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Predictive data mining on monitoring data from the intensive care unit

机译:根据重症监护室的监测数据进行预测性数据挖掘

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摘要

The widespread implementation of computerized medical files in intensive care units (ICUs) over recent years has made available large databases of clinical data for the purpose of developing clinical prediction models. The typical intensive care unit has several information sources from which data is electronically collected as time series of varying time resolutions. We present an overview of research questions studied in the ICU setting that have been addressed through the automatic analysis of these large databases. We focus on automatic learning methods, specifically data mining approaches for predictive modeling based on these time series of clinical data. On the one hand we examine short and medium term predictions, which have as ultimate goal the development of early warning or decision support systems. On the other hand we examine long term outcome prediction models and evaluate their performance with respect to established scoring systems based on static admission and demographic data.
机译:近年来,在重症监护病房(ICU)中广泛使用计算机化医疗文件,已经为建立临床预测模型提供了大量的临床数据数据库。典型的重症监护病房有多个信息源,可从这些信息源中以电子方式收集数据,作为时间分辨率不同的时间序列。我们概述了在ICU环境中研究的研究问题,这些问题已通过对这些大型数据库的自动分析得以解决。我们专注于自动学习方法,特别是基于这些临床数据时间序列的用于预测建模的数据挖掘方法。一方面,我们研究了短期和中期的预测,这些预测的最终目标是开发预警或决策支持系统。另一方面,我们检查了长期结果预测模型,并根据静态入场和人口统计数据评估了它们相对于已建立的评分系统的绩效。

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