Use of agent-based modeling to model intermediate force capabilities in (counter)mobility crowd scenarios

Jessica Afara, Victoria Ajila, Hannah Macdonell, P. Dobias
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引用次数: 1

Abstract

In this paper, we use an agent-based model (ABM) to run (counter)mobility scenarios to explore which characteristics of intermediate force capabilities (IFC) are relevant to these, and how they can affect outcomes in gray zone conflicts. Using an ABM called Map-Aware Non-Uniform Automata (MANA), developed by the New Zealand Defense Technology Agency, we implemented two scenarios where the friendly forces’ mobility was limited by large groups of civilians. Then, we employed data farming and analytics methods to analyze the data and identify key parameters influencing the outcomes. The main parameters appeared to be the IFC Range, Power (a measure of the duration of the effect), and Crowd Density. Future research could include a wide range of mobility scenarios and possibly a more detailed IFC representation.
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使用基于代理的建模来模拟(反)机动人群场景中的中间力量能力
在本文中,我们使用基于主体的模型(ABM)来运行(反)机动场景,以探索中间力量能力(IFC)的哪些特征与这些场景相关,以及它们如何影响灰色地带冲突的结果。使用新西兰国防技术局开发的一种名为地图感知非统一自动机(MANA)的反弹道导弹,我们实施了两种场景,其中友军的机动性受到大量平民的限制。然后,我们采用数据种植和分析方法对数据进行分析,找出影响结果的关键参数。主要参数似乎是IFC范围,功率(影响持续时间的度量)和人群密度。未来的研究可能包括更广泛的移动场景,可能还包括更详细的IFC表示。
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来源期刊
CiteScore
2.80
自引率
12.50%
发文量
40
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