Reliability and Security of AI Hardware

Paolo Rech, Fernando Fernandes dos Santos, Mehdi B. Tahoori, Dennis R. E. Gnad, Martin Gotthard, Jonas Krautter, Angeliki Kritikakou, Vincent Meyers, Josie E. Rodriguez Condia, Annachiara Ruospo, Ernesto Sánchez, Olivier Sentieys, Russell Tessier, Marcello Traiola
2024-05-20

SCID:  54.1/ysj6krpq
In recent years, Artificial Intelligence (AI) systems have achieved revolutionary capabilities, providing intelligent solutions that surpass human skills in many cases. However, such capabilities come with power-hungry computation workloads. Therefore, the implementation of hardware acceleration becomes as fundamental as the software design to improve energy efficiency, silicon area, and latency of AI systems. Thus, innovative hardware platforms, architectures, and compiler-level approaches have been used to accelerate AI workloads. Crucially, innovative AI acceleration platforms are being adopted in application domains for which dependability must be paramount, such as autonomous driving, healthcare, banking, space exploration, and industry 4.0. Unfortunately, the complexity of both AI software and hardware makes the dependability evaluation and improvement extremely challenging. Studies have been conducted on both the security and reliability of AI systems, such as vulnerability assessments and countermeasures to random faults and analysis for side-channel attacks. This paper describes and discusses various reliability and security threats in AI systems, and presents representative case studies along with corresponding efficient countermeasures.
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2024-05-20
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Authors
Paolo Rech
Fernando Fernandes dos Santos
Mehdi B. Tahoori
Dennis R. E. Gnad
Martin Gotthard
Jonas Krautter
Angeliki Kritikakou
Vincent Meyers
Josie E. Rodriguez Condia
Annachiara Ruospo
Ernesto Sánchez
Olivier Sentieys
Russell Tessier
Marcello Traiola
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