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Your Body Defines Your Fall Detection System: A Somatotype-based Feature Selection Method

机译:您的身体定义了您的秋季检测系统:基于躯体的特征选择方法

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Fall detection for the elderly is in great demand in order to mitigate the effect of falls. As fall detection system is a safety shield on which people's lives depend, high detection sensitivity is always the pursuit of fall detection system. Previous works prove that the sensitivity is correlated to the type of detection features. But generating personalized optimal detection features is difficult due to its high computation complexity. In this paper, we propose a somatotype-based feature selection method which can give user's optimal features without extra cost. Based on the finding that user's optimal detection features can be determined by their somatotype features (i.e., height and body mass index), we partition all users into different clusters according to their somatotype features and calculate the optimal features for each cluster. Several experiments prove that feature selection carried on somatotype based group can increase the detection accuracy effectively.
机译:为了减轻瀑布的效果,对老年人进行跌倒检测。随着秋季检测系统是一种人们生活所依赖的安全屏蔽,高检测灵敏度始终是追求跌落检测系统。以前的作品证明了灵敏度与检测特征的类型相关。但是由于其高计算复杂性,因此难以产生个性化的最佳检测特征。在本文中,我们提出了一种基于躯体的特征选择方法,可以提供用户的最佳功能,而无需额外的成本。基于用户的最佳检测特征可以通过其躯体型特征(即,高度和体重指数)来确定用户的最佳检测特征,我们根据躯体型特征将所有用户分区为不同的群集,并计算每个群集的最佳功能。几个实验证明,在躯体型基团上携带的特征选择可以有效地提高检测精度。

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