Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model

Hydro power can provide a source of dispatchable low-carbon electricity and a storage solution in a climate-dependent energy mix with high shares of wind and solar production. Therefore, understanding the effect climate has on hydro power generation is critical to ensure a stable energy supply, part...

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Main Authors: Linh T. T. Ho, Laurent Dubus, Matteo De Felice, Alberto Troccoli
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/7/1786
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spelling doaj-39d0675e7b7143768b89ea1bf9377d8a2020-11-25T02:58:38ZengMDPI AGEnergies1996-10732020-04-01131786178610.3390/en13071786Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest ModelLinh T. T. Ho0Laurent Dubus1Matteo De Felice2Alberto Troccoli3World Energy and Meteorology Council, The Enterprise Centre, University of East Anglia, Norwich NR4 7TJ, UKWorld Energy and Meteorology Council, The Enterprise Centre, University of East Anglia, Norwich NR4 7TJ, UKEuropean Commission, Joint Research Centre, 1755 LE Petten, The NetherlandsWorld Energy and Meteorology Council, The Enterprise Centre, University of East Anglia, Norwich NR4 7TJ, UKHydro power can provide a source of dispatchable low-carbon electricity and a storage solution in a climate-dependent energy mix with high shares of wind and solar production. Therefore, understanding the effect climate has on hydro power generation is critical to ensure a stable energy supply, particularly at a continental scale. Here, we introduce a framework using climate data to model hydro power generation at the country level based on a machine learning method, the random forest model, to produce a publicly accessible hydro power dataset from 1979 to present for twelve European countries. In addition to producing a consistent European hydro power generation dataset covering the past 40 years, the specific novelty of this approach is to focus on the lagged effect of climate variability on hydro power. Specifically, multiple lagged values of temperature and precipitation are used. Overall, the model shows promising results, with the correlation values ranging between 0.85 and 0.98 for run-of-river and between 0.73 and 0.90 for reservoir-based generation. Compared to the more standard optimal lag approach the normalised mean absolute error reduces by an average of 10.23% and 5.99%, respectively. The model was also implemented over six Italian bidding zones to also test its skill at the sub-country scale. The model performance is only slightly degraded at the bidding zone level, but this also depends on the actual installed capacity, with higher capacities displaying higher performance. The framework and results presented could provide a useful reference for applications such as pan-European (continental) hydro power planning and for system adequacy and extreme events assessments.https://www.mdpi.com/1996-1073/13/7/1786hydro power generationrandom forestclimate variablelagged effect
collection DOAJ
language English
format Article
sources DOAJ
author Linh T. T. Ho
Laurent Dubus
Matteo De Felice
Alberto Troccoli
spellingShingle Linh T. T. Ho
Laurent Dubus
Matteo De Felice
Alberto Troccoli
Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
Energies
hydro power generation
random forest
climate variable
lagged effect
author_facet Linh T. T. Ho
Laurent Dubus
Matteo De Felice
Alberto Troccoli
author_sort Linh T. T. Ho
title Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
title_short Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
title_full Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
title_fullStr Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
title_full_unstemmed Reconstruction of Multidecadal Country-Aggregated Hydro Power Generation in Europe Based on a Random Forest Model
title_sort reconstruction of multidecadal country-aggregated hydro power generation in europe based on a random forest model
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-04-01
description Hydro power can provide a source of dispatchable low-carbon electricity and a storage solution in a climate-dependent energy mix with high shares of wind and solar production. Therefore, understanding the effect climate has on hydro power generation is critical to ensure a stable energy supply, particularly at a continental scale. Here, we introduce a framework using climate data to model hydro power generation at the country level based on a machine learning method, the random forest model, to produce a publicly accessible hydro power dataset from 1979 to present for twelve European countries. In addition to producing a consistent European hydro power generation dataset covering the past 40 years, the specific novelty of this approach is to focus on the lagged effect of climate variability on hydro power. Specifically, multiple lagged values of temperature and precipitation are used. Overall, the model shows promising results, with the correlation values ranging between 0.85 and 0.98 for run-of-river and between 0.73 and 0.90 for reservoir-based generation. Compared to the more standard optimal lag approach the normalised mean absolute error reduces by an average of 10.23% and 5.99%, respectively. The model was also implemented over six Italian bidding zones to also test its skill at the sub-country scale. The model performance is only slightly degraded at the bidding zone level, but this also depends on the actual installed capacity, with higher capacities displaying higher performance. The framework and results presented could provide a useful reference for applications such as pan-European (continental) hydro power planning and for system adequacy and extreme events assessments.
topic hydro power generation
random forest
climate variable
lagged effect
url https://www.mdpi.com/1996-1073/13/7/1786
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AT matteodefelice reconstructionofmultidecadalcountryaggregatedhydropowergenerationineuropebasedonarandomforestmodel
AT albertotroccoli reconstructionofmultidecadalcountryaggregatedhydropowergenerationineuropebasedonarandomforestmodel
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