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Bridging the gap between real-life data and simulated data by providing a highly realistic fall dataset for evaluating camera-based fall detection algorithms

机译:通过提供高度逼真的跌倒数据集来评估基于相机的跌倒检测算法弥合现实数据与模拟数据之间的差距

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摘要

Fall incidents are an important health hazard for older adults. Automatic fall detection systems can reduce the consequences of a fall incident by assuring that timely aid is given. The development of these systems is therefore getting a lot of research attention. Real-life data which can help evaluate the results of this research is however sparse. Moreover, research groups that have this type of data are not at liberty to share it. Most research groups thus use simulated datasets. These simulation datasets, however, often do not incorporate the challenges the fall detection system will face when implemented in real-life. In this Letter, a more realistic simulation dataset is presented to fill this gap between real-life data and currently available datasets. It was recorded while re-enacting real-life falls recorded during previous studies. It incorporates the challenges faced by fall detection algorithms in real life. A fall detection algorithm from Debard et al. was evaluated on this dataset. This evaluation showed that the dataset possesses extra challenges compared with other publicly available datasets. In this Letter, the dataset is discussed as well as the results of this preliminary evaluation of the fall detection algorithm. The dataset can be downloaded from .
机译:坠落事故是老年人的重要健康危害。自动跌倒检测系统可以通过确保及时提供帮助来减少跌倒事件的后果。因此,这些系统的开发引起了很多研究关注。但是,可以帮助评估这项研究结果的真实数据很少。此外,拥有此类数据的研究小组也没有分享这些数据的自由。因此,大多数研究小组使用模拟数据集。但是,这些模拟数据集通常未包含跌落检测系统在现实环境中实施时将面临的挑战。在这封信中,提出了一个更现实的模拟数据集,以填补现实数据与当前可用数据集之间的空白。它是在重演以前的研究中记录的重演现实跌倒时记录下来的。它融合了现实生活中跌倒检测算法所面临的挑战。 Debard等人的跌倒检测算法。在此数据集上进行了评估。该评估表明,与其他公开可用的数据集相比,该数据集还面临其他挑战。在这封信中,讨论了数据集以及该跌倒检测算法的初步评估结果。数据集可以从下载。

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