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Few-Shot Domain Adaptation for Learned Image Compression

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arxiv 2409.11111 v2 pith:TMVTKX45 submitted 2024-09-17 eess.IV cs.CV

classification eess.IVcs.CV
keywords methodperformancepre-trainedadapterscompressiondomainimagemodels
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abstract

Learned image compression (LIC) has achieved state-of-the-art rate-distortion performance, deemed promising for next-generation image compression techniques. However, pre-trained LIC models usually suffer from significant performance degradation when applied to out-of-training-domain images, implying their poor generalization capabilities. To tackle this problem, we propose a few-shot domain adaptation method for LIC by integrating plug-and-play adapters into pre-trained models. Drawing inspiration from the analogy between latent channels and frequency components, we examine domain gaps in LIC and observe that out-of-training-domain images disrupt pre-trained channel-wise decomposition. Consequently, we introduce a method for channel-wise re-allocation using convolution-based adapters and low-rank adapters, which are lightweight and compatible to mainstream LIC schemes. Extensive experiments across multiple domains and multiple representative LIC schemes demonstrate that our method significantly enhances pre-trained models, achieving comparable performance to H.266/VVC intra coding with merely 25 target-domain samples. Additionally, our method matches the performance of full-model finetune while transmitting fewer than $2\%$ of the parameters.

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  1. An Information-Theoretic Regularizer for Lossy Neural Image Compression

    cs.CV 2024-11 conditional novelty 5.0 of 10

    A regularizer that maximizes conditional source entropy gives BD-rate gains of 0.9% to 3.0% across five neural compression models, but may be equivalent to reweighting the rate term.

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