Recent developments in electrical distribution system optimization have introduced multi-objective problem formulations, using tools based on heuristics for their solutions. this paper considers two conflicting objectives (total losses and energy not supplied) and uses a genetic algorithm as the solution tool. The main original contribution of this paper is the computation of Euclidean distances inside the crossover function to select the best chromosome and drive the formation of the offsprings. two different types of computation of the Euclidean distance are presented. The proposed approach is applied to a case study carried out on the standard IEEE 14-node network.

Multi-objective distribution system optimization using Euclidean distance calculations in the genetic operators / Mazza, Andrea; Chicco, Gianfranco. - STAMPA. - (2012), pp. 14-19. (Intervento presentato al convegno The 11th IASTED European Conference on Power and Energy Systems (EuroPES 2012) tenutosi a Napoli, Italy nel 25-27 June 2012) [10.2316/P.2012.775-075].

Multi-objective distribution system optimization using Euclidean distance calculations in the genetic operators

MAZZA, ANDREA;CHICCO, GIANFRANCO
2012

Abstract

Recent developments in electrical distribution system optimization have introduced multi-objective problem formulations, using tools based on heuristics for their solutions. this paper considers two conflicting objectives (total losses and energy not supplied) and uses a genetic algorithm as the solution tool. The main original contribution of this paper is the computation of Euclidean distances inside the crossover function to select the best chromosome and drive the formation of the offsprings. two different types of computation of the Euclidean distance are presented. The proposed approach is applied to a case study carried out on the standard IEEE 14-node network.
2012
9780889869240
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2501225
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