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Mean Field Type Control With Species Dependent Dynamics via Structured Tensor Optimization

Axel Ringh, Isabel Haasler, Yongxin Chen, Johan Karlsson

发表年份
2023
引用次数
2
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摘要

In this work we consider mean field type control problems with multiple species that have different dynamics. We formulate the discretized problem using a new type of entropy-regularized multimarginal optimal transport problems where the cost is a decomposable structured tensor. A novel algorithm for solving such problems is derived, using this structure and leveraging recent results in entropy-regularized optimal transport. The algorithm is then demonstrated on a numerical example in robot coordination problem for search and rescue, where three different types of robots are used to cover a given area at minimal cost.

关键词

DiscretizationMathematical optimizationType (biology)Entropy (arrow of time)Tensor fieldOptimal controlCover (algebra)RobotMathematicsComputer science

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