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On Computer-Aided Prognosis of Septic Shock from Vital Signs

机译:生命体征对感染性休克的计算机辅助预后

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Sepsis is a life-threatening condition due to the reaction to an infection. With certain changes in circulatory system, sepsis may progress to septic shock if it is left untreated. Therefore, early prognosis of septic shock may facilitate implementing correct treatment and prevent more serious complications. In this study, we assess the feasibility of applying a computer-aided prognosis system for septic shock. The system is envisaged as a tool to predict septic shock at the time of sepsis onset using only vital signs which are collected routinely in intensive care units (ICUs). To this end, we evaluate the performances of computational methods that take the sequence of vital signs acquired until sepsis onset as input and report the possibility of progressing to a septic shock before any further clinical analysis is performed. Results show that an adaptation of multivariate dynamic time warping can reveal higher accuracy than other known time-series classification methods on a new dataset built from a public ICU database. We argue that the use of computational intelligence methods can promote computer-aided prognosis of septic shock in hospitalized environment to a certain degree.
机译:由于对感染的反应,败血症是危及生命的疾病。如果循环系统发生某些变化,败血症如果不及时治疗可能会发展为败血性休克。因此,败血性休克的早期预后可能有助于实施正确的治疗并预防更严重的并发症。在这项研究中,我们评估了针对脓毒性休克应用计算机辅助预后系统的可行性。该系统可作为一种工具,仅使用重症监护病房(ICU)常规收集的生命体征来预测败血症发作时的感染性休克。为此,我们评估了以直到脓毒症发作之前获得的生命体征序列为输入的计算方法的性能,并报告了在进行任何进一步的临床分析之前进展为败血性休克的可能性。结果表明,在从公共ICU数据库构建的新数据集上,对多元动态时间规整的适应可以显示出比其他已知时间序列分类方法更高的准确性。我们认为,使用计算智能方法可以在一定程度上促进计算机辅助感染性休克的住院预后。

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