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On-line adaptive trend extraction of multiple physiological signals for alarm filtering in intensive care units

机译:重症监护病房的多种生理信号在线自适应趋势提取,用于报警过滤

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This paper presents an alarm validation system dedicated to patient monitoring in intensive care units (ICU). Several physiological signals are continuously acquired and an on-line trend extraction method is implemented for each one. A trend is a succession of contiguous semi-quantitative episodes, expressing the time evolution of a signal with several symbols. The difference between the trend and the signal is considered as a residual. In this paper, trend extraction is based on several thresholds that are adapted on-line, following the signal variations. Multivariate change indices are further deduced from the trends and the residuals. They provide an indication of changes to patient hemodynamic and respiratory state. An alarm validation system based on these indices is then proposed, which uses fuzzy decision making. Whenever a monitoring system sets off an alarm, the system proposed carries out a backward analysis of the physiological variables monitored. The system enables various policies to be implemented: filtering of false alarms due to artifacts, confirmation of true alarms due to a patient state change. The system was tested on more than 50 h of data recorded on adult patients in an ICU unit, when 105SpO_2 alarms were set off by a fixed threshold alarm system. The comparison between the decision made on-line by the validation system and the decision made by a medical expert for each of these alarms showed that the system is able to recognize 100% of true alarms and filter 50-80% of false alarms.
机译:本文提出了一种警报验证系统,专用于重症监护病房(ICU)中的患者监测。连续获取几个生理信号,并为每个信号实施一种在线趋势提取方法。趋势是连续的半定量情节的连续过程,用几个符号表示信号的时间演变。趋势和信号之间的差异被视为残差。在本文中,趋势提取是基于随信号变化在线调整的几个阈值。从趋势和残差中进一步推导出多元变化指数。它们提供了患者血液动力学和呼吸状态变化的指示。然后提出了基于这些指标的警报验证系统,该系统使用模糊决策。每当监视系统发出警报时,建议的系统都会对监视的生理变量进行反向分析。该系统可以实施各种策略:过滤因伪影而引起的虚假警报,确认由于患者状态变化而引起的虚假警报。当通过固定阈值警报系统触发105SpO_2警报时,该系统在ICU单元中对成年患者记录的50多个数据上进行了测试。验证系统在线做出的决策与医学专家针对每种警报做出的决策之间的比较表明,该系统能够识别100%的真实警报并过滤50-80%的虚假警报。

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