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Xihua Sheng

3 accepted papers

2026

CADC: Content Adaptive Diffusion-Based Generative Image Compression

CVPR 2026

Diffusion-based generative image compression has demonstrated remarkable potential for achieving realistic reconstruction at ultra-low bitrates. The key to unlocking this potential lies in making the entire compression process content-adaptive, ensuring that the encoder's representation and the deco

Cited by 0SourceScholar
2025

An Information-Theoretic Regularizer for Lossy Neural Image Compression

ICCV 2025poster

Lossy image compression networks aim to minimize the latent entropy of images while adhering to specific distortion constraints. However, optimizing the neural network can be challenging due to its nature of learning quantized latent representations. In this paper, our key finding is that minimizing…

Cited by 0SourcePDFScholar
2024

Offline and Online Optical Flow Enhancement for Deep Video Compression

AAAI 2024technical

Video compression relies heavily on exploiting the temporal redundancy between video frames, which is usually achieved by estimating and using the motion information. The motion information is represented as optical flows in most of the existing deep video compression networks. Indeed, these network…

Cited by 20SourcePDFScholar