Author
Listed:
- Eun Ji Kim
(Clean Energy Transition Group, Korea Institute of Industrial Technology (KITECH), 102 Jejudaehak-ro, Jeju-si 63243, Republic of Korea)
- Yong Han Jeon
(Department of Fire Protection Engineering, SanJi University, 83, Sangjidae-gil, Wonju-si 26339, Republic of Korea)
- Youn Cheol Park
(Department of Mechanical Engineering, Jeju National University, 102, Jejudaehak-ro, Jeju-si 63243, Republic of Korea)
- Sung Seek Park
(Carbon Zero Technology Institute, 10, Cheomdan-ro, Jeju-si 63152, Republic of Korea)
- Seung Jin Oh
(Clean Energy Transition Group, Korea Institute of Industrial Technology (KITECH), 102 Jejudaehak-ro, Jeju-si 63243, Republic of Korea
Department of Convergence Manufacturing System Engineering, University of Science and Technology (UST), 217, Gajeong-ro, Yuseong-gu, Daejeon 34113, Republic of Korea)
Abstract
Accurate forecasting of photovoltaic (PV) power generation is essential for mitigating weather-induced variability and maintaining power-system stability. This study aims to improve PV power forecasting accuracy by enhancing the quality of numerical weather prediction (NWP) inputs rather than modifying forecasting model structures. Specifically, systematic errors in temperature, wind speed, and solar radiation data produced by the Unified Model–Local Data Assimilation and Prediction System (UM-LDAPS) are corrected using a Model Output Statistics (MOS) approach. A case study was conducted for a 20 kW rooftop PV system in Buan, South Korea, comparing forecasting performance before and after MOS application using a random forest-based PV forecasting model. The results show that MOS significantly improves meteorological input accuracy, reducing the root mean square error (RMSE) of temperature, wind speed, and solar radiation by 38.1–62.3%. Consequently, PV power forecasting errors were reduced by 70.0–78.7% across lead times of 1–6 h, 7–12 h, and 19–24 h. After MOS correction, the normalized mean absolute percentage error (nMAPE) remained consistently low at approximately 7–8%, indicating improved forecasting robustness across the evaluated lead-time ranges. In addition, an economic evaluation based on the Korean renewable energy forecast-settlement mechanism estimated an annual benefit of approximately 854 USD for the analyzed 20 kW PV system. A complementary valuation using an NREL-based framework yielded an annual benefit of approximately 296 USD. These results demonstrate that improving meteorological data quality through MOS enhances PV forecasting performance and provide measurable economic value.
Suggested Citation
Eun Ji Kim & Yong Han Jeon & Youn Cheol Park & Sung Seek Park & Seung Jin Oh, 2026.
"Evaluation of Photovoltaic Generation Forecasting Using Model Output Statistics and Machine Learning,"
Energies, MDPI, vol. 19(2), pages 1-17, January.
Handle:
RePEc:gam:jeners:v:19:y:2026:i:2:p:486-:d:1843676
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