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Webcam geo-localization using aggregate light levels

机译:使用聚合光照水平的网络摄像头地理定位

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We consider the problem of geo-locating static cameras from long-term time-lapse imagery. This problem has received significant attention recently, with most methods making strong assumptions on the geometric structure of the scene. We explore a simple, robust cue that relates overall image intensity to the zenith angle of the sun (which need not be visible). We characterize the accuracy of geolocation based on this cue as a function of different models of the zenith-intensity relationship and the amount of imagery available. We evaluate our algorithm on a dataset of more than 60 million images captured from outdoor webcams located around the globe. We find that using our algorithm with images sampled every 30 minutes, yields localization errors of less than 100 km for the majority of cameras.
机译:我们考虑了从长期延时图像中定位静态摄像机的问题。最近,这个问题受到了重大关注,大多数方法都对场景的几何结构具有强烈假设。我们探索一个简单,强大的提示,将整体图像强度与太阳的天顶角(不可见)相关联。我们将基于这种提示的地理定位的准确性表征为Zenith强度关系的不同模型以及可用的图像量的函数。我们在从位于地球仪遍及的户外网络摄像头捕获的超过6000万图像的数据集中评估我们的算法。我们发现,使用每30分钟采样的图像的算法,为大多数相机产生小于100公里的本地化误差。

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