A State Evaluation Adaptive Differential Evolution Algorithm for FIR Filter Design
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Vysoká škola báňská - Technická univerzita Ostrava
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Abstract
Due to conventional differential evolution
algorithm is often trapped in local optima and premature
convergence in high dimensional optimization
problems, a State Evaluation Adaptive Differential
Evolution algorithm (SEADE) is proposed in this paper.
By using independent scale factor on each dimension
of optimization problem, and evaluating the distribution
of population on each dimension, the SEADE
correct the control parameters adaptively. External
archive and a moving window evaluation mechanism
on evolution state are introduced in SEADE to detect
whether the evolution is stagnation or not, and with the
help of opposition-based population, the algorithm can
jump out of local optima basins. The results of experiments
on several benchmarks show that the proposed algorithm
is capable of improving the search performance
of high dimensional optimization problems. And it is
more efficient in design FIR digital filter using SEADE
than conventional
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Advances in electrical and electronic engineering. 2017, vol. 15, no. 5, p. 770-779 : ill.