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Simulation of digital holographic recording and reconstruction using a generalized matrix method

机译:使用广义矩阵法模拟数字全息记录与重建

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摘要

In recent years, research efforts in the field of digital holography have expanded significantly, due to the ability to obtain high-resolution intensity and phase images. The information contained in these images have become of great interest to the machine learning community, with applications spanning a wide portfolio of research areas, including bioengineering. In this work, we seek to demonstrate a high-fidelity simulation of holographic recording. By accurately and numerically simulating the propagation of a coherent light source through a series of optical elements and the object itself, we accurately predict the optical interference of the object and reference wave at the recording plane, including diffraction effects, aberrations, and speckle. We show that the optical transformation that predicts the complex field at the recording plane can be generalized for arbitrary holographic recording configurations using a matrix method. In addition, we provide a detailed description of digital phase reconstruction and aberration compensation for a variety of off-axis holographic configurations. Reconstruction errors are presented for the various holographic recording geometries and complex field objects. While the primary objective of this work is not to evaluate phase reconstruction approaches, the reconstruction of simulated holograms provides validation of the generalized simulation method. The long-term goal of this work is that the generalized holographic simulation motivates the use of phase reconstruction of the simulated holograms to populate databases for training machine-learning algorithms aimed at classifying relevant objects recorded through a variety of holographic setups. (C) 2020 Optical Society of America
机译:近年来,由于能够获得高分辨率的强度和相位图像,数字全息术领域的研究工作显著扩大。这些图像中包含的信息引起了机器学习界的极大兴趣,其应用范围涵盖了广泛的研究领域,包括生物工程。在这项工作中,我们试图演示全息记录的高保真模拟。通过精确地数值模拟相干光源通过一系列光学元件和物体本身的传播,我们准确地预测了物体和参考波在记录平面上的光学干涉,包括衍射效应、像差和散斑。我们用矩阵方法证明了预测记录平面复场的光学变换可以推广到任意全息记录结构。此外,我们还详细介绍了各种离轴全息结构的数字相位重建和像差补偿。给出了各种全息记录几何结构和复杂场目标的重建误差。虽然这项工作的主要目标不是评估相位重建方法,但模拟全息图的重建为广义模拟方法提供了验证。这项工作的长期目标是,广义全息模拟激励使用模拟全息图的相位重建来填充数据库,用于训练机器学习算法,以对通过各种全息设置记录的相关对象进行分类。(C) 2020美国光学学会

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  • 来源
    《Applied optics》 |2021年第4期|共17页
  • 作者单位

    Catholic Univ Amer Dept Elect Engn &

    Comp Sci 620 Michigan Ave NE Washington DC 20064 USA;

    Catholic Univ Amer Dept Elect Engn &

    Comp Sci 620 Michigan Ave NE Washington DC 20064 USA;

    Catholic Univ Amer Dept Elect Engn &

    Comp Sci 620 Michigan Ave NE Washington DC 20064 USA;

    Catholic Univ Amer Dept Biomed Engn 620 Michigan Ave NE Washington DC 20064 USA;

    Catholic Univ Amer Dept Elect Engn &

    Comp Sci 620 Michigan Ave NE Washington DC 20064 USA;

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