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20242026
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cs.CV2026

When Pretty Isn't Useful: Investigating Why Modern Text-to-Image Models Fail as Reliable Training Data Generators

Krzysztof Adamkiewicz, Brian Bernhard Moser, Stanislav Frolov +3

The paper evaluates modern text-to-image diffusion models as sources of synthetic training data and finds that, despite higher visual quality, newer models produce less diverse ima…

cs.CV2026

LUMA: Benchmarking Segmentation via a Lightweight Universal Mask Adapter

Tobias Christian Nauen, Anosh Billimoria, Federico Raue +3

Comparing transformer backbones for image segmentation is confounded: each is paired with a different decoder, recipe, and pretraining, so reported differences rarely reflect the b…

cs.CV2026

ForAug: Mitigating Biases in Image Classification via Controlled Image Compositions

Tobias Christian Nauen, Brian Moser, Federico Raue +2

Large-scale image classification datasets exhibit strong compositional biases: objects tend to be centered, appear at characteristic scales, and co-occur with class-specific contex…

cs.CV2026

OA-CutMix: Correcting the Label Bias of CutMix

Tobias Christian Nauen, Stanislav Frolov, Federico Raue +2

CutMix has become the de facto standard mixing augmentation, yet its label assignment rests on a flawed assumption: The area of the pasted patch faithfully reflects its semantic co…

cs.CV2026

TextTeacher: What Can Language Teach About Images?

Tobias Christian Nauen, Stanislav Frolov, Brian Bernhard Moser +3

The platonic representation hypothesis suggests that sufficiently large models converge to a shared representation geometry, even across modalities. Motivated by this, we ask: Can…

cs.CV2025

A Study in Dataset Distillation for Image Super-Resolution

Tobias Dietz, Brian B. Moser, Tobias Nauen +3

Dataset distillation aims to compress large datasets into compact yet highly informative subsets that preserve the training behavior of the original data. While this concept has ga…