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Diffuse reflectance imaging with astronomical applications

机译:天文应用的漫反射成像

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Diffuse objects generally tell us little about the surrounding lighting, since the radiance they reflect blurs together incident lighting from many directions. In this paper we discuss how occlusion geometry can help invert diffuse reflectance to recover lighting or surface albedo. Self-occlusion in the scene can be regarded as a form of coding, creating high frequencies that improve the conditioning of diffuse light transport. Our analysis builds on a basic observation that diffuse reflectors with sufficiently detailed geometry can fully resolve the incident lighting. Using a Bayesian framework, we propose a novel reconstruction method based on high-resolution photography, taking advantage of visibility changes near occlusion boundaries. We also explore the limits of single-pixel observations as the diffuse reflector (and potentially the lighting) vary over time. Diffuse reflectance imaging is particularly relevant for astronomy applications, where diffuse reflectors arise naturally but the incident lighting and camera position cannot be controlled. To test our approaches, we first study the feasibility of using the moon as a diffuse reflector to observe the earth as seen from space. Next we present a reconstruction of Mars using historical photometry measurements not previously used for this purpose. As our results suggest, diffuse reflectance imaging expands our notion of what can qualify as a camera.
机译:漫反射物体通常对周围的照明知之甚少,因为它们的辐射将模糊的光线反射到多个方向的入射照明中。在本文中,我们讨论了遮挡几何形状如何帮助反转漫反射以恢复光照或表面反照率。场景中的自我遮挡可以看作是一种编码形式,它可以产生可改善漫射光传输条件的高频信号。我们的分析建立在一个基本观察之上,即具有足够详细的几何形状的漫反射器可以完全解决入射光的问题。使用贝叶斯框架,我们提出了一种基于高分辨率摄影的新颖的重建方法,利用了在遮挡边界附近的可见性变化。随着漫反射器(以及潜在的照明)随时间变化,我们还将探索单像素观测的极限。漫反射成像尤其适用于天文应用,在这些应用中,漫反射器自然会出现,但入射光和相机位置无法控制。为了测试我们的方法,我们首先研究了使用月球作为漫反射器从太空观察地球的可行性。接下来,我们将使用以前未用于此目的的历史测光法测量结果来重建火星。正如我们的结果所表明的,漫反射成像扩展了我们对可以用作相机的概念。

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