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Strategy Inference in Multi-Agent Multi-Team Scenarios

机译:策略推断在多代理多功能团场景中

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Creating simulations for multi-agent multi-team interactions is a daunting task. It is non-trivial to compose a situation where each individual agent maintains their own 'personality' while still following the assigned policy dictated by a team's central command. Further, the complexity is inflated by ensuring that each of these agent policies is coordinated into a cohesive team strategy. Finally, peaking the complexity, is evaluating the performance of the team's strategy against other teams' strategies in real-time. This is the work of this paper, proposing SIMAMT, the simulation space for multi-agent multi-team engagements, and testing it. We will first cover the system and how well it models the virtual environment for strategic interaction. Second, we will deliver results from a practical test of strategy inference within such an environment using the SIE (Strategy Inference Engine).
机译:为多代理多功能团体交互创建模拟是一个令人生畏的任务。撰写一个情况是撰写的情况,其中每个代理人维持自己的“个性”,同时仍然遵循团队中央指令决定的指定政策。此外,通过确保这些药物政策中的每一个协调为一个凝聚力的团队战略来膨胀复杂性。最后,达到复杂性,正在评估团队战略对其他团队的策略实时的绩效。这是本文的工作,提出了司马特,多代理多团队参与的仿真空间,并测试它。我们将首先涵盖该系统以及它模拟虚拟环境以进行战略互动的方式。其次,我们将在使用SIE(策略推理引擎)的环境中的战略推理的实际测试中提供结果。

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