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预防医学  2025, Vol. 37 Issue (1): 51-54    DOI: 10.19485/j.cnki.issn2096-5087.2025.01.011
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化纤企业倒班工人睡眠障碍预测模型研究
沈丽丽, 潘亚慧, 冯佳峰
嘉兴市康慈医院,浙江 桐乡 314500
A prediction model for sleep disorders in shift workers of a chemical fiber enterprise
SHEN Lili, PAN Yahui, FENG Jiafeng
Kangci Hospital of Jiaxing, Tongxiang, Zhejiang 314500, China
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摘要 目的 建立化纤企业倒班工人睡眠障碍预测模型,为早期发现和预防倒班工人睡眠障碍提供依据。方法 于2022年8月—2024年7月,采用整群抽样方法抽取浙江省桐乡市某化纤企业倒班工人为研究对象,通过问卷调查收集人口学信息、工龄和周均工作时长等资料;采用病人健康问卷、广泛性焦虑障碍量表和匹兹堡睡眠质量指数量表分别评估抑郁症状、焦虑症状和睡眠障碍。按照7∶3的比例将倒班工人随机分为训练集和验证集。基于训练集数据采用多因素logistic回归模型筛选预测因子并建立列线图;基于训练集和验证集数据采用受试者操作特征(ROC)曲线和校准曲线评估预测效果。结果 纳入倒班工人673人,年龄MQR)为32(12)岁;男性493人,占73.25%。训练集471人,占69.99%;验证集202人,占30.01%。有睡眠障碍274人,占40.71%。预测模型为ln[p/(1-p)]=-8.391+1.906×周均工作时长+1.822×抑郁症状+1.667×焦虑症状。训练集和验证集ROC曲线下面积分别为0.769(95%CI:0.661~0.835)和0.655(95%CI:0.593~0.737);Hosmer-Lemeshow检验结果显示模型拟合优度较好(均P>0.05)。结论 通过周均工作时长、抑郁症状和焦虑症状3个预测因子构建的列线图可用于预测化纤企业倒班工人睡眠障碍风险。
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潘亚慧
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关键词 化纤企业倒班工人睡眠障碍列线图    
AbstractObjective To construct a prediction model for sleep disorders in shift workers of a chemical fiber enterprise, so as to provide the basis for early identification and prevention of sleep disorders in shift workers. Methods Shift workers were sampled from a chemical fiber enterprise in Tongxiang City, Zhejiang Province using a cluster sampling method from August 2022 to July 2024. Demographic information, length of service and average weekly working hours were collected through questionnaire surveys. Depressive symptoms, anxiety symptoms and sleep disorders were evaluated using the Pittsburgh Sleep Quality Index, Patient Health Questionnaire and Generalized Anxiety Disorder Questionnaire, respectively. The shift workers were randomly divided into a training set and a validation set at a ratio of 7∶3. Predictive factors were selected using a multivariable logistic regression model based on the training set, and a nomograph model for prediction of sleep disorders in shift workers was established. The predictive values of the model were evaluated using the receiver operating characteristic (ROC) curve and calibration curve based on the training set and validation set. Results Totally 673 shift workers were included, with a median age of 32 (interquartile range, 12) years. There were 493 males, accounting for 73.25%. There were 471 (69.99%) workers in the training set and 202 (30.01%) workers in the validation set. There were 274 workers with sleep disorders, accounting for 40.71%. The equation for the prediction model was ln[p/(1-p)]=-8.391+1.906×average weekly working hours+1.822×depressive symptoms+1.667×anxiety symptoms. The area under the ROC curve was 0.769 (95%CI: 0.661-0.835) for the training set and 0.655 (95%CI: 0.593-0.737) for the validation set, and Hosmer-Lemeshow test showed a good fitting effect (both P>0.05). Conclusion The nomograph model constructed by average weekly working hours, depressive symptoms and anxiety symptoms can be used to predict the risk of sleep disorders in shift workers of a chemical fiber enterprise.
Key wordschemical fiber enterprise    shift worker    sleep disorders    nomogram
收稿日期: 2024-08-08      修回日期: 2024-12-05      出版日期: 2025-01-10
中图分类号:  R135  
基金资助:桐乡市科学技术局项目(202202333)
作者简介: 沈丽丽,本科,副主任医师,主要从事精神疾病基于药物治疗联合心理治疗工作
通信作者: 潘亚慧,E-mail:3037566956@qq.com   
引用本文:   
沈丽丽, 潘亚慧, 冯佳峰. 化纤企业倒班工人睡眠障碍预测模型研究[J]. 预防医学, 2025, 37(1): 51-54.
SHEN Lili, PAN Yahui, FENG Jiafeng. A prediction model for sleep disorders in shift workers of a chemical fiber enterprise. Preventive Medicine, 2025, 37(1): 51-54.
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http://www.zjyfyxzz.com/CN/10.19485/j.cnki.issn2096-5087.2025.01.011      或      http://www.zjyfyxzz.com/CN/Y2025/V37/I1/51
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