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Multifaceted automated analyses for variability-intensive embedded systems

Sami Lazreg, Maxime Cordy, Philippe Collet, Patrick Heymans, Sébastien Mosser

Abstract

Embedded systems, like those found in the automotive domain, must comply with stringent functional and non-functional requirements. To fulfil these requirements, engineers are confronted with a plethora of design alternatives both at the software and hardware level, out of which they must select the optimal solution wrt. possibly-antagonistic quality attributes (e.g. cost of manufacturing vs. speed of execution). We propose a model-driven framework to assist engineers in this choice. It captures high-level specifications of the system in the form of variable dataflows and configurable hardware platforms. A mapping algorithm then derives the design space, i.e. the set of compatible pairs of application and platform variants, and a variability-aware executable model, which encodes the functional and non-functional behaviour of all viable system variants. Novel verification algorithms then pinpoint the optimal system variants efficiently. The benefits of our approach are evaluated through a real-world case study from the automotive industry.

BibTeX
@inproceedings{Lazreg-al:ICSE19,
  author    = {Sami Lazreg and
               Maxime Cordy and
               Philippe Collet and
               Patrick Heymans and
               S{\'{e}}bastien Mosser},
  title     = {Multifaceted automated analyses for variability-intensive embedded systems},
  booktitle = {ICSE},
  pages     = {854--865},
  publisher = {{IEEE} / {ACM}},
  year      = {2019},
}

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