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Computational wavelength resolution for in-line lensless holography: phase-coded diffraction patterns and wavefront group-sparsity

机译:在线无透镜全息照相的计算波长分辨率:相位编码衍射图和波前群稀疏度

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In-line lensless holography is considered with a random phase modulation at the object plane. The forward wavefront propagation is modelled using the Fourier transform with the angular spectrum transfer function. The multiple intensities (holograms) recorded by the sensor are random due to the random phase modulation and noisy with Poissonian noise distribution. It is shown by computational experiments that high-accuracy reconstructions can be achieved with resolution going up to the two thirds of the wavelength. With respect to the sensor pixel size it is a super-resolution with a factor of 32. The algorithm designed for optimal super-resolution phase/amplitude reconstruction from Poissonian data is based on the general methodology developed for phase retrieval with a pixel-wise resolution in V Katkovmk, "Phase retrieval from noisy data based on sparse approximation of object phase and amplitude", http://www.cs.tut.fi/~lasip/DDT/index3.html.
机译:在线无镜头全息技术被认为在物平面处具有随机相位调制。使用具有角谱传递函数的傅立叶变换对正向波前传播进行建模。由于随机相位调制和带有泊松噪声分布的噪声,传感器记录的多个强度(全息图)是随机的。计算实验表明,可以以高达三分之二波长的分辨率实现高精度重建。关于传感器像素大小,它是具有32倍因子的超分辨率。用于从泊松数据中获得最佳超分辨率相位/幅度重建的算法是基于针对像素分辨率的相位检索而开发的通用方法。在V Katkovmk中,“基于基于对象相位和幅度的稀疏近似的噪声数据进行相位检索”,http://www.cs.tut.fi/~lasip/DDT/index3.html。

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