Liu Haibo, Lin Huijing, Yao Linshen
Opt Express. 2017 Dec 11;25(25):31492-31508. doi: 10.1364/OE.25.031492.
By combining a fringe projection setup with a telecentric lens, a fringe pattern could be projected and imaged within a small area, making it possible to measure the three-dimensional (3D) surfaces of micro-components. This paper focuses on the flexible calibration of the fringe projection profilometry (FPP) system using a telecentric lens. An analytical telecentric projector-camera calibration model is introduced, in which the rig structure parameters remain invariant for all views, and the 3D calibration target can be located on the projector image plane with sub-pixel precision. Based on the presented calibration model, a two-step calibration procedure is proposed. First, the initial parameters, e.g., the projector-camera rig, projector intrinsic matrix, and coordinates of the control points of a 3D calibration target, are estimated using the affine camera factorization calibration method. Second, a bundle adjustment algorithm with various simultaneous views is applied to refine the calibrated parameters, especially the rig structure parameters and coordinates of the control points forth 3D target. Because the control points are determined during the calibration, there is no need for an accurate 3D reference target, whose is costly and extremely difficult to fabricate, particularly for tiny objects used to calibrate the telecentric FPP system. Real experiments were performed to validate the performance of the proposed calibration method. The test results showed that the proposed approach is very accurate and reliable.
通过将条纹投影装置与远心镜头相结合,可以在小区域内投影和成像条纹图案,从而能够测量微部件的三维(3D)表面。本文重点研究了使用远心镜头的条纹投影轮廓术(FPP)系统的灵活校准。介绍了一种解析远心投影仪-相机校准模型,其中对于所有视图,装置结构参数保持不变,并且三维校准靶标可以以亚像素精度定位在投影仪图像平面上。基于所提出的校准模型,提出了一种两步校准程序。首先,使用仿射相机分解校准方法估计初始参数,例如投影仪-相机装置、投影仪内参矩阵以及三维校准靶标的控制点坐标。其次,应用具有各种同步视图的光束平差算法来细化校准参数,特别是装置结构参数和三维靶标的控制点坐标。由于在校准过程中确定了控制点,因此不需要精确的三维参考靶标,精确的三维参考靶标成本高昂且制造极其困难,尤其是用于校准远心FPP系统的微小物体。进行了实际实验以验证所提出校准方法的性能。测试结果表明,所提出的方法非常准确且可靠。