FallTL: A Large-Scale Motion Dataset for Pre-Impact Fall Detection based on Wearable Inertial Sensors
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FallTL is a large-scale motion dataset based on wearable inertial sensors that is suitable for both pre-impact fall detection and post-impact fall detection tasks. It contains data collected from inertial sensors placed on eight body locations, covering 12 types of activities of daily living (ADLs) and 34 types of fall activities. In total, the dataset includes approximately 28.43 hours of motion data. In addition, for each fall activity file, ready-to-use fall labels are provided. Please refer to the README.txt file for more details.
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Zenodo创建时间:
2025-11-07



