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Self-correction of projector nonlinearity in phase-shifting fringe projection profilometry

机译:移相边缘投影轮廓测压中投影仪非线性的自我校正

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摘要

In phase-shifting fringe projection profilometry, the luminance nonlinearity of the used projector has been recognized as one of the most crucial factors decreasing the measurement accuracy. To solve this problem, this paper presents a self-correcting technique that allows us to suppress the effect of the projector nonlinearity in the absence of any calibration data regarding the projector intensities or regarding the phase errors. In its first step, the standard phase-shifting algorithm is used to recover the phases, as well as the background intensities and the modulations. Using these results enables normalizing the fringe patterns, for ridding them of the effects of the background and modulations. Second, we smooth the calculated phase map by use of a low-pass filter in order to remove the ripple-like phase errors induced by the projector nonlinearity. Third, we determine a polynomial representing the projector nonlinearity by fitting the curve of the normalized fringe intensities against the cosine values of the smoothed phases. Finally, we correct the phase errors using the curve just obtained. Doing these steps in an iterative way eventually results in a phase map and, further, a 3D shape with their artifacts induced by the projector nonlinearity suppressed significantly. Experimental results demonstrate that this technique offers some advantages over others. It does not require a prior calibration of the projector, thus being suitable for dealing with a time-variant nonlinearity; its pointwise operation protects the edges and details of the measurement results from being blurred; and it works well with very few fringe patterns and is efficient in image capturing. (C) 2017 Optical Society of America
机译:在相移条纹投影轮廓测定法中,所用投影仪的亮度非线性被认为是最重要的因素之一,这是降低测量精度的一个。为了解决这个问题,本文提出了一种自我纠正技术,允许我们在没有关于投影仪强度的校准数据的情况下抑制投影仪非线性的效果或关于相位误差。在其第一步中,标准相移算法用于恢复阶段,以及背景强度和调制。使用这些结果使得能够归一化边缘图案,以利用背景和调制的效果。其次,我们通过使用低通滤波器来平滑计算的相位映射,以便去除由投影仪非线性引起的纹波状相位误差。第三,通过将归一化的条纹强度的曲线贴合对平滑相的余弦值来确定表示投影仪非线性的多项式。最后,我们使用刚刚获得的曲线校正相位误差。以迭代方式执行这些步骤最终导致相位映射,然后,通过投影仪非线性引起的与其伪像的3D形状显着抑制。实验结果表明,这种技术对他人提供了一些优势。它不需要预先校准投影仪,从而适用于处理时变非线性;其尖端操作保护边缘和测量结果的细节由模糊;它适用于非常少的条纹图案,并且在图像捕获方面是有效的。 (c)2017年光学学会

著录项

  • 来源
    《Applied optics》 |2017年第25期|共13页
  • 作者单位

    Shanghai Univ Dept Precis Mech Engn Lab Appl Opt &

    Metrol Shanghai 200072 Peoples R China;

    Shanghai Univ Dept Precis Mech Engn Lab Appl Opt &

    Metrol Shanghai 200072 Peoples R China;

    Shanghai Univ Dept Precis Mech Engn Lab Appl Opt &

    Metrol Shanghai 200072 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
  • 关键词

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