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VideoLLaMA 2: Advancing Spatial-Temporal Modeling and Audio Understanding in Video-LLMs

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In this paper, we present the VideoLLaMA 2, a set of Video Large Language Models (Video-LLMs) designed to enhance spatial-temporal modeling and audio understanding in video and audio-oriented tasks. Building upon its predecessor, VideoLLaMA 2 incorporates a tailor-made Spatial-Temporal Convolution (STC) connector, which effectively captures the intricate spatial and temporal dynamics of video data. Additionally, we integrate an Audio Branch into the model through joint training, thereby enriching the multimodal understanding capabilities of the model by seamlessly incorporating audio cues. Comprehensive evaluations on multiple-choice video question answering (MC-VQA), open-ended video question answering (OE-VQA), and video captioning (VC) tasks demonstrate that VideoLLaMA 2 consistently achieves competitive results among open-source models and even gets close to some proprietary models on several benchmarks. Furthermore, VideoLLaMA 2 exhibits reasonable improvements in audio-only and audio-video question-answering (AQA & OE-AVQA) benchmarks over existing models. These advancements underline VideoLLaMA 2's superior performance in multimodal comprehension, setting a new standard for intelligent video analysis systems. All models are public to facilitate further research.

Zesen Cheng, Sicong Leng, Hang Zhang, Yifei Xin, Xin Li, Guanzheng Chen, Yongxin Zhu, Wenqi Zhang, Ziyang Luo, Deli Zhao, Lidong Bing• 2024

Related benchmarks

TaskDatasetResultRank
Video UnderstandingMVBench
Accuracy62
425
Video Question AnsweringActivityNet-QA
Accuracy50.2
376
Video Question AnsweringMSVD-QA
Accuracy70.9
360
Video Question AnsweringActivityNet-QA (test)
Accuracy50.3
288
Video Question AnsweringMSVD-QA (test)
Accuracy70.9
279
Video UnderstandingVideoMME--
222
Video Question AnsweringEgoSchema (Full)
Accuracy63.9
221
Video Question AnsweringVideoMME
Accuracy47.9
210
Long Video UnderstandingLongVideoBench (val)
Accuracy51.1
210
Video Question AnsweringNExT-QA (test)
Accuracy53.3
204
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