2023
DOI: 10.48550/arxiv.2302.07444
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A Case Study on Designing Evaluations of ML Explanations with Simulated User Studies

Abstract: When conducting user studies to ascertain the usefulness of model explanations in aiding human decision-making, it is important to use real-world use cases, data, and users. However, this process can be resource-intensive, allowing only a limited number of explanation methods to be evaluated. Simulated user evaluations (SimEvals), which use machine learning models as a proxy for human users, have been proposed as an intermediate step to select promising explanation methods. In this work, we conduct the first S… Show more

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