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Automatic UAV Image Geo-Registration by Matching UAV Images to Georeferenced Image Data

机译:通过将UAV图像与地理参考图像数据进行匹配来自动进行UAV图像地理注册

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摘要

Recent years have witnessed the fast development of UAVs (unmanned aerial vehicles). As an alternative to traditional image acquisition methods, UAVs bridge the gap between terrestrial and airborne photogrammetry and enable flexible acquisition of high resolution images. However,\udthe georeferencing accuracy of UAVs is still limited by the low-performance on-board GNSS and INS.\udThis paper investigates automatic geo-registration of an individual UAV image or UAV image blocks by matching the UAV image(s) with a previously taken georeferenced image, such as an individual aerial or satellite image with a height map attached or an aerial orthophoto with a DSM (digital surface model) attached. As the biggest challenge for matching UAV and aerial images is in the large\uddifferences in scale and rotation, we propose a novel feature matching method for nadir or slightly\udtilted images. The method is comprised of a dense feature detection scheme, a one-to-many matching strategy and a global geometric verification scheme. The proposed method is able to find thousands of valid matches in cases where SIFT and ASIFT fail. Those matches can be used to geo-register the whole UAV image block towards the reference image data. When the reference images offer high\udgeoreferencing accuracy, the UAV images can also be geolocalized in a global coordinate system. A series of experiments involving different scenarios was conducted to validate the proposed method. The results demonstrate that our approach achieves not only decimeter-level registration accuracy, but also comparable global accuracy as the reference images.
机译:近年来见证了无人机(无人飞行器)的快速发展。作为传统图像采集方法的替代方法,无人机弥补了地面摄影与空中摄影测量之间的差距,并能够灵活地采集高分辨率图像。但是,\ ud无人机的地理配准精度仍然受到性能低下的车载GNSS和INS的限制。\ ud本文通过将UAV图像与一个或多个无人机图像进行匹配,研究了单个UAV图像或UAV图像块的自动地理配准。先前拍摄的地理参考图像,例如附有高度图的单个航空或卫星图像,或附有DSM(数字表面模型)的航空正射影像。由于匹配无人机和航拍图像的最大挑战是在比例和旋转方面存在很大的\差异,因此我们提出了一种针对天底图像或轻微\倾斜图像的特征匹配方法。该方法包括密集特征检测方案,一对多匹配策略和全局几何验证方案。所提出的方法能够在SIFT和ASIFT失败的情况下找到数千个有效匹配项。这些匹配可用于将整个UAV图像块向参考图像数据进行地理配准。当参考图像提供较高的\预算参考精度时,UAV图像也可以在全局坐标系中进行地理定位。进行了一系列涉及不同场景的实验,以验证所提出的方法。结果表明,我们的方法不仅实现了分米级配准精度,而且还具有与参考图像相当的全局精度。

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