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Aria: An Open Multimodal Native Mixture-of-Experts Model

About

Information comes in diverse modalities. Multimodal native AI models are essential to integrate real-world information and deliver comprehensive understanding. While proprietary multimodal native models exist, their lack of openness imposes obstacles for adoptions, let alone adaptations. To fill this gap, we introduce Aria, an open multimodal native model with best-in-class performance across a wide range of multimodal, language, and coding tasks. Aria is a mixture-of-expert model with 3.9B and 3.5B activated parameters per visual token and text token, respectively. It outperforms Pixtral-12B and Llama3.2-11B, and is competitive against the best proprietary models on various multimodal tasks. We pre-train Aria from scratch following a 4-stage pipeline, which progressively equips the model with strong capabilities in language understanding, multimodal understanding, long context window, and instruction following. We open-source the model weights along with a codebase that facilitates easy adoptions and adaptations of Aria in real-world applications.

Dongxu Li, Yudong Liu, Haoning Wu, Yue Wang, Zhiqi Shen, Bowen Qu, Xinyao Niu, Fan Zhou, Chengen Huang, Yanpeng Li, Chongyan Zhu, Xiaoyi Ren, Chao Li, Yifan Ye, Peng Liu, Lihuan Zhang, Hanshu Yan, Guoyin Wang, Bei Chen, Junnan Li• 2024

Related benchmarks

TaskDatasetResultRank
Mathematical ReasoningMATH
Accuracy50.8
643
Instruction FollowingMT-Bench
MT-Bench Score8.53
189
Text-based Visual Question AnsweringTextVQA (val)
Accuracy81.1
146
Long Video UnderstandingLongVideoBench (val)
Accuracy63
139
Mathematical ReasoningMathVista mini (test)
Accuracy66.1
67
Chart UnderstandingChartQA (test)
Accuracy86.4
52
CodingHumanEval
Pass@173.2
52
ReasoningARC Challenge
Accuracy91
45
Document UnderstandingDocVQA (test)
Accuracy92.6
39
Long-context video understandingLongVideoBench (test)
Accuracy65.3
28
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Other info

Code

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