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Integrated approach using multi-platform sensors for enhanced high-resolution daily ice cover product

机译:用于增强高分辨率每日冰盖产品的多平台传感器的集成方法

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The ultimate objective of this work is to improve characterization of the ice cover distribution in the polar areas, to improve sea ice mapping and to develop a new automated real-time high spatial resolution multi-sensor ice extent and ice edge product for use in operational applications. Despite a large number of currently available automated satellite-based sea ice extent datasets, analysts at the National Ice Center tend to rely on original satellite imagery (provided by satellite optical, passive microwave and active microwave sensors) mainly because the automated products derived from satellite optical data have gaps in the area coverage due to clouds and darkness, passive microwave products have poor spatial resolution, automated ice identifications based on radar data are not quite reliable due to a considerable difficulty in discriminating between the ice cover and rough ice-free ocean surface due to winds. We have developed a multi-sensor algorithm that first extracts maximum information on the sea ice cover from imaging instruments VIIRS and MODIS, including regions covered by thin, semitransparent clouds, then supplements the output by the microwave measurements and finally aggregates the results into a cloud gap free daily product. This ability to identify ice cover underneath thin clouds, which is usually masked out by traditional cloud detection algorithms, allows for expansion of the effective coverage of the sea ice maps and thus more accurate and detailed delineation of the ice edge. We have also developed a web-based monitoring system that allows comparison of our daily ice extent product with the several other independent operational daily products.
机译:这项工作的最终目标是改善极地区域的冰盖分布的表征,改善海冰映射,并开发新的自动实时高空间分辨率多传感器冰范围和冰缘产品,以用于操作应用程序。尽管目前可用的自动化卫星海冰范围数据集,但国家冰中心的分析师往往依靠原始卫星图像(由卫星光学,被动微波和有源微波传感器提供)主要是因为衍生自卫星的自动化产品由于云和黑暗,光学数据具有差距,被动微波产品具有差的空间分辨率,基于雷达数据的自动化冰识别由于识别冰盖和粗冰的冰覆盖之间的相当困难,因此无法易于可靠表面由于风而。我们开发了一种多传感器算法,首先从成像仪器VIIR和MODIS中提取有关海冰盖的最大信息,包括薄的半透明云覆盖的区域,然后通过微波测量来补充输出,并最终将结果聚集成云间隙免费每日产品。这种识别薄云下方的冰盖的能力,这些云通常被传统的云检测算法掩盖,允许扩展海冰地图的有效覆盖范围,从而更准确和详细地描绘冰缘。我们还开发了一个基于网络的监控系统,允许将我们的日常冰范围产品与其他几个独立的运营日常产品进行比较。

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