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Social Network Modeling and Agent-Based Simulation in Support of Crisis De-Escalation

机译:支持危机降级的社交网络建模和基于Agent的仿真

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摘要

Decision makers need capabilities to quickly model and effectively assess consequences of actions and reactions in crisis de-escalation environments. The creation and what-if exercising of such models has traditionally had onerous resource requirements. This research demonstrates fast and viable ways to build such models in operational environments. Through social network extraction from texts, network analytics to identify key actors, and then simulation to assess alternative interventions, advisors can support practicing and execution of crisis de-escalation activities. We describe how we used this approach as part of a scenario-driven modeling effort. We demonstrate the strength of moving from data to models and the advantages of data-driven simulation, which allow for iterative refinement. We conclude with a discussion of the limitations of this approach and anticipated future work.
机译:决策者需要具备在危机降级环境中快速建模并有效评估行动和反应后果的能力。此类模型的创建和假设实施历来具有繁重的资源需求。这项研究演示了在操作环境中构建此类模型的快速可行的方法。通过从文本中提取社交网络,进行网络分析以识别关键参与者,然后通过仿真来评估替代干预措施,顾问可以支持危机降级活动的实践和执行。我们描述了在场景驱动的建模工作中如何使用这种方法。我们展示了从数据迁移到模型的优势以及数据驱动的仿真的优势,这些优势可以进行迭代优化。最后,我们讨论了这种方法的局限性以及预期的未来工作。

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