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Task Oriented Video Coding: A Survey

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arxiv 2208.07313 v3 pith:V6K4YWJE submitted 2022-08-15 eess.IV cs.CV

classification eess.IVcs.CV
keywords videocodingcomputervisioncompresseddeephigherhumans
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Video coding technology has been continuously improved for higher compression ratio with higher resolution. However, the state-of-the-art video coding standards, such as H.265/HEVC and Versatile Video Coding, are still designed with the assumption the compressed video will be watched by humans. With the tremendous advance and maturation of deep neural networks in solving computer vision tasks, more and more videos are directly analyzed by deep neural networks without humans' involvement. Such a conventional design for video coding standard is not optimal when the compressed video is used by computer vision applications. While the human visual system is consistently sensitive to the content with high contrast, the impact of pixels on computer vision algorithms is driven by specific computer vision tasks. In this paper, we explore and summarize recent progress on computer vision task oriented video coding and emerging video coding standard, Video Coding for Machines.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. PAT-VCM: Plug-and-Play Auxiliary Tokens for Video Coding for Machines

    cs.CV 2026-04 unverdicted novelty 5.0 of 10

    PAT-VCM adds lightweight auxiliary tokens to a shared baseline video stream to support multiple downstream machine tasks without task-specific codecs.

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