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An artificial intelligence lightweight blockchain security model for security and privacy in IIoT systems.

Shitharth Selvarajan1, Gautam Srivastava2,3,4, Alaa O Khadidos5

  • 1Department of Computer Science, Kebri Dehar University, Kebri Dehar, Ethiopia.

Journal of Cloud Computing (Heidelberg, Germany)
|March 20, 2023
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Summary

This study introduces an Artificial Intelligence-based Lightweight Blockchain Security Model (AILBSM) to enhance Industrial Internet of Things (IIoT) security. The AILBSM model significantly improves privacy, accuracy, and detection performance for IIoT systems.

Keywords:
Artificial intelligenceBlockchainCloud computingConvivial Optimized Sprinter Neural NetworkFog computingSecurity

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Area of Science:

  • Computer Science
  • Cybersecurity
  • Artificial Intelligence

Background:

  • Industrial Internet of Things (IIoT) systems offer innovative business models but face significant security vulnerabilities, including privacy breaches, data integrity issues, and lack of trust.
  • Traditional IIoT architectures struggle with centralized security and network intrusions, necessitating advanced protection mechanisms for cloud and edge computing environments.

Purpose of the Study:

  • To implement an Artificial Intelligence-based Lightweight Blockchain Security Model (AILBSM) for enhanced privacy and security in Industrial Internet of Things (IIoT) systems.
  • To address the security and privacy challenges inherent in cloud-based and edge computing IIoT deployments.

Main Methods:

  • The research proposes a novel AILBSM framework combining lightweight blockchain technology with Convivial Optimized Sprinter Neural Network (COSNN) based AI.
  • Features are transformed into encoded data using an Authentic Intrinsic Analysis (AIA) model to mitigate the impact of attacks.
  • The model integrates auto-encoder based transformation and blockchain authentication for robust anomaly detection.

Main Results:

  • The AILBSM framework achieved a minimized execution time of 0.6 seconds.
  • Overall classification accuracy was improved to 99.8%, and detection performance reached 99.7%.
  • The proposed model demonstrated significantly improved anomaly detection performance compared to existing techniques.

Conclusions:

  • The AILBSM framework effectively enhances the security and privacy of Industrial Internet of Things (IIoT) systems.
  • The integration of AI and blockchain provides a robust solution for protecting IIoT data in cloud and edge environments.
  • The model's superior performance in accuracy, detection, and execution time validates its efficacy.