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Enhanced Decision Support Systems in Intensive Care Unit Based on Intuitionistic Fuzzy Sets

机译:基于直觉模糊集的重症监护病房增强决策支持系统

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摘要

In areas of medical diagnosis and decision-making, several uncertainty and ambiguity shrouded situations are most often imposed. In this regard, one may well assume that intuitionistic fuzzy sets (IFS) should stand as a potent technique useful for demystifying associated with the real healthcare decision-making situations. To this end, we are developing a prototype model helpful for detecting the patients risk degree in Intensive Care Unit (ICU). Based on the intuitionistic fuzzy sets, dubbed Medical Intuitionistic Fuzzy Expert Decision Support System (MIFEDSS), the shown work has its origins in the Modified Early Warning Score (MEWS) standard. It is worth noting that the proposed prototype effectiveness validation is associated through a real case study test at the Polyclinic ESSALEMA cited in Sfax, Tunisia. This paper does actually provide some practical initial results concerning the system as carried out in real life situations. Indeed, the proposed system turns out to prove that the MIFEDSS does actually display an imposing capability for an established handily ICU related uncertainty issues. The performance of the prototypes is compared with the MEWS standard which exposed that the IFS application appears to perform highly better in deferring accuracy than the expert MEWS score with higher degrees of sensitivity and specificity being recorded.
机译:在医学诊断和决策领域,通常会出现几种不确定性和含糊不清的情况。在这方面,很可能会认为直觉模糊集(IFS)应该是一种有效的技术,可用于与实际医疗保健决策情况相关的神秘化。为此,我们正在开发一个原型模型,该模型有助于检测加护病房(ICU)中的患者风险程度。基于被称为医学直觉模糊专家决策支持系统(MIFEDSS)的直觉模糊集,所显示的工作起源于修改后的预警得分(MEWS)标准。值得注意的是,拟议的原型有效性验证是通过在突尼斯的斯法克斯引用的Polyclinic ESSALEMA进行的实际案例研究测试进行的。实际上,本文确实提供了有关该系统的一些实际初步结果,这些结果是在现实生活中执行的。实际上,所提出的系统证明了MIFEDSS确实显示了对已建立的与ICU相关的不确定性问题的强大能力。将原型的性能与MEWS标准进行了比较,该标准暴露出IFS应用程序在延期准确性方面的表现优于专家MEWS分数,并记录了更高的敏感性和特异性。

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  • 来源
    《Advances in fuzzy systems》 |2017年第2017期|7371634.1-7371634.8|共8页
  • 作者单位

    National School of Engineers (ENIS), REsearch Groups on Intelligent Machines (KEGIM), BP 1173, 3038 Sfax, Tunisia;

    National School of Engineers (ENIS), REsearch Groups on Intelligent Machines (KEGIM), BP 1173, 3038 Sfax, Tunisia;

    National School of Engineers (ENIS), REsearch Groups on Intelligent Machines (KEGIM), BP 1173, 3038 Sfax, Tunisia;

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