The Impact of Using the Association Method in Determining the Pattern of COVID-19 Symptoms in the Sumatra Province

Q2 Social Sciences Webology Pub Date : 2022-01-28 DOI:10.14704/web/v19i1/web19374
R. Sari, I. Nuryana, Meida Rachmawati, P. Cakranegara, Danu Eko Agustinova, Robbi Rahim
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Abstract

COVID-19 (coronavirus disease 2019) is a new type of disease caused by a coronavirus, namely SARS-CoV-2, also known as the Corona virus. The Corona virus outbreak is causing concern all over the world, including in Indonesia. Many people became paranoid as a result of the virus's widespread spread, which was followed by reports of a number of deaths among victims. The spread of the Corona virus in Indonesia has had a negative impact on all aspects of life. Because of the density of settlements and the vastness of Indonesia's territory, this virus became out of control and spread quickly. The lack of socialization in dealing with this virus has an impact on the community's understanding of the importance of following health protocols. The goal of this research is to use data mining techniques to determine the pattern of symptoms caused by the Corona virus. The Association method is used in data mining. APRIORI is a popular association method that employs a high frequency pattern. This method is expected to be used to determine how likely it is that one case has the first symptom in addition to other symptoms. The parameters Support and Confidence support whether or not the association rules are required. After obtaining the results of the multiplication of Support and Confidence, the rule with the highest multiplication result will be discovered. The rule with the highest result is used as a rule to be applied in the next case, namely "If you have cough symptoms, they will be accompanied by fever symptoms with 90% support and 90% confidence".
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使用关联方法确定苏门答腊省新冠肺炎症状模式的影响
COVID-19(冠状病毒病2019)是由冠状病毒引起的新型疾病,即SARS-CoV-2,也称为冠状病毒。冠状病毒的爆发引起了包括印度尼西亚在内的全世界的关注。由于病毒的广泛传播,许多人变得偏执,随后有报道称受害者中有许多人死亡。冠状病毒在印度尼西亚的传播对生活的各个方面都产生了负面影响。由于定居点的密度和印度尼西亚领土的广阔,这种病毒失去控制并迅速传播。在处理这一病毒方面缺乏社会化,影响了社区对遵守卫生规程重要性的理解。这项研究的目的是使用数据挖掘技术来确定由冠状病毒引起的症状模式。关联方法用于数据挖掘。APRIORI是一种常用的高频模式关联方法。预计该方法将用于确定一个病例除其他症状外还出现第一种症状的可能性。参数“Support”和“Confidence”支持是否需要关联规则。在得到支持度和置信度相乘的结果后,就会发现相乘结果最高的规则。结果最高的规则作为下一个案例的规则,即“如果你有咳嗽症状,就会有90%的支持度和90%的置信度伴有发烧症状”。
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来源期刊
Webology
Webology Social Sciences-Library and Information Sciences
自引率
0.00%
发文量
374
审稿时长
10 weeks
期刊介绍: Webology is an international peer-reviewed journal in English devoted to the field of the World Wide Web and serves as a forum for discussion and experimentation. It serves as a forum for new research in information dissemination and communication processes in general, and in the context of the World Wide Web in particular. Concerns include the production, gathering, recording, processing, storing, representing, sharing, transmitting, retrieving, distribution, and dissemination of information, as well as its social and cultural impacts. There is a strong emphasis on the Web and new information technologies. Special topic issues are also often seen.
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