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Related Experiment Video

Updated: Oct 22, 2025

Author Spotlight: Enhancement of Salient Object Detection for Smart Grid Applications
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Efficient Face Recognition System for Operating in Unconstrained Environments.

Alejandra Sarahi Sanchez-Moreno1, Jesus Olivares-Mercado1, Aldo Hernandez-Suarez1

  • 1Sección de Estudios de Posgrado e Investigación, Instituto Politécnico Nacional, Av. Santa Ana 1000, San Francisco Culhuacan, Mexico City 04440, Mexico.

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|August 30, 2021
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Summary
This summary is machine-generated.

A novel real-time facial recognition system combines YOLO-Face detection with FaceNet and SVM for high accuracy. This efficient, low-cost system excels in unconstrained environments, handling occlusions and pose variations effectively.

Keywords:
computer visiondeep neural networkimage processingreal-time systems

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Area of Science:

  • Computer Vision
  • Artificial Intelligence
  • Machine Learning

Background:

  • Facial recognition is crucial for real-time security systems.
  • Deep neural networks have advanced facial recognition performance.
  • Need for efficient, low-cost facial recognition systems in unconstrained environments.

Purpose of the Study:

  • To propose an efficient and low-cost real-time facial recognition system.
  • To combine deep learning (FaceNet) with traditional classifiers (SVM, KNN, RF).
  • To operate effectively in unconstrained environments with moderate hardware.

Main Methods:

  • Utilized YOLO-Face (based on YOLOv3) for high-speed, real-time face detection.
  • Employed FaceNet for feature extraction in the recognition stage.
  • Integrated FaceNet with Support Vector Machine (SVM), K-Nearest Neighbors (KNN), and Random Forest (RF) classifiers.

Main Results:

  • YOLO-Face demonstrated superior performance with partial occlusions, pose variations, and small faces.
  • The face detector achieved over 89.6% accuracy on the Honda/UCSD dataset at 26 FPS.
  • FaceNet+SVM achieved 99.7% accuracy on the LFW dataset, outperforming other combinations.
  • The complete system achieved 99.1% recognition accuracy with a 49 ms runtime.

Conclusions:

  • The proposed system offers a robust and accurate solution for real-time facial recognition.
  • The combination of YOLO-Face and FaceNet+SVM is highly effective for unconstrained environments.
  • The system provides a practical and efficient approach for security applications.