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Modelling of Binary Logistic Regression for Obesity among Secondary Students in a Rural Area of Kedah

机译:凯德乡区中学生肥胖肥胖模拟

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Logistic regression analysis examines the influence of various factors on a dichotomous outcome by estimating the probability of the event's occurrence. Logistic regression, also called a logit model, is a statistical procedure used to model dichotomous outcomes. In the logit model the log odds of the dichotomous outcome is modeled as a linear combination of the predictor variables. The log odds ratio in logistic regression provides a description of the probabilistic relationship of the variables and the outcome. In conducting logistic regression, selection procedures are used in selecting important predictor variables, diagnostics are used to check that assumptions are valid which include independence of errors, linearity in the logit for continuous variables, absence of multicollinearity, and lack of strongly influential outliers and a test statistic is calculated to determine the aptness of the model. This study used the binary logistic regression model to investigate overweight and obesity among rural secondary school students on the basis of their demographics profile, medical history, diet and lifestyle. The results indicate that overweight and obesity of students are influenced by obesity in family and the interaction between a student's ethnicity and routine meals intake. The odds of a student being overweight and obese are higher for a student having a family history of obesity and for a non-Malay student who frequently takes routine meals as compared to a Malay student.
机译:逻辑回归分析通过估计事件发生的可能性来检查各种因素对二分法结果的影响。 Logistic回归,也称为Logit模型,是用于模拟二分法结果的统计程序。在Logit模型中,二分结果的日志赔率被建模为预测变量的线性组合。 Logistic回归中的日志赔率比提供了变量和结果的概率关系的描述。在进行逻辑回归中,选择过程用于选择重要的预测变量,诊断用于检查假设是否有效,该假设包括错误的独立性,Logit在连续变量中的线性度,缺乏多元性,以及缺乏多种多味的异常值和缺乏强烈影响的异常值和缺乏计算测试统计信息以确定模型的适当性。本研究使用了二元逻辑回归模型,在其人口统计学,病史,饮食和生活方式的基础上调查农村中学生之间的超重和肥胖。结果表明,学生的超重和肥胖受到肥胖的影响,以及学生种族和常规膳食的互动。对于一个拥有肥胖家族历史的学生以及与马来学生相比,一名学生的学生的赔率更高,肥胖的学生较高。

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