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Decision Fusion for the Classification of Hyperspectral Data: Outcome of the 2008 GRS-S Data Fusion Contest

机译:高光谱数据分类的决策融合:2008年GRS-S数据融合竞赛的结果

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摘要

The 2008 Data Fusion Contest organized by the IEEE Geoscience and Remote Sensing Data Fusion Technical Committee deals with the classification of high-resolution hyperspectral data from an urban area. Unlike in the previous issues of the contest, the goal was not only to identify the best algorithm but also to provide a collaborative effort: The decision fusion of the best individual algorithms was aiming at further improving the classification performances, and the best algorithms were ranked according to their relative contribution to the decision fusion. This paper presents the five awarded algorithms and the conclusions of the contest, stressing the importance of decision fusion, dimension reduction, and supervised classification methods, such as neural networks and support vector machines.
机译:由IEEE地理科学与遥感数据融合技术委员会组织的2008年数据融合大赛,对来自市区的高分辨率高光谱数据进行分类。与竞赛的前几期不同,目标不仅是确定最佳算法,而且是提供协作的努力:最佳个体算法的决策融合旨在进一步改善分类性能,并对最佳算法进行排名根据他们对决策融合的相对贡献。本文介绍了五种获奖算法和竞赛结论,强调了决策融合,降维和监督分类方法(如神经网络和支持向量机)的重要性。

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