JOURNAL ARTICLE

Deep Lossy Plus Residual Coding for Lossless and Near-Lossless Image Compression

Yuanchao BaiXianming LiuKai WangXiangyang JiXiaolin WuWen Gao

Year: 2024 Journal:   IEEE Transactions on Pattern Analysis and Machine Intelligence Vol: 46 (5)Pages: 3577-3594   Publisher: IEEE Computer Society

Abstract

Lossless and near-lossless image compression is of paramount importance to professional users in many technical fields, such as medicine, remote sensing, precision engineering and scientific research. But despite rapidly growing research interests in learning-based image compression, no published method offers both lossless and near-lossless modes. In this paper, we propose a unified and powerful deep lossy plus residual (DLPR) coding framework for both lossless and near-lossless image compression. In the lossless mode, the DLPR coding system first performs lossy compression and then lossless coding of residuals. We solve the joint lossy and residual compression problem in the approach of VAEs, and add autoregressive context modeling of the residuals to enhance lossless compression performance. In the near-lossless mode, we quantize the original residuals to satisfy a given ℓ error bound, and propose a scalable near-lossless compression scheme that works for variable ℓ bounds instead of training multiple networks. To expedite the DLPR coding, we increase the degree of algorithm parallelization by a novel design of coding context, and accelerate the entropy coding with adaptive residual interval. Experimental results demonstrate that the DLPR coding system achieves both the state-of-the-art lossless and near-lossless image compression performance with competitive coding speed.

Keywords:
Lossless compression Lossy compression Computer science Lossless JPEG Image compression Context-adaptive binary arithmetic coding Adaptive coding Data compression Context-adaptive variable-length coding Entropy encoding Algorithm Tunstall coding Artificial intelligence Theoretical computer science Image processing Image (mathematics)

Metrics

38
Cited By
19.62
FWCI (Field Weighted Citation Impact)
68
Refs
0.99
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Data Compression Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Advanced Image Processing Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Image and Signal Denoising Methods
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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