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Statistical characterization of actigraphy data during sleep and wakefulness states

机译:睡眠和清醒状态下的书法数据的统计表征

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Human activity can be measured with actimetry sensors used by the subjects in several locations such as the wrists or legs. Actigraphy data is used in different contexts such as sports training or tele-medicine monitoring. In the diagnosis of sleep disorders, the actimetry sensor, which is basically a 3D axis accelerometer, is used by the patient in the non dominant wrist typically during an entire week. In this paper the actigraphy data is described by a weighted mixture of two distributions where the weight evolves along the day according to the patient circadian cycle. Thus, one of the distributions is mainly associated with the wakefulness state while the other is associated with the sleep state. Actigraphy data, acquired from 20 healthy patients and manually segmented by trained technicians, is used to characterize the acceleration magnitude during sleep and wakefulness states. Several mixture combinations are tested and statistically validated with conformity measures. It is shown that both distributions can co-exist at a certain time with varying importance along the circadian cycle.
机译:可以使用受试者在多个位置(例如手腕或腿部)使用的静电感应传感器来测量人类活动。书法数据被用于不同的场合,例如运动训练或远程医疗监控。在睡眠障碍的诊断中,患者通常在整个一周内都使用非主要腕部的活动量传感器(基本上是3D轴加速度计)。在本文中,书法记录数据是由两种分布的加权混合来描述的,其中权重根据患者的昼夜节律周期在一天中变化。因此,分布之一主要与清醒状态相关,而另一分布与睡眠状态相关。从20名健康患者那里获得的书法数据,并由经过培训的技术人员进行手动分割,用于表征睡眠和清醒状态下的加速度幅度。测试了几种混合物组合,并通过一致性度量进行了统计验证。结果表明,两种分布可以在某个时间以昼夜节律周期的不同重要性共存。

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