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首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Computational photography with plenoptic camera and light field capture: tutorial
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Computational photography with plenoptic camera and light field capture: tutorial

机译:使用全光相机和光场捕获进行计算摄影:教程

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Photography is a cornerstone of imaging. Ever since cameras became consumer products more than a century ago, we have witnessed great technological progress in optics and recording mediums, with digital sensors replacing photographic films in most instances. The latest revolution is computational photography, which seeks to make image reconstruction computation an integral part of the image formation process; in this way, there can be new capabilities or better performance in the overall imaging system. A leading effort in this area is called the plenoptic camera, which aims at capturing the light field of an object; proper reconstruction algorithms can then adjust the focus after the image capture. In this tutorial paper, we first illustrate the concept of plenoptic function and light field from the perspective of geometric optics. This is followed by a discussion on early attempts and recent advances in the construction of the plenoptic camera. We will then describe the imaging model and computational algorithms that can reconstruct images at different focus points, using mathematical tools from ray optics and Fourier optics. Last, but not least, we will consider the trade-off in spatial resolution and highlight some research work to increase the spatial resolution of the resulting images. (C) 2015 Optical Society of America
机译:摄影是成像的基石。自从一个多世纪以来相机成为消费产品以来,我们见证了光学和记录介质的巨大技术进步,在大多数情况下,数字传感器取代了摄影胶片。最新的革命是计算摄影,它试图使图像重建计算成为图像形成过程不可或缺的一部分。这样,整个成像系统可能会有新功能或更好的性能。在这一领域的一项领导工作称为全光相机,其目的是捕获物体的光场。适当的重建算法可以在图像捕获后调整焦点。在本教程中,我们首先从几何光学的角度说明全光功能和光场的概念。接下来是关于全光相机构造的早期尝试和最新进展的讨论。然后,我们将描述使用射线光学和傅立叶光学的数学工具可以在不同焦点处重建图像的成像模型和计算算法。最后但并非最不重要的一点,我们将考虑空间分辨率的权衡,并着重介绍一些研究工作以提高所得图像的空间分辨率。 (C)2015年美国眼镜学会

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