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Design and validation of a high-order weighted-frequency fourier linear combiner-based Kalman filter for parkinsonian tremor estimation

机译:基于高阶加权频率傅里叶线性组合器的帕曼森氏震颤估计的设计和验证

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The design of a tremor estimator is an important part of designing mechanical tremor suppression orthoses. A number of tremor estimators have been developed and applied with the assumption that tremor is a mono-frequency signal. However, recent experimental studies have shown that Parkinsonian tremor consists of multiple frequencies, and that the second and third harmonics make a large contribution to the tremor. Thus, the current estimators may have limited performance on estimation of the tremor harmonics. In this paper, a high-order tremor estimation algorithm is proposed and compared with its lower-order counterpart and a widely used estimator, the Weighted-frequency Fourier Linear Combiner (WFLC), using 18 Parkinsonian tremor data sets. The results show that the proposed estimator has better performance than its lower-order counterpart and the WFLC. The percentage estimation accuracy of the proposed estimator is 85±2.9%, an average improvement of 13% over the lower-order counterpart. The proposed algorithm holds promise for use in wearable tremor suppression devices.
机译:震颤估计器的设计是设计机械震颤抑制矫形器的重要部分。在震颤是单频信号的假设下,已经开发并应用了许多震颤估计器。但是,最近的实验研究表明,帕金森氏震颤由多个频率组成,并且二次谐波和三次谐波对震颤起很大作用。因此,当前估计器在震颤谐波的估计上可能具有有限的性能。本文提出了一种高阶震颤估计算法,并与它的低阶震颤估计算法和使用18个帕金森震颤数据集的广泛使用的估计器加权频率傅里叶线性组合器(WFLC)进行了比较。结果表明,所提出的估计器比其低阶估计器和WFLC具有更好的性能。提出的估计器的百分比估计精度为85±2.9%,比低阶估计器平均提高13%。提出的算法有望在可穿戴式震颤抑制设备中使用。

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