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Large Scale Energy Efficient Sensor Network Routing Using a Quantum Processor Unit
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Secure artificial intelligence at the edge.

Nader Sehatbakhsh1, Sudhakar Pamarti1, Vwani Roychowdhary1

  • 1Electrical and Computer Engineering Department, UCLA, Los Angeles, CA, USA.

Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences
|January 16, 2025
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Summary
This summary is machine-generated.

Advanced sensors and artificial intelligence (AI) at the edge mimic nature by integrating sensing and computing. This approach, however, introduces novel security challenges requiring adaptive learning systems to counter unknown attack strategies in edge AI.

Keywords:
artificial intelligenceedge computingsensor securitysystemic attacks

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Area of Science:

  • Multimodal sensor technology
  • Artificial intelligence at the edge
  • Biologically inspired computing

Background:

  • Sophisticated sensors and AI at the edge offer potential for complex systems rivaling nature.
  • Current AI relies on massive computing power, unsuitable for distributed systems.
  • Nature integrates computing, memory, and sensing for real-time environmental adaptation.

Purpose of the Study:

  • Define systemic attack types in integrated edge AI systems.
  • Introduce a multiscale framework for combating these attacks.
  • Propose adaptive learning systems for real-time defense against novel threats.

Main Methods:

  • Analysis of security vulnerabilities in edge AI systems.
  • Development of a multiscale defense framework.
  • Exploration of low-touch adaptive learning for real-time threat response.

Main Results:

  • Identified unique systemic attack vectors targeting integrated edge AI.
  • Proposed a novel multiscale framework for enhanced system security.
  • Highlighted the necessity of adaptive learning for defending against unknown attack strategies.

Conclusions:

  • Edge AI systems mimicking nature require new security paradigms.
  • A multiscale framework and adaptive learning are crucial for robust security.
  • Future secure computing platforms must address the unique challenges of edge AI security.