Message coverage maximization in infrastructure-based urban vehicular networks

被引:21
作者
Jalooli, Ali [1 ]
Song, Min [2 ]
Wang, Wenye [3 ]
机构
[1] Michigan Technol Univ, Dept Comp Sci, Houghton, MI 49931 USA
[2] Stevens Inst Technol, Dept Elect & Comp Engn, 1 Castle Point Terrace, Hoboken, NJ 07030 USA
[3] North Carolina State Univ, Dept Elect & Comp Engn, Raleigh, NC 27606 USA
关键词
Vehicular ad-hoc network; Vehicle-to-vehicle; Roadside unit; Safety applications; Traffic efficiency; Intelligent transportation systems; DISSEMINATION; CONNECTIVITY; INFORMATION; PROPAGATION; UNIT;
D O I
10.1016/j.vehcom.2019.02.001
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
The success of vehicular networks is highly dependent on the coverage of messages, which refers to the trajectory of messages over time. Many of the existing works primarily performed in 1-D environments (i.e., straight highways) and/or merely focused on vehicle-to-vehicle (V2V) communications to enhance the coverage in a given road network. Consequently, there still lacks a clear comprehension of using road infrastructures (e.g., roadside units), to improve the message coverage in 2-D environments (i.e., urban areas). In this paper, we study the problem of optimal utilization of roadside units in 2-D environments. Specifically, we develop a message coverage maximization algorithm (MCMA) that carefully deploys the roadside units to achieve the maximum message coverage. Considering that the vehicle density is heterogeneous across the road networks, we study the message coverage for V2V networks by deriving analytical lower bounds of message dissemination distance for areas with different vehicle densities. The MCMA then utilizes the derived lower bounds to estimate the minimum spacing allowed between neighbor roadside units based on the prevailing traffic stream and delay constraint of applications. In addition, we propose a disseminator selection algorithm for infrastructure-based urban vehicular networks to further improve the message coverage. By selecting desired types of applications (i.e., safety and non-safety), we obtain two different roadside unit deployment sets from MCMA for the evaluation purpose. Extensive simulation studies show that MCMA outperforms the alternative algorithms in terms of the message coverage and message dissemination speed. The results also demonstrate that MCMA improves traffic efficiency in a post-crash scenario. (C) 2019 Elsevier Inc. All rights reserved.
引用
收藏
页码:1 / 14
页数:14
相关论文
共 50 条
[21]   Delay Analysis for a Reliable Message Delivery in Sparse Vehicular Ad Hoc Networks [J].
Abdrabou, Atef ;
Liang, Ben ;
Zhuang, Weihua .
2010 IEEE GLOBAL TELECOMMUNICATIONS CONFERENCE GLOBECOM 2010, 2010,
[22]   Phase Transition of Message Propagation Speed in Delay-Tolerant Vehicular Networks [J].
Agarwal, Ashish ;
Starobinski, David ;
Little, Thomas D. C. .
IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2012, 13 (01) :249-263
[23]   DIFTOS: A Distributed Infrastructure-Free Traffic Optimization System Based on Vehicular Ad Hoc Networks for Urban Environments [J].
Zhang, Weidong ;
Aung, Nyothiri ;
Dhelim, Sahraoui ;
Ai, Yibo .
SENSORS, 2018, 18 (08)
[24]   A Reducing Broadcast Message Method in Vehicular Networks [J].
Tsai, Ming-Fong ;
Chang, Chih-Han .
2014 TENTH INTERNATIONAL CONFERENCE ON INTELLIGENT INFORMATION HIDING AND MULTIMEDIA SIGNAL PROCESSING (IIH-MSP 2014), 2014, :744-747
[25]   Optimal RSUs placement with delay bounded message dissemination in vehicular networks [J].
Liu, Chunyan ;
Huang, Hejiao ;
Du, Hongwei ;
Jia, Xiaohua .
JOURNAL OF COMBINATORIAL OPTIMIZATION, 2017, 33 (04) :1276-1299
[26]   A Relay-Based Coverage Area Model for Optimal Connectivity in Vehicular Networks [J].
Ayvaz, Kubra ;
Kurtarangil, Ercan ;
Canberk, Berk .
2014 IEEE INTERNATIONAL BLACK SEA CONFERENCE ON COMMUNICATIONS AND NETWORKING (BLACKSEACOM), 2014, :129-133
[27]   Adaptive Emergency Message Broadcast Based on Network Connectivity States for Vehicular Ad Hoc Networks in Highway Environments [J].
Deng, Zuwen ;
Obaidat, Mohammad S. ;
Wei, Shilei ;
Liu, Xuxun ;
Zhou, Huan .
IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2025, 26 (01) :225-234
[28]   Regular-hexagon-equilateral-triangle area grouping-based broadcast protocol for safety message in urban vehicular ad hoc networks [J].
Wang, Xiufeng ;
Qu, Mingcheng ;
Cui, Gang ;
Yan, Moshe ;
Win, Nwe Nwe Htay ;
Rehman, Saif Ur ;
Wang, Chunmeng .
INTERNATIONAL JOURNAL OF DISTRIBUTED SENSOR NETWORKS, 2017, 13 (01)
[29]   Implementing a Blockchain Infrastructure on Top of Vehicular Ad Hoc Networks [J].
Gkogkidis, Argyris ;
Giachoudis, Nikolaos ;
Spathoulas, Georgios ;
Anagnostopoulos, Ioannis .
DATA ANALYTICS: PAVING THE WAY TO SUSTAINABLE URBAN MOBILITY, 2019, 879 :764-771
[30]   IMPROVING MESSAGE DELIVERY IN VEHICULAR AD-HOC NETWORKS [J].
Anyameluhor, Nnamdi ;
Peytchev, Evtim ;
Akhlaghinia, Javad .
PROCEEDINGS - 31ST EUROPEAN CONFERENCE ON MODELLING AND SIMULATION ECMS 2017, 2017, :555-561