Article ID Journal Published Year Pages File Type
1713208 Journal of Systems Engineering and Electronics 2007 7 Pages PDF
Abstract
A nonlinear data analysis algorithm, namely empirical data decomposition (EDD) is proposed, which can perform adaptive analysis of observed data. Analysis filter, which is not a linear constant coefficient filter, is automatically determined by observed data, and is able to implement multi-resolution analysis as wavelet transform. The algorithm is suitable for analyzing non-stationary data and can effectively wipe off the relevance of observed data. Then through discussing the applications of EDD in image compression, the paper presents a 2-dimension data decomposition framework and makes some modifications of contexts used by Embedded Block Coding with Optimized Truncation (EBCOT). Simulation results show that EDD is more suitable for non-stationary image data compression.
Related Topics
Physical Sciences and Engineering Engineering Control and Systems Engineering
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