Multi-Agent Deployment Around a Source in the Plane Using Biased Extremum Seeking

M. Ghadiri-Modarres, M. Mojiri, E. Fattahi
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Abstract

We introduce a concept in extremum seeking, namely biased extremum seeking, which adaptively finds a set point corresponding to a prescribed bias of the value that optimizes an unknown static map. To this end, a loop consists of a product of the estimate of the Hessian of the map and the desired bias is added to the gradient based extremum seeking. Both constant bias and slowly time-varying bias are considered. As an application, the proposed scheme is used to make a group of fully actuated agents finding the source of a measurable signal in the plane while simultaneously achieving a formation deployment around it.
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基于有偏极值搜索的平面源周围多智能体部署
我们引入了极值搜索中的一个概念,即有偏极值搜索,它自适应地找到一个与未知静态映射优化值的规定偏差对应的设定点。为此,环路由地图的黑森估计的乘积组成,并将期望的偏差添加到基于梯度的极值搜索中。同时考虑了常偏置和慢时变偏置。作为一种应用,该方案用于使一组完全驱动的智能体在平面上寻找可测量信号的源,同时在其周围实现编队部署。
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