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On the design of coordination diagnosis algorithms for teams of situated agents

机译:驻地特工团队协调诊断算法设计

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Teamwork demands agreement among team-members in order to collaborate and coordinate effectively. When a disagreement between teammates occurs (due to failures), team-members should ideally diagnose its causes, to resolve the disagreement. Such diagnosis of social failures can be expensive in communication and computation, challenges which previous work has not addressed. We present a novel design space of diagnosis algorithms, distinguishing several phases in the diagnosis process, and providing alternative algorithms for each phase. We then combine these algorithms in different ways to empirically explore specific design choices in a complex domain, on thousands of failure cases. The results show that different phases of diagnosis affect communication and computation overhead. In particular, centralizing the diagnosis disambiguation process is a key factor in reducing communications, while runtime is affected mainly by the amount of reasoning about other agents. These results contrast with previous work in disagreement detection (without diagnosis), in which distributed algorithms reduce communications.
机译:团队合作要求团队成员之间达成共识,以便有效地进行协作和协调。当队友之间发生分歧(由于失败)时,团队成员应理想地诊断其原因,以解决分歧。这种对社会失败的诊断在沟通和计算上可能是昂贵的,而以前的工作尚未解决这些挑战。我们提出一种新颖的诊断算法设计空间,区分诊断过程中的几个阶段,并为每个阶段提供替代算法。然后,我们以不同的方式组合这些算法,以经验方法在数千个失败案例中探索复杂领域中的特定设计选择。结果表明,诊断的不同阶段会影响通信和计算开销。特别地,集中诊断歧义消除过程是减少通信的关键因素,而运行时则主要受到有关其他代理的推理量的影响。这些结果与以前的分歧检测(无诊断)工作相反,后者的分布式算法减少了通信。

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