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Incident Angle Dependence of Sentinel-1 Texture Features for Sea Ice Classification
2021
Remote Sensing
Robust and reliable classification of sea ice types in synthetic aperture radar (SAR) images is needed for various operational and environmental applications. Previous studies have investigated the class-dependent decrease in SAR backscatter intensity with incident angle (IA); others have shown the potential of textural information to improve automated image classification. In this work, we investigate the inclusion of Sentinel-1 (S1) texture features into a Bayesian classifier that accounts
doi:10.3390/rs13040552
fatcat:unt3yal7kzhydj4djbdvedddba