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Universal Efficient Variable-rate Neural Image Compression. (arXiv:2111.11305v3 [eess.IV] UPDATED)
Jan. 12, 2022, 2:11 a.m. | Shanzhi Yin, Chao Li, Youneng Bao, Yongsheng Liang
cs.LG updates on arXiv.org arxiv.org
Recently, Learning-based image compression has reached comparable performance
with traditional image codecs(such as JPEG, BPG, WebP). However, computational
complexity and rate flexibility are still two major challenges for its
practical deployment. To tackle these problems, this paper proposes two
universal modules named Energy-based Channel Gating(ECG) and Bit-rate
Modulator(BM), which can be directly embedded into existing end-to-end image
compression models. ECG uses dynamic pruning to reduce FLOPs for more than 50\%
in convolution layers, and a BM pair can modulate the …
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