Adaptive vector-valued martingales: applications to image compression

نویسندگان

  • Sebastian E. Ferrando
  • Ariel Bernal
چکیده

Given a finite collection of functions defined on a common domain, the paper describes an algorithm that constructs a vector valued approximating martingale sequence. The orthonomal basis functions used to construct the martingale approximation are optimally selected, in each greedy step, from a large dictionary. The resulting approximations are characterized as generalized Hsystems and provide scalar and vector valued orthonormal systems which can be employed to perform lossy compression for the given set of input functions. The filtration associated to the martingale allows for a multiresolution analysis/synthesis algorithm to compute the approximating conditional expectation via a Fourier expansion. Convergence of the algorithm as well as several computational properties are established. Numerical examples are also provided for collection of images and video frames in order to study the approximating power of the constructed sequences.

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عنوان ژورنال:
  • Signal, Image and Video Processing

دوره 7  شماره 

صفحات  -

تاریخ انتشار 2013