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Extreme Image Coding via Multiscale Autoencoders With Generative Adversarial Optimization (1904.03851v2)

Published 8 Apr 2019 in eess.IV and cs.LG

Abstract: We propose a MultiScale AutoEncoder(MSAE) based extreme image compression framework to offer visually pleasing reconstruction at a very low bitrate. Our method leverages the "priors" at different resolution scale to improve the compression efficiency, and also employs the generative adversarial network(GAN) with multiscale discriminators to perform the end-to-end trainable rate-distortion optimization. We compare the perceptual quality of our reconstructions with traditional compression algorithms using High-Efficiency Video Coding(HEVC) based Intra Profile and JPEG2000 on the public Cityscapes and ADE20K datasets, demonstrating the significant subjective quality improvement.

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Authors (5)
  1. Chao Huang (244 papers)
  2. Haojie Liu (20 papers)
  3. Tong Chen (200 papers)
  4. Qiu Shen (25 papers)
  5. Zhan Ma (91 papers)
Citations (17)

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