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StyleText: A Large-Scale Dataset and Benchmark for Stylized Scene Text Inpainting
May 17, 2026 ยท Grace Period ยท ๐ CVPR 2026
Authors
Aleksandr Simonyan, Nipun Jindal
arXiv ID
2605.17309
Category
cs.CV: Computer Vision
Cross-listed
cs.AI
Citations
0
Venue
CVPR 2026
Abstract
We present StyleText, a large-scale dataset and benchmark for localized scene-text inpainting with style preservation. StyleText contains 28,518 image-mask-prompt triplets grouped into 9,932 scene families, enabling controlled evaluation of text legibility and visual consistency under shared scene context. We construct the dataset with an automated pipeline that combines LLM prompt templating, Flux-based source generation with key-value (KV) cache injection, OCR-based semantic filtering, polygon mask extraction, and mask-conditioned FluxFill augmentation. We define a reproducible evaluation protocol using normalized OCR metrics (word accuracy and character error rate) and CLIP image-image similarity with explicit preprocessing. A FluxFill+LoRA baseline trained on StyleText improves OCR accuracy substantially over initialization while maintaining scene style consistency, establishing a strong reference point for future comparisons.
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