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A new scheme for an automatic generation of multi-variable fuzzy systems

机译:自动生成多变量模糊系统的新方案

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We present a new novel method of automatically generating a multi-variable fuzzy inference system from the given sample sets. We first decompose the sample set, say Λ, into a cluster of sample sets associated with the given input variables, then compute the associated fuzzy rules and membership functions for each variable, independent of the other variables, by solving a single input multiple output fuzzy system extracted from the set cluster. The resulting decomposed fuzzy rules and membership functions for all the variables are integrated back into the fuzzy system appropriate for the original sample set Λ. Taking advantage of the independence of the input variables in computing the decomposed systems,. We show that the computational complexity of the multi-variable system can in principle be reduced to that of a single variable if we can use a parallel processing multi-CPU system. We have verified our claim using an eight variable nonlinear function.
机译:我们提出了一种新的新颖方法,可以根据给定的样本集自动生成一个多变量模糊推理系统。我们首先将样本集(例如Λ)分解为与给定输入变量关联的样本集的簇,然后通过求解单个输入多输出模糊,为每个变量独立于其他变量计算关联的模糊规则和隶属函数系统从设置的集群中提取。对所有变量生成的分解后的模糊规则和隶属函数将重新集成到适用于原始样本集Λ的模糊系统中。在计算分解系统时利用输入变量的独立性。我们表明,如果我们可以使用并行处理的多CPU系统,则原则上可以将多变量系统的计算复杂度降低到单个变量。我们已经使用八变量非线性函数验证了我们的主张。

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