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An orientation based correction method for SfM-MVS point clouds-Implications for field geology

机译:SfM-MVS点云的基于方向的校正方法-对田间地质的启示

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Advancements in computing capabilities over the last decade have allowed for the routine creation of Structure from Motion-Multiview Stereo (SfM-MVS) terrain models that can serve as base for high resolution geologic mapping. Outcrops models developed from these systems are high-resolution, photo-realistic 3D base providing unprecedented capability for geometric analysis. Yet, before this technology becomes a mainstay of field geology, the potential errors associated with it must be well understood. Here, we compare orientation measurements from multi-point analyses on the SfM-MVS point clouds to those taken in the field with the objective of resolving the geometry of complex folds within the outcrop. We also analyzed two point clouds of the same exposure created from different ground-based cameras to compare the ranges of error. We found that the point clouds produced from ground-based photos exhibited significant rigid-body rotation relative to the real world despite well distributed ground control, yet the models maintained a realistic scale and internal geometry. To correct the error the model values were rotated and the discrepancy reassessed. The two point clouds produced similar results, however, the Sony compact-digital-camera-based point cloud ultimately corresponded more closely to field values. We suggest that the primary cause of the error in the point clouds was GPS-based and was enhanced by the lack of significant topographic relief in our camera positions, allowing rigid-body rotations along the axis of the photographic array. This outcome suggests that care must be taken when GPS errors are a significant fraction of the outcrop size and relatively 2D outcrops imaged by a relatively 1D image array are subject to rotation errors that are difficult to remove without high-resolution ground control. Short of using a UAV and/or RTK-GPS we show how this can be resolved simply by collecting several known orientations in the field, which can then be used to orient the model more accurately, akin to ground control points. This addition is a key step if this method is to be used for more thorough analysis and is a general method that could be used to orient virtual outcrops with no geographic reference.
机译:在过去的十年中,计算能力的进步使得可以从运动多视图立体(SfM-MVS)地形模型中例行创建“结构”,该模型可以作为高分辨率地质图的基础。从这些系统开发的露头模型是高分辨率的,逼真的3D基础,可提供前所未有的几何分析功能。但是,在这项技术成为现场地质的支柱之前,必须充分了解与之相关的潜在错误。在这里,我们将对SfM-MVS点云的多点分析与在野外进行的定向测量进行比较,以解决露头内复杂褶皱的几何形状。我们还分析了由不同的地面摄像机创建的相同曝光的两个点云,以比较误差范围。我们发现,尽管地面控制分布均匀,但由地面照片生成的点云相对于现实世界仍显示出显着的刚体旋转,但是这些模型保持了逼真的比例和内部几何形状。为了纠正错误,旋转模型值并重新评估差异。这两个点云产生相似的结果,但是,基于Sony紧凑型数码相机的点云最终更接近于场值。我们建议,点云中错误的主要原因是基于GPS的,并且由于我们的相机位置缺少明显的地形起伏而得以增强,从而使刚体可以沿摄影阵列的轴旋转。该结果表明,当GPS误差占露头大小的很大一部分并且由相对一维的图像阵列成像的相对二维的露头遭受旋转误差时,如果没有高分辨率地面控制就很难消除这些误差,则必须格外小心。缺少使用无人机和/或RTK-GPS的方法,我们展示了如何简单地通过在野外收集几个已知方向来解决该问题,然后可以将其用于更精确地定向模型,类似于地面控制点。如果要使用此方法进行更彻底的分析,则此添加是关键步骤,并且是可用于定向没有地理参考的虚拟露头的通用方法。

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