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High-Dynamic-Range Spectral Imaging System for Omnidirectional Scene Capture

机译:用于全方位场景捕获的高动态范围光谱成像系统

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Omnidirectional imaging technology has been widely used for scene archiving. It has been a crucial technology in many fields including computer vision, image analysis and virtual reality. It should be noted that the dynamic range of luminance values in a natural scene is quite large, and the scenes containing various objects and light sources consist of various spectral power distributions. Therefore, this paper proposes a system for acquiring high dynamic range (HDR) spectral images for capturing omnidirectional scenes. The system is constructed using two programmable high-speed video cameras with specific lenses and a programmable rotating table. Two different types of color filters are mounted on the two-color video cameras for six-band image acquisition. We present several algorithms for HDR image synthesis, lens distortion correction, image registration, and omnidirectional image synthesis. Spectral power distributions of illuminants (color signals) are recovered from the captured six-band images based on the Wiener estimation algorithm. In this paper, we present two types of applications based on our imaging system: time-lapse imaging and gigapixel imaging. The performance of the proposed system is discussed in detail in terms of the system configurations, acquisition time, artifacts, and spectral estimation accuracy. Experimental results in actual scenes demonstrate that the proposed system is feasible and powerful for acquiring HDR spectral scenes through time-lapse or gigapixel omnidirectional imaging approaches. Finally, we apply the captured omnidirectional images to time-lapse spectral Computer Graphics (CG) renderings and spectral-based relighting of an indoor gigapixel image.
机译:全向成像技术已被广泛用于场景存档。它已成为许多领域的关键技术,包括计算机视觉,图像分析和虚拟现实。需要说明的是,自然场景中亮度值的动态范围很大,并且包含各种物体和光源的场景由各种光谱功率分布组成。因此,本文提出了一种获取高动态范围(HDR)光谱图像以捕获全向场景的系统。该系统使用两个带有特定镜头的可编程高速摄像机和一个可编程的旋转台构成。在两种颜色的摄像机上安装了两种不同类型的滤色器,以获取六波段图像。我们提出了几种用于HDR图像合成,镜头畸变校正,图像配准和全向图像合成的算法。基于维纳估计算法,从捕获的六波段图像中恢复出光源(颜色信号)的光谱功率分布。在本文中,我们介绍了基于我们的成像系统的两种类型的应用程序:延时成像和千兆像素成像。在系统配置,采集时间,伪像和频谱估计精度方面详细讨论了所提出系统的性能。在实际场景中的实验结果表明,所提出的系统通过延时或千兆像素全向成像方法来获取HDR光谱场景是可行且强大的。最后,我们将捕获的全向图像应用于室内千兆像素图像的延时光谱计算机图形(CG)渲染和基于光谱的重新照明。

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