DocumentCode :
1765051
Title :
Reliability and Delay Analysis of Multihop Virus-Based Nanonetworks
Author :
Walsh, Frank ; Balasubramaniam, Sasitharan
Author_Institution :
Telecommun. Software & Syst. Group, Waterford Inst. of Technol., Waterford, Ireland
Volume :
12
Issue :
5
fYear :
2013
fDate :
Sept. 2013
Firstpage :
674
Lastpage :
684
Abstract :
Molecular communication is a new communication paradigm that allows nanomachines to communicate using biological mechanisms and/or components to transfer information (e.g., molecular diffusion, molecular motors). One possible approach for molecular communication is through the use of virus particles that act as carriers for nucleic acid-based information. This paper analyzes multihop molecular nanonetworks that utilize virus particles as information carrier. The analysis examines the physiochemical and biological characteristics of virus particles such as diffusion, absorption, and decay, and how they affect the reliability of multihop communication in molecular nanonetworks. The paper also analyzes the use of a simple implicit acknowledgement protocol for a single-path topology, and compare its performance to defined and random multipath topologies that do not use acknowledgments. Numerical results show that commensurate reliability is achievable for single-path with implicit acknowledgement and multipath topologies. However, the single-path topology exhibits increased communication delay and more uncertain end-to-end communication time.
Keywords :
biodiffusion; delays; information networks; microorganisms; molecular communication (telecommunication); nanobiotechnology; numerical analysis; telecommunication network reliability; telecommunication network topology; absorption; acknowledgement protocol; biological characteristics; biological mechanisms; commensurate reliability; communication delay; delay analysis; information carrier; information transfer; molecular communication; molecular diffusion; molecular motors; multihop communication; multihop molecular nanonetworks; multihop virus-based nanonetworks; nanomachines; nucleic acid-based information; numerical analysis; physiochemical characteristics; single-path topology; uncertain end-to-end communication time; virus particles; Nano and molecular communication; nanonetworks; virus-based nanonetworks;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2013.2268389
Filename :
6530638
Link To Document :
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