Designing soft-errors resilient systems is a complex engineering task, which nowadays follows a cross-layer approach. It requires a careful planning for different fault-tolerance mechanisms at different system's layers: starting from the technology up to the software domain. While these design decisions have a positive effect on the reliability of the system, they usually have a detrimental effect on its size, power consumption, performance and cost. Design space exploration for cross-layer reliability is therefore a multi-objective search problem in which reliability must be traded-off with other design dimensions. Assessing the reliability of a complex system and performing design space exploration in the early phases of the design cycle is a complex task and designers are increasing looking at stochastic models able to provide fast results to quickly drive early design decisions. This paper summarizes some of the results achieved by the authors in more than five years of research in this domain.

Bayesian models for early cross-layer reliability analysis and design space exploration / Vallero, A.; Savino, A.; Carelli, A.; Di Carlo, S.. - STAMPA. - (2019), pp. 143-146. (Intervento presentato al convegno 25th IEEE International Symposium on On-Line Testing and Robust System Design, IOLTS 2019 tenutosi a Rhodes, Greece nel 1-3 July 2019) [10.1109/IOLTS.2019.8854452].

Bayesian models for early cross-layer reliability analysis and design space exploration

Vallero A.;Savino A.;Carelli A.;Di Carlo S.
2019

Abstract

Designing soft-errors resilient systems is a complex engineering task, which nowadays follows a cross-layer approach. It requires a careful planning for different fault-tolerance mechanisms at different system's layers: starting from the technology up to the software domain. While these design decisions have a positive effect on the reliability of the system, they usually have a detrimental effect on its size, power consumption, performance and cost. Design space exploration for cross-layer reliability is therefore a multi-objective search problem in which reliability must be traded-off with other design dimensions. Assessing the reliability of a complex system and performing design space exploration in the early phases of the design cycle is a complex task and designers are increasing looking at stochastic models able to provide fast results to quickly drive early design decisions. This paper summarizes some of the results achieved by the authors in more than five years of research in this domain.
2019
978-1-7281-2490-2
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2785912