DocumentCode :
134309
Title :
An adaptive technique based modeling of optimal bidding strategies for competitive electricity market
Author :
Reddy, V. Madhu Sudana ; Subramanyam, B. ; Kalavathi, M. Surya
Author_Institution :
Dept. of E.E.E., J.N.T.U.H., Hyderabad, India
fYear :
2014
fDate :
13-15 March 2014
Firstpage :
1
Lastpage :
11
Abstract :
In this paper, an adaptive technique based modeling of the optimal bidding strategies for competitive electricity market is proposed. Here, Artificial Bees Colony (ABC) is an optimization tool, which is used in two phases, the employee bee and the onlooker bee to optimize the bidding parameters. From the optimized parameters the exact solution is predicted by the Cuckoo Search (CS) algorithm, which is replaced by the scout bee phase of the ABC. In the CS algorithm prediction function is based on the levy flight search. It is used to discover the exact parameters from more complicated problems with the use of probability. This action makes the ABC as an adaptive technique. The required demand of every period is identified by the learning and testing algorithm Neural Network (NN). Then the proposed adaptive technique maximizes the profit levels and meets the demand at minimum pricing levels. Finally the proposed method is implemented in the MATLAB/simulink platform and effectiveness is analyzed by using the comparison of different techniques like ABC, PSO, ABC_PSO. The comparison results are demonstrating the superiority of the proposed approach and confirm its potential to solve the problem.
Keywords :
learning (artificial intelligence); neural nets; optimisation; power engineering computing; power markets; pricing; profitability; tendering; ABC; CS algorithm; Cuckoo search algorithm; NN; adaptive technique based modeling; artificial bees colony; competitive electricity market; employee bee; learning; minimum pricing level; neural network; onlooker bee; optimal bidding strategies; optimization tool; profit level maximization; scout bee phase; Analytical models; Artificial neural networks; Predictive models; Stochastic processes; Testing; Artificial Bees Colony; Cuckoo Search; Neural Network; electricity market; levy flight search; optimal bidding;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power and Energy Systems Conference: Towards Sustainable Energy, 2014
Conference_Location :
Bangalore
Print_ISBN :
978-1-4799-3420-1
Type :
conf
DOI :
10.1109/PESTSE.2014.6805251
Filename :
6805251
Link To Document :
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