JOURNAL OF THE FRANKLIN INSTITUTE-ENGINEERING AND APPLIED MATHEMATICS, cilt.342, sa.7, ss.776-792, 2005 (SCI-Expanded, Scopus)
In wireless communications, the channel is typically modeled as a random, linear, time-
varying system that spreads the transmitted signal in both time and frequency due to multi-
path propagation and Doppler effects. Estimated channel parameters allow system designers
to develop coherent receivers that increase the system performance. In this paper, we show
how time–frequency analysis can be used to model and estimate the time-varying channel of a
multi-carrier spread spectrum (MCSS) system using a complex quadratic sequence as the
spreading code. We will show that for this spreading code, the effects of time delays and
Doppler frequencyshifts, caused bythe mobilityof environment objects, can be combined and
represented effectivelyas time shifts. The discrete evolutionarytransform (DET), as a
time–frequencyanalysis method, enables us to estimate the effective time shifts via a spreading
function and to use them to equalize the channel. Using the effective time shifts, the time-
varying channel can be represented simply as linear-time invariant system by embedding the
Doppler shifts that characterize the time-varying channel into effective time shifts. The