[1]梅润,何乾峰,徐璐瑶,等.基于决策树构建急诊创伤患者低体温早期预警模型及验证[J].军事护理,2023,40(05):14-17,85.[doi:10.3969/j.issn.2097-1826.2023.05.004]
 MEI Run,HE Ganfeng,XU Luyao,et al.Development of An Early Warning Model for Predicting Hypothermia among Emergency Trauma Patients Using Decision Tree Analysis[J].Nursing Journal Of Chinese People's Laberation Army,2023,40(05):14-17,85.[doi:10.3969/j.issn.2097-1826.2023.05.004]
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基于决策树构建急诊创伤患者低体温早期预警模型及验证
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《军事护理》[ISSN:2097-1826/CN:31-3186/R]

卷:
40
期数:
2023年05期
页码:
14-17,85
栏目:
应急救护专栏
出版日期:
2023-05-15

文章信息/Info

Title:
Development of An Early Warning Model for Predicting Hypothermia among Emergency Trauma Patients Using Decision Tree Analysis
文章编号:
2097-1826(2023)05-0014-05
作者:
梅润1何乾峰2徐璐瑶3苑静4何佩瑶1商瑜瑜1卫攀5张俊6
(1.空军军医大学第二附属医院 急诊科,陕西 西安 710038; 2.前海人寿西安医院 护理部, 陕西 西安 710024; 3.西安国际医学中心医院 神经外科, 陕西 西安 710018; 4.陕西省武警总队医院 门诊部,陕西 西安 710054; 5.空军军医大学第二附属医院 护理部; 6.空军军医大学第二附属医院 门诊部)
Author(s):
MEI Run1HE Ganfeng2XU Luyao3YUAN Jing4HE Peiyao1SHANG Yuyu1WEI Pan5ZHANG Jun6
(1.Department of Emergency,The Second Affiliated Hospital of Air Force Medical University,Xi'an 710038,Shaanxi Province,China; 2.Department of Nursing,Qianhai Life Insurance Xi'an Hospital,Xi'an 710024,Shaanxi Province,China; 3.Department of Neurosurgery,Xi'an International Medical Center Hospital,Xi'an 710018,Shaanxi Province,China; 4.Outpatient Department,Shaanxi Armed Police Corps Hospital,Xi'an 710054,Shaanxi Province,China; 5.Department of Nursing,The Second Affiliated Hospital......)
关键词:
急诊 创伤 低体温 决策树 风险预测
Keywords:
emergency trauma hypothermia decision tree risk prediction
分类号:
R472.2; R826
DOI:
10.3969/j.issn.2097-1826.2023.05.004
文献标志码:
A
摘要:
目的 基于决策树构建急诊创伤患者低体温早期预警模型并进行验证。方法 回顾性选取2020年5月至2021年4月某院收治的急诊创伤患者376例作为研究对象,根据患者是否出现低体温分为低体温组、体温正常组。收集两组患者临床资料,通过单因素分析急诊创伤患者发生低体温的影响因素并作为建模变量; 随后以3:1的比例随机分为训练集与验证集,其中训练集构建决策树模型,验证集用于评估模型预测效能。结果 决策树模型筛选出急诊创伤患者低体温发生的影响因素主要排序为入室时休克、修正的创伤评分(revised trauma score,RTS)、受伤时环境温度和衣物潮湿; 决策树模型在训练集中与验证集中的受试者工作特征曲线(receiver operating characteristic curve,ROC)曲线下面积(area under curve,AUC)分别为0.704、0.681。结论 基于入室时休克、RTS评分、受伤时环境温度和衣物潮湿构建决策树模型,能有效预测急诊创伤低体温风险。
Abstract:
Objective To develop an early warning model for predicting hypothermia among emergency trauma patients using decision tree analysis.Methods A total of 376 trauma patients were retrospectively selected from the Department of Emergency in a hospital from May,2020 to April,2021.The participants were divided into the hypothermia group and the normal temperature group according to the occurrence of hypothermia.The clinical data of the two groups were collected.The influencing factors of hypothermia among emergency trauma patients were determined by single factor analysis and used as modeling variables.The participants were randomly divided into the training set and the validation set at a ratio of 3:1.The training set was used to construct the decision tree model,and the validation set was used to evaluate the prediction efficiency of the model.Results The influencing factors of hypothermia among emergency trauma patients were screened out by the decision tree model,including shock at admission,RTS,environment temperature at injury and clothing humidity in sequence.The area under ROC of the decision tree model in the training set and the validation set were 0.704 and 0.681,respectively.Conclusions The decision tree model based on shock at admission,RTS,environment temperature at injury and clothing humidity can effectively predict the risks of emergency trauma hypothermia.

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备注/Memo

备注/Memo:
【 收稿日期 】2022-07-25 【 修回日期 】2023-04-17
【 基金项目 】陕西省重点研发计划项目(2017SF-056)
【 作者简介 】梅润,本科,主管护师,电话:029-84778732
【 通信作者 】张俊,电话:029-84777461
更新日期/Last Update: 2023-05-15