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Emotional Learning Based Controller for Quadruple Tank System—An Improved Stimuli Design for Multiple Set-Point Tracking

机译:基于情感学习的四人坦克系统控制器 - 一种改进的多种设定点跟踪的刺激设计

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摘要

Accurate set-point tracking across a broad operating region with minimum transients is a crucial requirement during the start-up and shutdown phases of a process plant operation. The emotional learning based controller, with its model-independent and nonlinear features, is extremely suitable for plant-based operations. However, the design of most of the existing emotional-learning strategies is based on narrow operating regions, and, hence, they may not yield satisfactory tracking performance when operated on a broader region. In this correspondence, a new design approach is adopted, which takes into consideration the specific requirements of multiple set-point tracking. This approach fuses a regression model with a constrained optimization problem to generate stimuli weights as well as the learning and inhibition parameters. Experimental validation of the proposed method on a quadruple tank system and comparison of its performance with an optimized second-order sliding mode controller illustrates its effectiveness.
机译:在具有最小瞬态的宽手术区域上的精确设定点跟踪是过程工厂操作的启动和关闭阶段期间的重要要求。基于情感学习的控制器,具有其模型无关和非线性特征,非常适合基于工厂的操作。然而,大多数现有的情绪学习策略的设计是基于窄的操作区域,因此,当在更广泛的区域操作时它们可能不会产生令人满意的跟踪性能。在这一信件中,采用了一种新的设计方法,这考虑了多个设定点跟踪的特定要求。这种方法使回归模型具有约束的优化问题,以产生刺激权,以及学习和抑制参数。通过优化的二阶滑动模式控制器对四重罐系统提出的方法的实验验证以及其性能的比较说明了其有效性。

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