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A formal analysis of Dutch Generic Integral Tunnel Design models

Published: 07 June 2023 Publication History

Abstract

The Generic Integral Tunnel Design (GITO) contains generic models for the tunnel control systems of Rijkswaterstaat, part of the Dutch Ministry of Infrastructure and Water Management. A formal verification of these models advances the safety and reliability of GITO derived tunnel control systems. In this paper, the first known large-scale formalisation of tunnel control systems is presented which transforms GITO models to the formal specification language mCRL2. This transformation is applied to two sub-systems of the GITO to analyse the correctness of the supplied models. In this formal analysis, several deficiencies in the specifications and faults in the existing models are revealed and verified solutions are proposed. Some of the presented faults even find their origin in the legally required standards.

References

[1]
Stefan Blom, Saeed Darabi, Marieke Huisman, and Wytse Oortwijn. 2017. The VerCors Tool Set: Verification of Parallel and Concurrent Software. In Integrated Formal Methods, Nadia Polikarpova and Steve Schneider (Eds.). Springer International Publishing, Cham, 102--110.
[2]
Olav Bunte, Jan Friso Groote, Jeroen J. A. Keiren, Maurice Laveaux, Thomas Neele, Erik P. de Vink, Wieger Wesselink, Anton Wijs, and Tim A. C. Willemse. 2019. The mCRL2 Toolset for Analysing Concurrent Systems. In Tools and Algorithms for the Construction and Analysis of Systems, Tomáš Vojnar and Lijun Zhang (Eds.). Springer International Publishing, Cham, 21--39.
[3]
Joint IEEE / EIA Working Group. 1996. Standard for Information Technology-Software Life Cycle Processes-Software Development-Acquirer-Supplier Agreement (Issued for Trial Use)., 232 pages.
[4]
Kevin H.J. Jilissen. 2022. A formal analysis of the tunnel control systems of the Rijkswaterstaat GITO. Master's thesis. Eindhoven University of Technology (TU/e), Eindhoven, The Netherlands.
[5]
Michiel Jung. 2021. SRS SW-Component Besturing Overdruk Veilige Ruimte. Version 4.0. document code 1912602-001511.
[6]
Michiel Jung. 2021. SRS Verkeersbuis Langventilatie. Version 1.1. document code 1912602-001516.
[7]
Konstantinos Kazaras, Konstantinos Kirytopoulos, and Athanasios Rentizelas. 2012. Introducing the STAMP method in road tunnel safety assessment. Safety Science 50, 9 (2012), 1806--1817.
[8]
Ken Madlener, Sjaak Smetsers, and Marko van Eekelen. 2010. A Formal Verification Study on the Rotterdam Storm Surge Barrier. In Formal Methods and Software Engineering, Jin Song Dong and Huibiao Zhu (Eds.). Springer Berlin Heidelberg, Berlin, Heidelberg, 287--302.
[9]
Wytse Oortwijn and Marieke Huisman. 2019. Formal Verification of an Industrial Safety-Critical Traffic Tunnel Control System. In Integrated Formal Methods, Wolfgang Ahrendt and Silvia Lizeth Tapia Tarifa (Eds.). Springer International Publishing, Cham, 418--436.
[10]
Jan Philipps and Oscar Slotosch. 1999. The quest for correct systems: model checking of diagrams and datatypes. In Proceedings Sixth Asia Pacific Software Engineering Conference (ASPEC'99) (Cat. No.PR00509). Institute of Electrical and Electronics Engineers, Takamatsu, 449--458.
[11]
Rijksoverheid. 2006. Wet aanvullende regels veiligheid wegtunnels. https://wetten.overheid.nl/jci1.3:c:BWBR0019516&z=2006-05-25&g=2006-05-25
[12]
Rijkswaterstaat. 2021. Basisspecificatie MMI RWS Tunnelsysteem. https://standaarden.rws.nl/link/standaard/6080 Release 1.2 SP2 B3.
[13]
Rijkswaterstaat. 2021. Basisspecificatie TTI RWS Tunnelsysteem. https://standaarden.rws.nl/link/standaard/6080 Release 1.2 SP2 B3.
[14]
Rijkswaterstaat. 2021. Landelijke Tunnelstandaard. https://standaarden.rws.nl/link/standaard/6080 Release 1.2 SP2 B3.

Cited By

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  • (2024)Formally Modelling the Rijkswaterstaat Tunnel Control Systems in a Constrained Industrial EnvironmentElectronic Proceedings in Theoretical Computer Science10.4204/EPTCS.399.6399(101-127)Online publication date: 27-Mar-2024

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cover image ACM Conferences
SAC '23: Proceedings of the 38th ACM/SIGAPP Symposium on Applied Computing
March 2023
1932 pages
ISBN:9781450395175
DOI:10.1145/3555776
Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the owner/author(s).

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Published: 07 June 2023

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Author Tags

  1. model checking
  2. formal analysis
  3. tunnel control systems
  4. mCRL2

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  • (2024)Formally Modelling the Rijkswaterstaat Tunnel Control Systems in a Constrained Industrial EnvironmentElectronic Proceedings in Theoretical Computer Science10.4204/EPTCS.399.6399(101-127)Online publication date: 27-Mar-2024

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