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Decentralized adaptive awareness coverage control for multi-agent networks

机译:多主体网络的分散式自适应意识覆盖控制

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摘要

In this paper a novel problem of adaptive awareness coverage is formulated. We model the mission domain using a density function which characterizes the importance of each point and is unknown beforehand. The desired awareness coverage level over the mission domain is defined as a non-decreasing differentiable function of the density distribution. A decentralized adaptive control strategy is developed to accomplish the awareness coverage task and learning task simultaneously. The proposed control law is memoryless and can guarantee the achievement of satisfactory awareness coverage of the mission domain in finite time with the approximation error of the density function converging to zero.
机译:本文提出了一种新的自适应意识覆盖问题。我们使用密度函数对任务域进行建模,该密度函数表征每个点的重要性,并且事先未知。任务域上所需的意识覆盖级别被定义为密度分布的不可减少的微分函数。提出了一种分散式自适应控制策略,以同时完成意识覆盖任务和学习任务。所提出的控制律是无记忆的,并且可以确保在有限的时间内实现满意的任务域意识覆盖,并且密度函数的近似误差收敛为零。

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