Robust Hyperspectral Image Domain Adaptation With Noisy Labels

IEEE Geoscience and Remote Sensing Letters(2019)

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摘要
In hyperspectral image (HSI) classification, domain adaptation (DA) methods have been proved effective to address unsatisfactory classification results caused by the distribution difference between training (i.e., source domain) and testing (i.e., target domain) pixels. However, these methods rely on accurate labels in source domain, and seldom consider the performance drop resulted by noisy label...
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关键词
Noise measurement,Training,Hyperspectral imaging,Robustness,Testing,Support vector machines
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