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Percolation phenomenon in connected vehicle network through a multi-agent approach: Mobility benefits and market penetration

机译:通过多代理方法在互联车辆网络中出现渗透现象:流动性优势和市场渗透

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This paper presents an integrated multi-agent approach, coupled with percolation theory and network science, to measure the mobility impacts (i.e., mean travel time of the system) of connected vehicle (CVtio) network at varying levels of market penetration rate. We capture the characteristics of a CV network, i.e., node degree distribution, vehicular clustering, and giant component size to verify the existence of percolation phenomenon, and further connect the emergence of mobility benefits to the percolation phase transition in the CV network. We show the percolation phase transition properties to appear in a dynamic CV network with time-correlated link and node dynamics. An analytical framework was developed to evaluate the CV network attributes with varying market penetrations (MP) and connection ranges (CR) to identify percolation phenomenon in a mixed CV and Non CV environment. In addition, a multi-agent CV simulation platform was created to further measure (1) how varying MPs and CRs affect the network-wide mobility measured by the mean travel time of the network; and (2) when percolation transition occurs in CV network to capture the critical MP and CR. Percolation phenomenon in CV network was further validated with the analytical assessments. The results show that (1) percolation phase transition phenomenon is a function of both market penetration and communication range; (2) percolation phase transitions in both mobility and CV network are highly correlated; (3) the application can reduce the average travel time of the system by up to 20% with reasonable market penetration and communication range; (4) critical market penetration is sensitive to communication range, and vice versa; (5) at least 70% of the CVs on the network are required to show in the same cluster for mobility benefits to appear; and (6) for high levels of MP or CR, a low probability of connectivity (PC) does not dramatically change the mean travel time. These results provide solid supports to create evidence-driven frameworks to guide future CV deployment and CV network analysis. Published by Elsevier Ltd.
机译:本文提出了一种集成的多主体方法,结合了渗流理论和网络科学,以衡量在不同市场渗透率水平下互联车辆(CVtio)网络的流动性影响(即系统的平均旅行时间)。我们捕获了CV网络的特征,即节点度分布,车辆聚类和巨型组件尺寸,以验证渗滤现象的存在,并将移动性益处的出现与CV网络中的渗滤相变进一步联系起来。我们展示了渗滤相变属性出现在具有时间相关链接和节点动力学的动态CV网络中。开发了一个分析框架来评估具有不同市场渗透率(MP)和连接范围(CR)的CV网络属性,以识别混合CV和非CV环境中的渗流现象。另外,创建了一个多代理CV模拟平台来进一步测量(1)通过网络的平均旅行时间来衡量变化的MP和CR如何影响整个网络的移动性; (2)当在CV网络中发生渗滤转变以捕获关键的MP和CR时。通过分析评估进一步验证了CV网络中的渗透现象。结果表明:(1)渗透相变现象是市场渗透率和传播范围的函数; (2)移动性和CV网络中的渗流相变高度相关; (3)应用程序可以在合理的市场渗透和沟通范围内将系统的平均旅行时间减少多达20%; (4)关键的市场渗透率对沟通范围敏感,反之亦然; (5)网络中至少70%的CV必须显示在同一群集中,才能显示出移动性优势; (6)对于高水平的MP或CR,低连接概率(PC)不会显着改变平均旅行时间。这些结果为创建循证驱动的框架提供了有力的支持,以指导未来的简历部署和简历网络分析。由Elsevier Ltd.发布

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