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首页> 外文期刊>Statistics in medicine >Quantifying the treatment effect explained by markers in the presence of measurement error.
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Quantifying the treatment effect explained by markers in the presence of measurement error.

机译:在存在测量误差的情况下,量化标记所解释的治疗效果。

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摘要

Surrogate markers or intermediate markers are important in identifying subjects with high risk of a serious disease or for monitoring disease progression of a subject on treatment. Quantifying the proportion of treatment effect (PTE) explained by markers has been studied extensively. Due to reasons such as biological variation, limited machine precision, etc. markers are generally measured with error. The estimated PTE ignoring the measurement error could be biased, which may lead to incorrect conclusions. In this article, we adjust for the measurement error using regression calibration to construct a less biased estimator of excess relative odds, a quantity to measure the treatment effect explained by markers. The method is applied to data from a clinical study in osteoporosis.
机译:替代标志物或中间标志物在鉴定具有严重疾病的高风险的受试者或在治疗中监测受试者的疾病进展中很重要。由标记物解释的量化治疗效果(PTE)的比例已被广泛研究。由于诸如生物学差异,有限的机器精度等原因,通常会错误地测量标记。忽略测量误差的估计PTE可能会有偏差,这可能导致错误的结论。在本文中,我们使用回归校准对测量误差进行调整,以构造一个相对偏差较小的过量相对优势估计量,该量值用于衡量标记解释的治疗效果。该方法适用于骨质疏松症临床研究的数据。

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