A Novel Multi-objective Evolutionary Algorithm
نویسندگان
چکیده
Evolutionary Algorithms are recognized to be efficient to deal withMulti-objective Optimization Problems(MOPs) which are difficult to be solved with traditional methods. Here a newMulti-objective Optimization Evolutionary Algorithm named DGPS which is compound with Geometrical Pareto Selection Method (GPS), Weighted SumMethod (WSM) and Dynamical Evolutionary Algorithm (DEA) is proposed. Some famous benchmark functions are carried out to test this algorithm’s performance and the numerical experiments show that this algorithm runs much faster than SPEA2, NSGAII, HPMOEA and can obtain finer approximate Pareto fronts which include thousands of well-distributed points.
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