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Application of Evolutionary Fuzzy Cognitive Maps for Prediction of Pulmonary Infections

机译:进化模糊认知图在肺部感染预测中的应用

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摘要

In this paper, a new evolutionary-based fuzzy cognitive map (FCM) methodology is proposed to cope with the forecasting of the patient states in the case of pulmonary infections. The goal of the research was to improve the efficiency of the prediction. This was succeeded with a new data fuzzification procedure for observables and optimization of gain of transformation function using the evolutionary learning for the construction of FCM model. The approach proposed in this paper was validated using real patient data from internal care unit. The results emerged had less prediction errors for the examined data records than those produced by the conventional genetic-based algorithmic approaches.
机译:在本文中,提出了一种新的基于进化的模糊认知图(FCM)方法,以应对肺部感染情况下的患者状态预测。研究的目的是提高预测的效率。这是通过针对可观察物的新数据模糊化程序以及使用进化学习构建FCM模型的变换函数增益优化而成功完成的。本文提出的方法已使用来自内部护理部门的真实患者数据进行了验证。出现的结果对检查的数据记录的预测误差比常规的基于遗传的算法方法产生的预测误差少。

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