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Mischa Dombrowski

3 accepted papers

2025

Image Generation Diversity Issues and How to Tame Them

CVPR 2025poster

Generative methods have reached a level of quality that is almost indistinguishable from real data. However, while individual samples may appear unique, generative models often exhibit limitations in covering the full data distribution. Unlike quality issues, diversity problems within generative mod…

2024

Trade-Offs in Fine-Tuned Diffusion Models between Accuracy and Interpretability

AAAI 2024technical

Recent advancements in diffusion models have significantly impacted the trajectory of generative machine learning re-search, with many adopting the strategy of fine-tuning pre-trained models using domain-specific text-to-image datasets. Notably, this method has been readily employed for medical appl…

2023

Foreground-Background Separation through Concept Distillation from Generative Image Foundation Models

ICCV 2023poster

Curating datasets for object segmentation is a difficult task. With the advent of large-scale pre-trained generative models, conditional image generation has been given a significant boost in result quality and ease of use. In this paper, we present a novel method that enables the generation of gene…

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