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Adversarial ML for DNNs, CapsNets, and SNNs at the Edge

  • Alberto Marchisio,
  • Muhammad Abdullah Hanif,
  • Muhammad Shafique

摘要

Recent studies have shown that Machine Learning (ML) algorithm suffers from several vulnerability threats. Among them, adversarial attacks represent one of the most critical issues. This chapter provides an overview of the ML vulnerability challenges, with a focus on the security threats for Deep Neural Networks, Capsule Networks, and Spiking Neural Networks. Moreover, it discusses the current trends and outlooks on the methodologies for enhancing the ML models’ robustness.