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A Comparative Study of Four Change Detection Methods for Aerial Photography Applications

机译:航空摄影中四种变化检测方法的比较研究

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We present four new change detection methods that create an automated change map from a probability map. In this case, the probability map was derived from a 3D model. The primary application of interest is aerial photographic applications, where the appearance, disappearance or change in position of small objects of a selectable class (e.g., cars) must be detected at a high success rate in spite of variations in magnification, lighting and background across the image. The methods rely on an earlier derivation of a probability map. We describe the theory of the four methods, namely Bernoulli variables, Markov Random Fields, connected change, and relaxation-based segmentation, evaluate and compare their performance experimentally on a set probability maps derived from aerial photographs.
机译:我们提出了四种新的变化检测方法,这些方法可以从概率图创建自动变化图。在这种情况下,概率图是从3D模型导出的。感兴趣的主要应用是航空摄影应用,在这种应用中,尽管放大倍率,照明和背景发生变化,但必须以很高的成功率检测到可选类别的小物体(例如汽车)的出现,消失或位置变化。图片。该方法依赖于概率图的较早推导。我们描述了四种方法的理论,即伯努利变量,马尔可夫随机场,连通变化和基于松弛的分割,在从航空照片得出的一组概率图上评估并比较了它们的性能。

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