Efficiently Approximating the Worst-Case Deadline Failure Probability Under EDF
Georg von der Brüggen, Nico Piatkowski, Kuan-Hsun Chen, Jian-Jia Chen, Katharina Morik, Björn B. Brandenburg
Abstract
Probabilistic timing guarantees enable a tradeoff between system safety and hardware costs in embedded real-time systems. A key metric for assessing whether timing requirements can be satisfied with sufficiently high probability is the worst-case deadline failure probability (WCDFP). This paper studies the WCDFP under earliest-deadline first (EDF) scheduling for tasks with several probabilistic execution modes (e.g., a low-needs "typical" mode and a resource-intensive "exceptional" mode). Under EDF, no known approach can bound the WCDFP for practically sized workloads since the time complexity of prior approaches is exponential in the number of jobs.This paper examines the structure of the EDF WCDFP problem and establishes a safe, efficiently computable over-approximation by restricting the analysis to a set of specific intervals and providing a criterion to stop the derivation early without risking under-approximation. The analysis first assumes independent jobs and is then extended to handle dependencies (i.e., acyclic task chains). An evaluation shows that (i) even if 99.9999% of the jobs must meet their deadlines, a significantly higher utilization is possible than in the deterministic case, (ii) the analysis is scalable to 30 tasks with more than 1060jobs in the hyperperiod, and (iii) assuming independence in the presence of dependent tasks can severely under-estimate the WCDFP.
Ask about this paper
Ask your agent about it.
Lune has read the top-tier papers around this one, so every answer names the papers it rests on.
Your agent calls
Lunesearch_papers
Free to start. No credit card required.
Terminal
Install the CLIlune papers get 6edd9a22-d0d3-4b27-a647-d7946142a6adCited by top-tier papers2
- Critical Instant for Probabilistic Timing Guarantees: Refuted and RevisitedKuan-Hsun Chen, Mario Günzel, Georg von der Brüggen, Jian-Jia ChenRTSS 2022 · 15 citations
- CTA: A Correlation-Tolerant Analysis of the Deadline-Failure Probability of Dependent TasksFilip Markovic, Pierre Roux, Sergey Bozhko, Alessandro V. Papadopoulos et al.RTSS 2023 · 8 citations
Related papers
- Reducing Worst-Case Deadline Failure Probability for EDF SchedulingFei Guan, Xu Jiang, Weipeng Jing, Nan GuanRTSS 2025
- Towards Principled Budget Enforcement in Real-Time SystemsJoseph Goh, James H. AndersonRTSS 2024 · 1 citation
- Monte Carlo Response-Time AnalysisSergey Bozhko, Georg von der Brüggen, Björn B. BrandenburgRTSS 2021 · 28 citations
- Requirement-Based Analysis of Self-Suspending Tasks under EDFMario Günzel, Federico Aromolo, Alessandro Biondi, Jian-Jia ChenRTSS 2025 · 1 citation
- A Distribution-Agnostic and Correlation-Aware Analysis of Periodic TasksFilip Markovic, Georg von der Brüggen, Mario Günzel, Jian-Jia Chen et al.RTSS 2024 · 5 citations
