Mental Models of AI Agents in a Cooperative Game Setting
Ментальные модели AI-агентов в условиях кооперативной игровой среды
2020-04-21
SCID: 54.1/kj2phu88
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cooperative word guessing gamemental models of AIpost-game surveythematic analysisthink-aloud study
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Abstract (AI)
As more and more forms of AI become prevalent, it becomes increasingly important to understand how people develop mental models of these systems. In this work we study people's mental models of AI in a cooperative word guessing game. We run think-aloud studies in which people play the game with an AI agent; through thematic analysis we identify features of the mental models developed by participants. In a large-scale study we have participants play the game with the AI agent online and use a post-game survey to probe their mental model. We find that those who win more often have better estimates of the AI agent's abilities. We present three components for modeling AI systems, propose that understanding the underlying technology is insufficient for developing appropriate conceptual models (analysis of behavior is also necessary), and suggest future work for studying the revision of mental models over time.
Key Findings
1
Participants who win more often have better estimates of the AI agent's abilities.
2
The work highlights the need to study how mental models of AI agents are revised over time and suggests directions for future research.
3
Think-aloud thematic analysis identified specific features of participants' mental models of the AI agent in a cooperative word guessing game.
4
Three components for modeling AI systems are presented as a framework for understanding mental models.
5
Understanding underlying AI technology alone is insufficient for developing appropriate conceptual models; analysis of the agent's behavior is also necessary.
Research Object
People's mental models of an AI agent in a cooperative word-guessing game
Research Subject
Characteristics and accuracy of participants' mental models (features, components, and estimates of the AI agent's abilities) and their relationship to game performance and model revision over time
Publication Details
Publication Date
2020-04-21
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