Title: Simulated study of the influence of node density on the performance of wireless sensor networks

Authors: Aaron Rasheed Rababaah

Addresses: College of Engineering and Applied Sciences, American University of Kuwait (AUK), State of Kuwait

Abstract: This paper investigates the impact of local and global node density in cluster-based structured wireless sensor networks (WSNs). The local density represents sensor node density (SND) in a cluster whereas, global node density relates to head node density (HND) in the entire WSN. The literature rarely addresses the impact of density on WSNs performance as the focus is typically on protocols, routing, scheduling, clustering and network longevity. Often, the density of nodes is assumed heuristically, but not based on empirical experiments. In this work, we address this issue by measuring the impact of node density on four performance metrics: isolated sensor nodes, isolated head nodes, network detection effectiveness and network tracking accuracy. Using an in-house simulator, a total of 5,200 experiments were conducted and performance-metrics were collected and analysed. The results revealed interesting relationships among the studied variables and identified best performing node densities locally and globally.

Keywords: wireless sensor networks; WSNs; clustered networks; tracking accuracy; detection effectiveness; local node density; global node density.

DOI: 10.1504/IJSN.2022.127143

International Journal of Security and Networks, 2022 Vol.17 No.4, pp.284 - 292

Received: 29 Apr 2021
Accepted: 29 Apr 2021

Published online: 23 Nov 2022 *

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