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A Peer to Peer Architecture for Optimized Energy Efficient Routing in Visual Sensor Networks

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Abstract

Visual Sensor Networks (VSN) employ image sensors, which are equipped with photosensitive cells. This kind of network processes the image data and transmits the same. The energy consumption of this network is greater, as it deals with image data. However, the VSN is an energy restricted network. Thus, this paper intends to present the challenges being faced by one-on-one Peer-to-Peer (P2P) and massive world P2P network. Finally, a mechanism to reduce the energy consumption is proposed by means of data selection strategy. This paper simulates this work by exploiting Unity3D and the implementation part is presented.

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References

  1. Soro, S., & Heinzelman, W. (2009). A survey of visual sensor networks. Advances in Multimedia, 2009(2009), 1–21.

    Article  Google Scholar 

  2. Pourebrahimi, B., Bertels, K., & Vassiliadis, S. (2005). A survey of peer-to-peer networks. In Proceedings of the 16 th annual workshop on circuits, systems and signal processing.

  3. Morgan, G. (2009). Highly interactive scalable online worlds. Advances in Computers, 76, 75–120.

    Article  Google Scholar 

  4. Hampel, T., Bopp, T., & Hinn, R. (2006). A peer-to-peer architecture for massive multiplayer online games. In Proceedings of 5th ACM SIGCOMM workshop on network and system support for games. ACM.

  5. Diaz, A., et al. (2007). A survey on mobile peer-to-peer technology. In Proceedings on XV conference on concurrency and distributed systems (JCSD’07).

  6. Wang, A. I., Jarrett, M., & Sorteberg, E. (2009). Experiences from implementing a mobile multiplayer real-time game for wireless networks with high latency. International Journal of Computer Games Technology, 2009, 6.

    Google Scholar 

  7. Anand, B., et al. (2010). Arivu: Power-aware middleware for multiplayer mobile games. In Proceedings of the 9th annual workshop on network and systems support for games. IEEE Press.

  8. Anand, B., et al. (2009). Game action based power management for multiplayer online game. In Proceedings of the 1st ACM workshop on networking, systems, and applications for mobile handhelds. ACM.

  9. Knutsson, B, et al. (2004). Peer-to-peer support for massively multiplayer games. In INFOCOM 2004. Twentythird annual joint conference of the IEEE computer and communications societies (Vol. 1). IEEE.

  10. Android Native Plugin by Stan Assets. http://u3d.as/content/stan-s-assets/android-nativeplugin/5rZ.

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Jesline, Mohamed Junaid, K.A. & Shunmuganathan, K.L. A Peer to Peer Architecture for Optimized Energy Efficient Routing in Visual Sensor Networks. Wireless Pers Commun 94, 2325–2330 (2017). https://doi.org/10.1007/s11277-016-3444-0

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  • DOI: https://doi.org/10.1007/s11277-016-3444-0

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