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Vulnerability of Face Morphing Attacks: A Case Study on Lookalike and Identical Twins

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arxiv 2303.14004 v1 pith:MAXTV32E submitted 2023-03-24 cs.CV

classification cs.CV
keywords morphingfaceidenticallookalikeattackstwinspotentialtwin
verification ladder T0 review T1 audit T2 compute T3 formal
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Face morphing attacks have emerged as a potential threat, particularly in automatic border control scenarios. Morphing attacks permit more than one individual to use travel documents that can be used to cross borders using automatic border control gates. The potential for morphing attacks depends on the selection of data subjects (accomplice and malicious actors). This work investigates lookalike and identical twins as the source of face morphing generation. We present a systematic study on benchmarking the vulnerability of Face Recognition Systems (FRS) to lookalike and identical twin morphing images. Therefore, we constructed new face morphing datasets using 16 pairs of identical twin and lookalike data subjects. Morphing images from lookalike and identical twins are generated using a landmark-based method. Extensive experiments are carried out to benchmark the attack potential of lookalike and identical twins. Furthermore, experiments are designed to provide insights into the impact of vulnerability with normal face morphing compared with lookalike and identical twin face morphing.

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