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Optimizing End-to-End Latency of Sporadic Cause-Effect Chains Using Priority Inheritance

  • Yue Tang
  • , Xu Jiang*
  • , Nan Guan
  • , Songran Liu
  • , Xiantong Luo
  • , Wang Yi
  • *Corresponding author for this work

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Analysis and optimization of end-to-end latency in cause-effect chains is an important problem in real-time systems. Under task-level fixed-priority scheduling, the end-to-end latency largely relies on the relative priority of the tasks in the chain, so previous work has tried to improve the latency via priority assignment. However, the improvement of static priority assignment is limited due to the conflict between schedulability of individual tasks and end-to-end latency of the chain, i.e., a priority assignment leading to good end-to-end latency may make the task set unschedulable. This work proposes a novel method named Dynamic Priority Inheritance Protocol (DPI) to optimize the end-to-end latency of sporadic cause-effect chains. Under DPI, the propagation delay between two communicating jobs is independent of the task relative priority. So the optimization can work on any priority assignment, and no longer conflicts with task schedulability. Moreover, we propose DPI-B, a combination of DPI and a Buffer Manipulation Protocol, for cause-effect chains that also need to meet the determinism requirement. We conduct experiments with both automotive benchmarks and randomly generated workload. The results show the effectiveness of our method in comparison with the state-of-the-art. © 2023 IEEE.
Original languageEnglish
Title of host publicationProceedings - 44th IEEE Real-Time Systems Symposium (RTSS 2023)
PublisherIEEE
Pages411-422
ISBN (Electronic)979-8-3503-2857-8
DOIs
Publication statusPublished - Dec 2023
Event44th IEEE Real-Time Systems Symposium, RTSS 2023 - Taipei, Taiwan, China
Duration: 5 Dec 20238 Dec 2023

Publication series

NameProceedings - Real-Time Systems Symposium
ISSN (Print)1052-8725

Conference

Conference44th IEEE Real-Time Systems Symposium, RTSS 2023
PlaceTaiwan, China
CityTaipei
Period5/12/238/12/23

Bibliographical note

Full text of this publication does not contain sufficient affiliation information. With consent from the author(s) concerned, the Research Unit(s) information for this record is based on the existing academic department affiliation of the author(s).

Funding

This work was partially supported by the National Natural Science Foundation of China (NSFC 62102072), the Research Council of Hong Kong GRF under Grants 11208522 and 15206221, and National Frontiers Science Center for Industrial Intelligence and Systems Optimization, Shenyang 110819, China

RGC Funding Information

  • RGC-funded

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