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Fengqing Zhu

12 accepted papers

2026

ENTROPYGS: AN EFFICIENT ENTROPY CODING ON 3D GAUSSIAN SPLATTING

ICASSP 2026oral

As an emerging novel view synthesis approach, 3D Gaussian Splatting (3DGS) demonstrates fast training/rendering with superior visual quality. The two tasks of 3DGS, Gaussian creation and view rendering, are typically separated over time or devices, and thus storage/transmission and finally compressi…

Cited by 0SourcePDFScholar
2026

PANDA – Patch and Distribution-Aware Augmentation for Long-Tailed Exemplar-Free Continual Learning

AAAI 2026technical

Exemplar-Free Continual Learning (EFCL) restricts the storage of previous task data and is highly susceptible to catastrophic forgetting. While pre-trained models (PTMs) are increasingly leveraged for EFCL, existing methods often overlook the inherent imbalance of real-world data distributions. We d

Cited by 0SourcePDFScholar
2025

Balanced Rate-Distortion Optimization in Learned Image Compression

CVPR 2025highlight

Learned image compression (LIC) using deep learning architectures has seen significant advancements, yet standard rate-distortion (R-D) optimization often encounters imbalanced updates due to diverse gradients of the rate and distortion objectives. This imbalance can lead to suboptimal optimization,…

2025

CL-LoRA: Continual Low-Rank Adaptation for Rehearsal-Free Class-Incremental Learning

CVPR 2025poster

Class-Incremental Learning (CIL) aims to learn new classes sequentially while retaining the knowledge of previously learned classes. Recently, pre-trained models (PTMs) combined with parameter-efficient fine-tuning (PEFT) have shown remarkable performance in rehearsal-free CIL without requiring exem…

2024

Another Way to the Top: Exploit Contextual Clustering in Learned Image Coding

AAAI 2024technical

While convolution and self-attention are extensively used in learned image compression (LIC) for transform coding, this paper proposes an alternative called Contextual Clustering based LIC (CLIC) which primarily relies on clustering operations and local attention for correlation characterization and…

Cited by 8SourcePDFScholar
2024

Towards Backward-Compatible Continual Learning of Image Compression

CVPR 2024poster

This paper explores the possibility of extending the capability of pre-trained neural image compressors (e.g. adapting to new data or target bitrates) without breaking backward compatibility the ability to decode bitstreams encoded by the original model. We refer to this problem as continual learnin…

2022

3DG-STFM: 3D Geometric Guided Student-Teacher Feature Matching

ECCV 2022poster

"We tackle the essential task of finding dense visual correspondences between a pair of images. This is a challenging problem due to various factors such as poor texture, repetitive patterns, illumination variation, and motion blur in practical scenarios. In contrast to methods that use dense corres…

2020

Learning Eating Environments Through Scene Clustering

ICASSP 2020accepted

It is well known that dietary habits have a significant influence on health. While many studies have been conducted to understand this relationship, little is known about the relationship between eating environments and health. Yet researchers and health agencies around the world have recognized the…

Cited by 0SourceScholar