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Updated: May 29, 2025

An R-Based Landscape Validation of a Competing Risk Model
Published on: September 16, 2022
An adversarial risk analysis framework for software release decision support
Refik Soyer1, Fabrizio Ruggeri2, David Rios Insua3
1Department of Decision Sciences, George Washington University, Washington, District of Columbia, USA.
None:
Recent artificial intelligence (AI) risk management frameworks and regulations place stringent quality constraints on AI systems to be deployed in an increasingly competitive environment. Thus, from a software engineering point of view, a major issue is deciding when to release an AI system to the market. This problem is complex due to, among other features, the uncertainty surrounding the AI system's reliability and safety as reflected through its faults, the various cost items involved, and the presence of competitors. A novel general adversarial risk analysis framework with multiple agents of two types (producers and buyers) is proposed to support an AI system developer in deciding when to release a product. The implementation of the proposed framework is illustrated with an example and extensions to cases with multiple producers and multiple buyers are discussed.
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