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Data Augmentation with Diffusion Model
The Hong Kong University of Science and Technology Department of Computer Science and Engineering Final Year Thesis Oral Defense Title: "Data Augmentation with Diffusion Model" by TSE Wai Chung Abstract: The recent development of diffusion models fostered breakthroughs in many machine learning fields. Some new research have shown potential in applying diffusion model to effectively augment data. In this research, we propose a novel approach, applying a new embedding replacement style transfer method for vision data augmentation with diffusion models. Experimentally our method enhances the downstream classifier's domain generalization ability and computes faster than some current methods. Date : 25 April 2024 (Thursday) Time : 13:45 - 14:25 Venue : Room 5501 (near lifts 25/26), HKUST Advisor : Prof. ZHANG Nevin Lianwen 2nd Reader : Dr. CHEN Long
Last updated on 2024-04-05
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