A novel networking architecture for mobile content delivery in urban transport systems
详细信息    查看全文
  • 作者:Wei Wei ; Chen Wang ; Hongzhi Lin ; Rui Zhang ; Hongbo Jiang
  • 关键词:Networking architecture ; Mobile content delivery ; Urban transport systems
  • 刊名:Wireless Networks
  • 出版年:2016
  • 出版时间:February 2016
  • 年:2016
  • 卷:22
  • 期:2
  • 页码:427-438
  • 全文大小:1,346 KB
  • 参考文献:1.Lyons, G., & Chatterjee, K. (2008). A human perspective on the daily commute: Costs, benefits and trade-offs. Transport Reviews, 28, 181–198.CrossRef
    2.Chen, W., Guha, R. K., Kwon, T. J., Lee, J., & Hsu, Y. Y. (2011). A survey and challenges in routing and data dissemination in vehicular ad hoc networks. Wireless Communications and Mobile Computing, 11(7), 787–795.CrossRef
    3.Park, H. S., & Kim, J. D. (2013). Wi-Fi-based modeling and hybrid routing scheme for delay-tolerant public bus network. Wireless Communications and Mobile Computing to appear; doi:10.​1002/​wcm.​2392 .
    4. McNamara, L., Mascolo, C., & Capra, L. (2008). Media sharing based on colocation prediction in urban transport. Proceedings of ACM MobiCom, 58–69.
    5.Lathia, N., Smith, C., Froehlich, J., & Capra, L. (2013). Individuals among commuters: Building personalised transport information services from fare collection systems. Pervasive and Mobile Computing, 9(5), 643–664.CrossRef
    6.Ott, J., & Kutscher, D. A. (2005). Disconnection-tolerant transport for drive-thru internet environments. Proceedings of IEEE INFOCOM, 1849–1862.
    7.Johari, R., Gupta, N., & Aneja, S. (2013). CACBR: Context aware community based routing for intermittently connected network. In Proceedings of the 10th ACM symposium on Performance evaluation of wireless ad hoc, sensor, & ubiquitous networks, pp. 137–140.
    8.Vahdate, A., & Becker, D. (2002). Epidemic routing for partially connected ad hoc networks. Technical Report, CS-200006, Duke University.
    9.Spyropoulos, T., Psounis, K., & Raghavendra, C. (2008). Efficient routing in intermittently connected mobile networks: The multiple-copy case. IEEE/ACM Transactions on Networking, 16(1), 77–90.CrossRef
    10.Liu, L., Biderman, A., & Ratti, C. (2009). Urban mobility landscape: real time monitoring of urban mobility patterns. In Proceedings of Computers in Urban Planning and Urban Management (CUPUM), 1–16.
    11.Gonzalez, M. C., Hidalgo, C. A., & Barabasi, A. L. (2008). Understanding individual human mobility patterns. Nature, 453, 779–782.CrossRef
    12.Liu, C., & Wu, J. (2009). An optimal probabilistic forwarding protocol in delay tolerant networks. Proceedings of ACM MobiHoc, 105–114.
    13.Burns, B., Brock, O., & Levine, B.N. (2005). MV routing and capacity building in disruption tolerant networks. Proceedings of IEEE INFOCOM, 398–408.
    14.Paulos, E., & Goodman, E. (2004). The familiar stranger: anxiety, comfort, and play in public places. In Proceedings of the SIGCHI conference on Human factors in computing systems (CHI), 223–230.
    15.Eriksson, J., Balakrishnan, H., & Madden, S. (2008). Cabernet: Vehicular content delivery using wifi. Proceedings of ACM MobiCom, 199–210.
    16.Kriplean, T., Welbourne, E., Khoussainova, N., Rastogi, V., Balazinska, M., Borriello, G., et al. (2007). Physical access control for captured RFID data. IEEE Pervasive Computing, 6(4), 48–55.CrossRef
    17.Amaral, L. A., Hessel, F. P., Bezerra, E. A., Corrêa, J. C., Longhi, O. B., & Dias, T. F. (2011). eCloudRFID—A mobile software framework architecture for pervasive RFID-based applications. Journal of Network and Computer Applications, 34(3), 972–979.CrossRef
    18.Vastardis, N., & Yang, K. (2013). Mobile social networks: Architectures, social properties, and key research challenges. IEEE Communications Surveys & Tutorials, 15(3), 1355–1371.CrossRef
    19.Wang, S., Liu, M., Cheng, X., Li, Z., Huang, J., & Chen, B. (2013). Opportunistic routing in intermittently connected mobile p2p networks. IEEE Journal on Selected Areas in Communications, 31(9), 369–378.CrossRef
    20.Daraghmi, Y. A., Yi, C. W., & Stojmenovic, I. (2013). Forwarding methods in data dissemination and routing protocols for vehicular ad hoc networks. IEEE Network, 27(6), 74–79.CrossRef
    21.Jung, S., Lee, U., Chang, A., Cho, D., & Gerla, M. (2007). Bluetorrent: Cooperative content sharing for bluetooth users. Proceedings of IEEE PerCom, 47–56.
    22.LeBrun, J., & Chuah, C. (2006). Bluetooth content distribution stations on public transit. In Proceedings of Workshop on Decentralized Resource Sharing in Mobile Computing and Networking, 63–65.
    23.Paul, S., Yates, R., Raychaudhuri, D., & Kurose, J. (2008). The cache and forward network architecture for efficient mobile content delivery services in the future internet. In Proceedings of innovations in NGN: ITU-T Kaleidoscope Academic Conference on Future Network and Services, pp. 367–374.
    24.Banerjee, N., Corner, M.D., & Levine, B.N. (2007). An energy-efficient architecture for DTN throwboxes. Proceedings of IEEE INFOCOM, 31–40.
    25.Zhao, Y., Chen, M.H., Ammar, M.C., Levine, B.N., & Zegura, E. (2006). Capacity enhancement using throwboxes in DTNs. Proceedings of IEEE MASS, 31–40.
    26.Shu, L., Jiang, H.B., Ma, X.Q., Liu, L.C., Peng, K., Liu, B., Cheng, J., & Xu, Y.B. (2010). Efficient mobile content delivery based on co-route prediction in urban transport. Proceedings of IEEE GLOBECOM, 1–5.
    27.Available: http://​www.​szmc.​net/​
  • 作者单位:Wei Wei (1)
    Chen Wang (1)
    Hongzhi Lin (1)
    Rui Zhang (2)
    Hongbo Jiang (1)

    1. School of Electronic Information and Communications, Huazhong University of Science and Technology, Wuhan, 430074, China
    2. School of Computer Science and Technology, Wuhan University of Technology, Wuhan, 430070, China
  • 刊物类别:Computer Science
  • 刊物主题:Computer Communication Networks
    Electronic and Computer Engineering
    Business Information Systems
  • 出版者:Springer Netherlands
  • ISSN:1572-8196
文摘
Today, the media content delivery in intermittent connected networks has become increasingly critical. This paper studies content exchange among mobile commuters in urban transport systems. Our work is inspired by two facts: (1) the commuters in urban transport systems tend to take regular routes to the same place every weekday and their paths exhibit a high degree of temporal and spatial regularities; (2) the rapid development of broadband wireless technologies such as IEEE 802.11n makes fast data transfer possible. We first propose a new disconnection-tolerant network infrastructure, which reinforces the connectivity of intermittent connected mobile commuters and uses store-and-forward routers to increase their encounter opportunity, and in turn achieves efficient media content delivery among them. Then a router-centric prediction method is designed to collect passengers’ historical path information to determine the best delivery scheme. We evaluate the feasibility and the performance of the proposed infrastructure as well as the delivery scheme, using real data set from an urban transport system. The simulation results demonstrate the proposed system is highly practical in terms of the memory usage of routers and the maximum achievable data transfer rate. Keywords Networking architecture Mobile content delivery Urban transport systems

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700