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2D Masks with Eyeholes Attacks

The dataset comprises 11,200+ videos of people wearing of holding 2D printed masks with eyeholes captured using 5 different devices. This extensive collection is designed for research in presentation attacks, focusing on various detection methods, primarily aimed at meeting the requirements for iBeta Level 1 & 2 certification. Specifically engineered to challenge facial recognition and enhance spoofing detection techniques.

By utilizing this dataset, researchers and developers can advance their understanding and capabilities in biometric security and liveness detection technologies. - Get the data

Attacks in the dataset

The attacks were recorded in various settings, showcasing individuals with different attributes. Each photograph features human faces adorned with 2D masks, simulating potential spoofing attempts in facial recognition systems.

Variants of backgrounds and attributes in the dataset:

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Researchers can utilize this dataset to explore detection technology and recognition algorithms that aim to prevent impostor attacks and improve authentication processes.

Metadata for the dataset

Variables in .csv files:

  • name: filename of the printed 2D mask
  • path: link-path for the original video
  • type: type(wearing or holding) of printed mask

The dataset provides a robust foundation for achieving higher detection accuracy and advancing liveness detection methods, which are essential for preventing identity fraud and ensuring reliable biometric verification.

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