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货航飞行员睡眠质量与疲劳状况调查研究 被引量:6
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作者 孙瑞山 陈汇宇 皇甫光霞 《安全与环境学报》 CAS CSCD 北大核心 2022年第5期2602-2608,共7页
为评估货航飞行员的睡眠质量与疲劳状况及其影响因素,对货航飞行员使用多维疲劳量表(MFI-16)和匹兹堡睡眠质量指数(PSQI)量表,调查某单位货航飞行员的睡眠质量与疲劳状况,运用方差分析、相关性分析对调查结果进行分析,探讨其睡眠质量与... 为评估货航飞行员的睡眠质量与疲劳状况及其影响因素,对货航飞行员使用多维疲劳量表(MFI-16)和匹兹堡睡眠质量指数(PSQI)量表,调查某单位货航飞行员的睡眠质量与疲劳状况,运用方差分析、相关性分析对调查结果进行分析,探讨其睡眠质量与疲劳状况的影响因素,分析货航飞行员睡眠质量与疲劳状况的关系。结果表明,货航飞行员的睡眠质量显著低于普通成年人,疲劳状况较为严重,货航飞行员的睡眠质量与疲劳状况具有显著的相关性。不同年龄、健康自评、吸烟状况的货航飞行员的PSQI量表得分有显著差异,不同锻炼情况、健康自评、轮班制适应情况的货航飞行员的MFI-16得分有显著差异。 展开更多
关键词 安全社会工程 货航飞行员 夜间执勤 睡眠质量 疲劳状态 疲劳影响因素
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Prediction and Optimization Performance Models for Poor Information Sample Prediction Problems
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作者 LU Fei SUN Ruishan +2 位作者 CHEN Zichen CHEN Huiyu WANG Xiaomin 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2021年第2期316-324,共9页
The prediction process often runs with small samples and under-sufficient information.To target this problem,we propose a performance comparison study that combines prediction and optimization algorithms based on expe... The prediction process often runs with small samples and under-sufficient information.To target this problem,we propose a performance comparison study that combines prediction and optimization algorithms based on experimental data analysis.Through a large number of prediction and optimization experiments,the accuracy and stability of the prediction method and the correction ability of the optimization method are studied.First,five traditional single-item prediction methods are used to process small samples with under-sufficient information,and the standard deviation method is used to assign weights on the five methods for combined forecasting.The accuracy of the prediction results is ranked.The mean and variance of the rankings reflect the accuracy and stability of the prediction method.Second,the error elimination prediction optimization method is proposed.To make,the prediction results are corrected by error elimination optimization method(EEOM),Markov optimization and two-layer optimization separately to obtain more accurate prediction results.The degree improvement and decline are used to reflect the correction ability of the optimization method.The results show that the accuracy and stability of combined prediction are the best in the prediction methods,and the correction ability of error elimination optimization is the best in the optimization methods.The combination of the two methods can well solve the problem of prediction with small samples and under-sufficient information.Finally,the accuracy of the combination of the combined prediction and the error elimination optimization is verified by predicting the number of unsafe events in civil aviation in a certain year. 展开更多
关键词 small sample and poor information prediction method performance optimization method performance combined prediction error elimination optimization model Markov optimization
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