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References

1 
S. Impram, S. Nese, B. Oral, 2020, Challenges of renewable energy penetration on power system flexibility: A survey, Energy Strategy Reviews, Vol. 32, pp. 100539DOI
2 
G. Hughes, J. O’Sullivan, 2022, Dynamic grid stability in low carbon power systems with minimum inertia, Energy Reports, Vol. 8, pp. 190-198Google Search
3 
Y. Liu, M. Shahidehpour, Z. Li, H. Zhang, 2021, Analysis and dynamic stabilization of a high-voltage VSC-MTDC grid with DC power flow controller connected to extremely weak AC systems, IEEE Transactions on Power Systems, Vol. 36, No. 5, pp. 4829-4841Google Search
4 
A. Q. Al-Shetwi, M. Hannan, K. P. Jern, M. Mansur, 2020, Emerging power quality challenges due to integration of renewable energy sources, Energies, Vol. 13, No. 12, pp. 3375Google Search
5 
Y. Li, S. Wang, F. Blaabjerg, 2021, Subsynchronous oscillation and advanced analysis: A review, IEEE Access, Vol. 9, pp. 16413-16428Google Search
6 
N. Hatziargyriou, 2021, Definition and classification of power system stability – revisited and extended, IEEE Transactions on Power Systems, Vol. 36, No. 4, pp. 3271-3281DOI
7 
M. Lindner, 2025, Suitable classification of power system stability phenomena, CIGRE Science & Engineering Journal, No. 37, pp. 47-58DOI
8 
G. Tzounas, 2021, Small-signal stability techniques for power system modal analysis, control, and numerical integration, Ph.D. dissertationGoogle Search
9 
A. Pathak, R. Gupta, 2019, Small signal stability of a power system, International Journal of Recent Technology and Engineering, Vol. 8, No. 3, pp. 3970-3975DOI
10 
F. Milano, 2020, A Systematic Method for Small-Signal Stability Analysis Including Nonlinear Control Effects, Electric Power Systems Research, Vol. 189, pp. 106734Google Search
11 
D. F. Dakhlan, J. Muslim, I. Kurniawan, K. M. Banjar-Nahor, B. A. Soedjarno, N. Hariyanto, 2025, Comparing Fast Fourier Transform and Prony Method for Analysing Frequency Oscillation in Real Power System Interconnection, Energies, Vol. 18, No. 9, pp. 2377DOI
12 
M. Khodadadi Arpanahi, M. Kordi, R. Torkzadeh, H. Haes Alhelou, P. Siano, 2019, An augmented Prony method for power system oscillation analysis using synchrophasor data, Energies, Vol. 12, No. 7, pp. 1267DOI
13 
T. Xia, Z. Yu, K. Sun, D. Shi, Z. Wang, 2020, Extended Prony analysis on power system oscillation under a near-resonance condition, arXiv preprintGoogle Search
14 
L. Chen, Y. Min, W. Hu, 2013, An energy-based method for location of power system oscillation source, IEEE Transactions on Power Systems, Vol. 28, No. 2, pp. 828-836DOI
15 
S. Maslennikov, B. Wang, E. Litvinov, 2017, Dissipating energy flow method for locating the source of sustained oscillations, International Journal of Electrical Power & Energy Systems, Vol. 88, pp. 55-62DOI
16 
S. Maslennikov, B. Wang, 2017, Locating the Source of Sustained Oscillations by Using PMU Measurements, pp. 1-5Google Search
17 
E. Lindberg, 2010, The Barkhausen Criterion (Observation?), pp. 15-18Google Search
18 
S. F. Chou, X. Wang, F. Blaabjerg, 2020, Reflection coefficient stability criterion for multi-bus multi-VSC power systems, IEEE Access, Vol. 8, pp. 100973-100985DOI