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Development of 3D Measurement System Using Phase Shift Digital Holography

机译:利用相移数字全息技术开发3D测量系统

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The demand for three-dimensional (3D) measurement technology has been increasing, but in many of the traditional 3D measurement methods, such as the method using phase shift pattern projection, it is difficult to measure the shape of specular-reflective and transparent objects, because the power of the light reflected from specular reflective objects is too high and that from transparent objects is too low. Consequently, digital cameras cannot acquire accurate information from reflected light. Digital holography has been used as a means of resolving this problem. In traditional digital holography, the interference fringes of the light from the object being measured and the reference light can be captured by a digital camera. Using the Fresnel diffraction principle, the phase information in the light from the object being measured can be acquired and the shape of the object can be calculated by interferometry. Digital holography can be used to measure reflective and transparent objects. However, by the principle of Fresnel diffraction, dc and conjugate components exist in the calculated phase information a noises, so that the accuracy of measurements is reduced. Phase shift digital holography can remove noise by using special devices to change the phase of the reference light, but the devices are costly and the systems are complex, so that practical application of phase shift digital holography has been difficult. In this paper, we propose a new method of phase shift digital holography using the light detection principle. We also propose a digital holography reconstruction method using the convolution approach rather than the traditional Fresnel approach. The proposed method results in a compact phase shift holography system with lower cost and greater accuracy than the 3D measurement method. Therefore, the practical applications of digital holography can be realized less expensively and more accurately.
机译:三维(3D)测量技术的需求不断增长,但是在许多传统的3D测量方法中,例如使用相移图案投影的方法,很难测量镜面反射和透明物体的形状,因为镜面反射物体反射的光的功率太高而透明物体反射的光的功率太低。因此,数码相机无法从反射光获取准确的信息。数字全息术已经用作解决该问题的手段。在传统的数字全息术中,可以通过数字相机捕获来自被测物体的光和参考光的干涉条纹。使用菲涅耳衍射原理,可以获取来自被测物体的光中的相位信息,并且可以通过干涉术来计算物体的形状。数字全息术可用于测量反射和透明物体。但是,根据菲涅耳衍射的原理,在计算出的相位信息a中存在dc成分和共轭成分的噪声,因此降低了测量精度。相移数字全息术可以通过使用专用设备来改变参考光的相位来去除噪声,但是该设备昂贵并且系统复杂,因此相移数字全息术的实际应用一直很困难。在本文中,我们提出了一种利用光检测原理的相移数字全息术的新方法。我们还提出了一种使用卷积方法而不是传统菲涅耳方法的数字全息重建方法。所提出的方法导致了紧凑的相移全息系统,该系统比3D测量方法具有更低的成本和更高的准确性。因此,可以更便宜和更准确地实现数字全息的实际应用。

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