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Confidence interval of fuzzy models: An example using a waste-water treatment plant

机译:模糊模型的置信区间:以废水处理厂为例

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In this paper we present a new approach to fuzzy confidence interval identification. The method combines a fuzzy identification methodology with some ideas from applied statistics. The idea is to find, on a finite set of measured data, the confidence interval defined by the lower and upper fuzzy bound that define the band that contains all the output measurements. The method can be successfully used when we are trying to describe a family of uncertain nonlinear functions or when we are trying to find the interval for a nonlinear process output where all the measurements can be found. The fuzzy confidence interval model can be used in process monitoring, fault detection or in the case of robust control design. In our example the proposed method is used for waste-water treatment plant modeling, which exhibit a very nonlinear behavior.
机译:在本文中,我们提出了一种模糊置信区间识别的新方法。该方法将模糊识别方法与应用统计中的一些思想相结合。想法是在一组有限的测量数据上找到由上下模糊边界定义的置信区间,该上下边界定义了包含所有输出测量值的频带。当我们试图描述一系列不确定的非线性函数时,或者当我们试图找到可以找到所有测量值的非线性过程输出的间隔时,该方法可以成功使用。模糊置信区间模型可用于过程监控,故障检测或鲁棒控制设计。在我们的示例中,所提出的方法用于废水处理厂建模,该模型表现出非常非线性的行为。

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