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Abstraction Hierarchy Based Explainable Artificial Intelligence

2020·1 Zitationen·Proceedings of the Human Factors and Ergonomics Society Annual Meeting
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1

Zitationen

2

Autoren

2020

Jahr

Abstract

This work explores the application of Cognitive Work Analysis (CWA) in the context of Explainable Artificial Intelligence (XAI). We built an AI system using a loan evaluation data set and applied an XAI technique to obtain data-driven explanations for predictions. Using an Abstraction Hierarchy (AH), we generated domain knowledge-based explanations to accompany data-driven explanations. An online experiment was conducted to test the usefulness of AH-based explanations. Participants read financial profiles of loan applicants, the AI system’s loan approval/rejection decisions, and explanations that justify the decisions. Presence or absence of AH-based explanations was manipulated, and participants’ perceptions of the explanation quality was measured. The results showed that providing AH-based explanations helped participants learn about the loan evaluation process and improved the perceived quality of explanations. We conclude that a CWA approach can increase understandability when explaining the decisions made by AI systems.

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Themen

Explainable Artificial Intelligence (XAI)Human-Automation Interaction and SafetyArtificial Intelligence in Healthcare and Education
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