Superpixel-based semisupervised active learning for hyperspectral image classification

C Liu, J Li, L He - IEEE Journal of Selected Topics in Applied …, 2018 - ieeexplore.ieee.org
C Liu, J Li, L He
IEEE Journal of Selected Topics in Applied Earth Observations and …, 2018ieeexplore.ieee.org
In this work, we propose a new semisupervised active learning approach for hyperspectral
image classification. The proposed method aims at improving machine generalization by
using pseudolabeled samples, both confident and informative, which are automatically and
actively selected, via semisupervised learning. The learning is performed under two
assumptions: a local one for the labeling via a superpixel-based constraint dedicated to the
spatial homogeneity and adaptivity into the pseudolabels, and a global one modeling the …
In this work, we propose a new semisupervised active learning approach for hyperspectral image classification. The proposed method aims at improving machine generalization by using pseudolabeled samples, both confident and informative, which are automatically and actively selected, via semisupervised learning. The learning is performed under two assumptions: a local one for the labeling via a superpixel-based constraint dedicated to the spatial homogeneity and adaptivity into the pseudolabels, and a global one modeling the data density by a multinomial logistic regressor with a Markov random field regularizer. Furthermore, we propose a density-peak-based augmentation strategy for pseudolabels, due to the fact that the samples without manual labels in their superpixel neighborhoods are out of reach for the automatic sampling. Three real hyperspectral datasets were used in our experiments to evaluate the effectiveness of the proposed superpixel-based semisupervised learning approach. The obtained results indicate that the proposed approach can greatly improve the potential for semisupervised learning in hyperspectral image classification.
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