60km?h<sup>-1</sup> 比車速分布在 36~60km?h<sup>-1</sup> 發(fā)生人員受到重傷致殘的交通事故風(fēng)險(xiǎn)多 0.71% ,發(fā)生致命傷交通事故的概率多 0.83% 。根據(jù)研究結(jié)果,可采取措施對該類事故的發(fā)生進(jìn)行預(yù)防,為交通管理者與政策的制定者提供數(shù)據(jù)支撐和理論依據(jù)。-龍?jiān)雌诳W(wǎng)" />

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基于XGBoost和混合Logit模型的機(jī)動(dòng)車對撞事故受傷嚴(yán)重程度分析

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關(guān)鍵詞:交通安全;傷害嚴(yán)重程度;機(jī)器學(xué)習(xí);XGBoost模型;混合Logit模型中圖分類號:F540;U491.31 文獻(xiàn)標(biāo)志碼:A DOI: 10.13714/j.cnki.1002-3100.2025.12.013

Abstract:Thisaticleanalyzestheinfluencingfactorsof head-oncolionsinvolvingmotorvehicles,inlightoftherisingnumberof suchacidentsThearticleobtainstraffcacidentdatafromNorthCarolina,USA,coveringtheyearsfrom2O13to2017. Itcategorizestheseverityofacidentsbasedontheinjuryseverityofpeopleinvolved,using fourmainaspects:humanfactors, vehicleharacteristics,roadconditionsandenvironmentalinfluences.Atotalof41factorsareselectedasindependentvariables, whiletheseverityofinjuriesservesasthedependentvariable,ategorizedintofivelevels:noinjuries,minorinjuries,serious non-disablinginjuries,seriousdisablinginjuries,andfatalinjuries.ApredictivemodelisestablishedbasedontheExtreme GradientBosting (XGBost)algorithmandmixedLogitmodel.First,theaccidentdataisanalyzedusingtheXGBostpredictive modeltoidentifythetop2Oindependentvariablesthatsignificantlyimpacttraficaccidents.Thesevariablesarethenputinto themixed Logit model to filter for independent variables with a significance level of P<0.05 .The results indicate that four variables-drivercharacteristcs(drivingudertheinfluence),roadcharacteristics(curvature)oadconditions(icysurfaces)and functionalareas (farmlands,forests,pastures)—exhibitrandomorparametercharacteristics.Ananalysisofthemarginaleffects from the mixed Logit model shows that when vehicle speed limits exceed 60km/h ,the risk of serious disabling injuriesis increased by 0.71% ,and the probability of fatal accidents rises by 0.83% ,compared to speed limits between 36km/h and 60km/h . Basedonthesefindings,measurescanbeakentopreventtheoccurenceofsuchaccidents,providingdatasupportandaheoretical basis for traffic managers and policymakers.

KeyWords:traffic safety;injuryseverity;machine learning;XGBoostmodel;mixedLogitmodel

0引言

世界衛(wèi)生組織最新發(fā)布的《2023年道路安全全球現(xiàn)狀報(bào)告》中指出,自2010年以來,道路交通死亡人數(shù)每年下降 5% 降低至每年119萬人。(剩余14374字)

目錄
monitor