Title :
A frequency domain equalizer for amplify-and-forward underwater acoustic relay communication systems
Author :
Khoa Xuan Nguyen ; Yue Rong ; ZhiQiang He
Author_Institution :
Dept. of Electr. & Comput. Eng., Curtin Univ. of Technol., Perth, WA, Australia
Abstract :
In this paper, we apply the amplify-and-forward relay technique to simultaneously increase the range and data rate of underwater acoustic communication by dividing the channel between transmitter and receiver into two hops. Due to the application of the relay node, the delay spread of the effective transmitter-relay-receiver multipath channel is longer than that of the direct transmitter-receiver channel, which increases the complexity of channel equalization at the receiver. To reduce the computational complexity of channel equalization, a fractionally-spaced frequency domain equalizer (FS-FDE) is designed in this paper. Simulation results illustrate that compared with the direct path communication, significant bit-error-rate performance improvement can be achieved through using relay technique in underwater acoustic communication.
Keywords :
amplify and forward communication; error statistics; frequency-domain analysis; multipath channels; relay networks (telecommunication); underwater acoustic communication; BER; FS-FDE; amplify-and-forward underwater acoustic relay communication systems; bit-error-rate performance improvement; channel equalization; computational complexity reduction; data rate; direct path communication; direct transmitter-receiver channel; fractionally-spaced frequency domain equalizer; range rate; relay node; transmitter-relay-receiver multipath channel; Bit error rate; Delays; Equalizers; Frequency-domain analysis; Receivers; Relays; Underwater acoustics; Underwater acoustic communication; amplifyand-forward relay; equalization;
Conference_Titel :
Information, Communications and Signal Processing (ICICS) 2013 9th International Conference on
Conference_Location :
Tainan
Print_ISBN :
978-1-4799-0433-4
DOI :
10.1109/ICICS.2013.6782895