Papers › MIGE: A Unified Framework for Multimodal Instruction-Based Image Generation and Editing

MIGE: A Unified Framework for Multimodal Instruction-Based Image Generation and Editing

28 Feb 2025arXiv:2502.21291archive 2025-07-28

Xueyun Tian, Wei Li, Bingbing Xu, Yige Yuan, Yuanzhuo Wang, HuaWei Shen

Despite significant progress in diffusion-based image generation, subject-driven generation and instruction-based editing remain challenging. Existing methods typically treat them separately, struggling with limited high-quality data and poor generalization. However, both tasks require capturing complex visual variations while maintaining consistency between inputs and outputs. Therefore, we propose MIGE, a unified framework that standardizes task representations using multimodal instructions. It treats subject-driven generation as creation on a blank canvas and instruction-based editing as modification of an existing image, establishing a shared input-output formulation. MIGE introduces a novel multimodal encoder that maps free-form multimodal instructions into a unified vision-language space, integrating visual and semantic features through a feature fusion mechanism. This unification enables joint training of both tasks, providing two key advantages: (1) Cross-Task Enhancement: By leveraging shared visual and semantic representations, joint training improves instruction adherence and visual consistency in both subject-driven generation and instruction-based editing. (2) Generalization: Learning in a unified format facilitates cross-task knowledge transfer, enabling MIGE to generalize to novel compositional tasks, including instruction-based subject-driven editing. Experiments show that MIGE excels in both subject-driven generation and instruction-based editing while setting a state-of-the-art in the new task of instruction-based subject-driven editing. Code and model have been publicly available at https://github.com/Eureka-Maggie/MIGE.

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compute_cosine_distance eureka-maggie/mige/infer_scripts/edit.py official repository ran · violated contract fingerprinted AGPL-3.0 (copyleft) · pointer only · 5ee56a4cbe4e7318 · report
resize_with_padding eureka-maggie/mige/infer_scripts/subject/MIGE_subject_infer.py official repository ran · our draft was wrong AGPL-3.0 (copyleft) · pointer only · dffe7ac3c59d89ee · report
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Image GenerationTransfer Learning

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