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A UNIFIED UNSUPERVISED CLUSTERING ALGORITHM AND ITS FIRST APPLICATION TO LANDCOVER CLASSIFICATION

机译:统一无监督的聚类算法及其第一个应用于Landcover分类

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The problem of classification is so fundamental that it has been intensively investigated by many researchers from different domains. In this paper, we present a novel unsupervised clustering algorithm derived from the techniques of probabilistic modeling which is implemented by a stochastic gradient algorithm. Then its application to challenging landcover classification based on Daedalus data of the SMART project is explored by combining both spectral feature and spatial contextual information. Our first experiments show its potential usefulness in remote sensing.
机译:分类问题是如此基础,许多研究人员来自不同领域的许多研究人员都是基本的。在本文中,我们介绍了一种新颖的无监督聚类算法,该算法源自概率建模技术,该算法由随机梯度算法实现。然后,通过组合光谱特征和空间上下文信息,探索其在基于智能项目的DaedaLus数据的挑战土地层分类的应用。我们的第一个实验表明其在遥感中的潜在有用性。

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