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Experimental digital Gabor hologram rendering by a model-trained convolutional neural network
Published 20 Apr 2020 in eess.IV, physics.data-an, and physics.optics | (2004.09126v1)
Abstract: Digital hologram rendering can be performed by a convolutional neural network, trained with image pairs calculated by numerical wave propagation from sparse generating images. 512-by-512 pixeldigital Gabor magnitude holograms are successfully estimated from experimental interferograms by a standard UNet trained with 50,000 synthetic image pairs over 70 epochs.
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