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Adaptive internal model control for multiple-input multiple-output systems.

机译:多输入多输出系统的自适应内部模型控制。

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The Internal Model Control (IMC) structure has become an extremely popular one in process control applications. Previous research in the literature has focused on nonadaptive IMC. Adaptive IMC has also been empirically introduced using neural networks and fuzzy logic. Stability issues in the area of adaptive IMC control have been investigated for single-input single-output (SISO) systems as well as the special case of decentralized multi-input multi-output (MIMO) systems. This dissertation extends the earlier stability work to the domain of general MIMO continuous-time systems. An adaptive observer is developed and analyzed for the identification of an m x r multi-input multi-output (MIMO) system with unknown parameters. Using the adaptive observer as the internal model, and the Certainty Equivalence principle, a continuous-time adaptive internal model controller is then proposed for the control of a general m x r MIMO system with unknown parameters. The resulting closed loop system is analyzed for stability and the efficacy of the adaptive control schemes is demonstrated via simulations.
机译:内部模型控制(IMC)结构已成为过程控制应用程序中非常流行的一种。文献中的先前研究集中于非自适应IMC。还使用神经网络和模糊逻辑从经验上引入了自适应IMC。对于单输入单输出(SISO)系统以及分散式多输入多输出(MIMO)系统的特殊情况,已经研究了自适应IMC控制领域的稳定性问题。本文将早期的稳定性工作扩展到一般的MIMO连续时间系统领域。开发并分析了自适应观察器,用于识别参数未知的 m x r 多输入多输出(MIMO)系统。利用自适应观测器作为内部模型,并根据确定性等效原理,提出了一种连续时间自适应内部模型控制器,用于控制参数未知的通用 m×r MIMO系统。分析了所得的闭环系统的稳定性,并通过仿真证明了自适应控制方案的有效性。

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