Bottleneck Analysis via Grammar-based Performance Fuzzing*

Publikation: Beitrag in Buch/Bericht/KonferenzbandBeitrag in einem KonferenzbandBegutachtung

Abstract

Performance is a general quality attribute of every software system that developers always want to improve. A performance fuzzer helps developers in this task by automatically generating inputs hitting performance bottlenecks. However, a developer must still manually localize the root causes of these bottlenecks. In this study, we perform grammar-based performance fuzzing on an example System Under Test (SUT), focusing on response time for determining problematic grammar constructs with the highest likelihood of causing bottlenecks. We show that replacing these constructs creates an average of 40.53x speedup on 24 bottleneck cases out of 50. Furthermore, avoiding the problematic constructs in the input generation provides an average of 1.46x speedup. These preliminary results suggest a measurable link between grammar constructs and performance bottlenecks, opening up the possibility of high-level categorization and analysis.

Originalspracheenglisch
TitelProceedings - 2023 IEEE 16th International Conference on Software Testing, Verification and Validation Workshops, ICSTW 2023
Herausgeber (Verlag)Institute of Electrical and Electronics Engineers
Seiten180-185
Seitenumfang6
ISBN (elektronisch)9798350333350
DOIs
PublikationsstatusVeröffentlicht - 2023
Veranstaltung16th IEEE International Conference on Software Testing, Verification and Validation Workshops: ICSTW 2023 - Dublin, Irland
Dauer: 16 Apr. 202320 Apr. 2023

Konferenz

Konferenz16th IEEE International Conference on Software Testing, Verification and Validation Workshops
KurztitelICSTW 2023
Land/GebietIrland
OrtDublin
Zeitraum16/04/2320/04/23

ASJC Scopus subject areas

  • Software
  • Sicherheit, Risiko, Zuverlässigkeit und Qualität
  • Modellierung und Simulation

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