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3D shape reconstruction of specular surfaces by using phase measuring deflectometry

机译:使用相位测量偏折法的镜面曲面3D形状重建

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The existing estimation methods for recovering height information from surface gradient are mainly divided into Modal and Zonal techniques. Since specular surfaces used in the industry always have complex and large areas, considerations must be given to both the improvement of measurement accuracy and the acceleration of on-line processing speed, which beyond the capacity of existing estimations. Incorporating the Modal and Zonal approaches into a unifying scheme, we introduce an improved 3D shape reconstruction version of specular surfaces based on Phase Measuring Deflectometry in this paper. The Modal estimation is firstly implemented to derive the coarse height information of the measured surface as initial iteration values. Then the real shape can be recovered utilizing a modified Zonal wave-front reconstruction algorithm. By combining the advantages of Modal and Zonal estimations, the proposed method simultaneously achieves consistently high accuracy and dramatically rapid convergence. Moreover, the iterative process based on an advanced successive over-relaxation technique shows a consistent rejection of measurement errors, guaranteeing the stability and robustness in practical applications. Both simulation and experimentally measurement demonstrate the validity and efficiency of the proposed improved method. According to the experimental result, the computation time decreases approximately 74.92% in contrast to the Zonal estimation and the surface error is about 6.68 μm with reconstruction points of 391×529 pixels of an experimentally measured sphere mirror. In general, this method can be conducted with fast convergence speed and high accuracy, providing an efficient, stable and real-time approach for the shape reconstruction of specular surfaces in practical situations.
机译:从表面梯度恢复高度信息的现有估计方法主要分为模态和区域技术。由于业界中使用的镜面始终具有复杂和大面积,因此必须考虑到测量精度的提高和在线处理速度的加速度,这超出了现有估计的能力。将模态和区域方法纳入统一方案,我们在本文中引入了基于相位测量偏转测量的镜面改进的3D形状重建版本。首先实现模态估计以导出测量表面的粗高高度信息作为初始迭代值。然后可以利用修改的Zonal波前重建算法恢复真实形状。通过组合模态和区间估计的优点,所提出的方法同时实现高精度并显着快速收敛。此外,基于先进的连续过度放松技术的迭代过程显示了一致的测量误差抑制,保证了实际应用中的稳定性和鲁棒性。仿真和实验测量都证明了所提出的改进方法的有效性和效率。根据实验结果,计算时间与区间估计相比,计算时间约为74.92%,并且表面误差约为6.68μm,具有实验测量的球体镜的391×529像素的重建点。通常,该方法可以以快速收敛速度和高精度进行,为实际情况中的镜面形状重建提供有效,稳定和实时方法。

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