The Rank-scaled Mutation Rate for Genetic Algorithms

نویسندگان

  • Mike Sewell
  • Jagath Samarabandu
  • Ranga Rodrigo
  • Kenneth McIsaac
چکیده

A novel method of individual level adaptive mutation rate control called the rank-scaled mutation rate for genetic algorithms is introduced. The rank-scaled mutation rate controlled genetic algorithm varies the mutation parameters based on the rank of each individual within the population. Thereby the distribution of the fitness of the papulation is taken into consideration in forming the new mutation rates. The best fit mutate at the lowest rate and the least fit mutate at the highest rate. The complexity of the algorithm is of the order of an individual adaptation scheme and is lower than that of a self-adaptation scheme. The proposed algorithm is tested on two common problems, namely, numerical optimization of a function and the traveling salesman problem. The results show that the proposed algorithm outperforms both the fixed and deterministic mutation rate schemes. It is best suited for problems with several local optimum solutions without a high demand for excessive mutation rates. Keywords— Genetic algorithms, mutation rate control, adaptive mutation.

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تاریخ انتشار 2006