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Globally scalable generation of high-resolution land cover from multispectral imagery

机译:通过多光谱图像在全球范围内生成高分辨率的土地覆盖

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We present an automated method of generating high resolution (~ 2 meter) land cover using a pattern recognition neural network trained on spatial and spectral features obtained from over 9000 WorldView multispectral images (MSI) in six distinct world regions. At this resolution, the network can classify small-scale objects such as individual buildings, roads, and irrigation ponds. This paper focuses on three key areas. First, we describe our land cover generation process, which involves the co-registration and aggregation of multiple spatially overlapping MSI, post-aggregation processing, and the registration of land cover to OpenStreetMap (OSM) road vectors using feature correspondence. Second, we discuss the generation of land cover derivative products and their impact in the areas of region reduction and object detection. Finally, we discuss the process of globally scaling land cover generation using cloud computing via Amazon Web Services (AWS).
机译:我们提出了一种使用模式识别神经网络来生成高分辨率(约2米)土地覆盖物的自动化方法,该模型对从六个不同的世界区域中的9000多个WorldView多光谱图像(MSI)获得的空间和光谱特征进行了训练。通过这种分辨率,网络可以对小规模的对象进行分类,例如单个建筑物,道路和灌溉池塘。本文着重于三个关键领域。首先,我们描述了土地覆盖物的生成过程,其中涉及多个空间重叠的MSI的共注册和聚合,聚合后处理以及使用特征对应将土地覆盖物注册到OpenStreetMap(OSM)道路矢量。其次,我们讨论了土地覆盖物衍生产品的产生及其在区域缩减和目标检测领域的影响。最后,我们讨论了通过Amazon Web Services(AWS)使用云计算在全球范围内扩展土地覆盖物生成的过程。

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