Nonlinear prediction of mobile radio channels: measurements and MARS model designs
نویسندگان
چکیده
The rapid time variation of mobile radio channels is often modeled as a random process with second order moments reeecting vehicle speed, bandwidth and the scattering environment. These statistics typically show that there is little room for prediction of channel properties such as received power or complex taps of the impulse response coeecients, at least when linear predictor structures are considered. We use mutual information estimation to measure statistical dependencies in sequences of wideband mobile radio channel data and nd signiicant nonlinear dependencies, far exceeding the linear component. Based on these upper limits for the predictability of channel evolution over time intervals up to 30 ms ahead, we develop practical nonlinear predictor systems using Multivariate Adaptive Regression Splines (MARS). We demonstrate computationally eecient schemes that increase the prediction horizon beyond 10 ms, compared to less than 4 ms with linear predictors at comparable prediction gains.
منابع مشابه
Extended and revised version of VTC 1999-Fall paper QUADRATIC AND LINEAR FILTERS FOR MOBILE RADIO CHANNEL PREDICTION
Using a simple channel model for the multipath mobile radio channel, a nonlinear approach to long-range prediction of fading radio channels is motivated in a scenario with scatterers close to the mobile station. The performance of linear and quadratic predictors is evaluated on wideband (6.4 MHz) measurements in the 1800 MHz band. The predictors are applied on estimated complex channel taps to ...
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