Comparison of face detection and recognition algorithms in real-time video

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Resumen

Facial recognition systems has captivated research attention in recent years. Facial recognition technology is often required in real-time systems. With the rapid development, diverse algorithms of machine learning for detection and facial recognition have been proposed to address the challenges existing. In the present paper we proposed a system for facial detection and recognition under unconstrained conditions in video sequences. We analyze learning based and hand-crafted feature extraction approaches that have demonstrated high performance in task of facial recognition. In the proposed system, we compare different traditional algorithms with the avant-garde algorithms of facial recognition based on approaches discussed. The experiments on unconstrained datasets to study the face detection and face recognition show that learning based algorithms achieves a remarkable performance to face the challenges in real-time systems.

Idioma originalInglés
Título de la publicación alojadaKnowledge Innovation Through Intelligent Software Methodologies, Tools and Techniques - Proceedings of the 19th International Conference on New Trends in Intelligent Software Methodologies, Tools and Techniques, SoMeT 2020
EditoresHamido Fujita, Ali Selamat, Sigeru Omatu
EditorialIOS Press BV
Páginas209-220
Número de páginas12
ISBN (versión digital)9781643681146
DOI
EstadoPublicada - 15 sep. 2020
Evento19th International Conference on New Trends in Intelligent Software Methodologies, Tools and Techniques, SoMeT 2020 - Virtual, Online, Japón
Duración: 22 sep. 202024 sep. 2020

Serie de la publicación

NombreFrontiers in Artificial Intelligence and Applications
Volumen327
ISSN (versión impresa)0922-6389
ISSN (versión digital)1879-8314

Conferencia

Conferencia19th International Conference on New Trends in Intelligent Software Methodologies, Tools and Techniques, SoMeT 2020
País/TerritorioJapón
CiudadVirtual, Online
Período22/09/2024/09/20

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