An improved mixture of gaussian model fo r real time vehicle detection

dc.contributor.authorWong, Boon Kit
dc.contributor.authorNg, Oon Ee
dc.contributor.authorKhoo, Hooi Ling
dc.date.accessioned2018-09-12T21:32:43Z
dc.date.available2018-09-12T21:32:43Z
dc.description.abstractThis paper proposes a novel method to segment video sequences which undergoes gradual changes into foreground and background layers. The background layer contains all objects which have been stationary since the beginning of the video sequence. The foreground layer contains objects which have entered into or move within the video scene and these objects can be moving or stationary. An improved and adaptive Mixture of Gaussian (MoG) model with a feedback mechanism algorithm has been formulated. The MoG model will classify every pixel in the image as belonging either the foreground or the background layer. Every object in the foreground layer will be tracked and updated in the MoG via the feedback mechanism. This feedback avoids stationary foreground objects being updated into the MoG and thus affecting the approximation done by the MoG. This algorithm has been implemented into an Intelligent Transportation System (ITS) to detect vehicles on the road in an outdoor environment. A promising result is obtained in extracting vehicles on the road.en_US
dc.identifier.conference9th Asia Pacific Conference on Transportation & the Environmenten_US
dc.identifier.departmentDepartment of Civil Engineeringen_US
dc.identifier.doihttps://doi.org/10.31705/APTE.2014.6en_US
dc.identifier.facultyEngineeringen_US
dc.identifier.pgnos80-90en_US
dc.identifier.placeMount Laviniaen_US
dc.identifier.proceedingProceedings of the Asia Pacific Conference on Transportation & the Environmenten_US
dc.identifier.urihttp://dl.lib.mrt.ac.lk/handle/123/13530
dc.identifier.year2014en_US
dc.language.isoenen_US
dc.subjectIntelligent Transportation Systemen_US
dc.subjectvehicle detectionen_US
dc.subjectimage processingen_US
dc.titleAn improved mixture of gaussian model fo r real time vehicle detectionen_US
dc.typeConference-Full-texten_US

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