Title :
Cramer-Rao bounds in the parametric estimation of fading radiotransmission channels
Author :
Gini, Fulvio ; Luise, Marco ; Reggiannini, Ruggero
Author_Institution :
Dipt. di Ingegneria della Inf., Pisa Univ., Italy
fDate :
10/1/1998 12:00:00 AM
Abstract :
The context of this paper is parameter estimation for linearly modulated digital data signals observed on a frequency-flat time-selective fading channel affected by additive white Gaussian noise. The aim is the derivation of Cramer-Rao lower bounds for the joint estimation of all those channel parameters that impact signal detection, namely, carrier phase, carrier frequency offset (Doppler shift), frequency rate of change (Doppler rate), signal amplitude, fading power, and Gaussian noise power. Time-selective frequency-flat fading is modeled as a low-pass autoregressive multiplicative distortion process. In particular, the important case of “slow” fading, with the multiplicative process remaining constant over the whole data burst, is specifically discussed. Asymptotic expressions of the bounds, valid for a large observed sample or for high signal-to-noise ratio (SNR), are also derived in closed form. A few charts with numerical results are finally reported to highlight the dependence of the bounds on channel status (SNR, fading bandwidth, etc.)
Keywords :
Doppler shift; Gaussian noise; Rayleigh channels; Rician channels; autoregressive processes; data communication; digital radio; fading; frequency modulation; parameter estimation; signal detection; white noise; Cramer-Rao lower bounds; Doppler rate; Doppler shift; Gaussian noise power; Rayleigh channel; Rician fading; SNR; additive white Gaussian noise; carrier frequency offset; carrier phase; channel parameters; closed form asymptotic expressions; data burst; fading bandwidth; fading power; frequency-flat time-selective fading channel; high signal-to-noise ratio; joint estimation; large observed sample; linearly modulated digital data signals; low-pass AR multiplicative distortion process; multiplicative process; parameter estimation; radiotransmission channels; signal amplitude; signal detection; slow fading; Additive white noise; Amplitude estimation; Chirp modulation; Digital modulation; Doppler shift; Fading; Frequency estimation; Parameter estimation; Phase estimation; Signal detection;
Journal_Title :
Communications, IEEE Transactions on