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基于偏振编码投影图案的稳健结构光三维测量方法。

Robust structured light 3D measurement method based on polarization-encoded projection patterns.

作者信息

Zhu Zhenmin, Zhou Yumeng, Lu Wenquan, Zhang Jing, Zhou Lisheng, Liu Haoran

出版信息

Appl Opt. 2024 Jan 1;63(1):210-220. doi: 10.1364/AO.502522.

Abstract

Fringe projection profilometry (FPP) is widely used in 3D vision measurement because of its high robustness and measurement accuracy. In the case of HDR objects, due to the problem of surface reflectivity, the obtained image will be overexposed. This will cause the sinusoidality of the fringes projected on the surface of the object in the acquired image to be interfered, resulting in a phase error in the calculated wrapped phase. Therefore, a polarization-encoded sinusoidal structured light is proposed to enhance the sinusoidality of the fringe. The phase information contained in the polarized sinusoidal structured light fringe is only related to the polarization state, not to the light intensity. A polarization coding assisted structured light measurement strategy (PASM) is proposed. This method uses polarization coding assisted polarization phase-shifting fringes for phase unwrapping. The angle of the linear polarizer is set to zero in this method, and it does not require rotating the polarizer. It only needs a single exposure to improve the fringe quality and obtain a more stable unwrapping phase. The experimental results show that the obtained polarization fringes have better sinusoidality, and the phase unwrapping can be more accurate. The reconstructed 3D point cloud also does not appear missing and has better accuracy. It is a reliable method for vision measurement of HDR objects.

摘要

条纹投影轮廓术(FPP)因其高鲁棒性和测量精度而被广泛应用于三维视觉测量中。对于高动态范围(HDR)物体,由于表面反射率问题,所获取的图像会出现过曝光现象。这将导致采集图像中投射在物体表面的条纹的正弦性受到干扰,从而在计算包裹相位时产生相位误差。因此,提出了一种偏振编码正弦结构光来增强条纹的正弦性。偏振正弦结构光条纹中包含的相位信息仅与偏振态有关,而与光强无关。提出了一种偏振编码辅助结构光测量策略(PASM)。该方法采用偏振编码辅助偏振相移条纹进行相位解包裹。此方法中将线性偏振器的角度设置为零,且不需要旋转偏振器。仅需单次曝光即可提高条纹质量并获得更稳定的解包裹相位。实验结果表明,所获得的偏振条纹具有更好的正弦性,相位解包裹能够更准确。重建的三维点云也不会出现缺失且具有更好的精度。它是一种用于HDR物体视觉测量的可靠方法。

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