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Simultaneous perturbation stochastic approximation: towards one-measurement per iteration
[摘要] When measuring the value of a function to be minimized is not only expensive but also with noise, the popular simultaneous perturbation stochastic approximation (SPSA) algorithm requires only two function values in each iteration. In this paper, we present a method requiring only one function measurement value per iteration in the average sense. We prove the strong convergence and asymptotic normality of the new algorithm. Limited experimental results demonstrate the effectiveness and potential of our algorithm for solving low-dimensional problems.
[发布日期]  [发布机构] 
[效力级别]  Early Access [学科分类] 
[关键词] ALGORITHM [时效性] 
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