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Past, Present, and Future of Face Recognition: A Review

Insaf Adjabi, Abdeldjalil Ouahabi, Amir Benzaoui, Abdelmalik Taleb‐Ahmed

2020Electronics455 citationsDOIOpen Access PDF

Abstract

Face recognition is one of the most active research fields of computer vision and pattern recognition, with many practical and commercial applications including identification, access control, forensics, and human-computer interactions. However, identifying a face in a crowd raises serious questions about individual freedoms and poses ethical issues. Significant methods, algorithms, approaches, and databases have been proposed over recent years to study constrained and unconstrained face recognition. 2D approaches reached some degree of maturity and reported very high rates of recognition. This performance is achieved in controlled environments where the acquisition parameters are controlled, such as lighting, angle of view, and distance between the camera–subject. However, if the ambient conditions (e.g., lighting) or the facial appearance (e.g., pose or facial expression) change, this performance will degrade dramatically. 3D approaches were proposed as an alternative solution to the problems mentioned above. The advantage of 3D data lies in its invariance to pose and lighting conditions, which has enhanced recognition systems efficiency. 3D data, however, is somewhat sensitive to changes in facial expressions. This review presents the history of face recognition technology, the current state-of-the-art methodologies, and future directions. We specifically concentrate on the most recent databases, 2D and 3D face recognition methods. Besides, we pay particular attention to deep learning approach as it presents the actuality in this field. Open issues are examined and potential directions for research in facial recognition are proposed in order to provide the reader with a point of reference for topics that deserve consideration.

Topics & Concepts

Facial recognition systemComputer scienceThree-dimensional face recognitionIdentification (biology)Artificial intelligenceFace (sociological concept)Field (mathematics)Facial expression3D single-object recognitionPoint (geometry)Computer visionHuman–computer interactionPattern recognition (psychology)Face detectionMachine learningCognitive neuroscience of visual object recognitionFeature extractionBotanyMathematicsSociologyPure mathematicsGeometrySocial scienceBiologyFace recognition and analysisFace and Expression RecognitionBiometric Identification and Security