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Dataflow-based implementation of model predictive control

机译:基于数据流的模型预测控制的实现

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Model predictive control (MPC) has been used in a wide range of application areas including chemical engineering, food processing, automotive engineering, aerospace, and metallurgy. MPC is often computation intensive, which limits the class of systems to which it can be applied and the performance criteria it can use. This paper describes a general framework called reactive, control-integrated dataflow modeling for analyzing and improving the algorithms used for MPC and their hardware implementations. The utility of the framework is demonstrated by applying it to the Newton-KKT algorithm. The results show significant reductions in computation time for test cases.
机译:模型预测控制(MPC)已在广泛的应用领域中使用,包括化学工程,食品加工,汽车工程,航空航天和冶金。 MPC通常是计算密集型的,这限制了它可以应用的系统类别以及可以使用的性能标准。本文描述了一个通用的框架,称为反应性,控制集成的数据流建模,用于分析和改进用于MPC的算法及其硬件实现。通过将其应用于Newton-KK​​T算法,证明了该框架的实用性。结果表明,测试用例的计算时间显着减少。

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