A Reinforcement Learning Approach to Economic Dispatch using Neural Networks

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A Reinforcement Learning Approach to Economic Dispatch using Neural Networks

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dc.contributor.author Jagathy Raj, V P
dc.contributor.author Jasmin, E A
dc.contributor.author Imthias Ahamed, T P
dc.date.accessioned 2014-08-06T04:29:48Z
dc.date.available 2014-08-06T04:29:48Z
dc.date.issued 2008-12
dc.identifier.uri http://dyuthi.cusat.ac.in/purl/4490
dc.description Fifteenth National Power Systems Conference (NPSC), IIT Bombay, December 2008 en_US
dc.description.abstract This paper presents a Reinforcement Learning (RL) approach to economic dispatch (ED) using Radial Basis Function neural network. We formulate the ED as an N stage decision making problem. We propose a novel architecture to store Qvalues and present a learning algorithm to learn the weights of the neural network. Even though many stochastic search techniques like simulated annealing, genetic algorithm and evolutionary programming have been applied to ED, they require searching for the optimal solution for each load demand. Also they find limitation in handling stochastic cost functions. In our approach once we learn the Q-values, we can find the dispatch for any load demand. We have recently proposed a RL approach to ED. In that approach, we could find only the optimum dispatch for a set of specified discrete values of power demand. The performance of the proposed algorithm is validated by taking IEEE 6 bus system, considering transmission losses en_US
dc.description.sponsorship Cochin University of Science and Technology en_US
dc.language.iso en en_US
dc.title A Reinforcement Learning Approach to Economic Dispatch using Neural Networks en_US
dc.type Article en_US


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