Predicting of infected People with Corona virus (covid-19) by using Non-Parametric Quality Control Charts

Q4 Mathematics
Heba Fawzy, Asmaa Ghalib
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引用次数: 2

Abstract

Quality control Charts were used to monitor the number of infections with the emerging corona virus (Covid-19) for the purpose of predicting the extent of the disease's control, knowing the extent of its spread, and determining the injuries if they were within or outside the limits of the control charts. The research aims to use each of the control chart of the (Kernel Principal Component Analysis Control Chart) and (K- Nearest Neighbor Control Chart). As (18) variables representing the governorates of Iraq were used, depending on the daily epidemiological position of the Public Health Department of the Iraqi Ministry of Health. To compare the performance of the charts, a measure of average length of run was adopted, as the results showed that the number of infection with the new Corona virus is out of control, and that the (KNN) chart had better performance in the short term with a relative equality in the performance of the two charts in the medium and long rang
利用非参数质量控制图预测冠状病毒(covid-19)感染者
质量控制图用于监测新冠病毒感染人数,以预测疾病控制程度,了解其传播程度,并确定伤害是否在控制图范围内或之外。本研究的目的是利用核主成分分析控制图(Kernel Principal Component Analysis control chart)和K近邻控制图(K- Nearest Neighbor control chart)中的每一种控制图。根据伊拉克卫生部公共卫生司的每日流行病学情况,使用了代表伊拉克各省的变量。为了比较图表的性能,采用平均运行长度的度量,因为结果表明,新型冠状病毒感染人数处于失控状态,(KNN)图表在短期内表现较好,两个图表在中长期表现相对相等
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