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神经影像学研究中的发表偏倚:对荟萃分析的影响。

Publication bias in neuroimaging research: implications for meta-analyses.

机构信息

Department of Biostatistics, University of California Los Angeles, 635 Charles Young Drive South, Suite 225, Los Angeles, CA, 90095, USA.

出版信息

Neuroinformatics. 2012 Jan;10(1):67-80. doi: 10.1007/s12021-011-9125-y.

Abstract

Neuroimaging and the neurosciences have made notable advances in sharing activation results through detailed databases, making meta-analysis of the published research faster and easier. However, the effect of publication bias in these fields has not been previously addressed or accounted for in the developed meta-analytic methods. In this article, we examine publication bias in functional magnetic resonance imaging (fMRI) for tasks involving working memory in the frontal lobes (Brodmann Areas 4, 6, 8, 9, 10, 37, 45, 46, and 47). Seventy-four studies were selected from the literature and the effect of publication bias was examined using a number of regression-based techniques. Pearson's r correlation coefficient and Cohen's d effect size estimates were computed for the activation in each study and compared to the study sample size using Egger's regression, Macaskill's regression, and the 'Trim and Fill' method. Evidence for publication bias was identified in this body of literature (p < 0.01 for each test), generally, though was neither task- nor sub-region-dependent. While we focused our analysis on this subgroup of brain mapping studies, we believe our findings generalize to the brain imaging literature as a whole and databases seeking to curate their collective results. While neuroimaging databases of summary effects are of enormous value to the community, the potential publication bias should be considered when performing meta-analyses based on database contents.

摘要

神经影像学和神经科学在通过详细的数据库共享激活结果方面取得了显著进展,使得对已发表研究的元分析更快、更容易。然而,在这些领域中,发表偏倚的影响以前并未在已开发的元分析方法中得到解决或考虑。在本文中,我们研究了额叶工作记忆任务的功能性磁共振成像(fMRI)中的发表偏倚(Brodmann 区域 4、6、8、9、10、37、45、46 和 47)。从文献中选择了 74 项研究,并使用多种基于回归的技术检查了发表偏倚的影响。计算了每个研究中的激活的 Pearson r 相关系数和 Cohen d 效应大小估计值,并使用 Egger 回归、Macaskill 回归和“Trim and Fill”方法将其与研究样本大小进行了比较。在这一文献中发现了发表偏倚的证据(每个测试的 p<0.01),但通常不是任务或子区域依赖的。虽然我们将分析集中在这个脑映射研究子组上,但我们认为我们的发现可以推广到整个脑成像文献以及试图整理其集体结果的数据库。虽然汇总效应的神经影像学数据库对社区具有巨大价值,但在基于数据库内容进行元分析时,应考虑潜在的发表偏倚。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a83e/4368431/b0796d7fa388/nihms668930f1.jpg

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