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  • Search: subject:"sieve approximation"
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Year of publication
Subject
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regularization 3 sieve approximation 3 Machine learning 2 bagging 2 boosting 2 deep learning 2 forecasting 2 neural networks 2 nonlinear models 2 penalized regressions 2 random forests 2 regression trees 2 statistical learning theory 2 Artificial intelligence 1 Bayesian inference 1 Estimation theory 1 Forecasting model 1 Identified region 1 Künstliche Intelligenz 1 Learning 1 Learning process 1 Lernen 1 Lernprozess 1 Neural networks 1 Neuronale Netze 1 Nichtlineare Regression 1 Nonlinear regression 1 Prognoseverfahren 1 Regression analysis 1 Regressionsanalyse 1 Schätztheorie 1 Time series analysis 1 Zeitreihenanalyse 1 ill-posed problem 1 limited information likelihood 1 nonparametric instrumental variable 1 partial identification 1 shrinkage prior 1
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Online availability
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Free 3
Type of publication
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Book / Working Paper 3
Type of publication (narrower categories)
All
Working Paper 2 Arbeitspapier 1 Graue Literatur 1 Non-commercial literature 1
Language
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English 2 Undetermined 1
Author
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Masini, Ricardo P. 2 Medeiros, Marcelo C. 2 Mendes, Eduardo F. 2 Jiang, Wenxin 1 Liao, Yuan 1
Institution
All
Volkswirtschaftliche Fakultät, Ludwig-Maximilians-Universität München 1
Published in...
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MPRA Paper 1 Texto para discussão 1 Texto para discussão / Pontifícia Universidade Católica do Rio de Janeiro, Departamento de Economia 1
Source
All
ECONIS (ZBW) 1 EconStor 1 RePEc 1
Showing 1 - 3 of 3
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Machine learning advances for time series forecasting
Masini, Ricardo P.; Medeiros, Marcelo C.; Mendes, Eduardo F. - 2020
In this paper we survey the most recent advances in supervised machine learning and highdimensional models for time series forecasting. We consider both linear and nonlinear alternatives. Among the linear methods we pay special attention to penalized regressions and ensemble of models. The...
Persistent link: https://www.econbiz.de/10012817069
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Cover Image
Machine learning advances for time series forecasting
Masini, Ricardo P.; Medeiros, Marcelo C.; Mendes, Eduardo F. - 2020
In this paper we survey the most recent advances in supervised machine learning and highdimensional models for time series forecasting. We consider both linear and nonlinear alternatives. Among the linear methods we pay special attention to penalized regressions and ensemble of models. The...
Persistent link: https://www.econbiz.de/10012390030
Saved in:
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Posterior consistency of nonparametric conditional moment restricted models
Liao, Yuan; Jiang, Wenxin - Volkswirtschaftliche Fakultät, … - 2011
This paper addresses the estimation of the nonparametric conditional moment restricted model that involves an infinite-dimensional parameter g0. We estimate it in a quasi-Bayesian way, based on the limited information likelihood, and investigate the impact of three types of priors on the...
Persistent link: https://www.econbiz.de/10011113752
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