2023
DOI: 10.3390/s23156723
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Robust Learning with Noisy Ship Trajectories by Adaptive Noise Rate Estimation

Abstract: Ship trajectory classification is of great significance for shipping analysis and marine security governance. However, in order to cover up their illegal fishing or espionage activities, some illicit ships will forge the ship type information in the Automatic Identification System (AIS), and this label noise will significantly impact the algorithm’s classification accuracy. Sample selection is a common and effective approach in the field of learning from noisy labels. However, most of the existing methods base… Show more

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