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首页> 外文期刊>Journal of Optimization Theory and Applications >Convergence of the simulated annealing algorithm for continuous global optimization
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Convergence of the simulated annealing algorithm for continuous global optimization

机译:连续全局优化的模拟退火算法的收敛性

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A class of simulated annealing algorithms for continuous global optimization is considered in this paper. The global convergence property is analyzed with respect to the objective value sequence and the minimum objective value sequence induced by simulated annealing algorithms. The convergence analysis provides the appropriate conditions on both the generation probability density function and the temperature updating function. Different forms of temperature updating functions are obtained with respect to different kinds of generation probability density functions, leading to different types of simulated annealing algorithms which all guarantee the convergence to the global optimum. [References: 18]
机译:本文考虑了一类用于连续全局优化的模拟退火算法。针对由模拟退火算法得出的目标值序列和最小目标值序列,分析了全局收敛性。收敛分析为生成概率密度函数和温度更新函数提供了适当的条件。针对不同种类的生成概率密度函数获得了不同形式的温度更新函数,从而导致了不同类型的模拟退火算法,这些算法都保证了收敛到全局最优。 [参考:18]

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