Title : 
Wigner/cycle spectrum analysis of spread spectrum and diversity transmissions
         
        
            Author : 
Wilbur, JoEllen ; Bono, John
         
        
            Author_Institution : 
US Naval Coastal Syst. Center, Panama City, FL, USA
         
        
        
        
        
            fDate : 
1/1/1991 12:00:00 AM
         
        
        
        
            Abstract : 
A high-resolution t-ω estimator, termed the Wigner distribution (WD), is shown to form a sound basis for representing nonstationary acoustic returns. Signal returns are modeled as the output of a time-variant random filter where the WD of the nonstationary signal return defines a random process whose expectation reduces to the instantaneous power spectral density defined for dispersive communication channels. From the WD, a set of relations describing time-variant channel effects on spread-spectrum and diversity transmissions are developed. These relations are shown to be useful in comparing spreading techniques under differing channel conditions and for estimating channel-imposed bounds on the spreading parameters required for effective transmission. A mapping from the Wigner distribution to the cycle spectrum is shown to produce cyclic correlations characteristic of the modulation rate. The WD-based formulation is applied to an example of spread-spectrum transmission through a reverberation-limited channel
         
        
            Keywords : 
acoustic signal processing; random processes; spectral analysis; spread spectrum communication; underwater sound; Wigner distribution; Wigner/cycle spectrum analysis; cycle spectrum; cyclic correlations characteristic; dispersive communication channels; diversity transmissions; effective transmission; mapping; modulation rate; nonstationary acoustic returns; power spectral density; random process; reverberation-limited channel; spread-spectrum transmission; time-variant channel effects; time-variant random filter; underwater acoustic channels; Acoustic propagation; Dispersion; Electromagnetic scattering; Filters; Random processes; Sea measurements; Signal design; Signal processing; Spread spectrum communication; Underwater acoustics;
         
        
        
            Journal_Title : 
Oceanic Engineering, IEEE Journal of