Underwater Acoustic Networks: Evaluation of the Impact of Media Access Control on Latency, in a Delay Constrained Network

Abstract

This thesis presents an evaluation of the performance, in terms of throughput and latency, of two Media Access Control (MAC) mechanisms in Underwater Acoustic Networks (UANs), using a model designed in the COTS simulation tool OPNET 10.5. The carrier sense multiple access with collision avoidance is the predominant approach for implementing the MAC mechanism in UANs. However, the underwater acoustic environment is characterized by extreme propagation delays and limited bandwidth, which suggests that an Aloha-like scheme may merit consideration. The performance of these two schemes was compared with respect to two topologies: tree and grid. The results showed that an Aloha-like scheme that does not segment messages outperforms the contention-based scheme under all load conditions, in terms of both throughput and latency, for the two topologies. This thesis is the first to establish that Aloha-like MAC mechanisms can be more than a limited alternative for lightly loaded networks; more specifically, they can be the preferred choice for an environment with large propagation delays.

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Document Details

Document Type
Technical Report
Publication Date
Mar 01, 2005
Accession Number
ADA432616

Entities

People

  • Jose Dos Santos Coelho

Organizations

  • Naval Postgraduate School

Tags

Communities of Interest

  • Cyber
  • Energy and Power Technologies
  • Ground and Sea Platforms
  • Materials and Manufacturing Processes
  • Space

DTIC Thesaurus Topics

  • Acoustic Communications
  • Collision Avoidance
  • Collisions
  • Computer Access Control
  • Computer Networks
  • Data Links
  • Detectors
  • Indexes
  • Multiple Access
  • Network Protocols
  • Network Science
  • Network Topology
  • Simulations
  • Test And Evaluation
  • Topology
  • Unmanned Underwater Vehicles
  • Wireless Networks

Fields of Study

  • Computer science

Readers

  • Computer Networking
  • Systems Analysis and Design