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Cloud-Based Multinomial Logistic Regression for Analyzing Maternal Mortality Data in Postpartum Period

机译:基于云的多项式Lo​​gistic回归分析产后孕产妇死亡率数据

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The analysis used in dealing with maternal mortality factors in the postpartum period can be used as a reference in preventing maternal death in the postpartum period. Appropriate analysis is needed to reduce maternal mortality rates in the postpartum period. This study uses multinomial logistic regression to analyze the data of mothers dying in the postpartum period based on the main variables causing maternal death. Multinomial logistic regression process is carried out by looking at data records of variables that influence maternal mortality. In the first experiment using data from midwife visits for seven days, the results of the multinomial logistic regression process with the highest maternal mortality occurred on the fourth day with anogenital variables reaching a percentage of 32.4% of the causes of maternal death. Multinomial logistic regression processes are combined with cloud computing technology so that data can be processed more quickly and can be used together.
机译:处理产后孕产妇死亡因素的分析可作为预防产后孕产妇死亡的参考。需要进行适当的分析以降低产后时期的孕产妇死亡率。这项研究使用多项逻辑回归分析,基于导致产妇死亡的主要变量,分析了产后母亲的死亡数据。通过查看影响产妇死亡率的变量的数据记录来执行多项式逻辑回归过程。在第一个使用助产士就诊7天的数据进行的实验中,产妇死亡率最高的多项式Lo​​gistic回归过程的结果发生在第四天,生殖器变量占孕产妇死亡原因的32.4%。多项式逻辑回归流程与云计算技术相结合,因此可以更快地处理数据并一起使用。

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