4.6 Article

A comprehensive survey on techniques to handle face identity threats: challenges and opportunities

期刊

MULTIMEDIA TOOLS AND APPLICATIONS
卷 82, 期 2, 页码 1669-1748

出版社

SPRINGER
DOI: 10.1007/s11042-022-13248-6

关键词

Biometrics; Face recognition; Authentication; Computer vision; Machine learning; Deep learning; Image processing

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This paper explores various types of face recognition techniques, the challenges they face, and the threats to face-biometric-based identity recognition. A new taxonomy is proposed to represent potential face identity threats, and state-of-the-art approaches are discussed to mitigate these threats. The paper also highlights research gaps and future opportunities in tackling facial identity threats.
The human face is considered the prime entity in recognizing a person's identity in our society. Henceforth, the importance of face recognition systems is growing higher for many applications. Facial recognition systems are in huge demand, next to fingerprint-based systems. Face-biometric has a highly dominant role in various applications such as border surveillance, forensic investigations, crime detection, access management systems, information security, and many more. Facial recognition systems deliver highly meticulous results in every of these application domains. However, the face identity threats are evenly growing at the same rate and posing severe concerns on the use of face-biometrics. This paper significantly explores all types of face recognition techniques, their accountable challenges, and threats to face-biometric-based identity recognition. This survey paper proposes a novel taxonomy to represent potential face identity threats. These threats are described, considering their impact on the facial recognition system. State-of-the-art approaches available in the literature are discussed here to mitigate the impact of the identified threats. This paper provides a comparative analysis of countermeasure techniques focusing on their performance on different face datasets for each identified threat. This paper also highlights the characteristics of the benchmark face datasets representing unconstrained scenarios. In addition, we also discuss research gaps and future opportunities to tackle the facial identity threats for the information of researchers and readers.

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