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GreenhouseDT: An Exemplar for Digital Twins

  • ,
  • Riccardo Sieve
    ,
  • Chinmayi Prabhu Baramashetru
    ,
  • Marco Amato
    ,
  • Gianluca Barmina
    ,
  • Eduard Occhipinti
  • University of Oslo
    ,
  • University of Turin
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Open access

Publication Information

Output type

Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 175-181 (7 pages)

Publication milestones

  • Published - 07/06/2024

Publication status

Published - 07/06/2024

Publisher

Association for Computing Machinery, United States

Publication IDs

  • Scopus: 85196405575

Host publication title

Proceedings of the 19th International Symposium on Software Engineering for Adaptive and Self-Managing Systems

Abstract

Digital twins, which are increasingly adopted in industry, are model-centric systems used to improve the behavior of a twinned physical system. Seen as a whole, this system has several layers of self-adaptation: first, the digital twin manages its physical counterpart and maintains its models through a feedback loop to, e.g., fine-tune model parameters. Second, the digital twin needs to deal with unforeseen changes in the composition of the physical system, which require models to be partly replaced or recomposed. To facilitate research on self-adaptive digital twins, without requiring access to industrial production systems, this paper presents GreenhouseDT, an exemplar that explicitly separates these layers of self-adaptation. GreenhouseDT provides an extensible software architecture for a digital twin of a simple, low-cost greenhouse, in which plants, sensors and water pumps constitute the physical system. GreenhouseDT includes an asset model in the digital twin's knowledge base and uses reflection to lift twinned configurations into the knowledge base. We discuss how GreenhouseDT can be extended with different digital twin capabilities, demonstrated by the addition of plant health monitoring and model-based control.

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Citations
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Captures
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Related Event

Title

International Symposium on Software Engineering for Adaptive and Self-Managing Systems

Event type

Conference

Date

15/04/2024 - 16/04/2024

Location

LisbonPortugal