Title :
Comparison of Convolutional and Turbo Coding for Broadband FWA Systems
Author :
Chatzigeorgiou, Ioannis A. ; Rodrigues, Miguel R D ; Wassell, Ian J. ; Carrasco, Rolando A.
Author_Institution :
Univ. of Cambridge, Cambridge
fDate :
6/1/2007 12:00:00 AM
Abstract :
It has been demonstrated that turbo codes substantially outperform other codes, e.g., convolutional codes, both in the non-fading additive white Gaussian noise (AWGN) channel as well as multiple-transmit and multiple-receive antenna fading channels. Moreover, it has also been reported that turbo codes perform very well in fast fading channels, but perform somewhat poorly on slow and block fading channels of which the broadband fixed wireless access (FWA) channel is an example. In this paper, we thoroughly compare the performance of turbo-coded and convolutional-coded broadband FWA systems both with and without antenna diversity under the condition of identical complexity for a variety of decoding algorithms. In particular, we derive mathematical expressions to characterize the complexity of turbo decoding based on state-of-the-art Log-MAP and Max-Log-MAP algorithms as well as convolutional decoding based on the Viterbi algorithm in terms of the number of equivalent addition operations. Simulation results show that turbo codes do not offer any performance advantage over convolutional codes in FWA systems without antenna diversity or FWA systems with limited antenna diversity. Indeed, turbo codes only outperform convolutional codes in FWA systems having significant antenna diversity.
Keywords :
Viterbi decoding; convolution; fading channels; radio access networks; receiving antennas; transmitting antennas; turbo codes; Log-MAP algorithms; Max-Log-MAP algorithms; Viterbi algorithm; additive white Gaussian noise channel; antenna diversity; broadband FWA systems; convolutional coding; decoding; decoding algorithms; fading channels; fixed wireless access channel; multiple-receive antenna; multiple-transmit antenna; nonfading AWGN channel; turbo codes; turbo coding; turbo decoding; AWGN; Additive white noise; Broadband antennas; Convolution; Convolutional codes; Fading; Interleaved codes; Iterative decoding; Turbo codes; Viterbi algorithm; Algorithms; communication system performance; complexity theory; concatenated coding; convolutional codes; decoding; fading channels; iterative methods; trellis codes;
Journal_Title :
Broadcasting, IEEE Transactions on
DOI :
10.1109/TBC.2007.893387