Title :
Ultra-wideband radar imaging experiment for verifying super-resolution in nonlinear inverse scattering
Author :
Fu-Chiarng Chen ; Weng Cho Chew
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
Abstract :
The super-resolution phenomenon in nonlinear inverse scattering has been reported previously using numerically simulated data. What was shown was the ability of a nonlinear inverse scattering method to resolve features that are much less than half a wavelength, the criterion dictated by the Rayleigh criterion. The phenomenon has been attributed to the multiple scattering effect within an inhomogeneous body. The high spatial frequency (high resolution) information of the object is usually contained in the evanescent waves when only single scattering physics is considered. Multiple scattering converts evanescent waves into propagating waves and vice versa. Hence, in an inverse scattering experiment, even though an object is interrogated with a propagating wave, and only scattered waves corresponding to propagating waves can be measured, the scattered waves contains high resolution information about the scatterer because of the evanescent-propagating waves conversion in a multiply scattered field. Therefore, an inverse scattering method that can unravel the multiple scattering information can extract the high resolution information on a scatterer.
Keywords :
electromagnetic fields; electromagnetic wave propagation; electromagnetic wave scattering; image resolution; inverse problems; iterative methods; radar imaging; radar resolution; Rayleigh criterion; distorted Born iterative method; evanescent waves; evanescent-propagating waves conversion; high spatial frequency; inhomogeneous body; inverse scattering experiment; multiple scattering; multiple scattering effect; multiply scattered field; nonlinear inverse scattering; numerically simulated data; propagating waves; single scattering physics; super-resolution; ultra-wideband radar imaging experiment; wavelength; Data mining; Frequency; Inverse problems; Numerical simulation; Physics; Radar imaging; Radar scattering; Rayleigh scattering; Spatial resolution; Ultra wideband technology;
Conference_Titel :
Antennas and Propagation Society International Symposium, 1998. IEEE
Conference_Location :
Atlanta, GA, USA
Print_ISBN :
0-7803-4478-2
DOI :
10.1109/APS.1998.702187