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C3: High-performance and low-complexity neural compression from a single image or video

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arxiv 2312.02753 v1 pith:HN5RESK7 submitted 2023-12-05 eess.IV cs.CVcs.LGstat.ML

classification eess.IVcs.CVcs.LGstat.ML
keywords neuralvideocompressiondecodingperformanceimagebenchmarkcodec
verification ladder T0 review T1 audit T2 compute T3 formal
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Most neural compression models are trained on large datasets of images or videos in order to generalize to unseen data. Such generalization typically requires large and expressive architectures with a high decoding complexity. Here we introduce C3, a neural compression method with strong rate-distortion (RD) performance that instead overfits a small model to each image or video separately. The resulting decoding complexity of C3 can be an order of magnitude lower than neural baselines with similar RD performance. C3 builds on COOL-CHIC (Ladune et al.) and makes several simple and effective improvements for images. We further develop new methodology to apply C3 to videos. On the CLIC2020 image benchmark, we match the RD performance of VTM, the reference implementation of the H.266 codec, with less than 3k MACs/pixel for decoding. On the UVG video benchmark, we match the RD performance of the Video Compression Transformer (Mentzer et al.), a well-established neural video codec, with less than 5k MACs/pixel for decoding.

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  1. Neural Video Compression with Context Modulation

    eess.IV 2025-05 conditional novelty 6.0 of 10

    DCMVC modulates the propagated temporal context with an additional oriented context from the reference frame, reporting 10.1 percent bitrate savings over DCVC-FM and 22.7 percent over VVC on standard test sets.

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