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LLaDA-Image: Building Strong Image Generators with Fully Open Training Recipes

Chu-Yan Chen Hao-Xing Chen Kun Chen Zheng-Lin Cheng Long Cui Rui-Shan Fang Zhang-Xuan Gu Zhi-Cheng Huang Zhen-Zhong Lan Yuan-Ting Lei Hao-Quan Li Jian-Guo Li Rong-Chuan Li Si-Du Li Tao Lin De-Yuan Liu Jia-Cheng Liu Lin Liu Yuxuan Lou Zhi-Sheng Lu Yu-Xin Ma Shu-Heng Shen Peng Sun Chao-Yang Wang Hong-Jun Wang Xiao-Mei Wang Yong-Xin Wang Cheng-Zhang Wu Hong-Ru Wu Jun Xie
Sep 2026 · 0 citations
Computer Science

Abstract

We introduce LLaDA-Image, a unified framework that pairs a 6B Diffusion Transformer (DiT) trained from scratch with a frozen vision-language understanding module built on the LLaDA2.0-Mini diffusion language model backbone. Instead of relying heavily on paired image-text data from the beginning, we first build a strong visual generative prior through image-only pre-training and mid-training. The generation pipeline comprises 220M samples, 98 of which are real images. For efficient and scalable optimization, we use parameter-free RMSNorm throughout the DiT together with the Muon optimizer. The resulting unified model produces highly photorealistic images while accurately following fine-grained editing instructions. We further distill LLaDA-Image into LLaDA-Image-Turbo, enabling fast inference in 2-4 sampling steps. On Qwen-Image-Bench, LLaDA-Image achieves overall scores of 53.53 and 53.38 on the English and Chinese tracks, respectively, setting a new state-of-the-art among open-source models on both tracks. To support further research on capable and efficient generative models, we release our model weights, training code, and detailed recipes.

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