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A Fuzzy Rule-Based Feature Construction Approach Applied to Remotely Sensed Imagery

机译:基于模糊的规则的特征施工方法,适用于远程感测的图像

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The inherent interpretability properties of fuzzy rule-based classification systems (FRBCSs) are undoubtedly one of their major advantages when compared to conventional black-box classifiers. In this paper we present a preliminary study of how the socalled technique of feature construction can prove useful in the context of land cover classification tasks using remotely sensed imagery. The method is integrated into a previously proposed genetic FRBCS (GFRBCS) and applied in a crop classification task using a multispectral satellite image. The experimental analysis shows that feature construction can effectively identify very useful hidden relationships among the initial variables of the problem.
机译:与传统的黑匣子分类器相比,基于模糊规则的分类系统(FRBCS)的固有可解释性属性无疑是其主要优点之一。在本文中,我们展示了使用远程感测的图像在土地覆盖分类任务的背景下有用的商标结构如何在土地覆盖分类任务的背景下进行初步研究。该方法集成到先前提出的遗传FRBC(GFRBCS)中,并使用多光谱卫星图像在作物分类任务中应用。实验分析表明,特征结构可以有效地识别问题的初始变量中的非常有用的隐藏关系。

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