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A Genetic Automatic Ground-Truth Validation Method for Multispectral Remote Sensing Images

机译:多光谱遥感图像的遗传自动仿真方法

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In this paper, we propose a novel genetic method that aims at providing the ground-truth expert with a binary information of the kind "validated"/"invalidated" for each ground-truth (learning) sample collected. For each invalidated sample, the expert may confirm or not the invalidation, and thus correct or maintain the adopted labeling before creating the final learning set that will be exploited in the classification process. Experimental results confirm the effectiveness of the proposed method in correctly detecting mislabeled learning samples and thus in limiting their negative impact on the classification process.
机译:在本文中,我们提出了一种新颖的遗传方法,旨在为每个地面真理(学习)样本的种类“验证”/“无效”的二进制信息提供地面真理专家。对于每个无效的样本,专家可以确认或不是无效,因此在创建将在分类过程中利用的最终学习集之前正确或维护采用的标签。实验结果证实了所提出的方法在正确检测误标记的学习样本中的有效性,从而限制了对分类过程的负面影响。

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