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Multiple Classifier System for Remote Sensing Images Classification

机译:遥感影像分类的多分类器系统

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A new multiple classifier system (MCS) is proposed to address the land cover classification problem with remote sensing images. The system considers both effectiveness and efficiency by combining the classifiers pruning and ensemble at the same time, which is realized by transferring these tasks to an optimization problem. Experimental results show that proposed MCS can successfully classify the remote sensing images with high accuracy as well as reduce the computation cost. Besides, the given system generally outperforms the individual classifiers and majority vote scheme applied on all classifiers on different datasets. According to the experiment results, we conclude that our MCS is a promising method for remote sensing images classification problem, especially when the feature is not sufficient.
机译:提出了一种新的多重分类器系统(MCS),以解决遥感图像对土地覆盖物的分类问题。该系统通过同时组合分类器的修剪和集合来同时考虑有效性和效率,这是通过将这些任务转移到优化问题来实现的。实验结果表明,提出的MCS可以成功地对遥感图像进行高精度分类,并降低了计算量。此外,给定的系统通常胜过单独分类器和应用于不同数据集上所有分类器的多数表决方案。根据实验结果,我们得出结论,我们的MCS是解决遥感图像分类问题的一种有前途的方法,特别是在特征不充分的情况下。

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