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Published in: Wireless Networks 2/2013

01-02-2013

Directional routing and scheduling for green vehicular delay tolerant networks

Authors: Yuanyuan Zeng, Kai Xiang, Deshi Li, Athanasios V. Vasilakos

Published in: Wireless Networks | Issue 2/2013

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Abstract

The vehicle delay tolerant networks (DTNs) make opportunistic communications by utilizing the mobility of vehicles, where the node makes delay-tolerant based “carry and forward” mechanism to deliver the packets. The routing schemes for vehicle networks are challenging for varied network environment. Most of the existing DTN routing including routing for vehicular DTNs mainly focus on metrics such as delay, hop count and bandwidth, etc. A new focus in green communications is with the goal of saving energy by optimizing network performance and ultimately protecting the natural climate. The energy–efficient communication schemes designed for vehicular networks are imminent because of the pollution, energy consumption and heat dissipation. In this paper, we present a directional routing and scheduling scheme (DRSS) for green vehicle DTNs by using Nash Q-learning approach that can optimize the energy efficiency with the considerations of congestion, buffer and delay. Our scheme solves the routing and scheduling problem as a learning process by geographic routing and flow control toward the optimal direction. To speed up the learning process, our scheme uses a hybrid method with forwarding and replication according to traffic pattern. The DRSS algorithm explores the possible strategies, and then exploits the knowledge obtained to adapt its strategy and achieve the desired overall objective when considering the stochastic non-cooperative game in on-line multi-commodity routing situations. The simulation results of a vehicular DTN with predetermined mobility model show DRSS achieves good energy efficiency with learning ability, which can guarantee the delivery ratio within the delay bound.

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Literature
1.
go back to reference Blum, J., Eskandarian, A., & Hoffman, L. (2004). Challenges of intervehicle ad hoc networks. IEEE Transaction on Intelligent Transportation Systems, 5(2004), 347–351.CrossRef Blum, J., Eskandarian, A., & Hoffman, L. (2004). Challenges of intervehicle ad hoc networks. IEEE Transaction on Intelligent Transportation Systems, 5(2004), 347–351.CrossRef
2.
go back to reference Grossglauser, M., & Tse, D. (2002). Mobility increases the capacity of ad hoc wireless networks. IEEE/ACM Transaction on Networking, 10(4), 477–486.CrossRef Grossglauser, M., & Tse, D. (2002). Mobility increases the capacity of ad hoc wireless networks. IEEE/ACM Transaction on Networking, 10(4), 477–486.CrossRef
3.
go back to reference Fall, K. (2003). A delay-tolerant network architecture for challenged internets. ACM SIGCOMM (pp. 27–34). Fall, K. (2003). A delay-tolerant network architecture for challenged internets. ACM SIGCOMM (pp. 27–34).
4.
go back to reference Fletcher, R., & Hasson, A. (2004). Daknet: Rethinking connectivity in developing nations. IEEE Computer, 37(1), 78–83.CrossRef Fletcher, R., & Hasson, A. (2004). Daknet: Rethinking connectivity in developing nations. IEEE Computer, 37(1), 78–83.CrossRef
5.
go back to reference Hull, B., Bychkovsky, V., Zhang, Y., Chen, K., Goraczko, M., Miu, A., et al. (2006). CarTel: A distributed mobile sensor computing platform. ACM SenSys (pp. 125–138). Hull, B., Bychkovsky, V., Zhang, Y., Chen, K., Goraczko, M., Miu, A., et al. (2006). CarTel: A distributed mobile sensor computing platform. ACM SenSys (pp. 125–138).
7.
go back to reference Spyropoulos, T., Rais, R. N. B., Turletti, T., Obraczka, K., & Vasilakos, A. (2010). Routing for disruption tolerant networks: taxonomy and design. Wireless Networks, 16(8), 2349–2370.CrossRef Spyropoulos, T., Rais, R. N. B., Turletti, T., Obraczka, K., & Vasilakos, A. (2010). Routing for disruption tolerant networks: taxonomy and design. Wireless Networks, 16(8), 2349–2370.CrossRef
8.
go back to reference Hodges, R., & White, W. (2008). Go green in ICT. Technical report, GreenTech News. Hodges, R., & White, W. (2008). Go green in ICT. Technical report, GreenTech News.
9.
go back to reference Lee, K. C., Lee, U., & Gerla, M. (2009). Survey of routing protocols in vehicular ad hoc networks. In Advances in vehicular ad-hoc networks: Developments and challenges, chapter 8, IGI Global (pp. 149–170). doi:10.4018/978-1-61520-913-2.ch008. Lee, K. C., Lee, U., & Gerla, M. (2009). Survey of routing protocols in vehicular ad hoc networks. In Advances in vehicular ad-hoc networks: Developments and challenges, chapter 8, IGI Global (pp. 149–170). doi:10.​4018/​978-1-61520-913-2.​ch008.
10.
go back to reference Zhao, J., & Cao, G. (2006). Vehicle-assisted data delivery in vehicular ad hoc networks. In 25th IEEE InfoCom (pp. 1–12). Zhao, J., & Cao, G. (2006). Vehicle-assisted data delivery in vehicular ad hoc networks. In 25th IEEE InfoCom (pp. 1–12).
11.
go back to reference Mitchener, W., & Vahat, A. (2000) Epidemic routing for partially connected ad hoc networks. Technical report CS-2000-06, Duke University. Mitchener, W., & Vahat, A. (2000) Epidemic routing for partially connected ad hoc networks. Technical report CS-2000-06, Duke University.
12.
go back to reference Spyropoulous, T., Psounis, K., & Raghavendra, C. S. (2005). Spray and wait: An efficient routing scheme for intermittently connected mobile networks. In ACM WDTN (pp. 252–259). Spyropoulous, T., Psounis, K., & Raghavendra, C. S. (2005). Spray and wait: An efficient routing scheme for intermittently connected mobile networks. In ACM WDTN (pp. 252–259).
13.
go back to reference Burns, B., Brock, O., & Levine, B. N. (2005). MV routing and capacity building in disruption tolerant networks. In IEEE InfoCom (pp. 398–408). Burns, B., Brock, O., & Levine, B. N. (2005). MV routing and capacity building in disruption tolerant networks. In IEEE InfoCom (pp. 398–408).
14.
go back to reference Lindgren, A., Doria, A., & Schelen, O. (2004). Probabilistic routing in intermittently connected networks. Lecture Nodes in Computer Science, 3126, 239–254.CrossRef Lindgren, A., Doria, A., & Schelen, O. (2004). Probabilistic routing in intermittently connected networks. Lecture Nodes in Computer Science, 3126, 239–254.CrossRef
15.
go back to reference Small, T., & Haas, Z. (2005). Resource and performance tradeoffs in delay-tolerant wireless networks. In ACM SIGCOMM workshop on delay-tolerant networking (WDTN) (pp. 260–267). Small, T., & Haas, Z. (2005). Resource and performance tradeoffs in delay-tolerant wireless networks. In ACM SIGCOMM workshop on delay-tolerant networking (WDTN) (pp. 260–267).
16.
go back to reference Burgess, J., Gallagher, B., Jensen, D., & Levine, B. N. (2006). MaxProp: Routing for vehicle-based disruption-tolerant networks. In IEEE InfoCom (pp. 1–11). Burgess, J., Gallagher, B., Jensen, D., & Levine, B. N. (2006). MaxProp: Routing for vehicle-based disruption-tolerant networks. In IEEE InfoCom (pp. 1–11).
17.
go back to reference Balasubramani, B., Levine, N., & Venkataramani, A. (2007). DTN routing as a resource allocation problem. In ACM SIGCOMM (pp. 373–385). Balasubramani, B., Levine, N., & Venkataramani, A. (2007). DTN routing as a resource allocation problem. In ACM SIGCOMM (pp. 373–385).
18.
go back to reference Jain, S., Fall, K., & Patra, R. (2004). Routing in a delay tolerant network. In ACM SIGCOMM (pp. 145–157). Jain, S., Fall, K., & Patra, R. (2004). Routing in a delay tolerant network. In ACM SIGCOMM (pp. 145–157).
19.
go back to reference Hay, D., & Giaccone, P. (2009). Optimal routing and scheduling for deterministic delay tolerant networks. In IEEE WONS (pp. 27–34). Hay, D., & Giaccone, P. (2009). Optimal routing and scheduling for deterministic delay tolerant networks. In IEEE WONS (pp. 27–34).
20.
go back to reference Bulut, E., Geyik, S. C., & Szymanski, B. K. (2010). Conditional shortest path routing in delay tolerant networks. In IEEE international symposium on a world of wireless mobile and multimedia networks (WoWMoM) (pp. 1–6). Bulut, E., Geyik, S. C., & Szymanski, B. K. (2010). Conditional shortest path routing in delay tolerant networks. In IEEE international symposium on a world of wireless mobile and multimedia networks (WoWMoM) (pp. 1–6).
21.
go back to reference Ahmed, S., & Kanhere, S. S. (2010). A Bayesian routing framework for delay tolerant networks. In Wireless communications and networking conference (WCNC) (pp. 1–6). Ahmed, S., & Kanhere, S. S. (2010). A Bayesian routing framework for delay tolerant networks. In Wireless communications and networking conference (WCNC) (pp. 1–6).
22.
go back to reference Huang, C.-J., Shen, H.-Y., Liao, J.-J., Hu, K.-W., Yang, D.-X., Chen, C.-H., et al. (2009). A fuzzy logic-based routing for delay-tolerant heterogeneous networks. In IEEE international conference on granular computing (GRC) (pp. 254–259). Huang, C.-J., Shen, H.-Y., Liao, J.-J., Hu, K.-W., Yang, D.-X., Chen, C.-H., et al. (2009). A fuzzy logic-based routing for delay-tolerant heterogeneous networks. In IEEE international conference on granular computing (GRC) (pp. 254–259).
23.
go back to reference Dvir, A., & Vasilakos, A. V. (2010). Backpressure-based routing protocol for DTNs. In ACM SIGCOMM (pp. 405–406). Dvir, A., & Vasilakos, A. V. (2010). Backpressure-based routing protocol for DTNs. In ACM SIGCOMM (pp. 405–406).
24.
go back to reference Pereira, P., Casaca, A., Rodrigues, J., Soares, V., Triay, J., & Cervelló-Pastor, C. (2011). From delay-tolerant networks to vehicular delay-tolerant networks. IEEE Communications Surveys & Tutorials, 99, 1–17. Pereira, P., Casaca, A., Rodrigues, J., Soares, V., Triay, J., & Cervelló-Pastor, C. (2011). From delay-tolerant networks to vehicular delay-tolerant networks. IEEE Communications Surveys & Tutorials, 99, 1–17.
25.
go back to reference Leontiadis, I., & Mascolo, C. (2007). GeOpps: Geographical opportunistic routing for vehicular networks. In IEEE international symposium on a world of wireless, mobile and multimedia networks (WoWMoM) (pp. 1–6). Leontiadis, I., & Mascolo, C. (2007). GeOpps: Geographical opportunistic routing for vehicular networks. In IEEE international symposium on a world of wireless, mobile and multimedia networks (WoWMoM) (pp. 1–6).
26.
go back to reference Ros, F., Ruiz, P., & Stojmenovic, I. (2012). Acknowledgment-based broadcast protocol for reliable and efficient data dissemination in vehicular ad hoc networks. IEEE Transactions on Mobile Computing, 11(1), 33–46.CrossRef Ros, F., Ruiz, P., & Stojmenovic, I. (2012). Acknowledgment-based broadcast protocol for reliable and efficient data dissemination in vehicular ad hoc networks. IEEE Transactions on Mobile Computing, 11(1), 33–46.CrossRef
27.
go back to reference Zhou, L., Wang, X., Tu, W., Muntean, G., & Geller, B. (2010). Distributed scheduling scheme for video streaming over multi-channel multi-radio multi-hop wireless networks. IEEE Journal on Selected Areas in Communications, 28(3), 409–419.CrossRef Zhou, L., Wang, X., Tu, W., Muntean, G., & Geller, B. (2010). Distributed scheduling scheme for video streaming over multi-channel multi-radio multi-hop wireless networks. IEEE Journal on Selected Areas in Communications, 28(3), 409–419.CrossRef
28.
go back to reference Sanctis, M. D., Cianca, E., & Joshi, V. (2011). Energy efficient wireless networks towards green communications. Wireless Personal Communications, 59(3), 537–552.CrossRef Sanctis, M. D., Cianca, E., & Joshi, V. (2011). Energy efficient wireless networks towards green communications. Wireless Personal Communications, 59(3), 537–552.CrossRef
29.
go back to reference Wang, X., Vasilakos, A. V., Chen, M., Liu, Y., & Kwon, T. T. (2011). A survey of green mobile networks: Opportunities and challenges. Mobile Networks and Applications, 1, 1–17. Wang, X., Vasilakos, A. V., Chen, M., Liu, Y., & Kwon, T. T. (2011). A survey of green mobile networks: Opportunities and challenges. Mobile Networks and Applications, 1, 1–17.
30.
go back to reference Mangrulkar, R. S., & Atique, M. (2010). Routing protocol for delay tolerant networks: A survey and comparison. In IEEE international conference on communication control and computing technologies (ICCCCT) (pp. 210–215). Mangrulkar, R. S., & Atique, M. (2010). Routing protocol for delay tolerant networks: A survey and comparison. In IEEE international conference on communication control and computing technologies (ICCCCT) (pp. 210–215).
31.
go back to reference Sutton, R. S., & Barto, A. G. (1998). Reinforcement learning: An introduction. Cambridge, MA: MIT Press. Sutton, R. S., & Barto, A. G. (1998). Reinforcement learning: An introduction. Cambridge, MA: MIT Press.
32.
go back to reference Hu, J., & Wellman, M. P. (2003). Nash Q-learning for general-sum stochastic games. Journal of Machine Learning Research, 4, 1039–1069.MathSciNet Hu, J., & Wellman, M. P. (2003). Nash Q-learning for general-sum stochastic games. Journal of Machine Learning Research, 4, 1039–1069.MathSciNet
33.
go back to reference Feng, W., & Elmirghani, J. M. H. (2009). Green ICT: Energy efficiency in a motorway model. In 3rd international conference on next generation mobile applications, services, and technologies (pp. 389–394). Feng, W., & Elmirghani, J. M. H. (2009). Green ICT: Energy efficiency in a motorway model. In 3rd international conference on next generation mobile applications, services, and technologies (pp. 389–394).
Metadata
Title
Directional routing and scheduling for green vehicular delay tolerant networks
Authors
Yuanyuan Zeng
Kai Xiang
Deshi Li
Athanasios V. Vasilakos
Publication date
01-02-2013
Publisher
Springer US
Published in
Wireless Networks / Issue 2/2013
Print ISSN: 1022-0038
Electronic ISSN: 1572-8196
DOI
https://doi.org/10.1007/s11276-012-0457-9

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