Semiparametric Estimation of Binary Discrete Choice Models
Author: Margarida Genius
Publisher:
Published: 1990
Total Pages: 274
ISBN-13:
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Author: Margarida Genius
Publisher:
Published: 1990
Total Pages: 274
ISBN-13:
DOWNLOAD EBOOKAuthor: William H. Greene
Publisher: Cambridge University Press
Published: 2010-04-08
Total Pages: 383
ISBN-13: 1139485954
DOWNLOAD EBOOKIt is increasingly common for analysts to seek out the opinions of individuals and organizations using attitudinal scales such as degree of satisfaction or importance attached to an issue. Examples include levels of obesity, seriousness of a health condition, attitudes towards service levels, opinions on products, voting intentions, and the degree of clarity of contracts. Ordered choice models provide a relevant methodology for capturing the sources of influence that explain the choice made amongst a set of ordered alternatives. The methods have evolved to a level of sophistication that can allow for heterogeneity in the threshold parameters, in the explanatory variables (through random parameters), and in the decomposition of the residual variance. This book brings together contributions in ordered choice modeling from a number of disciplines, synthesizing developments over the last fifty years, and suggests useful extensions to account for the wide range of sources of influence on choice.
Author: Joel L. Horowitz
Publisher: Springer Science & Business Media
Published: 2010-07-10
Total Pages: 278
ISBN-13: 0387928707
DOWNLOAD EBOOKStandard methods for estimating empirical models in economics and many other fields rely on strong assumptions about functional forms and the distributions of unobserved random variables. Often, it is assumed that functions of interest are linear or that unobserved random variables are normally distributed. Such assumptions simplify estimation and statistical inference but are rarely justified by economic theory or other a priori considerations. Inference based on convenient but incorrect assumptions about functional forms and distributions can be highly misleading. Nonparametric and semiparametric statistical methods provide a way to reduce the strength of the assumptions required for estimation and inference, thereby reducing the opportunities for obtaining misleading results. These methods are applicable to a wide variety of estimation problems in empirical economics and other fields, and they are being used in applied research with increasing frequency. The literature on nonparametric and semiparametric estimation is large and highly technical. This book presents the main ideas underlying a variety of nonparametric and semiparametric methods. It is accessible to graduate students and applied researchers who are familiar with econometric and statistical theory at the level taught in graduate-level courses in leading universities. The book emphasizes ideas instead of technical details and provides as intuitive an exposition as possible. Empirical examples illustrate the methods that are presented. This book updates and greatly expands the author’s previous book on semiparametric methods in econometrics. Nearly half of the material is new.
Author: Steven Durlauf
Publisher: Springer
Published: 2016-06-07
Total Pages: 365
ISBN-13: 0230280811
DOWNLOAD EBOOKSpecially selected from The New Palgrave Dictionary of Economics 2nd edition, each article within this compendium covers the fundamental themes within the discipline and is written by a leading practitioner in the field. A handy reference tool.
Author: William A. Barnett
Publisher: Cambridge University Press
Published: 1991-06-28
Total Pages: 512
ISBN-13: 9780521424318
DOWNLOAD EBOOKPapers from a 1988 symposium on the estimation and testing of models that impose relatively weak restrictions on the stochastic behaviour of data.
Author: Trueman Scott Thompson
Publisher:
Published: 1989
Total Pages: 310
ISBN-13:
DOWNLOAD EBOOKAuthor: A. Colin Cameron
Publisher: Cambridge University Press
Published: 2005-05-09
Total Pages: 1064
ISBN-13: 9780521848053
DOWNLOAD EBOOKThe book is oriented to the practitioner.
Author: B. L. S. Prakasa Rao
Publisher: Academic Press
Published: 2014-07-10
Total Pages: 539
ISBN-13: 148326923X
DOWNLOAD EBOOKNonparametric Functional Estimation is a compendium of papers, written by experts, in the area of nonparametric functional estimation. This book attempts to be exhaustive in nature and is written both for specialists in the area as well as for students of statistics taking courses at the postgraduate level. The main emphasis throughout the book is on the discussion of several methods of estimation and on the study of their large sample properties. Chapters are devoted to topics on estimation of density and related functions, the application of density estimation to classification problems, and the different facets of estimation of distribution functions. Statisticians and students of statistics and engineering will find the text very useful.
Author: Thanasis Stengos
Publisher: MDPI
Published: 2019-05-20
Total Pages: 224
ISBN-13: 3038979643
DOWNLOAD EBOOKThe present Special Issue collects a number of new contributions both at the theoretical level and in terms of applications in the areas of nonparametric and semiparametric econometric methods. In particular, this collection of papers that cover areas such as developments in local smoothing techniques, splines, series estimators, and wavelets will add to the existing rich literature on these subjects and enhance our ability to use data to test economic hypotheses in a variety of fields, such as financial economics, microeconomics, macroeconomics, labor economics, and economic growth, to name a few.
Author: Jeffrey Racine
Publisher: Oxford University Press
Published: 2014-04
Total Pages: 562
ISBN-13: 0199857946
DOWNLOAD EBOOKThis volume, edited by Jeffrey Racine, Liangjun Su, and Aman Ullah, contains the latest research on nonparametric and semiparametric econometrics and statistics. Chapters by leading international econometricians and statisticians highlight the interface between econometrics and statistical methods for nonparametric and semiparametric procedures.