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ADAPTIVE PID CONTROLLER TUNING VIA DEEP REINFORCEMENT LEARNING

机译:通过深度强化学习进行自适应PID控制器调整

摘要

Systems and methods are provided for using a Deep Reinforcement Learning (DRL) agent to provide adaptive tuning of process controllers, such as Proportional-Integral-Derivative (PID) controllers. The agent can monitor process controller performance, and if unsatisfactory, can attempt to improve it by making incremental changes to the tuning parameters for the process controller. The effect of a tuning change can then be observed by the agent and used to update the agent's process controller tuning policy. It has been unexpectedly discovered that providing adaptive tuning based on incremental changes in tuning parameters, as opposed to making changes independent of current values of the tuning parameters, can provide enhanced or improved control over a controlled variable of a process.
机译:提供了使用深度强化学习(DRL)代理来提供过程控制器(如比例积分微分(PID)控制器)的自适应调整的系统和方法。该代理可以监视过程控制器的性能,如果不满意,可以尝试通过对过程控制器的调整参数进行增量更改来尝试提高性能。然后,代理可以观察到调整更改的影响,并将其用于更新代理的过程控制器调整策略。出乎意料地发现,与进行独立于调整参数的当前值的改变相反,基于调整参数的增量改变来提供自适应调整可以提供对过程的受控变量的增强或改善的控制。

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