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Importance Sampling via Load-Balanced Facility Location

机译:通过负载平衡设施位置重视抽样

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摘要

In this paper, we consider the problem of "importance sampling" from a high dynamic range image, motivated by a computer graphics problem called image-based lighting. Image-based lighting is a method to light a scene by using real-world images as part of a 3D environment. Intuitively, the sampling problem reduces to finding representative points from the image such that they have higher density in regions of high intensity (or energy) and low density in regions of low intensity (or energy). We formulate this task as a facility location problem where the facility costs are a function of the demand served. In particular, we aim to encourage load balance amongst the facilities by using V-shaped facility costs that achieve a minimum at the "ideal" level of demand. We call this the load-balanced facility location problem, and it is a generalization of the uncapacitated facility location problem with uniform facility costs. We develop a primal-dual approximation algorithm for this problem, and analyze its approximation ratio using dual fitting and factor-revealing linear programs. We also give some experimental results from applying our algorithm to instances derived from real high dynamic range images.
机译:在本文中,我们考虑从高动态范围图像的“重要性采样”问题,由计算机图形问题称为基于图像的照明。基于图像的灯光是通过使用真实世界图像作为3D环境的一部分来点亮场景的方法。直观地,采样问题减少以从图像中找到代表性点,使得它们在低强度(或能量)区域中具有高强度(或能量)和低密度的区域具有较高密度。我们将此任务作为设施定位问题制定,设施成本是需求的函数。特别是,我们的目标是通过使用V形设施成本来鼓励设施中的负载平衡,以便在“理想”需求水平下实现最低限度。我们称之为负载平衡的设施位置问题,并且它是具有统一设施成本的未列为设施位置问题的概括。我们开发了一个原始 - 双逼近算法的这个问题,并使用双拟合和因子显示线性程序来分析其近似比。我们还通过将算法应用于从真正的高动态范围图像衍生的实例提供一些实验结果。

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