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On Precisely Determining Self-Cast Shadow Regions in Aerial Camera Images

机译:精确确定航空摄像机图像中的自投射阴影区域

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This paper addresses the occurrence of self-cast shadows in on-board images of aerial vehicles which are caused by the Sun. Due to the shadows nature of modifying the observed scenery within these images, self-cast shadow poses a not negligible problem to several computer vision applications like remote sensing, visual odometry, or tracking tasks. Therefore, a possibility is needed to reliably identify self-cast shadow regions and to exclude them from further processing tasks. The proposed model-based approach achieves this by using data that is accessible for most aerial vehicles (i.e., data provided by an Inertial Navigation System and a geometrical model of the shadow casting object). In this paper, the algorithm to detect self-cast shadows in on-board images is presented in detail, focusing on its potential impact on visual odometry. This algorithm is applied to flight test data which has been recorded by an unmanned helicopter that is operated by the German Aerospace Center. The performance of the algorithm is evaluated by comparing the test results to empirically determined ground truth data. The results show an accuracy of close to 100 % in terms of finding the correct area of the self-cast shadow and a high similarity between the shape of the real self-cast shadow and the estimated shadow.
机译:本文讨论了由太阳引起的在飞行器的机载图像中自发阴影的发生。由于阴影性质会改变这些图像中观察到的风景,因此自投射阴影对诸如遥感,视觉测距法或跟踪任务之类的几种计算机视觉应用提出了不可忽略的问题。因此,需要一种可能性来可靠地识别自铸阴影区域并将其排除在进一步的处理任务之外。所提出的基于模型的方法通过使用大多数飞行器可访问的数据(即,由惯性导航系统提供的数据和阴影投射对象的几何模型)来实现此目的。在本文中,详细介绍了检测车载图像中自发阴影的算法,重点是其对视觉里程表的潜在影响。该算法适用于由德国航空航天中心操作的无人直升机记录的飞行测试数据。通过将测试结果与根据经验确定的地面真实数据进行比较,可以评估算法的性能。结果表明,在找到自铸阴影的正确区域方面,以及在真实自铸阴影的形状和估计的阴影之间的高度相似性方面,精度接近100%。

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