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首页> 外文期刊>Journal of clinical monitoring and computing >Specificity improvement for network distributed physiologic alarms based on a simple deterministic reactive intelligent agent in the critical care environment.
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Specificity improvement for network distributed physiologic alarms based on a simple deterministic reactive intelligent agent in the critical care environment.

机译:重症监护环境中基于简单确定性反应智能代理的网络分布式生理警报的特异性改进。

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Automated physiologic alarms are available in most commercial physiologic monitors. However, due to the variability of data coming from the physiologic sensors describing the state of patients, false positive alarms frequently occur. Each alarm requires review and documentation, which consumes clinicians' time, may reduce patient safety through 'alert fatigue' and makes automated physician paging infeasible. To address these issues a computerized architecture based on simple reactive intelligent agent technology has been developed and implemented in a live critical care unit to facilitate the investigation of deterministic algorithms for the improvement of the sensitivity and specificity of physiologic alarms. The initial proposed algorithm uses a combination of median filters and production rules to make decisions about what alarms to generate. The alarms are used to classify the state of patients and alerts can be easily viewed and distributed using standard network, SQL database and Internet technologies. To evaluate the proposed algorithm, a 28 day study was conducted in the University of Michigan Medical Center's 14 bed Cardiothoracic Intensive Care Unit. Alarms generated by patient monitors, the intelligent agent and alerts documented on patient flow sheets were compared. Significant improvements in the specificity of the physiologic alarms based on systolic and mean blood pressure was found on average to be 99% and 88% respectively. Even through significant improvements were noted based on this algorithm much work still needs to be done to ensure the sensitivity of alarms and methods to handle spurious sensor data due to patient or sensor movement and other influences.
机译:在大多数商用生理监护仪中都可以使用自动生理警报。然而,由于来自描述患者状态的生理传感器的数据的可变性,经常会发生假阳性警报。每个警报都需要进行审查和记录,这会浪费临床医生的时间,可能通过“警报疲劳”降低患者的安全性,并使自动医师分页不可行。为了解决这些问题,已经开发了一种基于简单反应智能代理技术的计算机化体系结构,并在现场危重病监护室中实施了该体系结构,以促进对确定性算法的研究,以提高生理警报的敏感性和特异性。最初提出的算法使用中值滤波器和生产规则的组合来决定要生成哪些警报。警报用于对患者状态进行分类,并且可以使用标准网络,SQL数据库和Internet技术轻松查看和分发警报。为了评估提出的算法,在密歇根大学医学中心的14床心胸重症监护病房进行了28天的研究。比较了由患者监护仪,智能代理和记录在患者流程图上的警报生成的警报。发现基于收缩压和平均血压的生理警报的特异性显着提高,分别平均为99%和88%。即使基于该算法已注意到显着改进,仍需要做大量工作来确保警报和处理因患者或传感器移动以及其他影响而导致的虚假传感器数据的方法的敏感性。

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