• DocumentCode
    665573
  • Title

    Stress testing of task deadlines: A constraint programming approach

  • Author

    Di Alesio, Stefano ; Nejati, Shiva ; Briand, Lionel ; Gotlieb, Arnaud

  • Author_Institution
    Certus Centre for Software Verification & Validation, Simula Res. Lab., Oslo, Norway
  • fYear
    2013
  • fDate
    4-7 Nov. 2013
  • Firstpage
    158
  • Lastpage
    167
  • Abstract
    Safety-critical Real Time Embedded Systems (RT-ESs) are usually subject to strict timing and performance requirements that must be satisfied for the system to be deemed safe. In this paper, we use effective search strategies whose goal is finding worst case scenarios with respect to deadline misses. Such scenarios can in turn be used to test the target RTES and ensure that it satisfies its timing requirements even under worst case conditions. Specifically, we develop an approach based on Constraint Programming (CP) to automate the generation of test cases that reveal, or are likely to, task deadline misses. We evaluate it through a comparison with a state-of-the-art approach based on Genetic Algorithms (GA). In particular, we compare CP and GA in five case studies for efficiency, effectiveness, and scalability. Our experimental results show that, on the largest and more complex case studies, CP performs significantly better than GA. Furthermore, CP offers some advantages over GA, such as it guarantees a complete search when there is sufficient time, and, being deterministic, it doesn´t rely on parameters that potentially have a significant effect on the search and therefore need to be tuned. Hence, we conclude that our results are encouraging and suggest this is an advantageous approach for stress testing of RTESs with respect to timing constraints.
  • Keywords
    constraint handling; genetic algorithms; program testing; real-time systems; CP; GA; RTES; constraint programming approach; effective search strategies; genetic algorithms; safety-critical real time embedded systems; stress testing; task deadlines; Computational modeling; Genetic algorithms; Programming; Real-time systems; Stress; Testing; Timing; Constraint Programming; Real-Time Systems; Stress Testing;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Software Reliability Engineering (ISSRE), 2013 IEEE 24th International Symposium on
  • Conference_Location
    Pasadena, CA
  • Type

    conf

  • DOI
    10.1109/ISSRE.2013.6698915
  • Filename
    6698915