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dc.creator | Negri, Pablo | |
dc.date.accessioned | 2018-10-12T16:50:55Z | |
dc.date.available | 2018-10-12T16:50:55Z | |
dc.date.issued | 2014-07 | |
dc.identifier.uri | http://hdl.handle.net/123456789/7572 | |
dc.description | Publicado en: IET Image Processing, Volume 8, Issue 7, July 2014. ISSN 1751-9667 | es |
dc.description.abstract | This study aims to estimate the traffic load at street intersections obtaining the circulating vehicle number through image processing and pattern recognition. The algorithm detects moving objects in a street view by using level lines and generates a new feature space called movement feature space (MFS). The MFS generates primitives as segments and corners to match vehicle model generating hypotheses. The MFS is also grouped in a histogram configuration called histograms of oriented level lines (HO2 L). This work uses HO2 L features to validate vehicle hypotheses comparing the performance of different classifiers: linear support vector machine (SVM), non-linear SVM, neural networks and boosting. On average, successful detection rate is of 86% with 10−1 false positives per image for highly occluded images. | es |
dc.format.extent | 2 p. | es |
dc.title | Estimating the queue length at street intersections by using a movement feature space approach | es |
uade.subject.descriptor | Modelado y Simulación | es |
uade.subject.descriptor | Peatones | es |
uade.subject.descriptor | Tránsito | es |
uade.subject.descriptor | Seguimiento de Peatones | es |
uade.proyecto.codigo | A14T13 | es |
uade.proyecto.nombre | Modelización del comportamiento de los peatones cruzando la calle. Estudio de su influencia sobre la circulación vehicular | es |
uade.area | Informática / Telecomunicaciones / Electrónica | es |
uade.linea | Desarrollos Funcionales | es |
uade.proyecto.responsable | Negri, Pablo | |
uade.instituto | Instituto de Tecnología | es |