DocumentCode :
2993607
Title :
Vulnerability Assessment of a Large Sized Power System Using Radial Basis Function Neural Network
Author :
Haidar, Ahmed M A ; Mohamed, Azah ; Hussain, Aini
Author_Institution :
Nat. Univ. of Malaysia (UKM), Bangi
fYear :
2007
fDate :
12-11 Dec. 2007
Firstpage :
1
Lastpage :
6
Abstract :
Vulnerability assessment of a power system has been of great concern due to the continual blackouts in recent years which indicate that a power system today is too vulnerable to withstand an unforeseen catastrophic contingency. This paper presents a new approach to assess vulnerability of a power system based on radial basis function neural network. A new feature extraction method named as the neural network weight extraction is also proposed to reduce the number of input features to the neural network. The effectiveness of the proposed approach has been demonstrated on a large sized IEEE 300-bus system. Test results prove that the radial basis function neural network accurately predicts the vulnerability of the power system.
Keywords :
power system analysis computing; power system faults; power system reliability; power system stability; radial basis function networks; IEEE 300-bus system; continual blackouts; feature extraction method; large sized power system; neural network weight extraction; radial basis function neural network; unforeseen catastrophic contingency; vulnerability assessment; Earthquakes; Floods; Information security; Neural networks; Power engineering and energy; Power system security; Power system simulation; Power systems; Radial basis function networks; Systems engineering and theory; Radial Basis Function Neural Network; Vulnerability Assessment; Vulnerability Index;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Research and Development, 2007. SCOReD 2007. 5th Student Conference on
Conference_Location :
Selangor, Malaysia
Print_ISBN :
978-1-4244-1469-7
Electronic_ISBN :
978-1-4244-1470-3
Type :
conf
DOI :
10.1109/SCORED.2007.4451385
Filename :
4451385
Link To Document :
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