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SAR and AIS Data Fusion for Dense Shipping Environments

机译:SAR和AIS数据融合为密集的运输环境

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A novel SAR-AIS data association technique is proposed consistent with being used in dense shipping environments, where association of SAR and AIS datasets is non-trivial and SAR false alarm rates are typically high. A ship classification model based on transfer learning classifies ship types in SAR imagery. The classification results are subsequently used in the SAR-AIS data association, which uses a rank-ordered assignment technique. The methodology is validated using a Sentinel-1 SAR product and terrestrial-based AIS product acquired from the Gulf Coast, USA. Results show optimal data association which is improved using class (i.e. ship type) information.
机译:提出了一种新颖的SAR-AIS数据关联技术,该技术一致地与密集的航运环境一起使用,其中SAR和AIS数据集的关联是非琐碎的,并且SAR误报率通常很高。基于传输学习的船舶分类模型对SAR图像中的船舶类型进行分类。随后在SAR-AIS数据关联中使用分类结果,该数据关联使用秩序排序的分配技术。使用美国海湾海岸收购的Sentinel-1 SAR产品和基于地面的AIS产品进行验证。结果显示使用类(即船舶类型)信息改进的最佳数据关联。

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