Guo Wenbo, Wu Zhoujie, Li Yueyang, Liu Yihang, Zhang Qican
Opt Express. 2020 Aug 31;28(18):26882-26897. doi: 10.1364/OE.403474.
Phase-shifting profilometry has been increasingly sought and applied in dynamic three-dimensional (3D) shape measurement. However, the object motion will lead to extra phase shift error and thus measurement error. In this paper, a real-time 3D shape measurement method based on dual-frequency composite phase-shifting grating and motion-induced error reduction is proposed for a complex scene containing dynamic and static objects. The proposed method detects the motion region of a complex scene through the phase relations of the dual-frequency composite grating and reduces the motion-induced error with the combination of the phase calculated by a phase-shifting algorithm and the phase extracted by Fourier fringe analysis. It can correctly reconstruct the 3D shape of a complex dynamic scene and ensure high measurement accuracy of its static object as well. With the aid of the phase-shifting image ordering approach, the dynamic 3D shape of complex scenes can be reconstructed and the motion-induced error can also be suppressed in real time. Experimental results well proved that the proposed method is effective and practical.
相移轮廓术在动态三维(3D)形状测量中越来越受到关注和应用。然而,物体运动会导致额外的相移误差,进而产生测量误差。本文针对包含动态和静态物体的复杂场景,提出了一种基于双频复合相移光栅和运动诱导误差减小的实时3D形状测量方法。该方法通过双频复合光栅的相位关系检测复杂场景的运动区域,并结合相移算法计算出的相位和傅里叶条纹分析提取的相位来减小运动诱导误差。它能够正确重建复杂动态场景的3D形状,并确保其静态物体的测量精度也很高。借助相移图像排序方法,可以重建复杂场景的动态3D形状,同时实时抑制运动诱导误差。实验结果充分证明了该方法的有效性和实用性。