cs.AI updates on arXiv.org 08月01日 12:08
SMART-Editor: A Multi-Agent Framework for Human-Like Design Editing with Structural Integrity
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SMART-Editor是一种跨结构化和非结构化领域的内容编辑框架,采用Reward-Refine和RewardDPO策略,在多领域编辑场景中表现优异,实现语义一致性及视觉对齐。

arXiv:2507.23095v1 Announce Type: cross Abstract: We present SMART-Editor, a framework for compositional layout and content editing across structured (posters, websites) and unstructured (natural images) domains. Unlike prior models that perform local edits, SMART-Editor preserves global coherence through two strategies: Reward-Refine, an inference-time rewardguided refinement method, and RewardDPO, a training-time preference optimization approach using reward-aligned layout pairs. To evaluate model performance, we introduce SMARTEdit-Bench, a benchmark covering multi-domain, cascading edit scenarios. SMART-Editor outperforms strong baselines like InstructPix2Pix and HIVE, with RewardDPO achieving up to 15% gains in structured settings and Reward-Refine showing advantages on natural images. Automatic and human evaluations confirm the value of reward-guided planning in producing semantically consistent and visually aligned edits.

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SMART-Editor 跨领域编辑 布局优化 内容编辑
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