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Optimal Structured Light a la Carte

机译:最佳结构光点菜

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摘要

We consider the problem of automatically generating sequences of structured-light patterns for active stereo triangulation of a static scene. Unlike existing approaches that use predetermined patterns and reconstruction algorithms tied to them, we generate patterns on the fly in response to generic specifications: number of patterns, projector-camera arrangement, workspace constraints, spatial frequency content, etc. Our pattern sequences are specifically optimized to minimize the expected rate of correspondence errors under those specifications for an unknown scene, and are coupled to a sequence-independent algorithm for perpixel disparity estimation. To achieve this, we derive an objective function that is easy to optimize and follows from first principles within a maximum-likelihood framework. By minimizing it, we demonstrate automatic discovery of pattern sequences, in under three minutes on a laptop, that can outperform state-of-the-art triangulation techniques.
机译:我们考虑为静态场景的主动立体三角剖分自动生成结构化光图案序列的问题。与使用预定模式和与之相关的重建算法的现有方法不同,我们会根据通用规范动态生成模式:模式数量,投影机-摄像机布置,工作空间约束,空间频率内容等。我们的模式序列经过专门优化以使在那些规格下针对未知场景的预期对应错误率最小化,并与针对每个像素视差估计的与序列无关的算法耦合。为了实现这一目标,我们得出了一个易于优化的目标函数,并且该函数遵循最大可能性框架内的第一个原理。通过将其最小化,我们展示了在便携式计算机上不到三分钟的时间即可自动发现图案序列,该序列可以胜过最新的三角测量技术。

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