Advances in Non linear Economic Modeling

Advances in Non linear Economic Modeling
Author: Frauke Schleer-van Gellecom
Publsiher: Springer Science & Business Media
Total Pages: 268
Release: 2013-12-11
Genre: Business & Economics
ISBN: 9783642420399

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In recent years nonlinearities have gained increasing importance in economic and econometric research, particularly after the financial crisis and the economic downturn after 2007. This book contains theoretical, computational and empirical papers that incorporate nonlinearities in econometric models and apply them to real economic problems. It intends to serve as an inspiration for researchers to take potential nonlinearities in account. Researchers should be aware of applying linear model-types spuriously to problems which include non-linear features. It is indispensable to use the correct model type in order to avoid biased recommendations for economic policy.

Recent Advances in Estimating Nonlinear Models

Recent Advances in Estimating Nonlinear Models
Author: Jun Ma,Mark Wohar
Publsiher: Springer Science & Business Media
Total Pages: 308
Release: 2013-09-24
Genre: Business & Economics
ISBN: 9781461480600

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Nonlinear models have been used extensively in the areas of economics and finance. Recent literature on the topic has shown that a large number of series exhibit nonlinear dynamics as opposed to the alternative--linear dynamics. Incorporating these concepts involves deriving and estimating nonlinear time series models, and these have typically taken the form of Threshold Autoregression (TAR) models, Exponential Smooth Transition (ESTAR) models, and Markov Switching (MS) models, among several others. This edited volume provides a timely overview of nonlinear estimation techniques, offering new methods and insights into nonlinear time series analysis. It features cutting-edge research from leading academics in economics, finance, and business management, and will focus on such topics as Zero-Information-Limit-Conditions, using Markov Switching Models to analyze economics series, and how best to distinguish between competing nonlinear models. Principles and techniques in this book will appeal to econometricians, finance professors teaching quantitative finance, researchers, and graduate students interested in learning how to apply advances in nonlinear time series modeling to solve complex problems in economics and finance.

Optimization in Economics and Finance

Optimization in Economics and Finance
Author: Bruce D. Craven,Sardar M. N. Islam
Publsiher: Springer Science & Business Media
Total Pages: 174
Release: 2005-10-24
Genre: Business & Economics
ISBN: 9780387242804

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Some recent developments in the mathematics of optimization, including the concepts of invexity and quasimax, have not yet been applied to models of economic growth, and to finance and investment. Their applications to these areas are shown in this book.

Nonlinearities in Economics

Nonlinearities in Economics
Author: Giuseppe Orlando,Alexander N. Pisarchik,Ruedi Stoop
Publsiher: Springer Nature
Total Pages: 361
Release: 2021-08-31
Genre: Business & Economics
ISBN: 9783030709822

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This interdisciplinary book argues that the economy has an underlying non-linear structure and that business cycles are endogenous, which allows a greater explanatory power with respect to the traditional assumption that dynamics are stochastic and shocks are exogenous. The first part of this work is formal-methodological and provides the mathematical background needed for the remainder, while the second part presents the view that signal processing involves construction and deconstruction of information and that the efficacy of this process can be measured. The third part focuses on economics and provides the related background and literature on economic dynamics and the fourth part is devoted to new perspectives in understanding nonlinearities in economic dynamics: growth and cycles. By pursuing this approach, the book seeks to (1) determine whether, and if so where, common features exist, (2) discover some hidden features of economic dynamics, and (3) highlight specific indicators of structural changes in time series. Accordingly, it is a must read for everyone interested in a better understanding of economic dynamics, business cycles, econometrics and complex systems, as well as non-linear dynamics and chaos theory.

Optimization in Economics and Finance

Optimization in Economics and Finance
Author: Bruce Desmond Craven,Sardar M. N. Islam
Publsiher: Unknown
Total Pages: 135
Release: 2007
Genre: Econometric models
ISBN: OCLC:668160892

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Many optimization questions arise in economics and finance; an important example of this is the society's choice of the optimum state of the economy (the social choice problem). This book the usual optimization techniques, in a form that may be adopted for modeling social choice problems. Problems discussed include: when is an optimum reached; when is it unique; relaxation of the conventional convex (or concave) assumptions on an economic model; associated mathematical concepts such as invex and quasimax; multiobjective optimal control models; and related computational methods and programs. These techniques are applied to economic growth models (including small stochastic perturbations), finance and financial investment models (and the interaction between financial and production variables), modeling sustainability over long time horizons, boundary (transversality) conditions, and models with several conflicting objectives. Although the applications are general and illustrative, the models in this book provide examples of possible models for a society's social choice for an allocation that maximizes welfare and utilization of resources. As well as using existing computer programs for optimization of models, a new computer program, named SCOM, is presented in this book for computing social choice models by optimal control.

Dynamic Nonlinear Econometric Models

Dynamic Nonlinear Econometric Models
Author: Benedikt M. Pötscher,Ingmar R. Prucha
Publsiher: Springer Science & Business Media
Total Pages: 307
Release: 2013-03-09
Genre: Business & Economics
ISBN: 9783662034866

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Many relationships in economics, and also in other fields, are both dynamic and nonlinear. A major advance in econometrics over the last fifteen years has been the development of a theory of estimation and inference for dy namic nonlinear models. This advance was accompanied by improvements in computer technology that facilitate the practical implementation of such estimation methods. In two articles in Econometric Reviews, i.e., Pötscher and Prucha {1991a,b), we provided -an expository discussion of the basic structure of the asymptotic theory of M-estimators in dynamic nonlinear models and a review of the literature up to the beginning of this decade. Among others, the class of M-estimators contains least mean distance estimators (includ ing maximum likelihood estimators) and generalized method of moment estimators. The present book expands and revises the discussion in those articles. It is geared towards the professional econometrician or statistician. Besides reviewing the literature we also presented in the above men tioned articles a number of then new results. One example is a consis tency result for the case where the identifiable uniqueness condition fails.

Nonlinear Econometric Modeling in Time Series

Nonlinear Econometric Modeling in Time Series
Author: William A. Barnett
Publsiher: Cambridge University Press
Total Pages: 248
Release: 2000-05-22
Genre: Business & Economics
ISBN: 0521594243

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This book presents some of the more recent developments in nonlinear time series, including Bayesian analysis and cointegration tests.

Non Linear Time Series Models in Empirical Finance

Non Linear Time Series Models in Empirical Finance
Author: Philip Hans Franses,Dick van Dijk
Publsiher: Cambridge University Press
Total Pages: 299
Release: 2000-07-27
Genre: Business & Economics
ISBN: 9780521770415

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This 2000 volume reviews non-linear time series models, and their applications to financial markets.