Title :
MLSD Bounds and Receiver Designs for Clipped OFDM Channels
Author :
Peng, Fei ; Ryan, William E.
Author_Institution :
LitePoint Corp., Sunnyvale, CA
fDate :
9/1/2008 12:00:00 AM
Abstract :
We derive tight closed-form approximations of symbol and bit error probability on maximum-likelihood sequence detection (MLSD) of Nyquist-rate and oversampled OFDM systems over the AWGN, flat and frequency-selective quasi-static Rayleigh fading channels. Contrary to common knowledge, we show that on a frequency-selective channel, clipping at the transmitter leads to achievable frequency-diversity and performance gain over unclipped systems with MLSD. We derive closed-form expressions of the diversity and the performance gain over the no-clipping case, as well as the optimal clipping ratio for a given system. We show that such diversity and performance gain are a result of both clipping and channel frequency-selectivity, and they do not occur on the AWGN and flat fading channels.We also present a new near-optimum detection algorithm that achieves the MLSD performance bound with a few iterations for the clipped OFDM systems with both high and low clipping levels on the AWGN and flat Rayleigh fading channels. For the frequency selective channel, we present a receiver design that utilizes the advantage of clipping to some extent. We consider rectangular QAM signaling in this paper.
Keywords :
AWGN channels; OFDM modulation; Rayleigh channels; error statistics; maximum likelihood detection; quadrature amplitude modulation; AWGN; MLSD bound; MLSD performance bound; Nyquist-rate; bit error probability; clipped OFDM channel; closed-form approximation; frequency selective channel; frequency-selective channel; maximum-likelihood sequence detection; optimal clipping ratio; oversampled OFDM system; quasi-static Rayleigh fading channel; AWGN; Closed-form solution; Error probability; Fading; Frequency diversity; Maximum likelihood detection; OFDM; Performance gain; Rayleigh channels; Transmitters; Orthogonal frequency-division multiplexing (OFDM); clipping noise; iterative method; maximum-likelihood sequence detection (MLSD); performance bounds;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2008.070368