Appropriate Reliance on AI Advice: Conceptualization and the Effect of Explanations

February 04, 2023 Β· Declared Dead Β· πŸ› International Conference on Intelligent User Interfaces

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Authors Max Schemmer, Niklas KΓΌhl, Carina Benz, Andrea Bartos, Gerhard Satzger arXiv ID 2302.02187 Category cs.AI: Artificial Intelligence Cross-listed cs.HC Citations 162 Venue International Conference on Intelligent User Interfaces Last Checked 3 months ago
Abstract
AI advice is becoming increasingly popular, e.g., in investment and medical treatment decisions. As this advice is typically imperfect, decision-makers have to exert discretion as to whether actually follow that advice: they have to "appropriately" rely on correct and turn down incorrect advice. However, current research on appropriate reliance still lacks a common definition as well as an operational measurement concept. Additionally, no in-depth behavioral experiments have been conducted that help understand the factors influencing this behavior. In this paper, we propose Appropriateness of Reliance (AoR) as an underlying, quantifiable two-dimensional measurement concept. We develop a research model that analyzes the effect of providing explanations for AI advice. In an experiment with 200 participants, we demonstrate how these explanations influence the AoR, and, thus, the effectiveness of AI advice. Our work contributes fundamental concepts for the analysis of reliance behavior and the purposeful design of AI advisors.
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