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IEA: Amateur-Friendly Conversational Image Editing Agent via Three Stages of Multitask Alignment

About

Current image editing software often hinges on fixed filters or expert tuning, leaving a gap between amateur users' intent and outcomes. Creations by generative models may contain artifacts, implausible details, or stylistic drift away from photorealism and offer little insight into why an edit was made. We propose IEA, a conversational Image Editing Agent that learns to operate parameterized tools in an explicit, interpretable action space. IEA is trained via a three-stage multitask pipeline: (1) SFT on distilled expert edits, (2) GRPO with rewards for likeness improvement, tool usefulness, and intent summarization, and (3) large-scale synthetic fine-tuning to jointly master image editing, refinement, and user intent summarization. By manipulating 16 editing tools step by step, IEA produces transparent edit traces that can be inspected and debugged. In quantitative experiments, it attains a lower pixel distance on the edit task and a higher ROUGE-L on the summary task than strong baselines. In user studies, it ranks best among tool-calling methods for instruction following while surpassing generative methods in overall perceptual quality. Our results validate interpretable, tool-centric VLMs as a reliable path to human instruction-guided image retouching.

Zichen Zhu, Yuheng Sun, Mingxuan Zhu, Wenjie Ma, Situo Zhang, Zhexiang Wang, Ziyue Yang, Danyang Zhang, Kunyao Lan, Zihan Zhao, Dingye Liu, Siqi Xiang, Lu Chen, Kai Yu• 2026

Related benchmarks

TaskDatasetResultRank
Instruction-based Image Editing50 User-study samples
L Score0.13
11
Instruction Following AssessmentGIER 50 user study samples
Rank (A)4.64
8
Image Quality AssessmentGIER 50 user study samples
Rank (B)3.69
8
Instruction-based Image EditingGIER 50 user study samples
L Metric0.128
8
Image-SummaryImage-Summary (test)
Rouge-L0.258
6
Image-EditImage-Edit (test)
L Score0.134
6
Reward Modeling3k-sample reward model (test)
MAE1.1381
4
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