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首页> 外文期刊>American Journal of Applied Mathematics and Statistics >Application of Binary Logistic Regression in Assessing Risk Factors Affecting the Prevalence of Toxoplasmosis
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Application of Binary Logistic Regression in Assessing Risk Factors Affecting the Prevalence of Toxoplasmosis

机译:二元Logistic回归在评估弓形虫患病率的危险因素中的应用。

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摘要

Toxoplasmosis is a parasitic disease caused by the protozoan parasite Toxoplasma Gondii (T.gondii). The parasite infects warm-blooded animals among them humans especially those whose immunity has been compromised. The transmission mode of the parasite vary from living in unhygienic conditions, contact with cat faeces to contact with raw meat or the practice of raw meat eating, such as commonly practiced in Ethiopia. Binary logistic regression was used to determine the risk factors affecting the prevalence of toxoplasmosis in HIV/AIDS patients. Significant risk factors were detected using the Wald and the likelihood ratio tests. The model selected was then subjected to diagnostic checks to assess its fitness using the Hosmer and Lemeshow test as well as the Pearson, and deviance goodness of fit tests. The results showed that patients living under unhygienic conditions, aged patients, illiterate and less educated patients were mostly affected by toxoplasmosis. There was more prevalence in urban areas than in rural areas possibly due to the high density of people in urban areas.
机译:弓形虫病是由原生动物寄生虫弓形虫(T.gondii)引起的寄生虫病。寄生虫感染温血动物,其中包括人类,尤其是免疫力受到损害的动物。寄生虫的传播方式不尽相同,包括生活在不卫生的条件下,接触猫粪,接触生肉或食用生肉,例如在埃塞俄比亚。二元逻辑回归用于确定影响艾滋病毒/艾滋病患者弓形虫病患病率的危险因素。使用Wald和似然比检验检测到重大风险因素。然后使用Hosmer和Lemeshow检验以及Pearson检验所选模型的适用性,以评估其适用性,以及拟合优度的偏差。结果表明,生活在不卫生条件下的患者,老年患者,文盲和文化程度较低的患者大多受到弓形虫病的影响。城市地区的患病率比农村地区高,这可能是由于城市地区人口密度高。

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