Avoiding Negative Side Effects due to Incomplete Knowledge of AI Systems
Sandhya Saisubramanian, Shlomo Zilberstein, Ece Kamar

TL;DR
This paper reviews the challenge of negative side effects in autonomous AI systems caused by incomplete models, emphasizing recent research efforts to recognize, mitigate, and prevent such undesirable outcomes for safer deployment.
Contribution
It provides a comprehensive overview of negative side effects in AI, analyzing key challenges, recent approaches, and future research directions to improve safety and reliability.
Findings
Identifies key characteristics of negative side effects.
Highlights challenges in avoiding side effects.
Discusses recent mitigation approaches.
Abstract
Autonomous agents acting in the real-world often operate based on models that ignore certain aspects of the environment. The incompleteness of any given model -- handcrafted or machine acquired -- is inevitable due to practical limitations of any modeling technique for complex real-world settings. Due to the limited fidelity of its model, an agent's actions may have unexpected, undesirable consequences during execution. Learning to recognize and avoid such negative side effects of an agent's actions is critical to improve the safety and reliability of autonomous systems. Mitigating negative side effects is an emerging research topic that is attracting increased attention due to the rapid growth in the deployment of AI systems and their broad societal impacts. This article provides a comprehensive overview of different forms of negative side effects and the recent research efforts to…
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Taxonomy
TopicsAdversarial Robustness in Machine Learning · Explainable Artificial Intelligence (XAI) · Ethics and Social Impacts of AI
