DocumentCode :
55534
Title :
Receiver Design for Molecular Communication
Author :
Kilinc, Deniz ; Akan, Ozgur B.
Author_Institution :
Dept. of Electr. & Electron. Eng., Koc Univ., Istanbul, Turkey
Volume :
31
Issue :
12
fYear :
2013
fDate :
Dec-13
Firstpage :
705
Lastpage :
714
Abstract :
In the Molecular Communication (MC), molecules are utilized to encode, transmit, and receive information. Transmission of the information is achieved by means of diffusion of molecules and the information is recovered based on the molecule concentration variations at the receiver location. The MC is very prone to intersymbol interference (ISI) due to residual molecules emitted previously. Furthermore, the stochastic nature of the molecule movements adds noise to the MC. For the first time, we propose four methods for a receiver in the MC to recover the transmitted information distorted by both ISI and noise. We introduce sequence detection methods based on maximum a posteriori (MAP) and maximum likelihood (ML) criterions, a linear equalizer based on minimum mean-square error (MMSE) criterion, and a decision-feedback equalizer (DFE) which is a nonlinear equalizer. We present a channel estimator to estimate time varying MC channel at the receiver. The performances of the proposed methods based on bit error rates are evaluated. The sequence detection methods reveal the best performance at the expense of computational complexity. However, the MMSE equalizer has the lowest performance with the lowest computational complexity. The results show that using these methods significantly increases the information transmission rate in the MC.
Keywords :
computational complexity; decision feedback equalisers; error statistics; intersymbol interference; least mean squares methods; maximum likelihood detection; radio receivers; DFE; MAP criterion; MMSE equalizer; bit error rates; computational complexity; decision feedback equalizer; intersymbol interference; maximum a posteriori criterion; maximum likelihood criterion; minimum mean-square error equalizer; molecular communication; molecule concentration; molecule movements; nonlinear equalizer; receiver design; sequence detection; transmitted information; Detectors; Equalizers; Joints; Measurement; Nanoscale devices; Noise; Receivers; Molecular communication; channel equalization; intersymbol interference; sequence detection; signal-dependent noise;
fLanguage :
English
Journal_Title :
Selected Areas in Communications, IEEE Journal on
Publisher :
ieee
ISSN :
0733-8716
Type :
jour
DOI :
10.1109/JSAC.2013.SUP2.1213003
Filename :
6708551
Link To Document :
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