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Real-Time Neuro-Fuzzy Digital Filtering: a Technical Scheme

机译:实时神经模糊数字滤波:一种技术方案

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In this paper, we describe the neural fuzzy filtering properties in real-time sense; giving an approach about the real-time neuro-fuzzy digital filters, defined in acronym form as RTNFDF. This kind of filters require an adaptive inference mechanism into the fuzzy logic structure to deduce the filter answers in order to select the best parameter values into the knowledge base (KB), actualizing the filter weights to give good enough answers in natural linguistic sense. The process requires that all of the states bound into RTNFDF time limit as a real-time system, considering the Nyquist criteria. The paper shows how to characterize the membership functions into the knowledge base in a probabilistic way with respect to the rules set decisions without loss of its real-time description, performing the RTFNDF Moreover, the paper describes in schematic sense the fuzzy neural net architecture into the filter description. This kind of filters infer from different variables related of a reference system operation at its respective operation levels, classifying it responses in order to select dynamically the best answer for the infimum error limited by the error functional, respect to each variable considered. The results expressed in formal sense use the concepts exposed in the papers included into the references. Finally, we present in illustrative manner the RTNFDF operations using as a tool the Matlab software.
机译:在本文中,我们实时地描述了神经模糊滤波特性。给出了一种关于实时神经模糊数字滤波器的方法,以首字母缩写形式定义为RTNFDF。这种过滤器需要进入模糊逻辑结构的自适应推理机制来推导过滤器答案,以便将最佳参数值选择到知识库(KB)中,实现过滤器权重以从自然语言意义上给出足够好的答案。该过程要求考虑Nyquist标准,将所有状态都绑定到RTNFDF时限作为实时系统。本文展示了如何根据规则集决策以概率的方式将隶属函数表征到知识库中,而又不损失其实时描述,执行RTFNDF。此外,本文还从示意图的角度将模糊神经网络架构描述为过滤器说明。这种过滤器从参考系统在其各自的操作级别上相关的不同变量中得出推断,对响应进行分类,以便针对所考虑的每个变量动态选择受误差函数限制的最小误差的最佳答案。正式意义上的结果使用参考文献中包含的论文中公开的概念。最后,我们以Matlab软件为工具,以演示方式介绍了RTNFDF操作。

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