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Published:2026/1/8 10:57:37

テキスト→画像(T2I)の粗(あら)を自動修正!Agentic Retoucherって何者?🤖✨

超要約: T2I生成画像の変なとこをAIが勝手に直してくれる神フレームワーク!🤩

🌟 ギャル的キラキラポイント✨ ● 手足が変とか、文字が読めないとか…細部の粗(あら)を直してくれるの! ● AIが人間みたいに見て、考えて、修正するって、すごくない?😳 ● T2I生成の未来がマジで明るくなる予感💖

詳細解説いくよ~!

背景: 最近のT2Iモデル、すごい画像作れるけど、たまに粗が見つかるじゃん?🥺 手とか文字とか変だったり…。それを何とかしたい!って研究だよ。

続きは「らくらく論文」アプリで

Agentic Retoucher for Text-To-Image Generation

Shaocheng Shen / Jianfeng Liang / Chunlei Cai / Cong Geng / Huiyu Duan / Xiaoyun Zhang / Qiang Hu / Guangtao Zhai

Text-to-image (T2I) diffusion models such as SDXL and FLUX have achieved impressive photorealism, yet small-scale distortions remain pervasive in limbs, face, text and so on. Existing refinement approaches either perform costly iterative re-generation or rely on vision-language models (VLMs) with weak spatial grounding, leading to semantic drift and unreliable local edits. To close this gap, we propose Agentic Retoucher, a hierarchical decision-driven framework that reformulates post-generation correction as a human-like perception-reasoning-action loop. Specifically, we design (1) a perception agent that learns contextual saliency for fine-grained distortion localization under text-image consistency cues, (2) a reasoning agent that performs human-aligned inferential diagnosis via progressive preference alignment, and (3) an action agent that adaptively plans localized inpainting guided by user preference. This design integrates perceptual evidence, linguistic reasoning, and controllable correction into a unified, self-corrective decision process. To enable fine-grained supervision and quantitative evaluation, we further construct GenBlemish-27K, a dataset of 6K T2I images with 27K annotated artifact regions across 12 categories. Extensive experiments demonstrate that Agentic Retoucher consistently outperforms state-of-the-art methods in perceptual quality, distortion localization and human preference alignment, establishing a new paradigm for self-corrective and perceptually reliable T2I generation.

cs / cs.CV / cs.AI