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Fuzzy data analysis with NEFCLASS

机译:Nefclass的模糊​​数据分析

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Nowadays fuzzy systems are frequently applied in data analysis problems like classification, function approximation or time series prediction. Here we interpret fuzzy data analysis as the application of fuzzy Systems to the analysis of crisp data. The goal is to obtain simple intuitive models for interpretation and prediction. We interpret data analysis as a process that is exploratory to some extent. In order for neuro-fuzzy learning to support this aspect we require fast and simple learning algorihtms that result in small rule bases. In this paper we present the current version of the NEFCLASS structure learning algorithms that support those requirements.
机译:如今模糊系统经常应用于分类,函数近似或时间序列预测等数据分析问题中。在这里,我们将模糊数据分析解释为模糊系统在酥脆数据分析中的应用。目标是获得简单的解释和预测模型。我们将数据分析解释为在某种程度上是探索性的过程。为了使神经模糊学习支持这一方面,我们需要快速而简单的学习alliHTM,导致小规则基础。在本文中,我们介绍了支持这些要求的NefClass结构学习算法的当前版本。

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