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GrabCut-Based Human Segmentation in Video Sequences

Antonio Hernandez-Vela, Miguel Reyes, Victor Ponce, Sergio Escalera

    Producción científica: Contribución a una revistaArtículoInvestigaciónrevisión exhaustiva

    Resumen

    In this paper, we present a fully-automatic Spatio-Temporal GrabCut human segmentation methodology that combines tracking and segmentation. GrabCut initialization is performed by a HOG-based subject detection, face detection, and skin color model. Spatial information is included by Mean Shift clustering whereas temporal coherence is considered by the historical of Gaussian Mixture Models. Moreover, full face and pose recovery is obtained by combining human segmentation with Active Appearance Models and Conditional Random Fields. Results over public datasets and in a new Human Limb dataset show a robust segmentation and recovery of both face and pose using the presented methodology.
    Idioma originalInglés
    Páginas (desde-hasta)15376-15393
    Número de páginas18
    PublicaciónSensors
    Volumen12
    DOI
    EstadoPublicada - 2012

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