Detecting psychometric and diagnostic performance of the RU_SATED v2.0 multidimensional sleep health scale in community-dwelling adults combining exploratory graph analysis and ROC analysis

IF 3.7 2区 医学 Q1 PSYCHIATRY General hospital psychiatry Pub Date : 2025-01-01 DOI:10.1016/j.genhosppsych.2024.12.001
Runtang Meng , Nongnong Yang , Yi Luo , Ciarán O'Driscoll , Haiyan Ma , Alice M. Gregory , Joseph M. Dzierzewski
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Abstract

Objective

The RU_SATED scale is increasingly used across the globe to measure sleep health. However, there is a lack of consensus around its psychometric and diagnostic performance. We conducted an empirical investigation into the psychometrics of the Chinese version of the RU_SATED (RU_SATED-C) scale, with a focus on structural validity and diagnostic performance.

Methods

1171 adults were enrolled from three communities in Hangzhou, China in July 2022. The dataset was spilt in half, and we ran a bootstrapped exploratory graph analysis (bootEGA) in one half and a confirmatory factor analysis (CFA) in the other half to assess structural validity. Correlations with insomnia, wellness, anxiety, and depression symptoms were examined in order to assess concurrent validity; and Cronbach's α and McDonald's ω were calculated to assess internal consistency. Additionally, a Receiver Operating Characteristic (ROC) analysis established and externally validated the optimal score for identifying insomnia symptoms.

Results

A one-dimensional structure, as identified by bootEGA, was corroborated in the CFA [comparative fit index = 0.934, root mean square error of approximation = 0.088, standardized root mean square residual = 0.051]. A moderate correlation was shown with insomnia symptoms, while weak correlations were observed with wellness, anxiety, and depression symptoms. The RU_SATED-C scale displayed sub-optimal internal consistency where coefficients dropped if any item was removed. A recommended cutoff score of ≤13 was derived for probable insomnia with a satisfactory diagnostic performance.

Conclusion

The RU_SATED-C scale displayed a one-dimensional model, along with adequate concurrent validity, internal consistency, and diagnostic performance. Further work necessitates multi-scenario testing and additional validation using objective sleep assessments.
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结合探索性图分析和ROC分析,检测社区居住成人RU_SATED v2.0多维睡眠健康量表的心理测量和诊断性能。
目的:RU_SATED量表在全球范围内越来越多地用于测量睡眠健康。然而,对其心理测量和诊断性能缺乏共识。我们对中文版ru_sed量表(ru_sed - c)的心理测量学进行了实证研究,重点关注结构效度和诊断性能。方法:于2022年7月在中国杭州的三个社区招募了1171名成年人。数据集被分成两半,我们在一半中运行了bootstrap探索性图分析(bootEGA),在另一半中运行了验证性因子分析(CFA)来评估结构效度。检查与失眠、健康、焦虑和抑郁症状的相关性,以评估并发效度;计算Cronbach's α和McDonald's ω来评估内部一致性。此外,受试者工作特征(ROC)分析建立并外部验证了识别失眠症状的最佳评分。结果:在CFA中证实了bootEGA识别的一维结构[比较拟合指数= 0.934,近似均方根误差= 0.088,标准化均方根残差= 0.051]。与失眠症状有中度相关性,而与健康、焦虑和抑郁症状有弱相关性。RU_SATED-C量表显示了次优的内部一致性,如果任何项目被删除,系数就会下降。对于可能的失眠症,推荐的临界值为≤13分,诊断效果令人满意。结论:ru_sed - c量表呈现一维模型,具有良好的并发效度、内部一致性和诊断效能。进一步的工作需要多场景测试和使用客观睡眠评估的额外验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
General hospital psychiatry
General hospital psychiatry 医学-精神病学
CiteScore
9.60
自引率
2.90%
发文量
125
审稿时长
20 days
期刊介绍: General Hospital Psychiatry explores the many linkages among psychiatry, medicine, and primary care. In emphasizing a biopsychosocial approach to illness and health, the journal provides a forum for professionals with clinical, academic, and research interests in psychiatry''s role in the mainstream of medicine.
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