DocumentCode :
640208
Title :
Relaying in diffusion-based molecular communication
Author :
Einolghozati, Arash ; Sardari, Mohsen ; Fekri, Faramarz
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fYear :
2013
fDate :
7-12 July 2013
Firstpage :
1844
Lastpage :
1848
Abstract :
This paper is eligible for the student paper award. Molecular communication between biological entities is a new paradigm in communications. Recently, we studied molecular communication between two nodes formed from synthetic bacteria. Due to high randomness in behavior of bacteria, we used a population of them in each node. The reliability of such communication systems depends on both the maximum concentration of molecules that a transmitter node is able to produce at the receiver node as well as the number of bacteria in each nodes. This maximum concentration of molecules falls with distance which makes the communication to the far nodes nearly impossible. In order to alleviate this problem, in this paper, we propose to use a molecular relaying node. The relay node can resend the message either by the different or the same type of molecules as the original signal from the transmitter. We study two scenarios of relaying. In the first scenario, the relay node simply senses the received concentration and forwards it to the receiver. We show that this sense and forward scenario, depending on the type of molecules used for relaying, results in either increasing the range of concentration of molecules at the receiver or increasing the effective number of bacteria in the receiver node. For both cases of sense and forward relaying, we obtain the resulting improvement in channel capacity. We conclude that multi-type molecular relaying outperforms the single-type relaying. In the second scenario, we study the decode and forward relaying for the M-ary signaling scheme. We show that this relaying strategy increases the reliability of M-ary communication significantly.
Keywords :
channel capacity; decode and forward communication; diffusion; microorganisms; molecular communication (telecommunication); receivers; relay networks (telecommunication); telecommunication network reliability; transmitters; M-ary signaling scheme; channel capacity; decode and forward relaying; diffusion-based molecular communication; molecular relaying node; receiver node; reliability; sense and forward relaying; synthetic bacteria; transmitter node; Information theory; Microorganisms; Molecular communication; Noise; Receivers; Relays; Transmitters;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Theory Proceedings (ISIT), 2013 IEEE International Symposium on
Conference_Location :
Istanbul
ISSN :
2157-8095
Type :
conf
DOI :
10.1109/ISIT.2013.6620546
Filename :
6620546
Link To Document :
بازگشت