DocumentCode
266358
Title
Analysis and design of two-hop diffusion-based molecular communication networks
Author
Ahmadzadeh, Arman ; Noel, Adam ; Schober, Robert
Author_Institution
Univ. of Erlangen-Nuremberg, Erlangen, Germany
fYear
2014
fDate
8-12 Dec. 2014
Firstpage
2820
Lastpage
2825
Abstract
In this paper, we consider a two-hop molecular communication network consisting of one nanotransmitter, one nanoreceiver, and one nanotransceiver acting as a relay. We consider two different schemes for relaying to improve the range of diffusion-based molecular communication. In the first scheme, two different types of messenger molecules are utilized at the relay node for transmission and detection. In the second scheme, we assume that there is only one type of molecule available to be used as an information carrier. We identify self-interference as the performance-limiting effect for the second relaying scheme. Self-interference occurs when the relay must detect the same type of molecule that it also emits. Furthermore, we consider two relaying modes analogous to those used in wireless communication systems, i.e., full-duplex and half-duplex. In particular, while our main focus is on full-duplex relaying, half-duplex relaying is employed as a means to mitigate self-interference. In addition, we propose the adaptation of the decision threshold as an effective mechanism to mitigate self-interference at the relay for full-duplex transmission. We derive closed-form expressions for the expected error probability of the network for both considered relaying schemes.
Keywords
molecular communication (telecommunication); radiofrequency interference; relay networks (telecommunication); wireless mesh networks; error probability; full-duplex relaying; full-duplex transmission; half-duplex relaying; nanoreceiver; nanotransceiver; nanotransmitter; performance-limiting effect; second relaying scheme; two-hop diffusion-based molecular communication networks; wireless communication system; Error probability; Nanobioscience; Numerical models; Protocols; Random variables; Relays;
fLanguage
English
Publisher
ieee
Conference_Titel
Global Communications Conference (GLOBECOM), 2014 IEEE
Conference_Location
Austin, TX
Type
conf
DOI
10.1109/GLOCOM.2014.7037235
Filename
7037235
Link To Document