A Benchmark Dataset for Event-Guided Human Pose Estimation and Tracking in Extreme Conditions
–Neural Information Processing Systems
Multi-person pose estimation and tracking have been actively researched by the computer vision community due to their practical applicability. However, existing human pose estimation and tracking datasets have only been successful in typical scenarios, such as those without motion blur or with well-lit conditions. These RGB-based datasets are limited to learning under extreme motion blur situations or poor lighting conditions, making them inherently vulnerable to such scenarios.
Neural Information Processing Systems
Mar-27-2025, 14:57:53 GMT
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- Europe > Switzerland > Zürich > Zürich (0.14)
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- Research Report (0.68)
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- Information Technology (0.68)
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