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Movement detection with adaptive window length for unobtrusive bed-based pressure-sensor array

机译:具有自适应窗口长度的运动检测,用于不显眼的基于床的压力传感器阵列

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Use of automated and unobtrusive sensors for physiological monitoring has become popular nowadays, since no devices need to be worn by individuals and it does not require any user interaction. However, when bodily movements occur, movement artifacts are introduced which can interfere with the breathing signal. This paper proposes a method to automatically identify movement onset and offset times when using an unobtrusive bed-based pressure-sensor array. This work makes use of a previously developed method for movement detection based on control levels. The novel contribution of this paper is employing an adaptive window length to calculate a moving average and a moving variance, by measuring the distance between two consecutive peaks in the signal which relates to consecutive movements. We also impose a threshold based on the weight and height of an individual to flag true movements and discard false ones. The proposed method is applicable for different postures and breath patterns of the bed occupant. Our experimental results show that the proposed scheme can lead to an average movement detection offset as low as 1.32 second, with no false-positive events and low false-negatives, and it provides significant improvements compared to a previous method.
机译:现在使用自动和不引人注目的传感器进行生理监测已经变得流行,因为个人不需要佩戴设备,并且它不需要任何用户交互。然而,当发生体动时,引入运动伪像,其可以干扰呼吸信号。本文提出了一种在使用不显眼的基于床的压力传感器阵列时自动识别运动开始和偏移时间的方法。这项工作利用先前开发的用于基于控制级别的移动检测方法。本文的新颖贡献采用自适应窗口长度来计算移动平均值和移动方差,通过测量与连续运动有关的信号中的两个连续峰之间的距离。我们还基于个人的重量和高度施加阈值,以标记真正的运动并丢弃错误的。所提出的方法适用于床乘员的不同姿势和呼吸模式。我们的实验结果表明,该方案可导致平均运动检测偏移,低至1.32秒,没有假阳性事件和低误报,而与先前的方法相比,它提供了显着的改进。

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