Arbeitspapier

Regularized Bayesian estimation in generalized threshold regression models

Estimation of threshold parameters in (generalized) threshold regression models is typically performed by maximizing the corresponding pro file likelihood function. Also, certain Bayesian techniques based on non-informative priors are developed and widely used. This article draws attention to settings (not rare in practice) in which these standard estimators either perform poorly or even fail. In particular, if estimation of the regression coeffcients is associated with high uncertainty, the pro file likelihood for the threshold parameters and thus the corresponding estimator can be highly affected. We suggest an alternative estimation method employing the empirical Bayes paradigm, which allows to circumvent defi ciencies of standard estimators. The new estimator is completely data-driven and induces little additional numerical effort compared with the old one. Simulation results show that our estimator outperforms commonly used estimators and produces excellent results even if the latter show poor performance. The practical relevance of our approach is illustrated by a real-data example; we follow up the anlysis of cross-country growth behavior detailed in Hansen (2000).

Sprache
Englisch

Erschienen in
Series: Discussion Papers ; No. 99

Klassifikation
Wirtschaft
Thema
threshold estimation
nuisance parameters
empirical Bayes

Ereignis
Geistige Schöpfung
(wer)
Greb, Friederike
Krivobokova, Tatyana
Munk, Axel
von Cramon-Taubadel, Stephan
Ereignis
Veröffentlichung
(wer)
Georg-August-Universität Göttingen, Courant Research Centre - Poverty, Equity and Growth (CRC-PEG)
(wo)
Göttingen
(wann)
2011

Handle
Letzte Aktualisierung
10.03.2025, 11:44 MEZ

Datenpartner

Dieses Objekt wird bereitgestellt von:
ZBW - Deutsche Zentralbibliothek für Wirtschaftswissenschaften - Leibniz-Informationszentrum Wirtschaft. Bei Fragen zum Objekt wenden Sie sich bitte an den Datenpartner.

Objekttyp

  • Arbeitspapier

Beteiligte

  • Greb, Friederike
  • Krivobokova, Tatyana
  • Munk, Axel
  • von Cramon-Taubadel, Stephan
  • Georg-August-Universität Göttingen, Courant Research Centre - Poverty, Equity and Growth (CRC-PEG)

Entstanden

  • 2011

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