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StreamingBench

Introduced by Junming Lin et al. in StreamingBench: Assessing the Gap for MLLMs to Achieve Streaming Video Understanding6 Nov 2024 archive 2025-07-28

StreamingBench evaluates Multimodal Large Language Models (MLLMs) in real-time, streaming video understanding tasks. 🌟

🎞️ Overview As MLLMs continue to advance, they remain largely focused on offline video comprehension, where all frames are pre-loaded before making queries. However, this is far from the human ability to process and respond to video streams in real-time, capturing the dynamic nature of multimedia content. To bridge this gap, StreamingBench introduces the first comprehensive benchmark for streaming video understanding in MLLMs.

Key Evaluation Aspects 🎯 Real-time Visual Understanding: Can the model process and respond to visual changes in real-time? 🔊 Omni-source Understanding: Does the model integrate visual and audio inputs synchronously in real-time video streams? 🎬 Contextual Understanding: Can the model comprehend the broader context within video streams? Dataset Statistics 📊 900 diverse videos 📝 4,500 human-annotated QA pairs ⏱️ Five questions per video at different timestamps

Benchmarks archive 2025-07-28

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Papers archive 2025-07-28

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Dataset loaders archive 2025-07-28

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Tasks archive 2025-07-28

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License archive 2025-07-28

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Modalities archive 2025-07-28

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Languages archive 2025-07-28

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Variants archive 2025-07-28

  • StreamingBench

1 variant name, as the archive lists them.

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