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Automated Quality Model Management Using Semantic Technologies

  • Reinhold Plösch*
  • , Florian Ernst
  • , Matthias Saft
  • *Korrespondierende/r Autor/-in für diese Arbeit

Publikation: Beitrag in Buch/Bericht/KonferenzbandKonferenzbeitragBegutachtung

Abstract

The starting point for this paper and service for the query-based generation of quality models was the requirement to be able to manage software quality models dynamically, as detailed domain knowledge is usually required for this task. We present new approaches regarding the query-based generation of software quality models and the creation of profiles for quality analyses using the code quality tool SonarQube. Furthermore, our support for the automatic assignment of software quality rules to entries of a hierarchical quality model simplifies the maintenance of the models with the help of machine learning models and large language models (HMCN and SciBERT in our case). The resulting findings were evaluated for their practical suitability using expert interviews. The results are promising and show that semantic management of quality models could help spreading the use of quality models, as it considerably reduces the maintenance effort.
OriginalspracheEnglisch
TitelProceedings of the 20th International Conference on Software Technologies - ICSOFT
Seiten223-232
Seitenumfang10
Auflage1
DOIs
PublikationsstatusVeröffentlicht - Okt. 2025

Wissenschaftszweige

  • 102020 Medizinische Informatik
  • 102022 Softwareentwicklung
  • 102006 Computer Supported Cooperative Work (CSCW)
  • 102027 Web Engineering
  • 502050 Wirtschaftsinformatik
  • 102040 Quantencomputing
  • 102016 IT-Sicherheit
  • 503015 Fachdidaktik Technische Wissenschaften
  • 509026 Digitalisierungsforschung
  • 102015 Informationssysteme
  • 102034 Cyber-Physical Systems
  • 502032 Qualitätsmanagement
  • 211928 Systems Engineering

JKU-Schwerpunkte

  • Digital Transformation

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