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MCMC Sampling Statistical Method to Solve the Optimization

机译:MCMC抽样统计方法解决优化问题

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This paper designs a class of generalized density function and from which proposed a solution method for the multivariable nonlinear optimization problem based on MCMC statistical sampling.Theoretical analysis proved that the maximum statistic converge to the maximum point of probability density which establishing links between the optimization and MCMC sampling.This statistical computation algorithm demonstrates convergence property of maximum statistics in large samples and it is global search design to avoid on local optimal solution restrictions.The MCMC optimization algorithm has less iterate variables reserved so that the computing speed is relatively high.Finally,the MCMC sampling optimization algorithm is applied to solve TSP problem and compared with genetic algorithms.
机译:本文设计了一类广义密度函数,并从中提出了一种基于MCMC统计抽样的多变量非线性优化问题的求解方法。理论分析证明,最大统计量收敛于概率密度的最大值,从而建立了优化与优化之间的联系。 MCMC抽样。该统计计算算法展示了大样本中最大统计量的收敛性,并且是避免局部最优解限制的全局搜索设计.MCMC优化算法保留了较少的迭代变量,因此计算速度相对较高。将MCMC采样优化算法用于解决TSP问题,并与遗传算法进行了比较。

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