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使用优化的复合条纹图案和立体辅助结构光系统进行高速三维形状测量。

High-speed 3D shape measurement using the optimized composite fringe patterns and stereo-assisted structured light system.

作者信息

Yin Wei, Feng Shijie, Tao Tianyang, Huang Lei, Trusiak Maciej, Chen Qian, Zuo Chao

出版信息

Opt Express. 2019 Feb 4;27(3):2411-2431. doi: 10.1364/OE.27.002411.

DOI:10.1364/OE.27.002411
PMID:30732279
Abstract

In this paper, we propose a high-speed 3D shape measurement technique based on the optimized composite fringe patterns and stereo-assisted structured light system. Stereo phase unwrapping, as a new-fashioned method for absolute phase retrieval based on the multi-view geometric constraints, can eliminate the phase ambiguities and obtain a continuous phase map without projecting any additional patterns. However, in order to ensure the stability of phase unwrapping, the period of fringe is generally around 20, which limits the accuracy of 3D measurement. To solve this problem, we develop an optimized method for designing the composite pattern, in which the speckle pattern is embedded into the conventional 4-step phase-shifting fringe patterns without compromising the fringe modulation, and thus the phase measurement accuracy. We also present a simple and effective evaluation criterion for the correlation quality of the designed speckle pattern in order to improve the matching accuracy significantly. When the embedded speckle pattern is demodulated, the periodic ambiguities in the wrapped phase can be eliminated by combining the adaptive window image correlation with geometry constraint. Finally, some mismatched regions are further corrected based on the proposed regional diffusion compensation technique (RDC). These proposed techniques constitute a complete computational framework that allows to effectively recover an accurate, unambiguous, and distortion-free 3D point cloud with only 4 projected patterns. Experimental results verify that our method can achieve high-speed, high-accuracy, robust 3D shape measurement with dense (64-period) fringe patterns at 5000 frames per second.

摘要

在本文中,我们提出了一种基于优化复合条纹图案和立体辅助结构光系统的高速三维形状测量技术。立体相位展开作为一种基于多视图几何约束的绝对相位检索新方法,可以消除相位模糊,并在不投射任何额外图案的情况下获得连续的相位图。然而,为了确保相位展开的稳定性,条纹周期通常在20左右,这限制了三维测量的精度。为了解决这个问题,我们开发了一种优化的复合图案设计方法,其中散斑图案被嵌入到传统的四步相移条纹图案中,而不影响条纹调制和相位测量精度。我们还提出了一种简单有效的散斑图案相关性质量评估标准,以显著提高匹配精度。当对嵌入的散斑图案进行解调时,可以通过将自适应窗口图像相关性与几何约束相结合来消除包裹相位中的周期性模糊。最后,基于所提出的区域扩散补偿技术(RDC)对一些不匹配区域进行进一步校正。这些提出的技术构成了一个完整的计算框架,该框架允许仅通过4个投影图案有效地恢复准确、无模糊且无失真的三维点云。实验结果验证了我们的方法能够以每秒5000帧的速度,利用密集(64周期)条纹图案实现高速、高精度、稳健的三维形状测量。

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