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  • Search: subject:"High-dimensional forecasting"
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Year of publication
Subject
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Forecasting model 7 Prognoseverfahren 7 Lasso 6 OCMT 6 Presidential election 4 Präsidentschaftswahl 4 USA 4 United States 4 Voting behaviour 4 Wahlverhalten 4 high dimensional forecasting models 4 popular and electoral college votes 4 simultaneity and recursive identification 4 voter turnout 4 Frühindikator 3 Leading indicator 3 Data Transformations 2 Estimation theory 2 Forecast 2 Forestry 2 Forstwirtschaft 2 High-dimensional Forecasting 2 Machine Learning 2 Prognose 2 Random forests 2 Regression analysis 2 Regressionsanalyse 2 Regularization 2 Schätztheorie 2 Targeted Predictors 2 Artificial intelligence 1 Economic forecast 1 Forest policy 1 Forstpolitik 1 High Dimensional Forecasting Models 1 High dimensional forecasting models 1 High-dimensional forecasting 1 Künstliche Intelligenz 1 LASSO 1 One covariate at a time multiple testing 1
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Online availability
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Free 8 Undetermined 2
Type of publication
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Book / Working Paper 8 Article 2
Type of publication (narrower categories)
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Working Paper 7 Graue Literatur 5 Non-commercial literature 5 Arbeitspapier 4 Article in journal 2 Aufsatz in Zeitschrift 2
Language
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English 10
Author
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Pesaran, M. Hashem 6 Ahmed, Rashad 4 Borup, Daniel 2 Christensen, Bent Jesper 2 Daniele, Maurizio 2 Kronenberg, Philipp 2 Reinicke, Tim 2 Song, Hayun 2 Mühlbach, Nicolaj N. 1 Mühlbach, Nicolaj Søndergaard 1 Nielsen, Mikkel S. 1 Nielsen, Mikkel Slot 1
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Published in...
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CESifo Working Paper 2 CESifo working papers 2 International journal of forecasting 2 CREATES research paper 1 Cambridge working papers in economics 1 Cambridge-INET working papers 1 KOF Working Papers 1 KOF working papers 1
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Source
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ECONIS (ZBW) 7 EconStor 3
Showing 1 - 10 of 10
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Targeted transformations for macroeconomic forecasting
Daniele, Maurizio; Kronenberg, Philipp; Reinicke, Tim - 2024
The crisis periods of the past decades have highlighted the difficulty of forecasting economic indicators due to increased non-linearity and rapidly changing dynamics. To address this challenge, we introduce the Transform-Sparsify-Forecast (TSF) framework. The TSF framework first applies...
Persistent link: https://www.econbiz.de/10014563994
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Targeted transformations for macroeconomic forecasting
Daniele, Maurizio; Kronenberg, Philipp; Reinicke, Tim - 2024
The crisis periods of the past decades have highlighted the difficulty of forecasting economic indicators due to increased non-linearity and rapidly changing dynamics. To address this challenge, we introduce the Transform-Sparsify-Forecast (TSF) framework. The TSF framework first applies...
Persistent link: https://www.econbiz.de/10014545317
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Forecasting 2024 US Presidential Election by States Using County Level Data: Too Close to Call
Pesaran, M. Hashem; Song, Hayun - 2024
This document is a follow up to the paper by Ahmed and Pesaran (2020, AP) and reports state-level forecasts for the 2024 US presidential election. It updates the 3,107 county level data used by AP and uses the same machine learning techniques as before to select the variables used in forecasting...
Persistent link: https://www.econbiz.de/10015166166
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Forecasting 2024 US presidential election by states using county level data : too close to call
Pesaran, M. Hashem; Song, Hayun - 2024
This document is a follow up to the paper by Ahmed and Pesaran (2020, AP) and reports state-level forecasts for the 2024 US presidential election. It updates the 3,107 county level data used by AP and uses the same machine learning techniques as before to select the variables used in forecasting...
Persistent link: https://www.econbiz.de/10015077850
Saved in:
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Targeting predictors in random forest regression
Borup, Daniel; Christensen, Bent Jesper; Mühlbach, … - In: International journal of forecasting 39 (2023) 2, pp. 841-868
Persistent link: https://www.econbiz.de/10014465155
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Targeting predictors in random forest regression
Borup, Daniel; Christensen, Bent Jesper; Mühlbach, … - 2020 - This version: May 5, 2020
Persistent link: https://www.econbiz.de/10012317696
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Regional Heterogeneity and U.S. Presidential Elections
Ahmed, Rashad; Pesaran, M. Hashem - 2020
This paper develops a recursive model of voter turnout and voting outcomes at U.S. county level to investigate the socioeconomic determinants of recent U.S. presidential elections. It is shown that the relationship between many socioeconomic variables and voting outcomes is not uniform across...
Persistent link: https://www.econbiz.de/10012314902
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Regional heterogeneity and U.S. presidential elections
Ahmed, Rashad; Pesaran, M. Hashem - 2020
This paper develops a recursive model of voter turnout and voting outcomes at the U.S. county level to investigate the socioeconomic determinants of recent U.S. presidential elections. It exploits cross-section variations across U.S. counties and investigates the key determinants of the 2016...
Persistent link: https://www.econbiz.de/10012299498
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Regional heterogeneity and U.S. presidential elections
Ahmed, Rashad; Pesaran, M. Hashem - 2020 - updated 14 October 2020
Persistent link: https://www.econbiz.de/10013206085
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Regional heterogeneity and US presidential elections : real-time 2020 forecasts and evaluation
Ahmed, Rashad; Pesaran, M. Hashem - In: International journal of forecasting 38 (2022) 2, pp. 662-687
Persistent link: https://www.econbiz.de/10013348692
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