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Titlebook: Essential Wavelets for Statistical Applications and Data Analysis; R. Todd Ogden Book 1997 Springer Science+Business Media New York 1997 E

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sense of the word, that of making a sub­ ject popular (Meyer‘s book is one of the early works written with the non­ specialist in mind), the implication seems to be that such an attempt some­ how cheapens or coarsens the subject. I have to disagree that popularity goes hand-in-hand with debasement.
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Teresa J. Kennedy,Michael R. L. Odellthan as a powerful method for solving practical problems. In fact, much of the beauty of wavelet analysis lies in its widespread applications. This chapter will discuss important issues that arise in moving wavelets from theory to practice.
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Silvia Cosimato,Nicola Cucari,Giovanni Landirm that has been the primary focus is only a small portion of all wavelet-based methods available. In this chapter, we give an overview of some of the important extensions of standard wavelet methods, and briefly consider their uses in statistics.
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Wavelets: A Brief Introduction,s Fourier decomposition, and the wavelet representation is presented first in terms of its simplest paradigm, the Haar basis. This piecewise constant Haar system is used to describe the concepts of the multiresolution analysis, and these ideas are generalized to other types of wavelet bases.
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Elementary Statistical Applications,cepts and examine some fundamental applications of wavelets in function estimation. This chapter will focus on wavelet versions of the two types of estimators discussed in Chapter 2 (kernels and orthogonal series), as they are applied to density estimation and nonparametric regression.
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Generalizations and Extensions,rm that has been the primary focus is only a small portion of all wavelet-based methods available. In this chapter, we give an overview of some of the important extensions of standard wavelet methods, and briefly consider their uses in statistics.
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