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Real-Time Camera-Based Suspicious Activity Detection for Security Enhancement #319

@ganeshharish75-eng

Description

@ganeshharish75-eng

This issue proposes the development of a real-time monitoring solution leveraging camera input to detect potential malpractice or suspicious activities, such as unauthorized hand gestures or phone usage, during monitored sessions (e.g., testing environments, secure areas).

Context & Goals:

  • Enhance security monitoring capabilities within the GSA/https project by introducing an AI-powered video analysis feature.
  • Use computer vision libraries (e.g., OpenCV, MediaPipe) to detect:
    • Unauthorized hand signals/fingers.
    • Phone usage (talking, using phone while present in view).
    • Customizable suspicious activity patterns. Face above turning left/right

Proposed Workflow:

  1. Integrate camera feed capture and processing (OpenCV).
  2. Employ pose and gesture recognition for real-time detection.
  3. Trigger configurable alerts/logging on detection events.
  4. Provide documentation for reproducibility and results.

Benefits:

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