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Area of Science:

  • Cybersecurity
  • Machine Learning
  • Internet of Things (IoT)

Background:

  • Billions of Internet of Things (IoT) devices are vulnerable to cyber threats due to limited resources.
  • IoT devices often act as gateways to cloud infrastructures, increasing their attack surface.
  • Resource constraints in IoT hinder the implementation of robust security measures.

Purpose of the Study:

  • To propose a lightweight intrusion detection framework for resource-constrained IoT environments.
  • To enable real-time anomaly detection in IoT networks.
  • To enhance IoT security without compromising device performance.

Main Methods:

  • Developed a lightweight decision tree-based intrusion detection framework.
  • Implemented a novel leaf-cut feature optimization strategy.
  • Utilized adaptive cloud-edge intelligence for efficient processing.

Main Results:

  • Achieved high accuracy (98.2% on NSL-KDD, 97.9% on Bot-IoT) with less than 1% false positives.
  • Demonstrated significant improvements over traditional models (e.g., SVM, Neural Networks) in accuracy and energy efficiency (up to 78% less energy).
  • Real-time inference achieved in under 1 ms on Raspberry Pi nodes at 1,250 samples/sec with only 12.5 MB memory usage.

Conclusions:

  • The proposed framework offers an energy-efficient, scalable, and interpretable solution for IoT security.
  • Suitable for real-time anomaly detection in diverse IoT applications like smart cities and healthcare.
  • Addresses the critical need for effective security in resource-limited IoT ecosystems.