群集算法在智能体运动输入建模中的应用

Dashi I. Singham, Meredith Therkildsen, L. Schruben
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引用次数: 7

摘要

仿真群集是一种从多变量相关时间序列中生成仿真输入的方法,用于灵敏度和风险分析。它可以应用于参数模型不容易获得或对可能的输入施加太多限制的数据。该方法使用基于代理的建模技术来生成一组跟随数据的boids。在本文中,我们将模拟群集应用于过境场景,以确定群集模拟的路点是否可用于提供成功越过边界的敌方数量的改进信息。对产出的分析揭示了巡逻战略中的情景限制和可能改进的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Applications of flocking algorithms to input modeling for agent movement
Simulation flocking has been introduced as a method for generating simulation input from multivariate dependent time series for sensitivity and risk analysis. It can be applied to data for which a parametric model is not readily available or imposes too many restrictions on the possible inputs. This method uses techniques from agent-based modeling to generate a flock of boids that follow the data. In this paper, we apply simulation flocking to a border crossing scenario to determine if waypoints simulated from flocking can be used to provide improved information on the number of hostiles successfully crossing the border. Analysis of the output reveals scenario limitations and potential areas of improvement in the patrol strategy.
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