This paper presents the estimation methods of subtle hypodense changes of brain tissue in noncontrast CT scans. The purpose of reported research is improved detection of direct signs of hyperacute ischemic stroke. Proposed tool is nonlinear approximation in base of multiscale functions with respective thresholding. Different rationales for best basis selection were considered. Several local bases including wavelets, curvelets, contourlets and wedgelets were considered and characterized with a criterion of as fast as possible approximation error decay. Adaptive thresholding was suggested for defining of nonlinear approximation space for different image models. Procedures of estimation and extraction of diagnostic information were experimentally verified. Improved diagnosis of acute stroke eases was reported.
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A new method of image fusion from various sensing modalities is proposed. This method adopts a perceptual fusion operator by using a sequence of multiscale contrast pyramid images. The method is tested by merging parallel registered visible and infrared images. Several performance measures clearly indicate that this method outperforms the other three approaches producing better visual effects
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