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  • Search: subject:"ensemble postprocessing"
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Year of publication
Subject
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ensemble post-processing 8 standardized anomalies 6 Regression analysis 4 Regressionsanalyse 4 non-homogeneous regression 4 Forecasting model 3 Prognoseverfahren 3 Theorie 3 Theory 3 CRPS minimization 2 Standardisierung 2 Standardization 2 boosting 2 censoring 2 climatology 2 complex terrain 2 copula coupling 2 distributional regression 2 distributional regression models 2 ensemble postprocessing 2 fresh snow 2 generalized additive model 2 high-resolution 2 maximum likelihood 2 meteorology 2 precipitation 2 probabilistic forecasting 2 probabilistic temperature forecasts 2 snowfall 2 spatial 2 statistical ensemble postprocessing 2 temperature 2 variable selection 2 Calibration 1 Density forecast 1 Ensemble postprocessing 1 Estimation theory 1 Exchangeability 1 Forecast verification 1 Maximum likelihood estimation 1
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Online availability
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Free 12 Undetermined 1
Type of publication
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Book / Working Paper 12 Article 1
Type of publication (narrower categories)
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Working Paper 12 Arbeitspapier 6 Graue Literatur 6 Non-commercial literature 6
Language
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English 12 Undetermined 1
Author
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Zeileis, Achim 12 Messner, Jakob W. 9 Mayr, Georg J. 6 Mayr, Georg. J. 6 Dabernig, Markus 4 Stauffer, Reto 4 Gebetsberger, Manuel 2 Messner, Jakob 2 Umlauf, Nikolaus 2 Gneiting, Tilmann 1 Grimit, Eric 1 Held, Leonhard 1 Johnson, Nicholas 1 Messner, JakobW. 1 Stanberry, Larissa 1
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Published in...
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Working Papers in Economics and Statistics 6 Working papers in economics and statistics 6 TEST: An Official Journal of the Spanish Society of Statistics and Operations Research 1
Source
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ECONIS (ZBW) 6 EconStor 6 RePEc 1
Showing 1 - 10 of 13
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Hourly probabilistic snow forecasts over complex terrain : a hybrid ensemble postprocessing approach
Stauffer, Reto; Mayr, Georg. J.; Messner, Jakob W.; … - 2018
Accurate and high-resolution snowfall and fresh snow forecasts are important for a range of economic sectors as well as for the safety of people and infrastructure, especially in mountainous regions. In this article a new hybrid statistical postprocessing method is proposed, which combines...
Persistent link: https://www.econbiz.de/10011813349
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Cover Image
Hourly probabilistic snow forecasts over complex terrain: A hybrid ensemble postprocessing approach
Stauffer, Reto; Mayr, Georg J.; Messner, JakobW.; … - 2018
Accurate and high-resolution snowfall and fresh snow forecasts are important for a range of economic sectors as well as for the safety of people and infrastructure, especially in mountainous regions. In this article a new hybrid statistical postprocessing method is proposed, which combines...
Persistent link: https://www.econbiz.de/10011930742
Saved in:
Cover Image
Estimation methods for non-homogeneous regression models : minimum continuous ranked probability score vs. maximum likelihood
Gebetsberger, Manuel; Messner, Jakob W.; Mayr, Georg. J.; … - 2017
Non-homogeneous regression models are widely used to statistically post-process numerical ensemble weather prediction models. Such regression models are capable of forecasting full probability distributions and correct for ensemble errors in the mean and variance. To estimate the corresponding...
Persistent link: https://www.econbiz.de/10011762435
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Cover Image
Estimation methods for non-homogeneous regression models: Minimum continuous ranked probability score vs. maximum likelihood
Gebetsberger, Manuel; Messner, Jakob W.; Mayr, Georg J.; … - 2017
Non-homogeneous regression models are widely used to statistically post-process numerical ensemble weather prediction models. Such regression models are capable of forecasting full probability distributions and correct for ensemble errors in the mean and variance. To estimate the corresponding...
Persistent link: https://www.econbiz.de/10011930735
Saved in:
Cover Image
Ensemble post-processing of daily precipitation sums over complex terrain using censored high-resolution standardized anomalies
Stauffer, Reto; Messner, Jakob; Mayr, Georg. J.; … - 2016
Probabilistic forecasts provided by numerical ensemble prediction systems have systematic errors and are typically underdispersive. This is especially true over complex topography with extensive terrain induced small-scale effects which cannot be resolved by the ensemble system. To alleviate...
Persistent link: https://www.econbiz.de/10011499000
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Spatial ensemble post-processing with standardized anomalies
Dabernig, Markus; Mayr, Georg. J.; Messner, Jakob W.; … - 2016
ensemble post-processing can be applied simultaneously at multiple locations. Furthermore, this method allows to forecast even …
Persistent link: https://www.econbiz.de/10011449375
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Simultaneous ensemble post-processing for multiple lead times with standardized anomalies
Dabernig, Markus; Mayr, Georg. J.; Messner, Jakob W.; … - 2016
Statistical post-processing of ensemble predictions is usually adjusted to a particular lead time so that several models must be fitted to forecast multiple lead times. To increase the coherence between lead times, we propose to use standardized anomalies instead of direct observations and...
Persistent link: https://www.econbiz.de/10011554831
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Non-homogeneous boosting for predictor selection in ensemble post-processing
Messner, Jakob W.; Mayr, Georg. J.; Zeileis, Achim - 2016
Non-homogeneous regression is often used to statistically post-process ensemble forecasts. Usually only ensemble forecasts of the predictand variable are used as input but other potentially useful information sources are ignored. Although it is straightforward to add further input variables,...
Persistent link: https://www.econbiz.de/10011434081
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Cover Image
Simultaneous ensemble post-processing for multiple lead times with standardized anomalies
Dabernig, Markus; Mayr, Georg J.; Messner, Jakob W.; … - 2016
Statistical post-processing of ensemble predictions is usually adjusted to a particular lead time so that several models must be fitted to forecast multiple lead times. To increase the coherence between lead times, we propose to use standardized anomalies instead of direct observations and...
Persistent link: https://www.econbiz.de/10011622778
Saved in:
Cover Image
Non-homogeneous boosting for predictor selection in ensemble post-processing
Messner, Jakob W.; Mayr, Georg J.; Zeileis, Achim - 2016
Non-homogeneous regression is often used to statistically post-process ensemble forecasts. Usually only ensemble forecasts of the predictand variable are used as input but other potentially useful information sources are ignored. Although it is straightforward to add further input variables,...
Persistent link: https://www.econbiz.de/10011531581
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