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An Adaptive Method Using Genetic Fuzzy System to Evaluate Suspended Particulates Matters SPM from Landsat and Modis Data

机译:利用遗传模糊系统从Landsat和Modis数据评估悬浮颗粒物SPM的自适应方法

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摘要

In this paper, we propose an optimization of fuzzy model which exploits remotely sensed multispectral reflectances to estimate Suspended Particulates Matters SPM concentrations in coastal waters. The relation between the SPM concentrations and the subsurface reflectances is modeled by a set of fuzzy rules extracted automatically from the data through two steps procedure. First, fuzzy rules are generated by unsupervised fuzzy clustering of the input data. In the second step, a genetic algorithm is applied to optimize the rules. Our contribution has focused on global and partial optimization of rules and a proposed chromosome structure adapted to remote sensing data. Results of the application of each type of optimization to Landsat and Modis data are shown and discussed.
机译:在本文中,我们提出了一种优化的模糊模型,该模型利用遥感的多光谱反射率来估算沿海水域中悬浮颗粒物SPM的浓度。 SPM浓度与地下反射率之间的关系是通过一组模糊规则来建模的,该规则是通过两步过程从数据中自动提取的。首先,通过对输入数据进行无监督的模糊聚类来生成模糊规则。第二步,应用遗传算法优化规则。我们的贡献集中在规则的全局和局部优化以及适用于遥感数据的拟议染色体结构上。显示并讨论了每种优化对Landsat和Modis数据的应用结果。

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