Classification of restrictions on community activities level in the covid-19 pandemic using fuzzy logic

Abidatul Izzah, Ratna Widyastuti, Zulfa Khalida
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Abstract

Indonesia is facing a second wave of Covid-19 cases in mid-2021. In that time, the increase reached 381 percent or almost 5 times. Therefore, the government announced the Enforcement of Restrictions on Community Activities. This is determined by the government for each city in Indonesia so it cannot be predicted by the general public. Actually, The Restrictions on Community Activities status level determines the risk of a region's economic activities. Therefore, we need a method that can help to categorize the level of PPKM in an area based on available daily data. Thus, this study aims to create a rule model based on Fuzzy Tsukamoto logic that can help determine the level of risk of an area. Based on data on Covid-19 patients in Malang District, East Java has formed 6 fuzzy variables, each of which has 4 fuzzy sets, and 15 rules that can be used as a classification model. From the results, we obtained an accuracy value of 80%. This shows that the generated rule can properly classify the daily Covid-19 data to then estimate the next restrictions level.
基于模糊逻辑的新冠肺炎疫情社区活动限制等级分类
印度尼西亚将在2021年年中面临第二波Covid-19病例。在此期间,增长了381%,几乎是原来的5倍。因此,政府宣布对社区活动实施限制。这是由印尼政府为每个城市确定的,所以一般公众无法预测。实际上,社区活动限制状况的高低决定了一个地区经济活动的风险程度。因此,我们需要一种方法,可以帮助分类的PPKM水平在一个地区的基础上,现有的日常数据。因此,本研究旨在建立一个基于模糊冢本逻辑的规则模型,以帮助确定一个地区的风险水平。根据玛琅区新冠肺炎患者数据,东爪哇形成6个模糊变量,每个模糊变量有4个模糊集,15条规则可作为分类模型。从结果来看,我们获得了80%的准确度值。这表明生成的规则可以正确分类每日Covid-19数据,然后估计下一个限制级别。
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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