From significance to divergence: guiding statistical interpretation through language

عرض / فتح
التاريخ
2025-04-28المؤلف
Zar, LubnaAbdulmajeed, Jazeel
Elshoeibi, Amgad
Syed, Asma
Awaisu, Ahmed
Glasziou, Paul
Doi, Suhail A.
Research Network Group, MCPHR
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البيانات الوصفية
عرض كامل للتسجيلةالملخص
Purpose of review
P values have long been central to medical research reporting, with the term ‘‘statistical significance’’ and a P value threshold of 0.05 being in common use since 1925. Despite a century of use, P values remain a topic of significant controversy and debate, particularly regarding their proper application and frequent misinterpretation. Much of this confusion stems from adoption of the everyday words ‘‘significance’’ and ‘‘confidence’’ as a label for the statistical concepts that are only loosely connected to their common meaning, subsequently exposing such misleading labels to a wide audience unaware of the disconnect.
Recent findings
To resolve this ambiguity, we take a look at the existing literature, conclude that this is a language issue and propose replacing ‘‘significance’’ with ‘‘divergence’’ to highlight the data’s divergence from the hypothesized null model. In addition, we propose renaming the ‘‘1-α% confidence interval’’ to ‘1-α% uncertainty interval’’ which would more accurately convey its role in representing uncertainty about the possible data-generating models for the observed data.
Summary
The revised terminology will help researchers and readers better understand P values and uncertainty intervals, aims to reduce reporting bias (especially for nondivergent results), and will temper unrealistic replicability expectations. It would also minimize misinterpretation and over-interpretation, promoting a clearer, more nuanced understanding of their use in statistical reporting while addressing ongoing misuse
controversies.
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