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References

1 
S. Cho, J. Hur, "A Study on Wind Power Output Prediction Using XGBoost and Spatial Interpolation of Meteorological Data," The Transactions of the Korean Institute of Electrical Engineers, vol. 74, no. 5, pp. 870-877, 2025. DOI
2 
H. Woo, S.-J. Park, S. Choi, "A Study on Hybrid AC/DC Transmission System Planning for Improving the Hosting Capacity of Offshore Windfarms," The Transactions of the Korean Institute of Electrical Engineers, vol. 74, no. 9, pp. 1433-1439, 2025. DOI
3 
F. Blaabjerg, M. Liserre, K. Ma, "Power electronics converters for wind turbine systems," IEEE Trans. Ind. Appl., vol. 48, no. 2, pp. 708-719, 2012. DOI
4 
V. Yaramasu, B. Wu, P. C. Sen, S. Kouro, M. Narimani, "High-power wind energy conversion systems: State-of-the-art and emerging technologies," Proc. IEEE, vol. 103, no. 5, pp. 740-788, 2015. DOI
5 
A. Honrubia-Escribano, E. Gomez-Lazaro, J. Fortmann, P. Sorensen, S. Martin-Martinez, "Generic dynamic wind turbine models for power system stability analysis: A comprehensive review," Renew. Sustain. Energy Rev., vol. 81, pp. 1939-1952, 2018. DOI
6 
J. Jung, "A Study on Average Models of DC/DC Converters for Fault Response Analysis of MVDC Distribution System Using EMT Simulation," The Transactions of the Korean Institute of Electrical Engineers, vol. 74, no. 7, 2025. DOI
7 
P. Pourbeik, "Generic dynamic models for modeling wind power plants and other renewable technologies in large-scale power system studies," IEEE Trans. Energy Convers., vol. 32, no. 3, pp. 1108-1116, 2017. DOI
8 
F. Goudarzi, L. Hofmann, "A combined RMS simulation model for DFIG-based and FSC-based wind turbines and its initialization," Energies, vol. 14, no. 23, pp. 8048, 2021. DOI
9 
E. Muljadi, Y. C. Zhang, A. Allen, M. Singh, V. Gevorgian, Y.-H. Wan, Tech. Rep. NREL/TP-5D00-60772, "Synchrophasor applications for wind power generation," National Renewable Energy Laboratory, 2014. Google Search
10 
A. Rolán, J. Pedra, "Initialization of DFIG wind turbines with a phasor-based approach," Wind Energy, vol. 22, no. 3, pp. 420-432, 2019. DOI
11 
C. E. Ugalde-Loo, J. B. Ekanayake, N. Jenkins, "State- space modeling of wind turbine generators for power system studies," IEEE Trans. Ind. Appl., vol. 49, no. 1, pp. 223-232, 2012. Google Search
12 
L. Sun, B. Xu, W. Du, H. Wang, "Model development and small-signal stability analysis of DFIG with stator winding inter-turn fault," IET Renew. Power Gener., vol. 11, no. 3, pp. 338-346, 2017. DOI
13 
O. Anaya-Lara, N. Jenkins, J. B. Ekanayake, P. Cartwright, M. Hughes, "Wind Energy Generation: Modelling and Control," John Wiley & Sons, Hoboken, NJ, USA, 2011. Google Search
14 
C. Kim, M.-C. Dinh, H.-J. Sung, K.-H. Kim, J.-H. Choi, L. Graber, I.-K. Yu, M. Park, Art. no. 6329, "Design, Implementation, and Evaluation of an Output Prediction Model of the 10 MW Floating Offshore Wind Turbine for a Digital Twin," Energies, vol. 15, no. 17, 2022. DOI
15 
S. T. Ayele, M. B. Ageze, M. A. Zeleke, T. A. Miliket, Art. no. e01831, "Adama II wind farm long-term power generation forecasting based on machine learning models," Scientific African, vol. 21, 2023. DOI