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Visual attention based detection of signs of anthropogenic activities in satellite imagery

机译:基于视觉注意力检测卫星图像中的人为活动迹象

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With increasing deployment of satellite imaging systems, only a small fraction of collected data can be subject to expert scrutiny. We present and evaluate a two-tier approach to broad area search for signs of anthropogenic activities in highresolution commercial satellite imagery. The method filters image information using semantically oriented interest points by combining Harris corner detection and spatial pyramid matching. The idea is that anthropogenic structures, such as rooftop outlines, fence corners, road junctions, are locally arranged in specific angular relations to each other. They are often oriented at approximately right angles to each other (which is known as rectilinearity relation). Detecting rectilinear structures provides an opportunity to highlight regions most likely to contain anthropogenic activity. This is followed by supervised classification of regions surrounding the detected corner points as anthropogenic vs. natural scenes. We consider, in particular, a search for signs of anthropogenic activities in uncluttered areas.
机译:随着卫星成像系统的越来越多的部署,只有一小部分收集的数据可以受到专家审查。我们展示并评估了广泛的区域搜索两层方法,以寻求高级别商业卫星图像中的人为活动迹象。该方法通过组合哈里斯角检测和空间金字塔匹配来筛选使用语义面向兴趣点的图像信息。该想法是人类学结构,例如屋顶纲的概述,栅栏角落,道路连接,局部地布置在彼此的特定角度关系。它们通常彼此大致直角(称为直线性关系)。检测直线结构提供了突出最有可能含有人为活性的地区的机会。随后是监督围绕检测到的角点作为人为的地区的区域的分类。特别是,特别是寻找整天区域中的人为活动的迹象。

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