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Baichuan-Omni Technical Report

About

The salient multimodal capabilities and interactive experience of GPT-4o highlight its critical role in practical applications, yet it lacks a high-performing open-source counterpart. In this paper, we introduce Baichuan-omni, the first open-source 7B Multimodal Large Language Model (MLLM) adept at concurrently processing and analyzing modalities of image, video, audio, and text, while delivering an advanced multimodal interactive experience and strong performance. We propose an effective multimodal training schema starting with 7B model and proceeding through two stages of multimodal alignment and multitask fine-tuning across audio, image, video, and text modal. This approach equips the language model with the ability to handle visual and audio data effectively. Demonstrating strong performance across various omni-modal and multimodal benchmarks, we aim for this contribution to serve as a competitive baseline for the open-source community in advancing multimodal understanding and real-time interaction.

Yadong Li, Haoze Sun, Mingan Lin, Tianpeng Li, Guosheng Dong, Tao Zhang, Bowen Ding, Wei Song, Zhenglin Cheng, Yuqi Huo, Song Chen, Xu Li, Da Pan, Shusen Zhang, Xin Wu, Zheng Liang, Jun Liu, Tao Zhang, Keer Lu, Yaqi Zhao, Yanjun Shen, Fan Yang, Kaicheng Yu, Tao Lin, Jianhua Xu, Zenan Zhou, Weipeng Chen• 2024

Related benchmarks

TaskDatasetResultRank
Visual Question AnsweringTextVQA
Accuracy74.3
1285
Multimodal EvaluationMME
Score2.19e+3
658
Video Question AnsweringActivityNet-QA
Accuracy58.6
376
Visual Question AnsweringChartQA
Accuracy79.6
371
Visual Question AnsweringTextVQA (val)
VQA Score74.3
343
OCR EvaluationOCRBench
Score700
329
Multi-discipline Multimodal UnderstandingMMMU
Accuracy47.3
317
Mathematical ReasoningMathVista
Accuracy51.9
257
Video Question AnsweringVideoMME
Accuracy58.2
210
Multimodal Perception and CognitionMME
Overall Score2.19e+3
182
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Other info

Code

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