在对 Ising 模型中的总分进行调整后,纠正选择偏差
Jesse Boot1, Jill de Ron2, Jonas Haslbeck2,3
1Department of Psychological Methods, University of Amsterdam, Amsterdam, The Netherlands. j.boot@uva.nl.
Behavior research methods
|November 10, 2025
概括
本研究使用Ising模型在心理网络分析中对选择偏差进行了校正. 该方法在总分数选择后,准确地恢复了完整人口和子人口的网络结构.
科学领域:
- 心理网络分析 心理网络分析
- 统计建模 统计建模
- 网络科学 网络科学
背景情况:
- 心理学研究经常根据总分 (例如,症状严重程度) 选择样本.
- 这种抽样方法可能会引入选择偏差,如果总分数不能完美地代表感兴趣的人口.
- 伊辛模型是用于心理学研究的二进制数据的流行的网络模型.
研究的目的:
- 建议对Ising模型中的选择偏差进行统计纠正.
- 为了能够准确地估计网络结构,当样本根据总分数进行选择时.
- 为获得完整人口估计或改进的子人口估计提供方法.
主要方法:
- 在Ising模型中开发了选择偏差的校正方法.
- 使用模拟研究与节点智能回归和多变量估计验证了校正.
- 将纠正应用于从国家并发症研究复制中对主要抑郁症症状的经验数据.
主要成果:
- 经过总分选择后,拟议的校正成功恢复了预期人口的网络结构.
- 节点智能回归和多变量估计方法都证明了校正的有效性.
- 该方法在流行的R软件包 (IsingFit,IsingSampler,psychonetrics,bootnet) 中实现,用于实际应用.
结论:
- 开发的校正有效地解决了Ising模型中的选择偏差.
- 这种方法提高了心理研究中网络结构估计的准确性.
- 在R包中的实现使研究人员更容易在实践中使用此校正.
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