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A Novel Walking Detection and Step Counting Algorithm Using Unconstrained Smartphones

机译:使用无约束智能手机的新型步行检测和步数计算算法

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摘要

Recently, with the development of artificial intelligence technologies and the popularity of mobile devices, walking detection and step counting have gained much attention since they play an important role in the fields of equipment positioning, saving energy, behavior recognition, etc. In this paper, a novel algorithm is proposed to simultaneously detect walking motion and count steps through unconstrained smartphones in the sense that the smartphone placement is not only arbitrary but also alterable. On account of the periodicity of the walking motion and sensitivity of gyroscopes, the proposed algorithm extracts the frequency domain features from three-dimensional (3D) angular velocities of a smartphone through FFT (fast Fourier transform) and identifies whether its holder is walking or not irrespective of its placement. Furthermore, the corresponding step frequency is recursively updated to evaluate the step count in real time. Extensive experiments are conducted by involving eight subjects and different walking scenarios in a realistic environment. It is shown that the proposed method achieves the precision of 93.76% and recall of 93.65% for walking detection, and its overall performance is significantly better than other well-known methods. Moreover, the accuracy of step counting by the proposed method is 95.74%, and is better than both of the several well-known counterparts and commercial products.
机译:近年来,随着人工智能技术的发展和移动设备的普及,步行检测和步数计算在设备定位,节能,行为识别等领域发挥了重要作用,因此备受关注。提出了一种新颖的算法,可以同时检测步行运动并计算不受约束的智能手机的步数,因为智能手机的放置不仅是任意的,而且是可变的。考虑到步行运动的周期性和陀螺仪的灵敏度,提出的算法通过FFT(快速傅立叶变换)从智能手机的三维(3D)角速度中提取频域特征,并识别其持有者是否在行走不论其位置如何。此外,递归更新相应的步频以实时评估步数。通过在现实环境中涉及八个对象和不同的步行场景进行广泛的实验。结果表明,所提出的方法在步行检测中达到了93.76%的精度和93.65%的查全率,其总体性能明显优于其他知名方法。此外,所提出的方法的步数计数的准确度为95.74%,并且优于几个知名的同类产品和商业产品。

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