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@@ -68,15 +68,15 @@ InternVL 2.0 is a multimodal large language model series, featuring models of va
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  ### Video Benchmarks
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- | Benchmark | GPT-4V | VILA-1.5 | LLaVA-NeXT-Video | InternVL2-40B | InternVL2-Llama3-76B |
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- | :-------------------------: | :----: | :------: | :--------------: | :-----------: | :------------------: |
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- | Model Size | - | 34B | 34B | 40B | 76B |
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- | | | | | | |
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- | MVBench | - | - | - | 72.5 | 69.6 |
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- | MMBench-Video<sub>8f</sub> | 1.53 | - | - | 1.32 | 1.37 |
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- | MMBench-Video<sub>16f</sub> | 1.68 | - | - | 1.45 | 1.52 |
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- | Video-MME<br>wo subs | 59.9 | 59.0 | 52.0 | TODO | TODO |
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- | Video-MME<br>w/ subs | 63.3 | 59.4 | 54.9 | TODO | TODO |
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  - We evaluate our models on MVBench by extracting 16 frames from each video, and each frame was resized to a 448x448 image.
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@@ -488,15 +488,15 @@ InternVL 2.0 是一个多模态大语言模型系列,包含各种规模的模
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  ### 视频相关评测
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- | 评测数据集 | GPT-4V | VILA-1.5 | LLaVA-NeXT-Video | InternVL2-40B | InternVL2-Llama3-76B |
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- | :-------------------------: | :----: | :------: | :--------------: | :-----------: | :------------------: |
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- | 模型大小 | - | 34B | 34B | 40B | 76B |
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- | | | | | | |
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- | MVBench | - | - | - | 72.5 | 69.6 |
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- | MMBench-Video<sub>8f</sub> | 1.53 | - | - | 1.32 | 1.37 |
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- | MMBench-Video<sub>16f</sub> | 1.68 | - | - | 1.45 | 1.52 |
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- | Video-MME<br>wo subs | 59.9 | 59.0 | 52.0 | TODO | TODO |
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- | Video-MME<br>w/ subs | 63.3 | 59.4 | 54.9 | TODO | TODO |
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  - 我们通过从每个视频中提取16帧来评估我们的模型在MVBench上的性能,每个视频帧被调整为448x448的图像。
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  ### Video Benchmarks
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+ | Benchmark | GPT-4o | GPT-4V | Gemini-Pro-1.5 | InternVL2-40B | InternVL2-Llama3-76B |
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+ | :-------------------------: | :----: | :----: | :------------: | :-----------: | :------------------: |
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+ | Model Size | - | - | - | 40B | 76B |
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+ | | | | | | |
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+ | MVBench | - | - | - | 72.5 | 69.6 |
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+ | MMBench-Video<sub>8f</sub> | 1.62 | 1.53 | 1.30 | 1.32 | 1.37 |
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+ | MMBench-Video<sub>16f</sub> | 1.86 | 1.68 | 1.60 | 1.45 | 1.52 |
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+ | Video-MME<br>wo subs | 71.9 | 59.9 | 75.0 | TODO | TODO |
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+ | Video-MME<br>w/ subs | 77.2 | 63.3 | 81.3 | TODO | TODO |
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  - We evaluate our models on MVBench by extracting 16 frames from each video, and each frame was resized to a 448x448 image.
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  ### 视频相关评测
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+ | 评测数据集 | GPT-4o | GPT-4V | Gemini-Pro-1.5 | InternVL2-40B | InternVL2-Llama3-76B |
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+ | :-------------------------: | :----: | :----: | :------------: | :-----------: | :------------------: |
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+ | 模型大小 | - | - | - | 40B | 76B |
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+ | | | | | | |
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+ | MVBench | - | - | - | 72.5 | 69.6 |
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+ | MMBench-Video<sub>8f</sub> | 1.62 | 1.53 | 1.30 | 1.32 | 1.37 |
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+ | MMBench-Video<sub>16f</sub> | 1.86 | 1.68 | 1.60 | 1.45 | 1.52 |
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+ | Video-MME<br>wo subs | 71.9 | 59.9 | 75.0 | TODO | TODO |
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+ | Video-MME<br>w/ subs | 77.2 | 63.3 | 81.3 | TODO | TODO |
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  - 我们通过从每个视频中提取16帧来评估我们的模型在MVBench上的性能,每个视频帧被调整为448x448的图像。
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