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Bio-Inspired Presentation Attack Detection for Face Biometrics.
Aristeidis Tsitiridis1, Cristina Conde1, Beatriz Gomez Ayllon1
1Computer Science and Statistics, King Juan Carlos University, Móstoles, Spain.
BIOPAD, a novel biologically-inspired model, effectively detects face spoofing using Gabor features across visible and near-infrared spectra, achieving up to 99% accuracy. This system enhances biometric security against presentation attacks.
Area of Science:
- Computer Science
- Biometrics
- Artificial Intelligence
Background:
- Face biometric systems are crucial for identity authentication in security settings like border control.
- The increasing use of portable devices with cameras and displays presents new vulnerabilities for face spoofing.
- Existing biometric systems face challenges with presentation attacks, requiring advanced detection methods.
Purpose of the Study:
- To explore vulnerabilities in face biometric systems, specifically presentation attacks.
- To introduce and evaluate a novel biologically-inspired presentation attack detection model called BIOPAD.
- To compare BIOPAD's performance against established models like HMAX and CNN.
Main Methods:
- Developed BIOPAD, a biologically-inspired model using Gabor features in a hierarchical structure.
- Processed visual information from faces and presentation attacks in visible and near-infrared spectral regions.
- Compared BIOPAD with HMAX and CNN on three presentation attack databases using SVM and k-NN classifiers.
Main Results:
- BIOPAD demonstrated superior performance over HMAX and CNN across all tested databases and classifiers.
- Achieved authentication rates with up to 99% accuracy in certain cases.
- Introduced a new visible and near-infrared presentation attack database for comparative analysis.
Conclusions:
- BIOPAD's unique approach of fusing spectral band information for face presentation attack detection is novel.
- Near-infrared visual information significantly enhances the ability to overcome presentation attacks.
- The BIOPAD model shows promising detection rates, improving the robustness of face biometric systems.
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