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Design of Rule Adaptive Tuning Grey Prediction Fuzzy Control System

机译:规则自适应调整灰色预测模糊控制系统设计

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摘要

The paper combines the advantages of the grey prediction theory, fuzzy theory and the technology of online state evaluation tuning algorithm to design a rule adaptive tuning grey prediction fuzzy control system. These different forecasting step sizes are generated by a rule adaptive tuning mechanism in each sampling time. In rule adaptive tuning mechanism, a fuzzy inference system is used to dynamically generate appropriate forecasting step sizes for the grey predictor. A state evaluator is proposed to evaluate a scalar value to indicate the status of the current state, and to provide this value to a parameter modifier to tune the adjustable parameters. An on-line state evaluation tuning algorithm is proposed for a parameter modifier such that the fuzzy inference system has the adaptively tuning ability. The rule adaptive tuning grey prediction fuzzy control system structure is proposed so that the rise time and the overshoot of the controlled system can be maintained simultaneously. Finally, the inverted pendulum control problem is used to illustrate the effectiveness of the proposed control scheme.
机译:结合灰色预测理论,模糊理论和在线状态评估调整算法技术的优点,设计了规则自适应调整灰色预测模糊控制系统。这些不同的预测步长由规则自适应调整机制在每个采样时间内生成。在规则自适应调整机制中,模糊推理系统用于为灰色预测器动态生成适当的预测步长。建议使用状态评估器评估标量值以指示当前状态,并将该值提供给参数修改器以调整可调整参数。提出了一种针对参数修改器的在线状态评估调整算法,以使模糊推理系统具有自适应调整能力。提出了规则自适应调优灰色预测模糊控制系统的结构,使控制系统的上升时间和超调能够同时保持。最后,倒立摆控制问题被用来说明所提出的控制方案的有效性。

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