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Fuzzy logic-based clinical decision support system for the evaluation of renal function in post-Transplant Patients

机译:基于模糊的基于逻辑的临床决策支持系统,用于评估移植后患者的肾功能

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Objectives: In the context of the gradual development of artificial intelligence in health care, the clinical decision support systems (CDSS) play an increasing crucial role in improving the quality of the therapeutic and diagnostic efficiency in health care. The fuzzy logic (FL) provides an effective means for dealing with uncertainties in the health decision-making process; therefore, FL-based CDSS becomes a very powerful tool for data and knowledge management, being able to think like an expert clinician. This work proposes an FL-based CDSS for the evaluation of renal function in posttransplant patients. Method: Based on the data provided by the Department of Nephrology of the University Hospital Federico II of Naples, a statistical sample is selected according to appropriate inclusion criteria. Four fuzzy inference systems are implemented monitoring the renal function by the level of proteinuria and the glomerular filtration rate (GFR). Results: The systems show an accuracy of more than 90% and the outputs are provided through easy to read graphics, so that physicians can intuitively monitor the patient's clinical status, with the objective to improve drugs dosage and reduce medication errors. Conclusions: We propose that the CDSSs for the assessment and follow-up of kidney-transplanted patients built in this study are applicable to clinical practice.
机译:目的:随着人工智能在医疗保健领域的逐步发展,临床决策支持系统(CDSS)在提高医疗保健的治疗和诊断效率方面发挥着越来越重要的作用。模糊逻辑(FL)为处理卫生决策过程中的不确定性提供了有效手段;因此,基于FL的CDS成为数据和知识管理的一个非常强大的工具,能够像临床医生一样思考。这项工作提出了一种基于FL的CDSS,用于评估移植后患者的肾功能。方法:根据那不勒斯大学医院Federico II肾脏科提供的数据,根据适当的纳入标准选择统计样本。四个模糊推理系统通过蛋白尿水平和肾小球滤过率(GFR)监测肾功能。结果:系统的准确率达到90%以上,输出通过易于阅读的图形提供,医生可以直观地监测患者的临床状态,目的是提高药物剂量,减少用药错误。结论:本研究建立的用于肾移植患者评估和随访的CDSS适用于临床实践。

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