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Visualizing Planetary Spectroscopy through Immersive On-site Rendering

机译:通过沉浸式现场渲染来可视化行星光谱

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Remote sensing is currently the primary method of obtaining knowledge about the composition and physical properties of the surface of other planets. In a commonly used technique, visible and near-infrared (VNIR) spectrometers onboard orbiting satellites capture reflectance data at different wavelengths, which in turn gives insight about the minerals present and the overall composition of the terrain. In select locations on Mars, rovers have also conducted up close in-situ investigation of the same terrains examined by orbiters, allowing direct comparisons at different spatial scales. In this work, we build Planetary Visor, a virtual reality tool to visualize orbital and ground data around NASA's Mars Science Laboratory Curiosity rover's ongoing traverse in Gale Crater. We have built a 3D terrain along Curiosity's traverse using rover images, and within it we visualize satellite data as polyhedrons, superimposed on that terrain. This system provides perspectives of VNIR spectroscopic data from a satellite aligned with ground images from the rover, allowing the user to explore both the physical aspects of the terrain and their relation to the mineral composition. The result is a system that provides seamless rendering of datasets at vastly different scales. We conduct a user study with subject matter experts to evaluate the success and potential of our tool. The results indicate that Visor assists with geometric understanding of spectral data, improved geological context, a better sense of scale while navigating terrain, and new insights into spectral data. The result is not only an immersive environment in a scientifically interesting area on Mars, but a robust tool for analysis and visualization of data that can yield improved scientific discovery. This technology is relevant to the ongoing operations of the Curiosity rover and will directly be able to represent the data collected in the upcoming Mars 2020 Perseverance rover mission.
机译:遥感目前是获得关于其他行星表面的构成和物理性质的知识的主要方法。在常用的技术,可见和近红外(VNIR)光谱仪在轨道轨道上捕获不同波长的反射数据,这反过来透露了有关当前存在的矿物质和地形的整体组成。在MARS的选择位置,ROVERS还对轨道检测的同一地形进行了密切的原位调查,允许在不同的空间尺度上直接比较。在这项工作中,我们建立了行星遮阳板,一个虚拟现实工具,以可视化NASA的火星科学实验室大声罗弗持续的大风陨石坑的横向横向。我们使用Rover Images沿着好奇心的横幅建立了一个3D地形,并且在它内,我们将卫星数据视为多面体,叠加在那个地形上。该系统从与流动站的地面图像对齐的卫星提供VNIR光谱数据的透视图,允许用户探索地形的物理方面及其与矿物组合物的关系。结果是一个系统,可以在非常不同的尺度上提供数据集的无缝渲染。我们使用主题专家进行用户学习,以评估我们工具的成功和潜力。结果表明,遮阳板有助于对光谱数据的几何理解,改进的地质背景,导航地形时更好的规模感,以及进入光谱数据的新见解。结果不仅是在火星上科学有趣的区域中的沉重环境,而且是一种稳健的工具,用于分析和可视化数据,可以产生改善的科学发现。该技术与持续的好奇罗弗的持续运作有关,并将直接能够代表即将到来的火星2020坚持不懈的流动裁使命中收集的数据。

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