Safety Analysis in the Era of Large Language Models: A Case Study of STPA using ChatGPT
April 03, 2023 ยท Declared Dead ยท ๐ Machine Learning with Applications
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Authors
Yi Qi, Xingyu Zhao, Siddartha Khastgir, Xiaowei Huang
arXiv ID
2304.01246
Category
cs.CL: Computation & Language
Cross-listed
cs.AI,
cs.CY,
cs.SE
Citations
35
Venue
Machine Learning with Applications
Last Checked
4 months ago
Abstract
Can safety analysis make use of Large Language Models (LLMs)? A case study explores Systems Theoretic Process Analysis (STPA) applied to Automatic Emergency Brake (AEB) and Electricity Demand Side Management (DSM) systems using ChatGPT. We investigate how collaboration schemes, input semantic complexity, and prompt guidelines influence STPA results. Comparative results show that using ChatGPT without human intervention may be inadequate due to reliability related issues, but with careful design, it may outperform human experts. No statistically significant differences are found when varying the input semantic complexity or using common prompt guidelines, which suggests the necessity for developing domain-specific prompt engineering. We also highlight future challenges, including concerns about LLM trustworthiness and the necessity for standardisation and regulation in this domain.
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