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Convergence to global optima for genetic programming systems with dynamically scaled operators

机译:具有动态缩放算子的遗传编程系统的全局最优收敛

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This work shows asymptotic convergence to global optima for a family of dynamically scaled genetic programming systems where the underlying population consists of a fixed number of creatures (individuals) each of arbitrary size. The genetic programming systems use common mutation and crossover operators as well as fitness-proportional selection. In addition, the mutation and crossover rates are annealed to zero in predefined fashion over the course of the algorithm, and power-law scaling is used for the (possibly population-dependent) initial fitness function with (unbounded) logarithmic growth in the exponent.We assume that a set of globally optimal creatures for the optimization problem instance exists. In addition, it is assumed that the ratio of the best fitness of globally optimal creatures vs the fitness of other creatures is greater or equal a constant ρ1 in any population they jointly reside in. We discuss how both conditions can usually be satisfied in application settings. Under the above conditions, a selected, traceable sequence of probability distributions over the possible states of the properly scaled genetic programming system converge in time towards the convex set of probability distributions over uniform populations that contain only globally optimal creatures.
机译:这项工作显示了一个动态缩放的遗传编程系统系列的全局最优解的渐近收敛性,其中基础种群由固定数量的生物(个体)组成,每个个体都有任意大小。遗传程序设计系统使用常见的变异和交叉算子以及适应性比例选择。此外,在算法过程中,将变异和交叉率以预定义的方式退火为零,并且幂律定标用于(可能与人口有关的)初始适应度函数,指数在(对数)对数增长。我们假设存在针对优化问题实例的一组全局最优生物。此外,假设全局最优生物的最佳适应度 vs 在其他共同居住的种群中的其他适应度大于或等于常数ρ> 1。我们讨论如何通常可以在应用程序设置中同时满足这两个条件。在上述条件下,经过适当缩放的遗传编程系统的可能状态上的选定的,可追溯的概率分布序列会及时收敛到仅包含全局最优生物的统一种群上的概率分布的凸集。

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