作者
Chris Manzie, Miroslav Krstic
发表日期
2009/3/4
期刊
IEEE Transactions on Automatic Control
卷号
54
期号
3
页码范围
580-585
出版商
IEEE
简介
Extremum seeking (ES) using deterministic periodic perturbations has been an effective method for non-model based real time optimization when only limited plant knowledge is available. However, periodicity can naturally lead to predictability which is undesirable in some tracking applications and unrepresentative of biological optimization processes such as bacterial chemotaxis. With this in mind, it is useful to investigate employing stochastic perturbations in the context of a typical ES architecture, and to compare the approach with existing stochastic optimization techniques. In this work, we show that convergence towards the extremum of a static map can be guaranteed with a stochastic ES algorithm, and quantify the behavior of a system with Gaussian-distributed perturbations at the extremum in terms of the ES constants and map parameters. We then examine the closed loop system when actuator dynamics …
引用总数
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学术搜索中的文章
C Manzie, M Krstic - IEEE Transactions on Automatic Control, 2009