Color-encoded digital fringe projection technique for high-speed three-dimensional surface contouring

被引:273
|
作者
Huang, PS [1 ]
Hu, QY [1 ]
Jin, F [1 ]
Chiang, FP [1 ]
机构
[1] SUNY Stony Brook, Dept Mech Engn, Stony Brook, NY 11794 USA
关键词
three-dimensional surface contouring; color; digital fringe projection; phase shifting; digital light processing;
D O I
10.1117/1.602151
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
A color-encoded digital fringe projection technique is proposed for high-speed 3-D surface contouring applications. In this technique, a color fringe pattern whose RGB components comprise three phase-shifted fringe patterns is created by software on a computer screen and then projected to an object by a novel computer-controlled digital projection system. The image of the object is captured by a digital camera positioned at an angle different from that of the projection system. The image is then separated into its RGB components, creating three phase-shifted images of the object. These three images are used to retrieve the 3-D surface contour of the object through the use of a phase wrapping and unwrapping algorithm. Only one image of the object is required to obtain the 3-D surface contour of the object. Thus contouring speed, limited only by the frame rate of the camera, can be dramatically increased as compared to that of the traditional phase-shifting techniques. The technique is especially useful in applications where the object being contoured is going through quasi-static or dynamic changes. The principle of the technique is described and some preliminary experimental results are presented. (C) 1999 Society of Photo-Optical Instrumentation Engineers. [S0091-3286(99)01506-8].
引用
收藏
页码:1065 / 1071
页数:7
相关论文
共 50 条
  • [1] High-speed digital color fringe projection technique for three-dimensional facial measurements
    Liu, Cheng-Yang
    Chang, Li-Jen
    Wang, Chung-Yi
    OPTICS, PHOTONICS AND DIGITAL TECHNOLOGIES FOR IMAGING APPLICATIONS IV, 2016, 9896
  • [2] Three-dimensional shape measurement technique based on complementary color-encoded fringe projection
    Wang L.
    Da F.
    Guangxue Xuebao/Acta Optica Sinica, 2011, 31 (06):
  • [3] Color-encoded digital fringe projection technique for high-speed 3-D shape measurement: color coupling and imbalance compensation
    Pan, JH
    Huang, PS
    Chiang, FP
    TWO- AND THREE-DIMENSIONAL VISION SYSTEMS FOR INSPECTION, CONTROL, AND METROLOGY, 2004, 5265 : 205 - 212
  • [4] High-resolution, Dynamic Three-dimensional Profilometry Based on a Combination of Stereovision and Color-encoded Digital Fringe Projection
    Li, Dong
    Tian, Jindong
    OPTICAL METROLOGY AND INSPECTION FOR INDUSTRIAL APPLICATIONS, 2010, 7855
  • [5] Color-encoded fringe projection and phase shifting for 3-D surface contouring
    Huang, PS
    Hu, QY
    Jin, F
    Chiang, FP
    INTERNATIONAL CONFERENCE ON APPLIED OPTICAL METROLOGY, 1998, 3407 : 477 - 482
  • [6] Development of a fast and accurate color-encoded digital fringe projection profilometry
    Liu, Z.
    Quan, C.
    Tay, C. J.
    INTERNATIONAL CONFERENCE ON OPTICS IN PRECISION ENGINEERING AND NANOTECHNOLOGY (ICOPEN2013), 2013, 8769
  • [7] High-resolution, High-speed, Three-dimensional Video Imaging with Digital Fringe Projection Techniques
    Ekstrand, Laura
    Karpinsky, Nikolaus
    Wang, Yajun
    Zhang, Song
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2013, (82): : 50421
  • [8] Blind phase error suppression for color-encoded digital fringe projection profilometry
    Ma, S.
    Zhu, R.
    Quan, C.
    Li, B.
    Tay, C. J.
    Chen, L.
    OPTICS COMMUNICATIONS, 2012, 285 (07) : 1662 - 1668
  • [9] Uniaxial High-Speed Microscale Three-Dimensional Surface Topographical Measurements Using Fringe Projection
    Zheng, Yi
    Li, Beiwen
    JOURNAL OF MICRO AND NANO-MANUFACTURING, 2020, 8 (04):
  • [10] Three-dimensional shape measurement for thin objects based on hue-height mapping using color-encoded fringe projection
    Wan, Yingying
    Cao, Yiping
    Chen, Cheng
    Fu, Guangkai
    Wang, Yapin
    TRANSACTIONS OF THE INSTITUTE OF MEASUREMENT AND CONTROL, 2018, 40 (14) : 3978 - 3984