在使用SAS和R分析实验时,关于p值正确性的注意事项
Razaw Al-Sarraj1, Johannes Forkman2
1Department of Energy and Technology, Swedish University of Agricultural Sciences, Uppsala, Sweden.
PloS one
|November 30, 2023
概括
统计软件R和SAS在差异分析 (ANOVA) 和混合效应模型中可能产生不正确的p值. 用户必须验证软件选项以获得准确的结果,因为传统的ANOVA可能比现代混合效应模型功能更可靠.
科学领域:
- 统计 统计 统计 统计
- 计算统计学 计算统计学
背景情况:
- 常见的统计学信念:R的双向差异分析 (ANOVA) 产生正确的p值.
- 假设:平衡实验的SAS和R混合效应模型提供了准确的p值.
研究的目的:
- 将SAS和R生成的p值的正确性进行比较.
- 评估用于分析小型实验的统计软件的可靠性.
主要方法:
- 模拟研究以评估I型错误率.
- 传统ANOVA和SAS和R的混合效应模型的结果比较.
主要成果:
- 根据所选选项,R的双向ANOVA p值可以显著变化.
- 在SAS和R混合效应模型中的I型错误率偏离了名义值.
- 传统的ANOVA方法可能比一些现代混合效应模型程序更可靠.
结论:
- 统计软件的选择和选项极大地影响p值的准确性.
- 用户需要了解特定的软件设置,以获得有效的统计推理.
- 现代混合效应模型的功能需要对传统方法进行仔细的验证.
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