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Blurred Labeling Segmentation Algorithm for Hyperspectral Images

机译:高光谱图像的模糊标记分割算法

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This work is focusing on the hyperspectral imaging classification, which is nowadays a focus of intense research. The hyperspectral imaging is widely used in agriculture, mineralogy, or food processing to enumerate only a few important domains. The main problem of such image classification is access to the ground truth, because it needs the experienced experts. This work proposed a novel three-stage image segmentation method, which prepares the data for the classification and employs the active learning paradigm which reduces the expert works on image. The proposed approach was evaluated on the basis of the computer experiments carried out on the benchmark hyperspectral datasets.
机译:这项工作的重点是高光谱成像分类,这是当今研究的重点。高光谱成像被广泛用于农业,矿物学或食品加工中,仅列举了几个重要领域。这种图像分类的主要问题是获取基本事实,因为它需要经验丰富的专家。这项工作提出了一种新颖的三阶段图像分割方法,该方法准备了用于分类的数据,并采用了主动学习范式,从而减少了图像专家的工作量。在基准高光谱数据集上进行的计算机实验的基础上,对提出的方法进行了评估。

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