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Coupling for capturing an displaying hologram systems for real-time digital holographic interferometry

机译:耦合用于捕获用于实时数字全息干涉测量学的显示全息图系统

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Conventional (analog) holographic interferometry (HI) has been used as a powerful technique in optical metrology since sixties of (ⅩⅩ) century. However, its practical applications have been constrained because of the cumbersome procedures required for holographic material development. Digital holography has brought significant simplifications due to digital capture of holograms and their further numerical reconstruction and manipulation of reconstructed phases and amplitudes. These features are the fundamentals of double exposure digital holographic interferometry which nowadays is used in such applications as industrial inspection, medical imaging, microscopy and metrology. However another very popular HI technique, namely real time holographic interferometry has not been demonstrated in its digital version. In this paper we propose the experimental-numerical method which allows for real-time DHI implementation. In the first stage a set of digital phase shifted holograms of an object in an initial condition is captured and the phase of an object wavefront in the hologram plane is calculated. This phase is used to address a spatial light modulator, which generates the initial object wavefront. This wavefront (after proper SLM calibration) propagates toward an object and interfere with an actual object wavefront giving real-time interference fringes. The procedure works correctly in the case when CCD camera and SLM LCOS pixel sizes are the same. Usually it is not the case. Therefore we had proposed two different methods which allow the overcome of this mismatch pixel problem. The first one compensates for lateral magnification and the second one is based on re-sampling of a captured phase. The methods are compared through numerical simulations and with experimental data. Finally, the implications of setting up the experiment with the object reference phase compensated by the two approaches are analyzed and the changes in an object are monitored in real time by DHI.
机译:传统的(模拟)全息干涉测量法(HI)已被用作自从(ⅹⅹ)世纪的六十年代以来的光学计量中的强大技术。然而,由于全息材料发育所需的繁琐程序,其实际应用受到约束。由于全息图的数字捕获和重建阶段和幅度的进一步数值重建和操纵,数字全息术引起了显着的简化。这些特征是双曝光数字全息干涉测量学的基本原理,其目前用于工业检验,医学成像,显微镜和计量等应用。然而,另一个非常受欢迎的HI技术,即实时的全息干涉测量尚未在其数字版本中证明。在本文中,我们提出了允许实时DHI实现的实验性数字方法。在第一阶段中,捕获初始条件中的对象的一组数字相移全息图,并且计算了全息图平面中的物体波前的相位。该阶段用于地址空间光调制器,其生成初始物体波前。此波前(在适当的SLM校准后)向对象传播并干扰实际对象波前,以实时干扰条纹。程序在CCD摄像机和SLM LCOS像素大小相同的情况下正确工作。通常情况并非如此。因此,我们提出了两种不同的方法,允许克服这种不匹配像素问题。第一个补偿横向放大率,第二个是基于捕获阶段的再采样。通过数值模拟和实验数据进行比较这些方法。最后,分析了使用两种方法补偿的对象参考阶段的实验的含义,并通过DHI实时监测对象的变化。

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