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Automation Aspects for the Georeferencing of Photogrammetric Aerial Image Archives in Forested Scenes

机译:森林场景中摄影航空影像档案的地理配准的自动化方面

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Photogrammetric aerial film image archives are scanned into digital form in many countries. These data sets offer an interesting source of information for scientists from different disciplines. The objective of this investigation was to contribute to the automation of a generation of 3D environmental model time series when using small-scale airborne image archives, especially in forested scenes. Furthermore, we investigated the usability of dense digital surface models (DSMs) generated using these data sets as well as the uncertainty propagation of the DSMs. A key element in the automation is georeferencing. It is obvious that for images captured years apart, it is essential to find ground reference locations that have changed as little as possible. We studied a 68-year-long aerial image time series in a Finnish Karelian forestland. The quality of candidate ground locations was evaluated by comparing digital DSMs created from the images to an airborne laser scanning (ALS)-originated reference DSM. The quality statistics of DSMs were consistent with the expectations; the estimated median root mean squared error for height varied between 0.3 and 2 m, indicating a photogrammetric modelling error of 0.1‰ with respect to flying height for data sets collected since the 1980s, and 0.2‰ for older data sets. The results show that of the studied land cover classes, “peatland without trees” changed the least over time and is one of the most promising candidates to serve as a location for automatic ground control measurement. Our results also highlight some potential challenges in the process as well as possible solutions. Our results indicate that using modern photogrammetric techniques, it is possible to reconstruct 3D environmental model time series using photogrammetric image archives in a highly automated way.
机译:在许多国家,摄影测量的航空底片影像档案被扫描成数字形式。这些数据集为来自不同学科的科学家提供了有趣的信息来源。这项研究的目的是在使用小型机载图像档案时,尤其是在森林场景中,为自动生成3D环境模型时间序列做出贡献。此外,我们调查了使用这些数据集生成的密集数字表面模型(DSM)的可用性以及DSM的不确定性传播。自动化中的关键要素是地理配准。显然,对于相隔数年捕获的图像,找到变化尽可能小的地面参考位置至关重要。我们在芬兰卡累利阿森林中研究了长达68年的航空影像时间序列。通过比较从图像创建的数字DSM与源自机载激光扫描(ALS)的参考DSM,可以评估候选地面位置的质量。 DSM的质量统计与预期一致;据估计,高度的中位数均方根误差在0.3至2 m之间变化,这表明自1980年代以来收集的数据集相对于飞行高度的摄影测量建模误差为0.1‰,而较早的数据集为0.2‰。结果表明,在所研究的土地覆盖类型中,“没有树木的草地”随时间的变化最小,它是最有希望的候选者之一,可以用作自动地面控制测量的场所。我们的结果还突出了该过程中的一些潜在挑战以及可能的解决方案。我们的结果表明,使用现代摄影测量技术,可以以高度自动化的方式使用摄影测量图像档案重建3D环境模型时间序列。

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