Nonparametric estimation of dynamic discrete choice models for time series data
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Note: In : Computational Statistics & Data Analysis, vol. 108, p. 97-120 (2017)
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Other versions of this item:
- Park, Byeong U. & Simar, Léopold & Zelenyuk, Valentin, 2017. "Nonparametric estimation of dynamic discrete choice models for time series data," Computational Statistics & Data Analysis, Elsevier, vol. 108(C), pages 97-120.
- Byeong U. Park & Leopold Simar & Valentin Zelenyuk, 2016. "Nonparametric Estimation of Dynamic Discrete Choice Models for Time Series Data," CEPA Working Papers Series WP062016, School of Economics, University of Queensland, Australia.
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Citations
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Cited by:
- Camilla Mastromarco & Léopold Simar & Valentin Zelenyuk, 2021.
"Predicting recessions with a frontier measure of output gap: an application to Italian economy,"
Empirical Economics, Springer, vol. 60(6), pages 2701-2740, June.
- Camilla Mastromarco & Léopold Simar & Valentin Zelenyuk, 2020. "Predicting Recessions with a Frontier Measure of Output Gap: An Application to Italian Economy," CEPA Working Papers Series WP102020, School of Economics, University of Queensland, Australia.
- Mastromarco, Camilla & Simar, Léopold & Zelenyuk, Valentin, 2021. "Predicting recessions with a frontier measure of output gap: an application to Italian economy," LIDAM Reprints ISBA 2021010, Université catholique de Louvain, Institute of Statistics, Biostatistics and Actuarial Sciences (ISBA).
- Byeong U. Park & Léopold Simar & Valentin Zelenyuk, 2020.
"Forecasting of recessions via dynamic probit for time series: replication and extension of Kauppi and Saikkonen (2008),"
Empirical Economics, Springer, vol. 58(1), pages 379-392, January.
- Byeong U. Park & Lèopold Simar & Valentin Zelenyuk, 2018. "Forecasting of Recessions via Dynamic Probit for Time Series: Replication and Extension of Kauppi and Saikkonen (2008)," CEPA Working Papers Series WP092018, School of Economics, University of Queensland, Australia.
- Park, Byeong U. & Simar, Leopold & Zelenyuk, Valentin, 2018. "Forecasting of Recessions via Dynamic Probit for Time Series: Replication and Extension of Kauppi and Saikkonen (2008)," LIDAM Discussion Papers ISBA 2018004, Université catholique de Louvain, Institute of Statistics, Biostatistics and Actuarial Sciences (ISBA).
- Park, Byeong U. & Simar, Leopold & Zelenyuk, Valentin, 2019. "Forecasting of recessions via dynamic probit for time series: replication and extension of Kauppi and Saikkonen (2008)," LIDAM Reprints ISBA 2019014, Université catholique de Louvain, Institute of Statistics, Biostatistics and Actuarial Sciences (ISBA).
- Byeong U. Park & Leopold Simar & Valentin Zelenyuk, 2017. "Revisiting Forecasting of Recessions via Dynamic Probit for Time Series by Kauppi and Saikkonen (2008)," CEPA Working Papers Series WP032017, School of Economics, University of Queensland, Australia.
- Camilla Mastromarco & Léopold Simar & Valentin Zelenyuk, 2019.
"Predicting Recessions: A New Measure of Output Gap as Predictor,"
CEPA Working Papers Series
WP112019, School of Economics, University of Queensland, Australia.
- Mastromarco, Camilla & Simar, Leopold & Wilson, Paul, 2019. "Predicting Recessions: A New Measure of Output Gap as Predictor," LIDAM Discussion Papers ISBA 2019023, Université catholique de Louvain, Institute of Statistics, Biostatistics and Actuarial Sciences (ISBA).
- Toru Kitagawa & Weining Wang & Mengshan Xu, 2022. "Policy Choice in Time Series by Empirical Welfare Maximization," Papers 2205.03970, arXiv.org, revised Jun 2023.
- Truquet, Lionel, 2023. "Strong mixing properties of discrete-valued time series with exogenous covariates," Stochastic Processes and their Applications, Elsevier, vol. 160(C), pages 294-317.
- Qingyan Ning & Maosheng Li, 2022. "Modeling Pedestrian Detour Behavior By-Passing Conflict Areas," Sustainability, MDPI, vol. 14(24), pages 1-17, December.
- Tatiana Anopchenko & Olga Gorbaneva & Elena Lazareva & Anton Murzin & Gennady Ougolnitsky, 2019. "Modeling Public—Private Partnerships in Innovative Economy: A Regional Aspect," Sustainability, MDPI, vol. 11(20), pages 1-18, October.
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More about this item
JEL classification:
- C14 - Mathematical and Quantitative Methods - - Econometric and Statistical Methods and Methodology: General - - - Semiparametric and Nonparametric Methods: General
- C22 - Mathematical and Quantitative Methods - - Single Equation Models; Single Variables - - - Time-Series Models; Dynamic Quantile Regressions; Dynamic Treatment Effect Models; Diffusion Processes
- C25 - Mathematical and Quantitative Methods - - Single Equation Models; Single Variables - - - Discrete Regression and Qualitative Choice Models; Discrete Regressors; Proportions; Probabilities
- C44 - Mathematical and Quantitative Methods - - Econometric and Statistical Methods: Special Topics - - - Operations Research; Statistical Decision Theory
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