Optimal control of discrete event systems under uncertain environment based on supervisory control theory and reinforcement learning
Yingjun Liu,
Fuchun Liu
Abstract:Discrete event systems (DESs) are powerful abstract representations for large human-made physical systems in a wide variety of industries. Safety control issues on DESs have been extensively studied based on the logical specifications of the systems in various literature. However, when facing the DESs under uncertain environment which brings into the implicit specifications, the classical supervisory control approach may not be capable of achieving the performance. So in this research, we propose a new approac… Show more
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