Title :
A signaling framework for time-varying multipath fading channels
Author :
Liu, Ke ; Kadous, Tamer ; Sayeed, Akbar M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
Abstract :
This paper develops a general framework for communication over time-varying multipath fading channels via orthogonal short-time Fourier (STF) basis functions. In general, STF basis functions interfere with each other due to the loss of orthogonality by channel dispersion. It is shown that the channel spread factor, the product of multipath and Doppler spreads, plays a key role in determining system performance. Smaller spread factors result in lower interference. A simple and approximately optimal pulse scale adaptation rule is derived to minimize interference by matching pulse properties to channel characteristics. For sufficiently small channel spread factors, a scale-adapted STF basis serves as a set of approximate eigenfunctions of the channel. However, for relatively larger spread factors, residual interference may cost a large degradation in performance. A highly effective iterative interference cancellation technique, sequential iterative interference cancellation (SIIC), is proposed to mitigate the residual interference between basis functions. Analytical and simulation results demonstrate the excellent performance of the proposed signaling framework.
Keywords :
Fourier transforms; OFDM modulation; eigenvalues and eigenfunctions; fading channels; interference suppression; iterative methods; mobile radio; multipath channels; telecommunication signalling; time-varying channels; Doppler spread; OFDM; SIIC; STF basis functions; approximate eigenfunctions; channel dispersion; channel spread factor; multipath fading channels; multipath spread; orthogonal short-time Fourier basis functions; performance; pulse scale adaptation rule; scale-adapted STF basis; sequential iterative interference cancellation; signaling framework; system performance; time-varying channels; Dispersion; Drives; Eigenvalues and eigenfunctions; Fading; Interference cancellation; OFDM modulation; Prototypes; System performance; Time frequency analysis; Time-varying channels;
Conference_Titel :
Vehicular Technology Conference, 2002. Proceedings. VTC 2002-Fall. 2002 IEEE 56th
Print_ISBN :
0-7803-7467-3
DOI :
10.1109/VETECF.2002.1040539