基于朴素贝叶斯算法和C4.5的强化疫苗症状分类

Rudi Tri Jaya, Tri Wahyudi
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引用次数: 1

摘要

新冠肺炎是一种通过空气传播的呼吸道感染。第一例病例于2020年3月2日报告,确切地说是在印度尼西亚西爪哇省的德波克。为了减少冠状病毒患者的数量,政府做出了各种努力,包括限制家庭外活动、在线学习、在家工作甚至礼拜活动的政策。为了减少感染新冠肺炎病毒的人数,正在做出努力,其中之一是提供疫苗。在这项研究中,加强疫苗的类型是辉瑞和阿斯利康。由于患者在接种疫苗后的状况引起的症状,研究人员使用了Naive Bayes算法和C4.5方法,其属性包括性别、年龄、合并症(合并症)、体温、血压、新冠肺炎19名幸存者>1个月、怀孕情况、疫苗类型。在RapidMiner Studio工具上使用交叉验证进行测试的两种算法方法之间,旨在获得最高准确度值的引物和加强针疫苗类型。并获得了Naive Bayes算法方法,其最高准确率为78.82%。关键词:新冠肺炎19,助推器,AEFI,Naive Bayers,C4.5,Rapid Miner
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Classification of Booster Vaccination Symptoms Using Naive Bayes Algorithm and C4.5
Covid-19 is a respiratory infection that is transmitted through the air. The first case was reported on March 2, 2020, to be precise in Depok, West Java, Indonesia. To reduce the number of corona virus sufferers, the government has made various efforts including policies to limit activities outside the home, online learning, work from home, and even worship activities. To reduce the number of people infected with the Covid-19 virus, efforts are being made, one of which is the provision of vaccines. In this study, the types of booster vaccines are Pfizer and AstraZeneca. Due to the symptoms caused by the condition of the patient after vaccination, the researchers used the Naive Bayes Algorithm and C4.5 methods with attributes including gender, age, comorbidities (comorbidities), temperature, blood pressure, Covid 19 survivors > 1 month, pregnant condition, type of vaccine. primer and booster vaccine types which aim to get the highest accuracy value between the two algorithm methods which are tested using cross validation on the RapidMiner Studio tool. And obtained the Naive Bayes algorithm method with the highest accuracy value of 78.82%.  Keywords: Covid 19, booster, AEFI, Naive Bayes, C4.5, Rapid Miner
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1.50
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审稿时长
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