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Blood Lactate Concentration Prediction in Critical Care

机译:血液乳酸浓度预测批判性护理

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Blood lactate concentration is a reliable risk indicator of deterioration in critical care requiring frequent blood sampling. However, lactate measurement is an invasive procedure that can increase risk of infections. Yet there is no clinical consensus on the frequency of measurements. In response we investigate whether machine learning algorithms can be used to predict blood lactate concentration from ICU health records. We evaluate the performance of different prediction algorithms using a multi-centre critical care dataset containing 13,464 patients. Furthermore, we analyse impact of missing value handling methods in prediction performance for each algorithm. Our experimental analysis show promising results, establishing a baseline for further investigation into this problem.
机译:血液乳酸浓度是需要频繁血液取样的关键护理劣化的可靠风险指标。 然而,乳酸测量是一种可以增加感染风险的侵入性程序。 然而,在测量频率上没有临床共识。 作为回应,我们调查机器学习算法是否可用于预测ICU健康记录的血液乳酸浓度。 我们使用含有13,464名患者的多中心关键护理数据集评估不同预测算法的性能。 此外,我们分析了每种算法预测性能中缺失值处理方法的影响。 我们的实验分析显示了有希望的结果,建立了进一步调查这个问题的基线。

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