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High-speed holographic imaging using compressed sensing and phase retrieval

机译:使用压缩感测和相位检索的高速全息成像

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Digital in-line holography serves as a useful encoder for spatial information. This allows three-dimensional reconstruction from a two-dimensional image. This is applicable to the tasks of fast motion capture, particle tracking etc. Sampling high resolution holograms yields a spatiotemporal tradeoff. We spatially subsample holograms to increase temporal resolution. We demonstrate this idea with two subsampling techniques, periodic and uniformly random sampling. The implementation includes an on-chip setup for periodic subsampling and a DMD (Digital Micromirror Device) -based setup for pixel-wise random subsampling. The on-chip setup enables direct increase of up to 20 in camera frame rate. Alternatively, the DMD-based setup encodes temporal information as high-speed mask patterns, and projects these masks within a single exposure (coded exposure). This way, the frame rate is improved to the level of the DMD with a temporal gain of 10. The reconstruction of sub-sampled data using the aforementioned setups is achieved in two ways. We examine and compare two iterative reconstruction methods. One is an error reduction phase retrieval and the other is sparsity-based compressed sensing algorithm. Both methods show strong capability of reconstructing complex object fields. We present both simulations and real experiments. In the lab, we image and reconstruct structure and movement of static polystyrene microspheres, microscopic moving peranema, macroscopic fast moving fur and glitters.
机译:数字在线全息术用作空间信息的有用编码器。这允许来自二维图像的三维重建。这适用于快速运动捕获的任务,粒子跟踪等。采样高分辨率全息图产生了时尚的权衡。我们空间上的全息图来增加时间分辨率。我们用两个分子采样技术,周期性和均匀随机抽样展示了这个想法。该实现包括用于周期性分支的片上设置,以及用于像素明智的随机数据采样的基于SETED的DMD(数字微镜设备)。片上设置可在相机帧速率下直接增加最多20。或者,基于DMD的设置将时间信息编码为高速掩模模式,并在单个曝光(编码曝光)内投影这些掩码。以此方式,帧速率提高到DMD的与10的时间增益使用上述设置有两种方式实现子采样数据的重建的水平。我们检查并比较两个迭代重建方法。一个是误差减少阶段检索,另一个是基于稀疏基础的压缩感测算法。两种方法都显示出重建复杂物体字段的强大能力。我们既有模拟和真实的实验。在实验室中,我们的形象和重建静态聚苯乙烯微球的结构和运动,微观移动的Peranema,宏观快速移动毛皮和闪闪发光。

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