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Zhenyong Fu

6 accepted papers

2025

LaTexBlend: Scaling Multi-concept Customized Generation with Latent Textual Blending

CVPR 2025highlight

Customized text-to-image generation renders user-specified concepts into novel contexts based on textual prompts. Scaling the number of concepts in customized generation meets a broader demand for user creation, whereas existing methods face challenges with generation quality and computational effic…

Cited by 1SourcePDFScholar
2020

Zero-Shot Image Super-Resolution with Depth Guided Internal Degradation Learning

ECCV 2020poster

In the past few years, we have witnessed the great progress of image super-resolution (SR) thanks to the power of deep learning. However, a major limitation of the current image SR approaches is that they assume a pre-determined degradation model or kernel, e.g. bicubic, controls the image degradati…

Cited by 45SourcePDFScholar
2015

Zero-Shot Object Recognition by Semantic Manifold Distance

CVPR 2015poster

Object recognition by zero-shot learning (ZSL) aims to recognise objects without seeing any visual examples by learning knowledge transfer between seen and unseen object classes. This is typically achieved by exploring a semantic embedding space such as attribute space or semantic word vector space.…

Cited by 283SourcePDFScholar