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Short-term prediction of low kidney function in ICU patients

机译:ICU患者低肾功能的短期预测

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Intensive care treatment presents unique challenges in the medical world. When treating patients, their wide variety leave care providers with few past examples to draw on. Instead of operating in a pure knowledge discovery capacity, decision support systems can be developed to help predict short-term and long-term patient outcome, based upon available data. One area in which generalized severity scoring systems have consistently performed poorly is among patients admitted intensive care units (ICU) who then develop acute kidney injury. Urine output is used to guide fluid resuscitation and is one of the criteria for the diagnosis of acute kidney injury. This paper provides an example application for predicting short-term critical kidney function in an intensive care unit. Feature construction is performed to extract important aspects of the clinical evolution of the patient. Feature selection is performed on several patient features. Classifiers based on support vector machines and Takagi-Sugeno fuzzy models are developed to predict short-term drops in patient urine output rate. Both types of models showed comparable results, with an AUC of 78%. This shows potential in using similar classifiers to build an ICU decision support system with the goal of predicting short-term complication in the patient and augment current guidelines by anticipating treatment.
机译:重症监护治疗呈现在医学世界中的独特挑战。治疗患者时,他们的各种各样的留言提供者有很少的例子借鉴。可以开发决策支持系统,而不是以纯粹的知识发现容量运行,而不是基于可用数据来帮助预测短期和长期患者结果。广义严重程度评分系统一直表现不佳的一个领域是患者入学的重症监护单位(ICU),然后产生急性肾损伤。尿杉输出用于引导流体复苏,是急性肾损伤诊断的标准之一。本文提供了一种预测重症监护单元中短期关键肾功能的示例申请。进行特征结构以提取患者的临床演进的重要方面。在几个患者功能上执行特征选择。基于支持向量机和Takagi-Sugeno模糊模型的分类器开发用于预测患者尿量输出率的短期下降。两种类型的模型显示出可比的结果,AUC为78 %。这表明使用类似分类器构建ICU决策支持系统的潜力,其目的是通过预期治疗来预测患者的短期并发症和增强当前指南的目标。

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