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MULTIPLE ORGAN FAILURE DIAGNOSIS USING ADVERSE EVENTS AND NEURAL NETWORKS

机译:使用不良事件和神经网络的多器官失败诊断

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In the past years, the Clinical Data Mining arena has suffered a remarkable development, where intelligent data analysis tools, such as Neural Networks, have been successfully applied in the design of medical systems. In this work, Neural Networks are applied to the prediction of organ dysfunction in Intensive Care Units. The novelty of this approach comes from the use of adverse events, which are triggered from four bedside alarms, being achieved an overall predictive accuracy of 70%.
机译:在过去几年中,临床数据挖掘竞技场遭遇了显着的发展,其中智能数据分析工具(如神经网络)已成功应用于医疗系统的设计。在这项工作中,神经网络应用于重症监护单元中器官功能障碍的预测。这种方法的新颖性来自使用不良事件,这是从四个床头警报触发的不良事件,实现了70%的总体预测准确性。

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