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Unsupervised Mapping of Quantitative Measures to Qualitative Characteristics in Hierarchical Software Quality Assurance

  • Kaveen Liyanage
  • , Ethan L. Gerard
  • , Derek Reimanis
  • , Ann Marie Reinhold
  • , Clemente Izurieta
  • , Brock J. Lameres
  • , Bradley M. Whitaker

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Ensuring software quality is essential to the software development and deployment process. Evaluating software for known vulnerabilities and weaknesses is a method of assessing the quality of software. However, the existence of a large number of vulnerabilities and weaknesses can hinder decision-making and mitigation. To address this, hierarchical software quality models aggregate quantitative weakness measures into qualitative characteristics to simplify decision making. However, challenges exist when mapping quantitative measures to qualitative characteristics, especially when the relationship between measures and characteristics is ill-defined/unknown or when prior knowledge is absent, thus posing threats to the construct validity of the mapping. This paper presents a pseudo-label-based regression framework to generate qualitative values when given a set of quantitative measurements. To exemplify this research, we created a use case where we applied the framework to binary program analysis.

Original languageEnglish
Title of host publication2025 Intermountain Engineering, Technology and Computing, IETC 2025
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331512828
DOIs
StatePublished - May 9 2025
Event2025 Intermountain Engineering, Technology and Computing, IETC 2025 - Orem, United States
Duration: May 9 2025May 10 2025

Publication series

Name2025 Intermountain Engineering, Technology and Computing, IETC 2025

Conference

Conference2025 Intermountain Engineering, Technology and Computing, IETC 2025
Country/TerritoryUnited States
CityOrem
Period05/9/2505/10/25

Keywords

  • Machine Learning
  • Quality Assurance
  • Software Quality

INL Publication Number

  • NA

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