Title :
A Tractable Framework for Exact Probability of Node Isolation and Minimum Node Degree Distribution in Finite Multihop Networks
Author :
Khalid, Zubair ; Durrani, Salman ; Jing Guo
Author_Institution :
Res. Sch. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
Abstract :
This paper presents a tractable analytical framework for the exact calculation of the probability of node isolation and the minimum node degree distribution when N sensor nodes are independently and uniformly distributed inside a finite square region. The proposed framework can accurately account for the boundary effects by partitioning the square into subregions, based on the transmission range and the node location. We show that for each subregion, the probability that a random node falls inside a disk centered at an arbitrary node located in that subregion can be analytically expressed in closed form. Using the results for the different subregions, we obtain the exact probability of node isolation and minimum node degree distribution that serves as an upper bound for the probability of k-connectivity. Our theoretical framework is validated by comparison with the simulation results and shows that the minimum node degree distribution serves as a tight upper bound for the probability of k-connectivity. The proposed framework provides a very useful tool to accurately account for the boundary effects in the design of finite wireless networks.
Keywords :
statistical distributions; wireless sensor networks; boundary effect; finite multihop network; finite square region; finite wireless sensor network; k-connectivity probability; node degree distribution; node isolation probability; node location; sensor node distribution; tractable analytical framework; transmission range; Ad hoc networks; Approximation methods; Spread spectrum communication; Upper bound; Wireless networks; Wireless sensor networks; $k$-connectivity; Wireless multi-hop networks; k-connectivity; node degree distribution; probability of connectivity; probability of node isolation; sensor networks; wireless multihop networks;
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2013.2293580