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

A. Skurikhin
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引用次数: 4

Abstract

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.
卫星图像中基于视觉注意的人为活动迹象检测
随着越来越多的卫星成像系统的部署,只有一小部分收集的数据可以接受专家的审查。我们提出并评估了在高分辨率商业卫星图像中广泛搜索人类活动迹象的两层方法。该方法结合哈里斯角点检测和空间金字塔匹配,利用感兴趣点对图像信息进行语义过滤。这个想法是,人为的结构,如屋顶轮廓,栅栏角,道路路口,在局部以特定的角度关系排列。它们通常以彼此近似成直角的方向排列(这被称为直线关系)。检测直线结构提供了一个机会来突出最有可能包含人类活动的区域。接下来是对检测到的角点周围的区域进行监督分类,作为人为场景与自然场景。我们特别考虑在整洁的地区寻找人类活动的迹象。
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