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首页> 外文期刊>Value in health: the journal of the International Society for Pharmacoeconomics and Outcomes Research >Use of stabilized inverse propensity scores as weights to directly estimate relative risk and its confidence intervals.
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Use of stabilized inverse propensity scores as weights to directly estimate relative risk and its confidence intervals.

机译:使用稳定逆倾向得分重量直接估计相对风险和它的置信区间。

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OBJECTIVES: Inverse probability of treatment weighting (IPTW) has been used in observational studies to reduce selection bias. For estimates of the main effects to be obtained, a pseudo data set is created by weighting each subject by IPTW and analyzed with conventional regression models. Currently, variance estimation requires additional work depending on type of outcomes. Our goal is to demonstrate a statistical approach to directly obtain appropriate estimates of variance of the main effects in regression models. METHODS: We carried out theoretical and simulation studies to show that the variance of the main effects estimated directly from regressions using IPTW is underestimated and that the type I error rate is higher because of the inflated sample size in the pseudo data. The robust variance estimator using IPTW often slightly overestimates the variance of the main effects. We propose to use the stabilized weights to directly estimate both the main effect and its variance from conventional regression models. RESULTS: We applied the approach to a study examining the effectiveness of serum potassium monitoring in reducing hyperkalemia-associated adverse events among 27,355 diabetic patients newly prescribed with a renin-angiotensin-aldosterone system inhibitor. The incidence rate ratio (with monitoring vs. without monitoring) and confidence intervals were 0.46 (0.34, 0.61) using the stabilized weights compared with 0.46 (0.38, 0.55) using typical IPTW. CONCLUSIONS: Our theoretical, simulation results and real data example demonstrate that the use of the stabilized weights in the pseudo data preserves the sample size of the original data, produces appropriate estimation of the variance of main effect, and maintains an appropriate type I error rate.
机译:治疗目的:逆概率权重(IPTW)已经被用于观察研究减少选择偏倚。的主要影响是,伪数据集是由权重由IPTW每个主题与传统的回归模型进行分析。目前,方差估计需要额外的工作取决于类型的结果。我们的目标是证明一个统计的方法直接获得适当的估计在回归方差的主要影响模型。仿真研究表明,的方差估计直接从主要的影响使用IPTW回归是低估了的类型我错误率较高,因为膨胀的伪数据样本容量。使用IPTW经常健壮的方差估计量稍微高估了主要的方差效果。直接估计的主要作用及其从传统的回归模型方差。一项研究结果:我们应用的方法检查血清钾的有效性在减少hyperkalemia-associated监控对27355名糖尿病患者不良事件新规定,肾素血管紧张素醛固酮系统抑制剂。发病率比(与监控vs。没有监控)和置信区间0.46(0.34, 0.61)使用稳定权重相比之下,使用典型的0.46 (0.38,0.55)IPTW。结果和真实数据的例子证明使用伪稳定权重数据保留了原始的样本大小数据,产生适当的估计主要影响的方差,并维护一个适当的I型错误率。

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