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Digital simulation of scalar optical diffraction: revisiting chirp function sampling criteria and consequences

机译:标量光学衍射的数字模拟:重新讨论线性调频函数采样标准和结果

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摘要

Accurate simulation of scalar optical diffraction requires consideration of the sampling requirement for the phase chirp function that appears in the Fresnel diffraction expression. We describe three sampling regimes for FFT-based propagation approaches: ideally sampled, oversampled, and undersampled. Ideal sampling, where the chirp and its FFT both have values that match analytic chirp expressions, usually provides the most accurate results but can be difficult to realize in practical simulations. Under- or oversampling leads to a reduction in the available source plane support size, the available source bandwidth, or the available observation support size, depending on the approach and simulation scenario. We discuss three Fresnel propagation approaches: the impulse response/transfer function (angular spectrum) method, the single FFT (direct) method, and the two-step method. With illustrations and simulation examples we show the form of the sampled chirp functions and their discrete transforms, common relationships between the three methods under ideal sampling conditions, and define conditions and consequences to be considered when using nonideal sampling. The analysis is extended to describe the sampling limitations for the more exact Rayleigh-Sommerfeld diffraction solution.
机译:精确模拟标量光学衍射需要考虑菲涅耳衍射表达式中出现的相位线性调频函数的采样要求。我们描述了基于FFT的传播方法的三种采样方式:理想情况下的采样,过采样和欠采样。理想采样(线性调频脉冲及其FFT都具有与解析线性调频脉冲表达式匹配的值)通常可提供最准确的结果,但在实际仿真中可能难以实现。欠采样或过采样会导致可用源平面支持大小,可用源带宽或可用观察支持大小减少,具体取决于方法和模拟方案。我们讨论了三种菲涅耳传播方法:脉冲响应/传递函数(角谱)方法,单FFT(直接)方法和两步法。通过图示和仿真示例,我们展示了采样线性调频函数的形式及其离散变换,在理想采样条件下这三种方法之间的共同关系,并定义了使用非理想采样时要考虑的条件和后果。扩展了分析以描述更精确的Rayleigh-Sommerfeld衍射解决方案的采样限制。

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