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A method for removal of low frequency components associated with head movements from dual-axis swallowing accelerometry signals

机译:一种从双轴吞咽加速度计信号中去除与头部运动相关的低频成分的方法

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摘要

Head movements can greatly affect swallowing accelerometry signals. In this paper, we implement a spline-based approach to remove low frequency components associated with these motions. Our approach was tested using both synthetic and real data. Synthetic signals were used to perform a comparative analysis of the spline-based approach with other similar techniques. Real data, obtained data from 408 healthy participants during various swallowing tasks, was used to analyze the processing accuracy with and without the spline-based head motions removal scheme. Specifically, we analyzed the segmentation accuracy and the effects of the scheme on statistical properties of these signals, as measured by the scaling analysis. The results of the numerical analysis showed that the spline-based technique achieves a superior performance in comparison to other existing techniques. Additionally, when applied to real data, we improved the accuracy of the segmentation process by achieving a 27% drop in the number of false negatives and a 30% drop in the number of false positives. Furthermore, the anthropometric trends in the statistical properties of these signals remained unaltered as shown by the scaling analysis, but the strength of statistical persistence was significantly reduced. These results clearly indicate that any future medical devices based on swallowing accelerometry signals should remove head motions from these signals in order to increase segmentation accuracy. © 2012 Sejdić et al.
机译:头部运动会极大地影响吞咽加速度计信号。在本文中,我们实现了一种基于样条的方法来删除与这些运动相关的低频分量。我们的方法已使用综合数据和真实数据进行了测试。合成信号用于与其他类似技术对基于样条的方法进行比较分析。真实数据是在各种吞咽任务期间从408名健康参与者那里获得的数据,用于分析有无基于样条的头部运动消除方案时的处理精度。具体来说,我们分析了分割精度以及该方案对这些信号的统计属性的影响,这是通过缩放分析来衡量的。数值分析结果表明,与其他现有技术相比,基于样条的技术具有更高的性能。此外,当应用于真实数据时,我们通过使假阴性的数量减少了27%,并使假阳性的数量减少了30%,提高了细分过程的准确性。此外,如比例分析所示,这些信号的统计特性的人体测量趋势保持不变,但统计持久性的强度却大大降低了。这些结果清楚地表明,未来任何基于吞咽加速度计信号的医疗设备都应从这些信号中消除头部运动,以提高分割精度。 ©2012Sejdić等人。

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    Sejdić E; Steele CM; Chau T;

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  • 年度 2012
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  • 正文语种 en
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