysis that economists and other social scientists use to estimate the economic and social relationships, and to test hypotheses about them, using real-world data. There are five chapters in this part covering the data management issues, details of linear regression models, the related problems due to violation of the classical assumptions. Part II discusses some advanced topics used frequently in empirical research with cross section data. In its three chapters, this part includes some specific problems of regression analysis. Part III deals with time series econometric analysis. It covers intensively both the univariate and multivariate time series econometric models and their applications with software programming in six chapters. Part IV takes care of panel data analysis in four chapters. Different aspects of fixed effects and random effects are discussed here. Panel data analysis has been extended by taking dynamic panel data models which are most suitable for macroeconomic research. The book is invaluable for students and researchers of social sciences, business, management, operations research, engineering, and applied mathematics.
Author |
: Badi Baltagi |
Publisher |
: John Wiley & Sons |
Total Pages |
: 239 |
Release |
: 2008-06-30 |
ISBN-10 |
: 9780470518861 |
ISBN-13 |
: 0470518863 |
Rating |
: 4/5 (61 Downloads) |
Synopsis Econometric Analysis of Panel Data by : Badi Baltagi
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.
Author |
: Michael Beenstock |
Publisher |
: Springer |
Total Pages |
: 280 |
Release |
: 2019-03-27 |
ISBN-10 |
: 9783030036140 |
ISBN-13 |
: 3030036146 |
Rating |
: 4/5 (40 Downloads) |
Synopsis The Econometric Analysis of Non-Stationary Spatial Panel Data by : Michael Beenstock
This monograph deals with spatially dependent nonstationary time series in a way accessible to both time series econometricians wanting to understand spatial econometics, and spatial econometricians lacking a grounding in time series analysis. After charting key concepts in both time series and spatial econometrics, the book discusses how the spatial connectivity matrix can be estimated using spatial panel data instead of assuming it to be exogenously fixed. This is followed by a discussion of spatial nonstationarity in spatial cross-section data, and a full exposition of non-stationarity in both single and multi-equation contexts, including the estimation and simulation of spatial vector autoregression (VAR) models and spatial error correction (ECM) models. The book reviews the literature on panel unit root tests and panel cointegration tests for spatially independent data, and for data that are strongly spatially dependent. It provides for the first time critical values for panel unit root tests and panel cointegration tests when the spatial panel data are weakly or spatially dependent. The volume concludes with a discussion of incorporating strong and weak spatial dependence in non-stationary panel data models. All discussions are accompanied by empirical testing based on a spatial panel data of house prices in Israel.
Author |
: Donggyu Sul |
Publisher |
: Routledge |
Total Pages |
: 165 |
Release |
: 2019-02-07 |
ISBN-10 |
: 9780429752988 |
ISBN-13 |
: 0429752989 |
Rating |
: 4/5 (88 Downloads) |
Synopsis Panel Data Econometrics by : Donggyu Sul
In the last 20 years, econometric theory on panel data has developed rapidly, particularly for analyzing common behaviors among individuals over time. Meanwhile, the statistical methods employed by applied researchers have not kept up-to-date. This book attempts to fill in this gap by teaching researchers how to use the latest panel estimation methods correctly. Almost all applied economics articles use panel data or panel regressions. However, many empirical results from typical panel data analyses are not correctly executed. This book aims to help applied researchers to run panel regressions correctly and avoid common mistakes. The book explains how to model cross-sectional dependence, how to estimate a few key common variables, and how to identify them. It also provides guidance on how to separate out the long-run relationship and common dynamic and idiosyncratic dynamic relationships from a set of panel data. Aimed at applied researchers who want to learn about panel data econometrics by running statistical software, this book provides clear guidance and is supported by a full range of online teaching and learning materials. It includes practice sections on MATLAB, STATA, and GAUSS throughout, along with short and simple econometric theories on basic panel regressions for those who are unfamiliar with econometric theory on traditional panel regressions.
Author |
: J. Paul Elhorst |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 125 |
Release |
: 2013-09-30 |
ISBN-10 |
: 9783642403408 |
ISBN-13 |
: 3642403409 |
Rating |
: 4/5 (08 Downloads) |
Synopsis Spatial Econometrics by : J. Paul Elhorst
This book provides an overview of three generations of spatial econometric models: models based on cross-sectional data, static models based on spatial panels and dynamic spatial panel data models. The book not only presents different model specifications and their corresponding estimators, but also critically discusses the purposes for which these models can be used and how their results should be interpreted.
Author |
: Jeffrey M. Wooldridge |
Publisher |
: MIT Press |
Total Pages |
: 1095 |
Release |
: 2010-10-01 |
ISBN-10 |
: 9780262296793 |
ISBN-13 |
: 0262296799 |
Rating |
: 4/5 (93 Downloads) |
Synopsis Econometric Analysis of Cross Section and Panel Data, second edition by : Jeffrey M. Wooldridge
The second edition of a comprehensive state-of-the-art graduate level text on microeconometric methods, substantially revised and updated. The second edition of this acclaimed graduate text provides a unified treatment of two methods used in contemporary econometric research, cross section and data panel methods. By focusing on assumptions that can be given behavioral content, the book maintains an appropriate level of rigor while emphasizing intuitive thinking. The analysis covers both linear and nonlinear models, including models with dynamics and/or individual heterogeneity. In addition to general estimation frameworks (particular methods of moments and maximum likelihood), specific linear and nonlinear methods are covered in detail, including probit and logit models and their multivariate, Tobit models, models for count data, censored and missing data schemes, causal (or treatment) effects, and duration analysis. Econometric Analysis of Cross Section and Panel Data was the first graduate econometrics text to focus on microeconomic data structures, allowing assumptions to be separated into population and sampling assumptions. This second edition has been substantially updated and revised. Improvements include a broader class of models for missing data problems; more detailed treatment of cluster problems, an important topic for empirical researchers; expanded discussion of "generalized instrumental variables" (GIV) estimation; new coverage (based on the author's own recent research) of inverse probability weighting; a more complete framework for estimating treatment effects with panel data, and a firmly established link between econometric approaches to nonlinear panel data and the "generalized estimating equation" literature popular in statistics and other fields. New attention is given to explaining when particular econometric methods can be applied; the goal is not only to tell readers what does work, but why certain "obvious" procedures do not. The numerous included exercises, both theoretical and computer-based, allow the reader to extend methods covered in the text and discover new insights.
Author |
: Yves Croissant |
Publisher |
: John Wiley & Sons |
Total Pages |
: 435 |
Release |
: 2018-08-10 |
ISBN-10 |
: 9781118949184 |
ISBN-13 |
: 1118949188 |
Rating |
: 4/5 (84 Downloads) |
Synopsis Panel Data Econometrics with R by : Yves Croissant
Panel Data Econometrics with R provides a tutorial for using R in the field of panel data econometrics. Illustrated throughout with examples in econometrics, political science, agriculture and epidemiology, this book presents classic methodology and applications as well as more advanced topics and recent developments in this field including error component models, spatial panels and dynamic models. They have developed the software programming in R and host replicable material on the book’s accompanying website.