首页> 外文期刊>International Journal of Environmental Research and Public Health >Regression Models for Log-Normal Data: Comparing Different Methods for Quantifying the Association between Abdominal Adiposity and Biomarkers of Inflammation and Insulin Resistance
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Regression Models for Log-Normal Data: Comparing Different Methods for Quantifying the Association between Abdominal Adiposity and Biomarkers of Inflammation and Insulin Resistance

机译:对数正态数据的回归模型:比较量化腹部肥胖与炎症和胰岛素抵抗生物标志物之间关联的不同方法

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We compared six methods for regression on log-normal heteroscedastic data with respect to the estimated associations with explanatory factors (bias and standard error) and the estimated expected outcome (bias and confidence interval). Method comparisons were based on results from a simulation study, and also the estimation of the association between abdominal adiposity and two biomarkers; C-Reactive Protein (CRP) (inflammation marker,) and Insulin Resistance (HOMA-IR) (marker of insulin resistance). Five of the methods provide unbiased estimates of the associations and the expected outcome; two of them provide confidence intervals with correct coverage.
机译:我们比较了对数正态异方差数据的六种回归方法,这些方法包括与解释性因素(偏差和标准误)和预期预期结果(偏差和置信区间)的估计关联。方法比较是基于模拟研究的结果,也是对腹部肥胖与两种生物标志物之间关联的估计。 C反应蛋白(CRP)(炎症标志物)和胰岛素抵抗(HOMA-IR)(胰岛素抵抗标志物)。其中五种方法提供了对关联性和预期结果的无偏估计;其中两个提供了具有正确覆盖率的置信区间。

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