arXiv:2605.16951cs.CV2026-05

提出新框架,让图像编辑只改目标区域,不扰动周围内容。

Edit-GRPO: A Locality-Preserving Policy Optimization Framework for Image Editing

论文配图:Edit-GRPO: A Locality-Preserving Policy Optimization Framework for Image Editing
图 1 · 摘自论文原文
  • 分区域分配优化信号,实现编辑与保护的解耦
  • 显著减少上下文扭曲和边界不一致等伪影
  • 适合需要精准控制的图像编辑任务

图像编辑中的核心挑战在于保持空间局部性:修改应仅影响目标区域,而不意外改变邻近部分。然而,多数基于优化的编辑方法将图像视为整体,导致全局策略更新,破坏局部性并引入非期望的上下文变化。我们发现该问题源于编辑意图的局部性与全局优化信号之间的不匹配。为此,提出 Edit-GRPO,一种保留局部性的策略优化框架,显式解耦编辑与保护目标。通过为编辑区与非编辑区分配特定优化信号,使策略更新与编辑任务的空间结构对齐,实现局部改进的同时保持整体视觉一致性。该设计有效抑制了常见的上下文扭曲和边界不一致等伪影。在多种图像编辑场景下的大量实验表明,相比现有基于优化的方法,Edit-GRPO 显著提升了局部性保持能力,同时维持强编辑性能,验证了该框架的通用性与有效性。

原文摘要 · Abstract (English)

A fundamental challenge in image editing lies in preserving spatial locality: edits should improve targeted content without inadvertently altering surrounding regions. However, most optimization-based editing approaches treat images as holistic entities, causing global policy updates that undermine locality and introduce undesired context changes. We observe that this issue stems from a mismatch between localized editing intent and globally applied optimization signals. Motivated by this insight, we propose Edit-GRPO, preserving Locality while optimizing image editing, a locality-preserving policy optimization framework that explicitly decouples editing and preservation objectives. By assigning region-specific optimization signals to edit and non-edit areas, Edit-GRPO aligns policy updates with the spatial structure of editing tasks, enabling localized improvements while maintaining global visual coherence. This design effectively suppresses common artifacts such as context distortion and boundary inconsistency. Extensive experiments across diverse image editing scenarios demonstrate that Edit-GRPO significantly improves locality preservation while maintaining strong editing performance compared to existing optimization-based methods, validating the generality and effectiveness of the proposed framework.

图像编辑局部性策略优化

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