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Benchmarking of Traditional Method of Genetic Algorithm with the Real Coded Method with a modified type of 2-Point Crossover (F-Crossover)

机译:具有修改类型的2点交叉(F交叉)实际编码方法遗传算法传统方法的基准

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A benchmarking using cellular neural networks is performed between the traditional method of Genetic algorithm (using binary population of random chromosomes) with a real coded approach of genetic algorithm. The benchmarking was done with various image processing operations and it is shown that in most of the image processing operations, real coded approach converges faster. Real numbers population prevents the repeated encoding and decoding of chromosomes. Also the sizes of chromosomes are relatively smaller. Moreover, a modified type of 2-point crossover (F-Crossover) is introduced which decreases the convergence time of the genetic algorithm and eliminates the need of mutation.
机译:使用遗传算法的传统方法(使用随机染色体的二进制群)与遗传算法的实际编码方法进行基准测试。 通过各种图像处理操作完成基准测试,并且示出了在大多数图像处理操作中,实际编码方法会聚得更快。 实数人口可防止反复编码和染色体的解码。 还有染色体的尺寸相对较小。 此外,引入了修改类型的2点交叉(F交叉),其降低了遗传算法的收敛时间,并消除了突变的需要。

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