2022
DOI: 10.48550/arxiv.2202.10658
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Decentralized Safe Multi-agent Stochastic Optimal Control using Deep FBSDEs and ADMM

Abstract: In this work, we propose a novel safe and scalable decentralized solution for multi-agent control in the presence of stochastic disturbances. Safety is mathematically encoded using stochastic control barrier functions and safe controls are computed by solving quadratic programs. Decentralization is achieved by augmenting to each agent's optimization variables, copy variables, for its neighbors. This allows us to decouple the centralized multi-agent optimization problem. However, to ensure safety, neighboring a… Show more

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