用于动态结构光测量的运动诱导相移。

IF 3.1 2区 物理与天体物理 Q2 OPTICS Optics letters Pub Date : 2024-11-15 DOI:10.1364/OL.541207
Li Kang, Huazhen Liu, Yijia Zhang, Hsiang-Chen Chui, Jiamiao Yang
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引用次数: 0

摘要

结构光三维形状测量法因其测量速度快、精度高、适用于不同物体等优点,被广泛应用于半导体检测、智能制造和生物医学成像等领域。然而,这种方法的传统实现方式通常要求在记录相移结构光图像时物体保持静态,这限制了动态测量的适应性。在此,我们提出了一种基于运动诱导相移(MIPS)的结构光动态三维形状测量方法。当物体移动时,表面特征会扭曲条纹图案,从而产生相移效应。通过使用 MIPS 方法,即使在对相移条件了解不准确的情况下,我们也能确定相位。这样就能高精度地获取物体表面的三维形貌。实验结果表明,MIPS 方法可以精确测量移动速度高达 100 毫米/秒的物体的三维形状,相对误差小于 0.23%。
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Motion-induced phase shift for dynamic structured light measurement.

Structured light 3D shape measurement is extensively utilized in semiconductor inspection, smart manufacturing, and biomedical imaging due to its rapid measurement speed, high precision, and versatile applicability to different objects. However, the traditional implementations of this method often require that the object remains static while recording the phase-shifting structured light images, which limits the adaptability of dynamic measurement. Here, we propose a dynamic 3D shape measurement using structured light based on a motion-induced phase shift (MIPS). As the object moves, the surface features distort the fringe pattern, resulting in a phase-shifting effect. By employing the MIPS method, we can determine the phase even in the situations where the knowledge of phase-shifting conditions is not accurate. This enables the acquisition of the 3D topography of the object surface with a high level of precision. Experimental results demonstrate that the MIPS method can accurately measure the 3D shape of objects moving as fast as 100 mm/s, with a relative discrepancy of less than 0.23%.

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来源期刊
Optics letters
Optics letters 物理-光学
CiteScore
6.60
自引率
8.30%
发文量
2275
审稿时长
1.7 months
期刊介绍: The Optical Society (OSA) publishes high-quality, peer-reviewed articles in its portfolio of journals, which serve the full breadth of the optics and photonics community. Optics Letters offers rapid dissemination of new results in all areas of optics with short, original, peer-reviewed communications. Optics Letters covers the latest research in optical science, including optical measurements, optical components and devices, atmospheric optics, biomedical optics, Fourier optics, integrated optics, optical processing, optoelectronics, lasers, nonlinear optics, optical storage and holography, optical coherence, polarization, quantum electronics, ultrafast optical phenomena, photonic crystals, and fiber optics. Criteria used in determining acceptability of contributions include newsworthiness to a substantial part of the optics community and the effect of rapid publication on the research of others. This journal, published twice each month, is where readers look for the latest discoveries in optics.
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