Three-dimensional (3D) acquisition of an object with modest accuracy and speed is of particular concern in practice. The performance of digital sinusoidal fringe pattern projection using an off-the-shelf digital video projector is generally discounted by the nonlinearity and low switch rate. In this paper, a binary encoding method to encode one computer-generated standard sinusoidal fringe pattern is presented for circumventing such deficiencies. In previous work [Opt. Eng.54, 054108 (2015)OPEGAR0091-328610.1117/1.OE.54.5.054108], we have developed a 3D system based on this encoding tactic and showed its prospective application. Here, we first build a physical model to explain the mechanism of how to generate good sinusoidality. The phase accuracy with respect to the conventional spatial binary encoding method and sinusoidal fringe pattern is also comparatively evaluated through simulation and experiments. We also adopt two phase-height mapping relationships to experimentally compare the measurement accuracy among them. The results indicate that the proposed binary encoding strategy has a comparable performance to that of sinusoidal fringe pattern projection and enjoys advantages over the spatial binary method under the same conditions.

Download full-text PDF

Source
http://dx.doi.org/10.1364/AO.56.002995DOI Listing

Publication Analysis

Top Keywords

sinusoidal fringe
16
fringe pattern
16
pattern projection
12
binary encoding
12
encoding method
8
spatial binary
8
binary
5
pattern
5
experimental study
4
study temporal-spatial
4

Similar Publications

We have proposed a novel single-snapshot spatial frequency domain imaging method with synchronous three-dimensional (3D) profile correction that addresses the confounding effects of involuntary jitter in tissue under examination and the 3D profile of the tissue on the measurements of optical parameters during in vivo examinations. I. In this scheme, orthogonal composite sinusoidal modulated light is projected onto the tissue to be measured.

View Article and Find Full Text PDF

Three-dimensional (3D) shape measurements based on code-based fringe projection profilometry have been extensively used for scientific research and industrial applications. However, the fringe order errors always influence the measurement result. Although numerous methods have been proposed to eliminate fringe order errors, they may compromise computational cost, measurement speed, measurement range and the failure to eliminate all types of errors.

View Article and Find Full Text PDF

The digital light processing (DLP) projector has been widely used in fringe projection profilometry (FPP). The bit depth of the projected fringes is mostly 8-bit or 1-bit to pursue higher measuring accuracy or speed. In this paper, a bit error model is established to evaluate phase quality of the projected fringes with different bit depths.

View Article and Find Full Text PDF

High-speed and large-depth-range 3D measurement technology is of great importance in a variety of fields. Conventional binary defocusing methods can achieve high measurement speed, but their depth range is limited because the defocusing effect is insufficient near the focal plane in the ordinary projection system. To address this problem, we propose an optimized multi-focal projection system by introducing a cylindrical lens with optimal parameter configuration.

View Article and Find Full Text PDF
Article Synopsis
  • Phase-shift profilometry (PSP) is a precise optical 3D measurement technique that has gained popularity due to its effectiveness in varying light conditions, particularly in high-speed applications.
  • Traditional high-frame rate PSP methods face limitations in measurement depth due to binary defocusing projections; this study introduces a new technique using a specially designed LED chip array that enables both high-speed and larger depth measurement.
  • The developed PSP projector successfully captured 3D reconstructions at frame rates of 1 kHz and 100 kHz, demonstrating its potential for even higher speeds and making it highly suitable for measuring dynamic objects.
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!