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Terrestrial lidar and hyperspectral data fusion products for geological outcrop analysis

机译:用于地质露头分析的地面激光雷达和高光谱数据融合产品

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Close-range hyperspectral imaging is an emerging technique for remotely mapping mineral content and distributions in inaccessible geological outcrop surfaces, allowing subtle chemical variations to be identified with high resolution and accuracy. Terrestrial laser scanning (lidar) is an established method for rapidly obtaining three-dimensional geometry, with unparalleled point density and precision. The combination of these highly complementary data types - 3D topography and surface properties -enables the production of value-added photorealistic outcrop models, adding new information that can be used for solving geological problems. This paper assesses the benefits of merging lidar and hyperspectral imaging, and presents qualitative and quantitative means of analysing the fused datasets. The integration requires an accurate co-registration, so that the 2D hyperspectral classification products can be given real measurement units. This stage is reliant on using a model that correctly describes the imaging geometry of the hyperspectral instrument, allowing image pixels and 3D points in the lidar model to be related. Increased quantitative analysis is then possible, as areas and spatial relationships can be examined by projecting classified material boundaries into 3D space. The combined data can be interpreted in a very visual manner, by colouring and texturing the lidar geometry with hyperspectral mineral maps. Because hyperspectral processing often results in several image products and classifications, these can be difficult to analyse simultaneously. A novel visualisation method is presented, where photorealistic lidar models are superimposed with multiple texture-mapped layers, allowing blending between conventional and hyperspectral imaging products to assist with interpretation and validation. The advantages and potential of the data fusion are illustrated with example outcrop data.
机译:近距离高光谱成像是一种新兴技术,可用于远程绘制难以接近的地质露头表面中的矿物含量和分布,从而可以高分辨率和高精度识别出细微的化学变化。地面激光扫描(激光雷达)是一种快速获得三维几何形状且无与伦比的点密度和精度的成熟方法。这些高度互补的数据类型(3D地形和表面特性)的组合使能够生成增值的逼真的露头模型,并增加了可用于解决地质问题的新信息。本文评估了合并激光雷达和高光谱成像的好处,并提出了分析融合数据集的定性和定量手段。集成需要精确的共配准,以便可以为2D高光谱分类产品指定真实的测量单位。此阶段依赖于使用正确描述高光谱仪器成像几何结构的模型,从而使激光雷达模型中的图像像素和3D点相关。由于可以通过将分类的材料边界投影到3D空间中来检查面积和空间关系,因此可以进行更多的定量分析。通过使用高光谱矿物图对激光雷达几何图形进行着色和纹理化,可以以非常直观的方式解释合并后的数据。由于高光谱处理通常会产生几种图像产品和分类,因此很难同时进行分析。提出了一种新颖的可视化方法,其中将真实感激光雷达模型与多个纹理映射层叠加在一起,从而允许在常规成像产品和高光谱成像产品之间进行混合,以帮助进行解释和验证。用示例露头数据说明了数据融合的优势和潜力。

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