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Adaptive quantized fuzzy control of stochastic nonlinear systems with actuator dead-zone

机译:具有执行器死区的随机非线性系统的自适应量化模糊控制

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This paper studies a tracking issue of stochastic nonlinear quantized systems with actuator dead zone. By combing a sector-bounded property of a hysteretic quantizer and a simplified dead zone model, a novel connection between control signal and system input is established. Based on this connection, the stochastic nonlinear quantized control is transformed into the conventional stochastic nonlinear control with unknown control gain and bounded perturbation. Therefore, the control difficulty is overcome, which results from the coexistence of the unknown actuator dead zone and the quantization effect of the control signal. Then, fuzzy logic systems are utilized to cope with the unknown composite nonlinear functions including the bounded perturbation, and an adaptive learning mechanism is set up to compensate the unknown control gain. Hence, a refreshing adaptive fuzzy tracking control scheme is formed to achieve a desired tracking performance. (C) 2016 Elsevier Inc. All rights reserved.
机译:本文研究了带有执行器死区的随机非线性量化系统的跟踪问题。通过组合滞后量化器的界界属性和简化的死区模型,可以建立控制信号与系统输入之间的新型连接。基于这种联系,将随机非线性量化控制转换为具有未知控制增益和有界扰动的常规随机非线性控制。因此,克服了由于未知致动器死区的共存和控制信号的量化效果而导致的控制困难。然后,利用模糊逻辑系统来应对未知的包含有界摄动的非线性复合函数,并建立了自适应学习机制来补偿未知的控制增益。因此,形成刷新的自适应模糊跟踪控制方案以实现期望的跟踪性能。 (C)2016 Elsevier Inc.保留所有权利。

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