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Low-frequency accelerations over-estimate impact-related shock during walking

机译:低频加速度高估了步行过程中与冲击有关的冲击

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摘要

During gait, a failure to acknowledge the low-frequency component of a segmental acceleration signal will result in an overestimation of impact-related shock and may lead to inappropriately drawn conclusions. The present study was undertaken to investigate the significance of this low-frequency component in two distinctly different modalities of gait: barefoot (BF) and shod (SHOD) walking. Twenty-seven participants performed five walking trials at self-selected speed in each condition. Peak positive accelerations (PPA) at the shank and spine were first derived from the time-domain signal. The raw acceleration signals were then resolved in the frequency-domain and the active (low-frequency) and impact-related components of the power spectrum density (PSD) were quantified. PPA was significantly higher at the shank (P< 0.0001) and spine (P = 0.0007) in the BF condition. In contrast, no significant differences were apparent between conditions for shank (P = 0.979) or spine (P = 0.178) impact-related PSD when the low-frequency component was considered. This disparity between approaches was due to a significantly higher active PSD in both signals in the BF condition (P< 0.0001; P = 0.008, respectively), due to kinematic differences between conditions (P< 0.05). These results indicate that the amplitude of the low-frequency component of an acceleration signal during gait is dependent on knee and ankle joint coordination behaviour, and highlight that impact-related shock is more accurately quantified in the frequency-domain following subtraction of this component.
机译:在步态期间,如果无法识别分段加速度信号的低频分量,将导致高估与冲击有关的冲击,并可能导致得出不适当的结论。本研究旨在研究这种低频成分在两种截然不同的步态中的重要性:赤脚(BF)和穿鞋(SHOD)步行。二十七名参与者在每种情况下均以自行选择的速度进行了五次步行试验。首先从时域信号得出小腿和脊柱的峰值正加速度(PPA)。然后在频域中解析原始加速度信号,并对功率谱密度(PSD)的活动(低频)和与冲击相关的分量进行量化。在高炉条件下,小腿(P <0.0001)和脊柱(P = 0.0007)的PPA显着更高。相反,当考虑低频分量时,小腿(P = 0.979)或脊柱(P = 0.178)冲击相关PSD的条件之间没有明显差异。两种方法之间的这种差异是由于两个条件下的运动学差异(P <0.05)导致在BF条件下两个信号中的活动PSD显着较高(分别为P <0.0001; P = 0.008)。这些结果表明,步态期间加速度信号的低频分量的幅度取决于膝盖和踝关节的协调行为,并突出表明,在减去该分量后,在频域中可以更准确地量化与冲击相关的冲击。

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