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STRUCTURAL THRESHOLD REGRESSION
by
Kourtellos, Andros
, Tan, Chih Ming
, Stengos, Thanasis
in
Bias
/ Dependent variables
/ Econometrics
/ Economic models
/ Endogenous
/ Generalized method of moments
/ Inference
/ Monte Carlo simulation
/ Parameter estimation
/ Ratio bias
/ Simulation
/ Studies
/ Thresholds
/ Variables
2016
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STRUCTURAL THRESHOLD REGRESSION
by
Kourtellos, Andros
, Tan, Chih Ming
, Stengos, Thanasis
in
Bias
/ Dependent variables
/ Econometrics
/ Economic models
/ Endogenous
/ Generalized method of moments
/ Inference
/ Monte Carlo simulation
/ Parameter estimation
/ Ratio bias
/ Simulation
/ Studies
/ Thresholds
/ Variables
2016
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Do you wish to request the book?
STRUCTURAL THRESHOLD REGRESSION
by
Kourtellos, Andros
, Tan, Chih Ming
, Stengos, Thanasis
in
Bias
/ Dependent variables
/ Econometrics
/ Economic models
/ Endogenous
/ Generalized method of moments
/ Inference
/ Monte Carlo simulation
/ Parameter estimation
/ Ratio bias
/ Simulation
/ Studies
/ Thresholds
/ Variables
2016
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Journal Article
STRUCTURAL THRESHOLD REGRESSION
2016
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Overview
This paper introduces the structural threshold regression (STR) model that allows for an endogenous threshold variable as well as for endogenous regressors. This model provides a parsimonious way of modeling nonlinearities and has many potential applications in economics and finance. Our framework can be viewed as a generalization of the simple threshold regression framework of Hansen (2000, Econometrica 68, 575–603) and Caner and Hansen (2004, Econometric Theory 20, 813–843) to allow for the endogeneity of the threshold variable and regime-specific heteroskedasticity. Our estimation of the threshold parameter is based on a two-stage concentrated least squares method that involves an inverse Mills ratio bias correction term in each regime. We derive its asymptotic distribution and propose a method to construct confidence intervals. We also provide inference for the slope parameters based on a generalized method of moments. Finally, we investigate the performance of the asymptotic approximations using a Monte Carlo simulation, which shows the applicability of the method in finite samples.
Publisher
Cambridge University Press,Cambridge Univ. Press
Subject
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