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license: apache-2.0 |
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# EOC-Bench : Can MLLMs Identify, Recall, and Forecast Objects in an Egocentric World? |
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<div align=left> |
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[](https://arxiv.org/abs/2506.05287) |
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[](https://github.com/alibaba-damo-academy/EOCBench/) |
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[](https://circleradon.github.io/EOCBench/) |
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[](https://circleradon.github.io/EOCBench/#leaderboard) |
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## π Overview |
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we introduce <strong>EOC-Bench</strong>, an innovative benchmark designed to systematically evaluate object-centric embodied cognition in dynamic egocentric scenarios. |
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Specially, <strong>EOC-Bench</strong> features 3,277 meticulously annotated QA pairs categorized into three temporal categories: Past, Present, and Future, covering 11 fine-grained evaluation dimensions and 3 visual object referencing types. |
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To ensure thorough assessment, we develop a mixed-format human-in-the-loop annotation framework with four types of questions and design a novel multi-scale temporal accuracy metric for open-ended temporal evaluation. |
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<p align="center"> |
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<img src="https://cdn-uploads.huggingface.co/production/uploads/64a3fe3dde901eb01df12398/gJb0lE0mi6EskZQ8H0Qsm.png" width="100%" style="margin-bottom: 0.2;"/> |
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<p> |
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## π Tasks Definition |
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EOC-Bench structures questions into three temporally grounded categories: **Past, Present, and Future**, with a total of **11** categories. |
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### π Evaluation |
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Please see our [GitHub](https://github.com/alibaba-damo-academy/EOCBench/). |