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Publikace:
A Decision-making Model for Explaining Driver Behaviour

Disertační práceopen access
dc.contributor.authorČubranić-Dobrodolac, Marjana
dc.contributor.refereeFrič, Jindřich
dc.contributor.refereeNedeliaková, Eva
dc.contributor.refereeVysoký, Petr
dc.date.accepted2021-03-12
dc.date.accessioned2021-04-08T04:19:19Z
dc.date.available2021-04-08T04:19:19Z
dc.date.issued2021
dc.date.submitted2021-01-07
dc.description.abstractThe main topic of this dissertation is the modeling of driver behavior based on an examination of their psychological traits. After a detailed review of relevant literature, five questionnaires have been prepared to collect the data. Four questionnaires are related to testing the psychological constructs of drivers and an additional one is a demographical and driving history questionnaire. A survey was carried out at the sample of 305 drivers, from which there were 202 professional drivers and 103 drivers of privately owned vehicles. The data were processed by two general approaches: statistical and fuzzy logic. The implemented statistical methods are hierarchical regression analysis and binary logistic regression. The driver behavior is modeled by fuzzy inference systems where the inputs are the results from psychological tests and the output is the number of experienced road traffic accidents in driving history. The performance of a fuzzy inference system that can be considered as a decision?]making tool for explaining driver behavior, is further enhanced, in the sense of adjusting its results to the empirical data, by applying the bee colony optimization metaheuristic. Based on the obtained results, adequate recommendations for traffic safety improvement are proposed.eng
dc.description.abstract-translatedThe main topic of this dissertation is the modeling of driver behavior based on an examination of their psychological traits. After a detailed review of relevant literature, five questionnaires have been prepared to collect the data. Four questionnaires are related to testing the psychological constructs of drivers and an additional one is a demographical and driving history questionnaire. A survey was carried out at the sample of 305 drivers, from which there were 202 professional drivers and 103 drivers of privately owned vehicles. The data were processed by two general approaches: statistical and fuzzy logic. The implemented statistical methods are hierarchical regression analysis and binary logistic regression. The driver behavior is modeled by fuzzy inference systems where the inputs are the results from psychological tests and the output is the number of experienced road traffic accidents in driving history. The performance of a fuzzy inference system that can be considered as a decision?]making tool for explaining driver behavior, is further enhanced, in the sense of adjusting its results to the empirical data, by applying the bee colony optimization metaheuristic. Based on the obtained results, adequate recommendations for traffic safety improvement are proposed.eng
dc.description.defencePo představení doktorandky byla komise seznámena se stanoviskem školitele a vedoucím školícího pracoviště k disertační práci. Doktorandka seznámil komisi se svojí disertační prací formou prezentace. Poté byly předneseny posudky oponentů a doktorandka uspokojivě reagovala na připomínky oponentů. V následné veřejné diskusi byly zodpovězeny otázky členů komise, které jsou uvedeny na samostatných listech. Na závěr proběhlo tajné hlasování. Protokol o výsledcích hlasování tvoří samostatnou přílohu.cze
dc.description.departmentDopravní fakulta Jana Perneracze
dc.description.gradeDokončená práce s úspěšnou obhajoboucze
dc.format161 s.
dc.identifierUniverzitní knihovna (studovna)cze
dc.identifier.signatureD40514
dc.identifier.stag42279
dc.identifier.urihttps://hdl.handle.net/10195/76974
dc.language.isocze
dc.publisherUniverzita Pardubicecze
dc.rightsbez omezenícze
dc.subjectpsychological traitseng
dc.subjectdriver behavioreng
dc.subjecttraffic accidentseng
dc.subjecthierarchical regression analysiseng
dc.subjectbinary logistic regressioneng
dc.subjectfuzzy inference systemeng
dc.subjectbee colony optimizationeng
dc.thesis.degree-disciplineTechnologie a management v dopravě a telekomunikacích: Managementcze
dc.thesis.degree-grantorUniverzita Pardubice. Dopravní fakulta Jana Perneracze
dc.thesis.degree-namePh.D.
dc.thesis.degree-programTechnika a technologie v dopravě a spojíchcze
dc.titleA Decision-making Model for Explaining Driver Behavioureng
dc.typedisertační prácecze
dspace.entity.typePublication

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