A COMPARATIVE STUDY OF CLASSIFICATION ALGORITHM USING ACCIDENT DATA

dc.contributor.authorPriyanka A
dc.contributor.authorSathiyakumari K
dc.date.accessioned2020-12-24T05:34:50Z
dc.date.available2020-12-24T05:34:50Z
dc.date.issued2014-10
dc.description.abstractRoad traffic accidents are the majority and severe issue, it results death and injuries of various levels. The traffic control system is one of the main areas, where critical data regarding the society is noted and kept as secured. Various issues of a traffic system like vehicle accidents, traffic volumes and deliberations are recorded at different levels. In connection to this, the accident severities are launched from road traffic accident database. Road traffic accident databases provide the origin for road traffic accident analysis. In this research work, Coimbatore city road traffic databases is taken to consideration, the city having higher number of vehicles and traffic and the city having higher number of vehicles and traffic and the cost of these loss and accidents has a great impact on the socioeconomic growth of a society. Traditional machine learning algorithms are used for developing a decision support system to handle road traffic accident analysis. The algorithms such as SMO, J48, IBK are implemented in Weka version 3.7.9 the result of these algorithms were compared. In this work, the algorithms were tested on a sample database of more than thousand five hundred items, each with 29 accident attributes. And the final result proves that the SMO algorithm was accurate and provides 94%.en_US
dc.identifier.issn2229-3345
dc.identifier.urihttp://www.ijcset.com/docs/IJCSET14-05-10-044.pdf
dc.identifier.urihttps://dspace.psgrkcw.com/handle/123456789/2378
dc.language.isoenen_US
dc.publisherInternational Journal of Computer Science & Engineering Technologyen_US
dc.subjectRoad Traffic Accidenten_US
dc.subjectSMOen_US
dc.subjectJ48en_US
dc.subjectIBKen_US
dc.subjectNCRBen_US
dc.subjectMLPen_US
dc.titleA COMPARATIVE STUDY OF CLASSIFICATION ALGORITHM USING ACCIDENT DATAen_US
dc.typeArticleen_US

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