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Adaptive Collaboration Based on the E-CARGO Model

机译:基于E-CARGO模型的自适应协作

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Adaptive Collaboration (AC) is essential for maintaining optimal team performance on collaborative tasks. However, little research has discussed AC in multi-agent systems. This paper introduces AC within the context of solving real-world team performance problems using computer-based algorithms. Based on the authors' previous work on the Environment-Class, Agent, Role, Group, and Object (E-CARGO) model, a theoretical foundation for AC using a simplified model of role-based collaboration (RBC) is proposed Several parameters that affect team performance are defined and integrated into a theorem, which showed that dynamic role assignment yields better performance than static role assignment. The benefits of implementing AC are further proven by simulating a "future battlefield" of remotely-controlled robotic vehicles; in this scenario, team performance clearly benefits from shifting vehicles (or roles) using a single controller. Related research is also discussed for future studies.
机译:自适应协作(AC)对于在协作任务上保持最佳团队绩效至关重要。但是,很少有研究讨论多代理系统中的AC。本文在使用基于计算机的算法解决现实团队绩效问题的背景下介绍了AC。基于作者先前在环境类,代理,角色,组和对象(E-CARGO)模型上的工作,提出了使用简化的基于角色的协作(RBC)模型的AC的理论基础。定义影响团队绩效并将其集成到一个定理中,这表明动态角色分配比静态角色分配产生更好的性能。通过模拟遥控机器人车辆的“未来战场”,进一步证明了实施AC的好处。在这种情况下,团队绩效显然得益于使用单个控制器换班的车辆(或角色)。还讨论了相关研究,以供将来研究。

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