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  • title: SatMAE: Pre-training Transformers for Temporal and Multi-Spectral Satellite Imagery
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            SatMAE: Pre-training Transformers for Temporal and Multi-Spectral Satellite Imagery
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            SatMAE: Pre-training Transformers for Temporal and Multi-Spectral Satellite Imagery

            Nov 28, 2022

            Speakers

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            Yezhen Cong

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            Samar Khanna

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            CM

            Chenlin Meng

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            About

            Unsupervised pre-training methods for large vision models have shown to enhance performance on downstream supervised tasks. Developing similar techniques for satellite imagery presents significant opportunities as unlabelled data is plentiful and the inherent temporal and multi-spectral structure provides avenues to further improve existing pre-training strategies. In this paper, we present SatMAE, a pre-training framework for temporal or multi-spectral satellite imagery based on Masked Autoenco…

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            NeurIPS 2022

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