DocumentCode :
1808105
Title :
Counterpropagation network for voltage contingency ranking exploiting coherency for feature selection
Author :
Pandit, Manjaree ; Srivastava, Laxmi ; Sharma, Jaibir
Author_Institution :
Dept. of Electr. Eng., MITS, Gwalior, India
fYear :
2004
fDate :
20-22 Dec. 2004
Firstpage :
103
Lastpage :
106
Abstract :
Power system security is one of the major concerns in competitive electricity markets driven by trade demands and regulations. If the system is found to be insecure, timely corrective measures need to be taken to prevent system collapse. This paper presents an approach based on a counterpropagation neural network (CPNN) to identify and rank the contingencies expected to reduce or eliminate the steady state loadability margin of the system, making it prone to voltage collapse. To reduce the dimension and training time, a novel feature selection method, based on the coherency existing between load buses with respect to voltage dynamics, is employed to select significant input features for the CPNN. Once trained, the CPNN is found to rank voltage contingencies accurately for previously unknown system conditions. The effectiveness of the proposed approach has been demonstrated on IEEE 30-bus test system.
Keywords :
IEEE standards; learning (artificial intelligence); neural nets; power markets; power system analysis computing; power system dynamic stability; power system security; CPNN; IEEE 30-bus test system; counterpropagation neural network; electricity market; feature selection method; power system security; rank voltage contingency; trade demand; trade regulation; voltage collapse; voltage dynamics; Artificial neural networks; Fuzzy neural networks; Neural networks; Postal services; Power engineering and energy; Power system analysis computing; Power system dynamics; Power system reliability; Power system security; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
India Annual Conference, 2004. Proceedings of the IEEE INDICON 2004. First
Print_ISBN :
0-7803-8909-3
Type :
conf
DOI :
10.1109/INDICO.2004.1497715
Filename :
1497715
Link To Document :
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