Understanding Human-AI Teaming Dynamics through Gaming Environments

Qiao Zhang
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Abstract

With the goal of better understanding Human-machine Teaming (HMT) dynamics and how team competencies that are transportable across contexts can lead to different teaming behaviors and team performances, I propose a series of three studies to explore communication, coordination and adaptation in HMT paradigms. I implement and integrate multiple AI agents and use collaborative games as testing environments to evaluate teaming effects. My work can provide findings to two higher level research questions that are widely studied in HMT: 1) the bidirectional behaviors that human and AI agents may develop when working as a team and, 2) how different types of AI agents can impact the teaming efficiency in human-AI teaming. Besides, my work can also contribute to Human-Computer Interaction and Game AI scholarship with insights into teaming dynamics in Human-AI teaming.
通过游戏环境理解人类与ai的合作动态
为了更好地理解人机合作(HMT)的动力学,以及跨环境可迁移的团队能力如何导致不同的团队行为和团队绩效,我提出了一系列的三个研究来探索人机合作范式中的沟通、协调和适应。我执行和整合多个AI代理,并使用协作游戏作为测试环境来评估团队效果。我的工作可以为HMT中广泛研究的两个更高层次的研究问题提供发现:1)人类和人工智能代理在团队合作时可能发展的双向行为,2)不同类型的人工智能代理如何影响人类-人工智能团队的团队效率。此外,我的工作也可以为人机交互和游戏AI奖学金做出贡献,并深入了解人类AI团队中的团队动态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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