Title :
Performance analysis of amplify-decode-and-forward multihop binary phase-shift keying/free-space optical systems using avalanche photodiode receivers over atmospheric turbulence channels
Author :
Pham, Thuy V. ; Pham, Anh T.
Author_Institution :
Comput. Commun. Lab., Univ. of Aizu, Aizu-Wakamatsu, Japan
Abstract :
This study studies the performance of multihop free-space optical systems using the subcarrier binary phase-shift keying modulation over atmospheric turbulence channels. The authors propose a modified relaying strategy, termed `amplify-decode-and-forward´, realised by using avalanche photodiode (APD) receivers. The outage probability of the proposed system is analytically derived considering the atmospheric turbulence and the receiver noise, including APD shot noise and thermal noise. The analytical results are verified by Monte Carlo simulations, and a good agreement between the analytical and simulation results is confirmed. In the authors´ analysis, they quantitatively discuss the impact of turbulence strength, number of relay nodes, relaying configuration, system bit rate and receiver parameters on the system outage probability. In addition, the optimal value of APD gain for achieving the lowest outage probability in different cases of relaying configuration, number of relays and receiver parameters is also discussed.
Keywords :
Monte Carlo methods; amplify and forward communication; atmospheric turbulence; avalanche photodiodes; decode and forward communication; optical communication; optical receivers; phase shift keying; probability; relay networks (telecommunication); shot noise; telecommunication channels; thermal noise; APD receivers; APD shot noise; Monte Carlo simulations; amplify-decode-and-forward multihop binary phase-shift keying; atmospheric turbulence channels; avalanche photodiode receivers; modified relaying strategy; multihop free-space optical systems; outage probability; performance analysis; receiver noise; relay nodes; subcarrier binary phase-shift keying modulation; system bit rate; thermal noise; turbulence strength;
Journal_Title :
Communications, IET
DOI :
10.1049/iet-com.2013.0422