Bridging the Gap between Gaussian Diffusion Models and Universal Quantization for Image Compression
Lucas Relic, Roberto Azevedo, Yang Zhang, Markus Gross, Christopher Schroers
2025年份
3顶会引用
摘要
Figure 1. Visualization of the 3 gaps we address in this work. Failure to match the noise level (middle columns) results in either too noisy or too smooth images. Inconsistent noise types (middle-right) introduces generative artifacts and color shift. Applying diffusion to discrete data (far right) causes flat textures as well as color shift. Addressing all three gaps (middle-left) results in the most realistic reconstruction that best matches the source image (far left).
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引用它的顶会 Paper3
- DiT-IC: Aligned Diffusion Transformer for Efficient Image CompressionJunqi Shi, Ming Lu, Xingchen Li, Anle Ke 等CVPR 2026 · 被引用 4 次
- Differentiable Vector Quantization for Rate-Distortion Optimization of Generative Image CompressionShiyin Jiang, Wei Long, Minghao Han, Zhenghao Chen 等CVPR 2026 · 被引用 3 次
- CADC: Content Adaptive Diffusion-Based Generative Image CompressionXihua Sheng, Lingyu Zhu, Tianyu Zhang, Dong Liu 等CVPR 2026 · 被引用 2 次
它引用的顶会 Paper15
- Denoising Diffusion Probabilistic ModelsJonathan Ho, Ajay Jain, Pieter AbbeelNeurIPS 2020 · 被引用 35,902 次
- High-Resolution Image Synthesis with Latent Diffusion ModelsRobin Rombach, Andreas Blattmann, Dominik Lorenz, Patrick Esser 等CVPR 2022 · 被引用 13,123 次
- Denoising Diffusion Implicit ModelsJiaming Song, Chenlin Meng, Stefano ErmonICLR 2021 · 被引用 11,743 次
- Adding Conditional Control to Text-to-Image Diffusion ModelsLvmin Zhang, Anyi Rao, Maneesh AgrawalaICCV 2023 · 被引用 6,759 次
- High-Fidelity Generative Image CompressionFabian Mentzer, George Toderici, Michael Tschannen, Eirikur AgustssonNeurIPS 2020 · 被引用 675 次
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