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Digital holography of particles: benefits of the 'inverse problem' approach

机译:粒子的数字全息术:“反问题”方法的好处

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摘要

The potential of in-line digital holography to locate and measure the size of particles distributed throughout a volume (in one shot) has been established. These measurements are fundamental for the study of particle trajectories in fluid flow. The most important issues in digital holography today are poor depth positioning accuracy, transverse field-of-view limitations, border artifacts and computational burdens. We recently suggested an 'inverse problem' approach to address some of these issues for the processing of particle digital holograms. The described algorithm improves axial positioning accuracy, gives particle diameters with sub-micrometer accuracy, eliminates border effects and increases the size of the studied volume. This approach for processing particle holograms pushes back some classical constraints. For example, the Nyquist criterion is no longer a restriction for the recording step and the studied volume is no longer confined to the field of view delimited by the sensor borders. In this paper we present a review of the limitations commonly found in digital holography. We then discuss the benefits of the 'inverse problem' approach and the influence of some experimental parameters in this framework.
机译:在线数字全息术具有定位和测量分布在整个体积中(一次)的颗粒大小的潜力。这些测量对于研究流体流动中的粒子轨迹至关重要。如今,数字全息术中最重要的问题是深度定位精度差,横向视野限制,边界伪影和计算负担。我们最近提出了一种“逆问题”方法来解决其中一些粒子数字全息图的问题。所描述的算法提高了轴向定位精度,给出了具有亚微米级精度的粒径,消除了边界效应并增加了研究体积的大小。这种用于处理粒子全息图的方法可以克服一些经典的限制。例如,奈奎斯特准则不再是记录步骤的限制,而且研究的体积不再局限于由传感器边界界定的视野。在本文中,我们介绍了数字全息术中常见的局限性。然后,我们讨论“反问题”方法的好处以及此框架中一些实验参数的影响。

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