3 research outputs found

    Modeling and simulation of the fused Bayesian-regularization method for remote sensing imagery with synthetic aperture arrays

    Full text link
    A new fused Bayesian regularization (FBR) method for enhanced remote sensing imaging based on a new concept of aggregated statistical-deterministic regularization was developed recently. In this study, we represent the results of modeling and extensive simulation of the FBR algorithms for enhanced reconstruction of the spatial spectrum patterns (SSP) of the point-type and spatially distributed wavefield sources as it is required for the remote sensing imagery with synthetic aperture arrays. The simulations were performed in the MATLAB computational environment for the family of the SAR imaging algorithms that employed different modifications of the FBR method. The presented results enable one to evaluate the operational performance of the FBR method that was not previously reported in the literature

    New spectral positional invariance approach for superresolution of point-type targets embedded in colored noise

    Full text link
    A new technique is proposed for high-resolution spectral estimation of point-type targets in multi-grade background scenes. All existing spectral estimation methods operating with short data lengths face the contradiction of providing superresolution of the spectral components related to distinct signal sources, and the smoothed reconstruction of the spectral shape of the extended component as a whole. The method addressed here implies considering the spectrum estimation problem under two paradigms: (i) the Prony estimation of the point-type targets; (ii) the nonparametric maximum entropy estimation applied to reconstruct the image of the background scene. By fusing these two methods, we achieve a substantial improvement in resolutions of point-type targets as well as the background spectral characterization

    Antenna-based processing of the radar data for zone detection in remote sensing imagery

    Full text link
    A new approach is addressed to perform antenna-based processing of radar imagery data aimed at reconstruction/enhancement of the images degraded by a spatially-shift-invariant radar spread function and contaminated with additive Gaussian noise. The fused maximum entropy-variational method is developed and computationally implemented using the modified Hopfield neural network. Enhanced zone detection and image denoising are achieved using the proposed approach
    corecore