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2025-06-05

SeedEdit 3.0: Fast and High-Quality Generative Image Editing

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摘要

We introduce SeedEdit 3.0, in companion with our T2I model Seedream 3.0, which significantly improves over our previous SeedEdit versions in both aspects of edit instruction following and image content (e.g., ID/IP) preservation on real image inputs. Additional to model upgrading with T2I, in this report, we present several key improvements. First, we develop an enhanced data curation pipeline with a meta-info paradigm and meta-info embedding strategy that help mix images from multiple data sources. This allows us to scale editing data effectively, and meta information is helpfult to connect VLM with diffusion model more closely. Second, we introduce a joint learning pipeline for computing a diffusion loss and reward losses. Finally, we evaluate SeedEdit 3.0 on our testing benchmarks, for real/synthetic image editing, where it achieves a best trade-off between multiple aspects, yielding a high usability rate of 56.1%, compared to SeedEdit 1.6 (38.4%), GPT4o (37.1%) and Gemini 2.0 (30.3%).

作者

Peng Wang, Yichun Shi, Xiaochen Lian, Zhonghua Zhai, Xin Xia, Xuefeng Xiao, Weilin Huang, Jianchao Yang

期刊/会议

arXiv

模型成果
Seed2.0Seedance 2.0Seedream 5.0 LiteSeed LiveInterpret 2.0Seed Realtime VoiceSeed Music
研究团队
LLMInfrastructuresVisionSpeechMultimodal Interaction & World ModelAI for ScienceRoboticsResponsible AI
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模型成果
Seed2.0
Seedance 2.0
Seedream 5.0 Lite
Seed LiveInterpret 2.0
Seed Realtime Voice
Seed Music
研究团队
LLM
Infrastructures
Vision
Speech
Multimodal Interaction & World Model
AI for Science
Robotics
Responsible AI
了解更多
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Seed Edge
Top Seed
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