Title :
Precise BER analysis of π/4-DQPSK OFDM with carrier frequency offset over frequency selective fast fading channels
Author :
Tan, Peng ; Beaulieu, Norman C.
Author_Institution :
TELUS Commun. Co., Edmonton
fDate :
10/1/2007 12:00:00 AM
Abstract :
An exact closed-form bit error rate (BER) expression is derived for an orthogonal frequency-division multiplexing system with π/4-shifted differentially encoded quadrature phase shift keying (π/4-DQPSK) in the presence of carrier frequency offset over frequency-selective fast Rayleigh fading channels. Different system configurations, including time domain differential modulation, frequency domain differential modulation, single channel reception, and multi-channel reception with maximal ratio combining diversity, are considered in the exact BER analysis. For a small number of subcarriers, the BER expression can be calculated directly. A Monte Carlo method is designed to evaluate the BER for a large number of subcarriers. The analytical expression can be used to investigate the effect of several channel parameters, including mean delay spread and maximum Doppler spread, on the system BER performance. Particularly, the effect of carrier frequency offset on the system performance, and the differences and opportunities to use frequency domain differential modulation or time domain differential modulation, can be studied in a quantitative way for a more realistic wireless channel environment model. By using the exact closed-form BER expression, an optimum number of subcarriers can be found, and the allowable carrier frequency offset, Doppler spread, and mean delay spread for given operating conditions can be determined.
Keywords :
Monte Carlo methods; OFDM modulation; Rayleigh channels; error statistics; quadrature phase shift keying; π/4-DQPSK; DQPSK OFDM; Monte Carlo method; carrier frequency offset; differentially encoded quadrature phase shift keying; exact closed-form bit error rate expression; frequency domain differential modulation; frequency selective fast fading channels; frequency-selective fast Rayleigh fading channels; maximum Doppler spread; mean delay spread; multichannel reception; orthogonal frequency-division multiplexing system; precise BER analysis; single channel reception; time domain differential modulation; Bit error rate; Diversity reception; Fading; Frequency division multiplexing; Frequency domain analysis; Frequency modulation; Frequency shift keying; OFDM; Quadrature phase shift keying; Time domain analysis; Bit error rate analysis, carrier frequency offset, frequency-selective fading, inter-carrier interference, OFDM, orthogonal frequency-division multiplexing;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2007.060127