cs.AI updates on arXiv.org 07月18日 12:13
Risks of ignoring uncertainty propagation in AI-augmented security pipelines
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本文探讨了AI技术在软件系统安全开发中的应用,针对AI子系统在自动化流程中的不确定性传播问题,提出了不确定性捕捉的数学基础,开发了量化不确定性的模拟器,并通过案例研究评估了错误传播的模拟,提出了针对AI系统的评估政策建议。

arXiv:2407.14540v2 Announce Type: replace-cross Abstract: The use of AI technologies is being integrated into the secure development of software-based systems, with an increasing trend of composing AI-based subsystems (with uncertain levels of performance) into automated pipelines. This presents a fundamental research challenge and seriously threatens safety-critical domains. Despite the existing knowledge about uncertainty in risk analysis, no previous work has estimated the uncertainty of AI-augmented systems given the propagation of errors in the pipeline. We provide the formal underpinnings for capturing uncertainty propagation, develop a simulator to quantify uncertainty, and evaluate the simulation of propagating errors with one case study. We discuss the generalizability of our approach and its limitations and present recommendations for evaluation policies concerning AI systems. Future work includes extending the approach by relaxing the remaining assumptions and by experimenting with a real system.

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AI系统 不确定性评估 安全开发
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