Paper
13 October 1998 Evaluating alternative forms of crossover in evolutionary computation on linear systems of equations
David B. Fogel, Peter J. Angeline
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Abstract
Experiments are conducted to assess the utility of alternative crossover operators within a framework of evolutionary computation. Systems of linear equations are used for testing the efficiency of one-point, two-point, and uniform crossover. The results indicate that uniform crossover, which disrupts building blocks maximally, generates statistically significantly better solutions than one- or two-point crossover. Moreover, for the cases of small population sizes, crossing over existing solutions with completely random solutions can perform as well or better than the traditional one- and two-point operators.
© (1998) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
David B. Fogel and Peter J. Angeline "Evaluating alternative forms of crossover in evolutionary computation on linear systems of equations", Proc. SPIE 3455, Applications and Science of Neural Networks, Fuzzy Systems, and Evolutionary Computation, (13 October 1998); https://doi.org/10.1117/12.326732
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Cited by 4 scholarly publications.
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KEYWORDS
Binary data

Genetic algorithms

Evolutionary algorithms

Computing systems

Computer programming

Error analysis

Algorithm development

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