Author :
Gong, F.K. ; Ye, Pengfei ; Wang, Yannan ; Zhang, Ni
Author_Institution :
State Key Lab. of ISN, Xidian Univ., Xi´an, China
Abstract :
Double Nakagami-m fading model can be used to provide a realistic description of the mobile-to-mobile (M2M) channel. The moment generating function (MGF)-based approach is used to derive the symbol error probability (SEP) expressions for the multiple-mobile-relay-based M2M system. Under the consideration of better performance and lower complexity, both decode-and-forward (DF) and amplify-and-forward (AF) protocols are addressed in this study. For adaptive DF (ADF) relaying, the asymptotic SEP at high signal-to-noise ratio regime in addition to the exact SEP formulations are derived. Furthermore, the impacts of channel estimation error for the insight of non-ideal channel estimation are analysed. For fixed-gain AF (FAF) relaying, the authors present approximate SEP and asymptotic SEP to indicate the cooperative gain. For L mobile relays and under the assumption of independent and identically distributed (i.i.d) source-relay channels and i.i.d relay-destination channels, it is shown in this paper that asymptotic diversity orders of L×min(mRD,1, mRD,2)+min(mSD,1, mSD,2) and L×min(mSR,1, mSR,2, mRD,1, mRD,2)+min(mSD,1, mSD,2) can be achieved for ADF-M2M and FAF-M2M schemes, respectively. Simulations are performed to verify the analytical results.
Keywords :
Nakagami channels; amplify and forward communication; channel estimation; cooperative communication; decode and forward communication; diversity reception; error statistics; mobile communication; protocols; adaptive DF relaying; amplify-and-forward protocols; asymptotic diversity orders; channel estimation error; cooperative mobile-to-mobile communications; decode-and-forward protocols; double Nakagami-m fading channels; fixed-gain AF relaying; i.i.d relay-destination channels; i.i.d source-relay channels; mobile-to-mobile channel; moment generating function; multiple-mobile-relay-based M2M system; nonideal channel estimation; signal-to-noise ratio; symbol error probability;