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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Computing the Average Body Mass Index: A Study with Systematic Sampling Using Auxiliary Information
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Computing the Average Body Mass Index: A Study with Systematic Sampling Using Auxiliary Information

机译:计算平均体重指数:使用辅助信息进行系统抽样的研究

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Background. The use of body mass index (BMI) is prevalent, to measure the fat in the body. Sometimes, during a clinical survey, different measures of body parts of people may be available, but the actual weight and height are not available. In this article, we have shown a method to estimate the body mass index using the measures of different body parts. Systematic sampling is to be applied only if the given population is logically homogeneous because systematic sample units are uniformly distributed over the population. Methods. The method of estimation for the mean of the study variable under systematic sampling using auxiliary information has been used to estimate the body mass index (BMI). We also have shown the effect of observational error in the estimation. The measures of different body parts are taken as auxiliary variables. The correlation coefficient between BMI and the circumference of different body parts has been obtained. The efficacy of methods in terms of mean square error has been obtained in the estimation of BMI. Also, the observations available on different body parts are assumed to be recorded with observational error. Thus, we propose a method of estimation of BMI in the presence of observational error. A simulation study has been conducted to demonstrate the effect of the observational error on the estimation of body mass index. Results. The properties of the proposed estimation method have been derived under large sampling approximation, and the conditions under which the proposed method is more efficient are found. We assume the presence of observational error in the study of 252 men. The efficiency of the difference estimators is better in the presence of observational error. Also, the presence of observational error does not change the properties of the estimators. Conclusions. The study provides an easy approach and the simplest way to obtain the BMI estimation with and without observational error. Thus, the suggested method may be used by statisticians for this problem and for many other similar problems in the estimation of mean.
机译:背景。使用体重指数(BMI)来测量体内的脂肪是很普遍的。有时,在临床调查期间,可能会对人们的身体部位进行不同的测量,但无法获得实际的体重和身高。在本文中,我们展示了一种使用不同身体部位的测量值来估计体重指数的方法。只有当给定的总体在逻辑上是同质的时,才应应用系统抽样,因为系统抽样单位均匀分布在总体上。方法。使用辅助信息在系统抽样下估计研究变量均值的方法已用于估计体重指数 (BMI)。我们还展示了观测误差在估计中的影响。将不同身体部位的测量值作为辅助变量。已经获得了BMI与身体不同部位周长之间的相关系数。在BMI的估计中,已经获得了方法在均方误差方面的功效。此外,假设对不同身体部位的观察结果被记录下来,并有观察误差。因此,我们提出了一种在存在观察误差的情况下估计 BMI 的方法。进行了模拟研究,以证明观测误差对体重指数估计的影响。结果。在大采样近似下推导了所提估计方法的性质,并找到了所提方法更有效的条件。我们假设在对 252 名男性的研究中存在观察误差。在存在观测误差的情况下,差值估计器的效率更好。此外,观测误差的存在不会改变估计器的属性。结论。该研究提供了一种简单的方法和最简单的方法来获得有和没有观察误差的 BMI 估计值。因此,统计学家可以针对此问题以及平均值估计中的许多其他类似问题使用建议的方法。

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