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首页> 外文期刊>Statistics in medicine >Facilitating meta-analyses by deriving relative effect and precision estimates for alternative comparisons from a set of estimates presented by exposure level or disease category.
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Facilitating meta-analyses by deriving relative effect and precision estimates for alternative comparisons from a set of estimates presented by exposure level or disease category.

机译:通过根据暴露水平或疾病类别提供的一组估计得出相对效应和精确度估计值以进行替代比较,从而促进荟萃分析。

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摘要

Epidemiological studies relating a particular exposure to a specified disease may present their results in a variety of ways. Often, results are presented as estimated odds ratios (or relative risks) and confidence intervals (CIs) for a number of categories of exposure, for example, by duration or level of exposure, compared with a single reference category, often the unexposed. For systematic literature review, and particularly meta-analysis, estimates for an alternative comparison of the categories, such as any exposure versus none, may be required. Obtaining these alternative comparisons is not straightforward, as the initial set of estimates is correlated. This paper describes a method for estimating these alternative comparisons based on the ideas originally put forward by Greenland and Longnecker, and provides implementations of the method, developed using Microsoft Excel and SAS. Examples of the method based on studies of smoking and cancer are given. The method also deals with results given by categories of disease (such as histological types of a cancer). The method allows the use of a more consistent comparison when summarizing published evidence, thus potentially improving the reliability of a meta-analysis.
机译:与特定疾病的特定暴露相关的流行病学研究可以多种方式显示其结果。通常,结果以多种暴露类别的估计比值比(或相对风险)和置信区间(CI)表示,例如,通过暴露的持续时间或水平,与单个参考类别(通常是未暴露的)相比。为了进行系统的文献回顾,尤其是荟萃分析,可能需要对类别进行替代比较的估计值,例如,任何暴露与否。由于初始估计值是相关的,因此获得这些替代比较并非易事。本文介绍了一种基于Greenland和Longnecker最初提出的思想来估计这些替代比较的方法,并提供了使用Microsoft Excel和SAS开发的方法的实现。给出了基于吸烟和癌症研究方法的例子。该方法还处理按疾病类别(例如癌症的组织学类型)给出的结果。该方法允许在汇总已发表的证据时使用更一致的比较,从而潜在地提高了荟萃分析的可靠性。

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