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Real-time Path Planning for Virtual Agents in Dynamic Environments

机译:动态环境中虚拟代理的实时路径规划

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We present a novel approach for real-time path planning of multiple virtual agents in complex dynamic scenes. We introduce a new data structure, Multi-agent Navigation Graph (MaNG), which is constructed from the first- and second-order Voronoi diagrams. The MaNG is used to perform route planning and proximity computations for each agent in real time. We compute the MaNG using graphics hardware and present culling techniques to accelerate the computation. We also address undersampling issues for accurate computation. Our algorithm is used for real-time multi-agent planning in pursuit-evasion and crowd simulation scenarios consisting of hundreds of moving agents, each with a distinct goal.
机译:我们在复杂的动态场景中提出了一种用于多个虚拟代理的实时路径规划的新方法。我们介绍了一种新的数据结构,多代理导航图(MANG),它由第一阶和二阶Voronoi图构造。 MANG用于实时对每个代理执行路由规划和接近计算。我们使用图形硬件计算Mang并呈现剔除技术以加速计算。我们还解决了欠采样问题以进行准确计算。我们的算法用于追求逃守和人群模拟场景的实时多智能经纪规划,包括数百个移动代理,每个人都具有独特的目标。

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