arXiv:2603.18488cs.CV2026-03被引 1

让纹理编辑保持物体结构不变,提升真实场景适应性。

TexEditor: Structure-Preserving Text-Driven Texture Editing

  • 用Blender构建高质量数据集,提供结构先验。
  • 结合强化学习注入结构保持损失,适配真实图像。
  • 自建真实世界评测集,验证泛化能力。

文本引导的纹理编辑旨在改变物体外观的同时保持其几何结构。然而,我们的实证分析发现,即使是最先进的编辑模型在纯外观修改时也常难以维持结构一致性。为此,我们从数据和训练两方面共同增强结构保持能力,提出TexEditor,基于Qwen-Image-Edit-2509的专用纹理编辑模型。首先,我们构建了TexBlender,一个由Blender生成的高质量SFT数据集,为冷启动提供强结构先验。其次,提出StructureNFT,一种基于强化学习的方法,通过集成结构保持损失,将SFT阶段学到的结构先验迁移到真实场景。此外,由于现有基准在真实感和评估覆盖上的局限,我们引入TexBench,一个通用的真实世界文本引导纹理编辑基准。在现有Blender基准和TexBench上的大量实验表明,TexEditor始终优于如Nano Banana Pro等强基线。进一步在通用基准ImgEdit上评估其泛化性能。代码与数据已开源。

原文摘要 · Abstract (English)

Text-guided texture editing aims to modify object appearance while preserving the underlying geometric structure. However, our empirical analysis reveals that even SOTA editing models frequently struggle to maintain structural consistency during texture editing, despite the intended changes being purely appearance-related. Motivated by this observation, we jointly enhance structure preservation from both data and training perspectives, and build TexEditor, a dedicated texture editing model based on Qwen-Image-Edit-2509. Firstly, we construct TexBlender, a high-quality SFT dataset generated with Blender, which provides strong structural priors for a cold start. Sec- ondly, we introduce StructureNFT, a RL-based approach that integrates structure-preserving losses to transfer the structural priors learned during SFT to real-world scenes. Moreover, due to the limited realism and evaluation coverage of existing benchmarks, we introduce TexBench, a general-purpose real-world benchmark for text-guided texture editing. Extensive experiments on existing Blender-based texture benchmarks and our TexBench show that TexEditor consistently outperforms strong baselines such as Nano Banana Pro. In addition, we assess TexEditor on the general purpose benchmark ImgEdit to validate its generalization. Our code and data are available at https://github.com/KlingAIResearch/TexEditor.

纹理编辑结构保持文本驱动真实场景

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