Title :
The noncoherent rician fading Channel-part I: structure of the capacity-achieving input
Author :
Gursoy, Mustafa Cenk ; Poor, H. Vincent ; Verdú, Sergio
Author_Institution :
Dept. of Electr. Eng., Princeton Univ., NJ, USA
Abstract :
Transmission of information over a discrete-time memoryless Rician fading channel is considered, where neither the receiver nor the transmitter knows the fading coefficients. First, the structure of the capacity-achieving input signals is investigated when the input is constrained to have limited peakedness by imposing either a fourth moment or a peak constraint. When the input is subject to second and fourth moment limitations, it is shown that the capacity-achieving input amplitude distribution is discrete with a finite number of mass points in the low-power regime. A similar discrete structure for the optimal amplitude is proven over the entire signal-to-noise ratio (SNR) range when there is only a peak-power constraint. The Rician fading with the phase-noise channel model, where there is phase uncertainty in the specular component, is analyzed. For this model, it is shown that, with only an average power constraint, the capacity-achieving input amplitude is discrete with a finite number of levels. For the classical average-power-limited Rician fading channel, it is proven that the optimal input amplitude distribution has bounded support.
Keywords :
Rician channels; channel capacity; wireless channels; SNR; capacity-achieving input amplitude distribution; discrete-time memoryless channel; noncoherent Rician fading channel; peak-power constraint; phase uncertainty; phase-noise channel model; signal-to-noise ratio; specular component; AWGN; Channel capacity; Fading; Phase noise; Pulse modulation; Rayleigh channels; Rician channels; Signal to noise ratio; Transmitters; Uncertainty; Capacity-achieving input; Rician fading; channel capacity; fading channels; memoryless fading; peak constraints; phase noise;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2005.853970