Title :
Capacity analysis for finite-state Markov mapping of flat-fading channels
Author :
Sadeghi, Parastoo ; Rapajic, Predrag
Author_Institution :
Mobile Commun. Group, Univ. of New South Wales, Sydney, NSW, Australia
fDate :
5/1/2005 12:00:00 AM
Abstract :
In this paper, time-varying flat-fading channels are modeled as first-order finite-state Markov channels (FSMC). The effect of this modeling on the channel information capacity is addressed. The approximation accuracy of the first-order memory assumption in the Markov model is validated by comparing the FSMC capacity with the channel capacity assuming perfect state information at the receiver side. The results indicate that the first-order Markovian assumption is accurate for normalized Doppler frequencies fdT ≲ 0.01, in amplitude-only quantization of the channel gain for noncoherent binary signaling. In phase-only and joint phase and amplitude quantization of the channel gain for coherent binary signaling, the first-order Markovian assumption is accurate for fdT ≲ 0.001. Furthermore, the effect of channel quantization thresholds on the FSMC capacity is studied. In high signal-to-noise ratio (SNR) conditions, nonuniform two-level amplitude quantization scheme outperforms equiprobable quantization method by 0.8-1.5 dB.
Keywords :
Markov processes; channel capacity; fading channels; quantisation (signal); radio receivers; telecommunication signalling; time-varying channels; SNR; channel information capacity; equiprobable quantization method; finite-state Markov mapping; first-order memory assumption; noncoherent binary signaling; nonuniform two-level amplitude quantization scheme; normalized Doppler frequency; signal-to-noise ratio; time-varying flat-fading channel; Bit error rate; Channel capacity; Computational complexity; Computational modeling; Context modeling; Fading; Frequency; Gaussian processes; Quantization; Signal to noise ratio; Channel information capacity; finite-state Markov models; time-varying flat-fading channels;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2005.847161