应用模糊分类器预测急性呼吸衰竭

Fatema Khalaf, Subhashini S. Baskaran
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引用次数: 0

摘要

急性呼吸衰竭(ARF)是一种影响呼吸系统并导致其功能障碍的严重疾病,如果诊断不当,会导致高发病率和死亡率。早期识别ARF至关重要,因为它能够及时提供医疗护理。疾病预测具有多种功能,从早期有效的医疗干预到挽救生命和改善生活质量。提出了一种基于监督神经网络的模糊逻辑急性呼吸衰竭患者分类方法。该模型的准确率达到了97.7%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predicting Acute Respiratory Failure Using Fuzzy Classifier
Acute Respiratory Failure (ARF) is a critical condition that affects the respiratory system and causes it to malfunction, leading to high rates of morbidity and fatality when improperly diagnosed. Early ARF identification is essential because it enables prompt medical care. Disease prediction serves a variety of functions, from early, effective medical intervention to lifesaving and quality-of-life improvements. Fuzzy logic-based classification method for acute respiratory failure patients using a supervised neural network technique was introduced in this paper. The proposed model has achieved 97.7% accuracy.
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