Supporting AI-powered real-time cyber-physical systems on heterogeneous platforms via hypervisor technology

Author:

Cittadini EdoardoORCID,Marinoni Mauro,Biondi Alessandro,Cicero Giorgiomaria,Buttazzo Giorgio

Abstract

AbstractThe heavy use of machine learning algorithms in safety-critical systems poses serious questions related to safety, security, and predictability issues, requiring novel architectural approaches to guarantee such properties. This paper presents an architecture solution that leverages heterogeneous platforms and virtualization technologies to support AI-powered applications consisting of modules with mixed criticalities and safety requirements. The hypervisor exploits the security features of the Xilinx ZCU104 MPSoCs to create two isolated execution environments: a high performance domain running deep learning algorithms under the Linux operating system and a safety-critical domain running control and monitoring functions under the freeRTOS real-time operating system. The proposed approach is validated by a use case consisting of an unmanned aerial vehicle capable of tracking moving targets using a deep neural network accelerated on the FGPA available on the platform.

Funder

Scuola Superiore Sant'Anna

Publisher

Springer Science and Business Media LLC

Subject

Electrical and Electronic Engineering,Control and Optimization,Computer Networks and Communications,Computer Science Applications,Modeling and Simulation,Control and Systems Engineering

Reference50 articles.

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1. HyFAR: A hypervisor-based fault tolerance approach for heterogeneous automotive real-time systems;Journal of Systems Architecture;2024-11

2. Application Design Issues;Hard Real-Time Computing Systems;2023-09-25

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