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Conditional Coding for Flexible Learned Video Compression (2104.07930v3)

Published 16 Apr 2021 in eess.IV and eess.SP

Abstract: This paper introduces a novel framework for end-to-end learned video coding. Image compression is generalized through conditional coding to exploit information from reference frames, allowing to process intra and inter frames with the same coder. The system is trained through the minimization of a rate-distortion cost, with no pre-training or proxy loss. Its flexibility is assessed under three coding configurations (All Intra, Low-delay P and Random Access), where it is shown to achieve performance competitive with the state-of-the-art video codec HEVC.

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Authors (5)
  1. Théo Ladune (18 papers)
  2. Pierrick Philippe (18 papers)
  3. Wassim Hamidouche (62 papers)
  4. Lu Zhang (373 papers)
  5. Olivier Déforges (29 papers)
Citations (36)

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