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Spatial bandwidth analysis of fast backward Fresnel diffraction for precise computer-generated hologram design

机译:快速后向菲涅耳衍射的空间带宽分析,用于精确的计算机生成全息图设计

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摘要

Designing near-field computer-generated holograms (CGHs) for a spatial light modulator (SLM) requires backward diffraction calculations. However, direct implementation of the discrete computational model of the Fresnel diffraction integral often produces inaccurate reconstruction. Finite sizes of the SLM and the target image, as well as aliasing, are major sources of error. Here we present a new design prescription for precise near-field CGHs based on comprehensive analysis of the spatial bandwidth. We demonstrate that, by controlling two free variables related to the target image, the designed hologram is free from aliasing and can have minimum error. To achieve this, we analyze the geometry of the target image, hologram, and Fourier transform plane of the target image to derive conditions for minimizing reconstruction error due to truncation of spatial frequencies lying outside of the hologram. The design prescription is verified by examples showing reconstruction error versus controlled parameters. Finally, it is applied to precise three-dimensional image reconstruction.
机译:为空间光调制器(SLM)设计近场计算机生成的全息图(CGH),需要进行向后衍射计算。但是,直接执行菲涅耳衍射积分的离散计算模型通常会导致重建不准确。 SLM和目标图像的有限大小以及锯齿是错误的主要来源。在这里,我们基于对空间带宽的综合分析,提出了一种用于精确近场CGH的新设计方案。我们证明,通过控制与目标图像有关的两个自由变量,设计的全息图不会出现混叠现象,并且误差最小。为实现此目的,我们分析了目标图像的几何形状,全息图和目标图像的傅立叶变换平面,以得出条件,以使由于全息图外部空间频率被截断而导致的重建误差最小化。通过显示重构误差与受控参数的示例来验证设计处方。最后,将其应用于精确的三维图像重建。

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