• DocumentCode
    1792795
  • Title

    Achieving elementary cycle synchronization between masters in the flexible time-triggered replicated star for ethernet

  • Author

    Ballesteros, Alberto ; Proenza, Julian ; Gessner, David ; Rodriguez-Navas, Guillermo ; Sauter, T.

  • Author_Institution
    DMI, Univ. de les Illes Balears, Palma de Mallorca, Spain
  • fYear
    2014
  • fDate
    16-19 Sept. 2014
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    For a distributed embedded system (DES) to operate continuously in a dynamic environment, it must be flexible and highly reliable. This applies in particular to its communication subsystem. The Flexible Time-Triggered Replicated Star for Ethernet (FTTRS) aims at providing such a subsystem by means of a highly-reliable switched-Ethernet architecture based on the Flexible Time-Triggered paradigm (FTT), a master/slave communication paradigm where the master periodically polls the slaves using so-called trigger messages (TMs). In particular, FTTRS interconnects nodes by redundant communication paths provided by two switches, each embedding an FTT master that manages the communication. This allows FTTRS to tolerate the failure of one switch without interrupting the communication as long as the masters are replica determinate, i.e., provide identical service to the slaves. The master replica determinism entails the masters broadcasting their TMs in a lockstep fashion: when one master broadcasts a TM, the other should do the same quasi-simultaneously. In this paper we present a solution inspired by the Precision Time Protocol (PTP) for achieving this lockstep transmission and preliminary results showing the precision with which we can synchronize the masters on a software prototype.
  • Keywords
    embedded systems; local area networks; protocols; synchronisation; DES; Ethernet; FTT; FTTRS; PTP; TM; distributed embedded system; elementary cycle synchronization; flexible time-triggered paradigm; flexible time-triggered replicated star; lockstep transmission; master-slave communication paradigm; precision time protocol; trigger message; Delays; Propagation delay; Protocols; Reliability; Software; Standards; Synchronization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Emerging Technology and Factory Automation (ETFA), 2014 IEEE
  • Conference_Location
    Barcelona
  • Type

    conf

  • DOI
    10.1109/ETFA.2014.7005335
  • Filename
    7005335