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Fast Image Processing with Fully-Convolutional Networks
[article]
2017
arXiv
pre-print
We present an approach to accelerating a wide variety of image processing operators. Our approach uses a fully-convolutional network that is trained on input-output pairs that demonstrate the operator's action. After training, the original operator need not be run at all. The trained network operates at full resolution and runs in constant time. We investigate the effect of network architecture on approximation accuracy, runtime, and memory footprint, and identify a specific architecture that
arXiv:1709.00643v1
fatcat:4dzvtbeucrhmvdmgk7jpdclm5m