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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A Novel Short-Time Fourier Transform-Based Fall Detection Algorithm Using 3-Axis Accelerations
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A Novel Short-Time Fourier Transform-Based Fall Detection Algorithm Using 3-Axis Accelerations

机译:一种基于短时傅立叶变换的三轴加速度跌倒检测算法

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The short-time Fourier transform- (STFT-) based algorithm was suggested to distinguish falls from various activities of daily living (ADLs). Forty male subjects volunteered in the experiments including three types of falls and four types of ADLs. An inertia sensor unit attached to the middle of two anterior superior iliac spines was used to measure the 3-axis accelerations at 100 Hz. The measured accelerations were transformed to signal vector magnitude values to be analyzed using STFT. The powers of low frequency components were extracted, and the fall detection was defined as whether the normalized power was less than the threshold (50% of the normal power). Most power was observed at the frequency band lower than 5 Hz in all activities, but the dramatic changes in the power were found only in falls. The specificity of 1–3 Hz frequency components was the best (100%), but the sensitivity was much smaller compared with 4 Hz component. The 4 Hz component showed the best fall detection with 96.9% sensitivity and 97.1% specificity. We believe that the suggested algorithm based on STFT would be useful in the fall detection and the classification from ADLs as well.
机译:提出了基于短时傅立叶变换(STFT-)的算法,以区分瀑布与日常生活的各种活动(ADL)。 40名男性受试者自愿参加了实验,包括三种跌倒类型和四种ADL。惯性传感器单元连接到两个terior前棘的中间,用于测量100 Hz时的3轴加速度。将测得的加速度转换为信号矢量幅度值,然后使用STFT进行分析。提取低频分量的功率,并且将跌倒检测定义为归一化功率是否小于阈值(正常功率的50%)。在所有活动中,观察到的大多数功率都在低于5 Hz的频带上,但是仅在跌落时才发现功率的急剧变化。 1-3Hz频率分量的特异性最高(100%),但灵敏度比4Hz分量小得多。 4 Hz分量以96.9%的灵敏度和97.1%的特异性显示出最佳的跌落检测。我们认为,基于STFT的建议算法也将在跌倒检测以及ADL分类中很有用。

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