• DocumentCode
    3172639
  • Title

    Path Extension Analysis of Peer-to-Peer Communications in Small 6LoWPAN/RPL Sensor Networks

  • Author

    Melakessou, Foued ; Engel, Thomas

  • Author_Institution
    Univ. of Luxembourg, Kirchberg, Luxembourg
  • fYear
    2013
  • fDate
    14-16 Aug. 2013
  • Firstpage
    303
  • Lastpage
    307
  • Abstract
    Researchers and manufacturers are currently putting a lot of efforts to design, improve and deploy the Internet of Things, involving a significant number of constrained and low cost embedded devices deployed in large scales with low power consumption, low bandwidth and limited communication range. For instance we can easily build a network composed by multiple sensors distributed in a building in order to monitor temperature in different offices. This kind of architecture is generally centralized as all sensors are mainly programmed to periodically transmit their data to the sink. The specific IPv6 Routing Protocol for Low-power and Lossy Networks (RPL) had been designed in order to enable such communications. Support for point-to-point traffic is also available. In fact new applications may also consider peer-to-peer communications between any nodes of the network. In that case, RPL is not optimal as data packets are forwarded in respect with longer paths with larger metrics. In this paper we propose to study the effectiveness of RPL compared to a shortest path algorithm such like the Dijkstra´s algorithm. We suggest to analyze peer-to-peer communications inside random wireless sensor network topologies with size limited to 250 nodes, corresponding to a reasonable cluster size. We have built a particular simulation environment named Network Analysis and Routing eVALuation (NARVAL). This toolbox permits to generate random topologies in order to study the impact of routing algorithms on the effectiveness of communication protocols. In our work, we first generated many random network topologies where we selected a sink node. We built the Destination Oriented Directed Acyclic Graph (DODAG) from the chosen sink in respect with the RPL algorithm. We finally performed all paths between each couple of two distinct sensor nodes and compared them to the corresponding shortest paths obtained by the Dijkstra´s algorithm. This approach permits to retrieve some statistics on - he path extension between RPL and the Dijkstra´s algorithm. We also analyzed the impact of the sink position and the network size on this path extension.
  • Keywords
    IP networks; buildings (structures); directed graphs; peer-to-peer computing; personal area networks; routing protocols; telecommunication network topology; temperature measurement; wireless sensor networks; 6LoWPAN/RPL sensor networks; DODAG; Dijkstra algorithm; Internet of Things; NARVAL; RPL algorithm; building; communication protocols; data packets; destination-oriented directed acyclic graph; low-power lossy networks; multiple sensors; network analysis-routing evaluation; network size; offices; path extension analysis; peer-to-peer communications; point-to-point traffic; random wireless sensor network topology; shortest path algorithm; sink node; sink position; specific IPv6 routing protocol; temperature monitoring; Algorithm design and analysis; Analytical models; Network topology; Peer-to-peer computing; Routing; Routing protocols; Topology; 6LoWPAN; RPL; Routing; Simulation; WSN;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Modeling, Analysis & Simulation of Computer and Telecommunication Systems (MASCOTS), 2013 IEEE 21st International Symposium on
  • Conference_Location
    San Francisco, CA
  • ISSN
    1526-7539
  • Type

    conf

  • DOI
    10.1109/MASCOTS.2013.40
  • Filename
    6730775