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SMT-based Synthesis of Safe and Robust PID Controllers for Stochastic Hybrid Systems

机译:基于SMT的混合动力系统鲁棒PID控制器综合

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We present a new method for the automated synthesis of safe and robust Proportional-Integral-Derivative (PID) controllers for stochastic hybrid systems. Despite their widespread use in industry, no automated method currently exists for deriving a PID controller (or any other type of controller, for that matter) with safety and performance guarantees for such a general class of systems. In particular, we consider hybrid systems with nonlinear dynamics (Lipschitz-continuous ordinary differential equations) and random parameters, and we synthesize PID controllers such that the resulting closed-loop systems satisfy safety and performance constraints given as probabilistic bounded reachability properties. Our technique leverages SMT solvers over the reals and nonlinear differential equations to provide formal guarantees that the synthesized controllers satisfy such properties. These controllers are also robust by design since they minimize the probability of reaching an unsafe state in the presence of random disturbances. We apply our approach to the problem of insulin regulation for type 1 diabetes, synthesizing controllers with robust responses to large random meal disturbances, thereby enabling them to maintain blood glucose levels within healthy, safe ranges.
机译:我们提出了一种用于随机混合系统的安全和鲁棒的比例-积分-微分(PID)控制器的自动合成的新方法。尽管它们在工业中得到了广泛的应用,但目前尚不存在用于为此类常规系统提供具有安全性和性能保证的PID控制器(或其他任何类型的控制器)的自动化方法。特别是,我们考虑具有非线性动力学(Lipschitz-连续常微分方程)和随机参数的混合系统,并且我们对PID控制器进行综合,以使所得的闭环系统满足作为概率有界可及性给出的安全和性能约束。我们的技术在实数和非线性微分方程上利用了SMT求解器,从而为合成控制器满足此类特性提供了形式上的保证。这些控制器在设计上也很强大,因为它们在存在随机干扰的情况下将达到不安全状态的可能性降到了最低。我们将我们的方法应用于1型糖尿病的胰岛素调节问题,合成对大量随机进餐紊乱具有强烈反应的控制器,从而使他们能够将血糖水平维持在健康,安全的范围内。

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