Perbandingan Logika Fuzzy Metode Sugeno dan Metode Mamdani Untuk Deteksi Dini Penyakit Stroke

D. L. Rahakbauw, Adya Afriananda, H. W. M. Patty
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引用次数: 1

Abstract

Stroke is a neurological function disorder caused by disruption of blood flow in the brain that arises suddenly and acutely within a few seconds or more precisely within a few hours that lasts more than 24 hours with symptoms or signs according to the affected area. Early detection of stroke usually takes a long time. With advances in technology, stroke can be prevented by detecting the risk early so that it can be treated quickly and increase the chances of recovery. The discussion of this research is about early detection of stroke risk by comparing using fuzzy logic Sugeno method and Mamdani method and using patient data at Dr. Hospital. H. Isaac Umarella. By using input variables in the form of: blood pressure, age, LDL, and blood sugar levels. Based on the results obtained from the calculation of Error with Mean Absolute Percentage Error (MAPE), the level of truth of the calculation of the Sugeno method is 87%, while the truth level of the Mamdani method is 85% so that it can be said that both methods get good results but Sugeno's fuzzy logic is superior with a value of small MAPE. In conclusion, fuzzy logic with the Sugeno method can be used in early detection of stroke risk.
关于早期发现中风的模糊逻辑比较
中风是一种神经功能紊乱,由大脑血液流动中断引起,在几秒钟或更准确地说,在几小时内突然急性发作,持续24小时以上,症状或体征取决于受影响的区域。早期发现中风通常需要很长时间。随着技术的进步,中风可以通过早期发现风险来预防,从而可以迅速治疗并增加康复的机会。本研究通过比较模糊逻辑Sugeno法和Mamdani法,并结合医院的患者数据,探讨脑卒中风险的早期检测。艾萨克·乌马雷拉。通过使用输入变量的形式:血压,年龄,低密度脂蛋白和血糖水平。从误差与平均绝对百分比误差(Mean Absolute Percentage Error, MAPE)的计算结果来看,Sugeno方法的计算真值水平为87%,而Mamdani方法的计算真值水平为85%,可以说两种方法都得到了很好的结果,但Sugeno的模糊逻辑更优,其MAPE值较小。综上所述,模糊逻辑与Sugeno方法可用于脑卒中风险的早期检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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