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Dynamically Personalized Detection of Hemorrhage

机译:动态个性化检测出血

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Rapid detection of hemorrhage is of major interest to the critical care community, enabling clinicians to take swift actions to mitigate adverse outcomes. In this paper, we describe a model that allows rapid detection of the onset of hemorrhage by monitoring the Central Venous Pressure (CVP). As opposed to prior work in the domain, our model does not rely on prior availability of a stable physiology of a patient as a baseline of reference, and it makes generative assumptions on the monitored vital sign. This allows for rapid on-the-fly personalization to a previously unseen patient’s physiology. This property makes the proposed approach particularly relevant to e.g. trauma care and other scenarios where reference hemodynamic data may not be readily available for any new patient. We compare our model against strong discriminative alternatives and demonstrate its potential utility through empirical evaluation.
机译:快速检测出血是关键护理界的主要兴趣,使临床医生能够采取迅速的行动来减轻不利的结果。在本文中,我们描述了一种允许通过监测中心静脉压力(CVP)来快速检测出血发作的模型。与现有域名的工作相反,我们的模型不依赖于患者稳定的生理学作为参考基线的稳定生理学,并且它对被监测的生命体征作出生成的假设。这允许快速地播出以前看不见的患者的生理学。该属性使得提出的方法特别相关。创伤护理和其他方案,其中参考血液动力学数据可能无法随时可用任何新患者。我们将我们的模型与强大的歧视性替代品进行比较,并通过实证评估展示其潜在的效用。

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