使用图形切割的主动照明对象

A. Sá, M. Vieira, A. Montenegro, P. Carvalho, L. Velho
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引用次数: 5

摘要

本文解决了利用主动照明和图切优化的前景提取问题。我们的方法首先检测可能属于前景物体的图像区域。这些区域由像素组成,其中两个不同照明图像的亮度差异很大。前景目标通过图切优化分割,使用这些区域作为种子,并使用基于输入图像及其差异的概率分布的能量函数。几个光源和不同的照明方案可以用来标记前景。我们的方法只有两个标量参数,可以为各种场景设置一次
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Actively Illuminated Objects using Graph-Cuts
This paper addresses the problem of foreground extraction using active illumination and graph-cut optimization. Our approach starts by detecting image regions that are likely to belong to foreground objects. These regions are constituted by pixels where the difference in luminance for two differently illuminated images is large. The foreground objects are segmented by graph-cut optimization using those regions as a seed and using a energy function based on probability distributions derived from both input images and their difference. Several light sources and different illumination schemes can be used to mark the foreground. Our method has only two scalar parameters which can be set once for a wide variety of scenes
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