Source Coding in Networks with Covariance Distortion Constraints

Adel Zahedi, Jan Østergaard, Søren Holdt Jensen, Patrick Naylor, Søren Bech

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5 Citationer (Scopus)
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Abstract

We consider a source coding problem with a network scenario in mind, and formulate it as a remote vector Gaussian Wyner-Ziv problem under covariance matrix distortions. We define a notion of minimum for two positive-definite matrices based on which we derive an explicit formula for the rate-distortion function (RDF). We then study the special cases and applications of this result. We show that two well-studied source coding problems, i.e. remote vector Gaussian Wyner-Ziv problems with mean-squared error and mutual information constraints are in fact special cases of our results. Finally, we apply our results to a joint source coding and denoising problem. We consider a network with a centralized topology and a given weighted sum-rate constraint, where the received signals at the center are to be fused to maximize the output SNR while enforcing no linear distortion. We show that one can design the distortion matrices at the nodes in order to maximize the output SNR at the fusion center. We thereby bridge between denoising and source coding within this setup.
OriginalsprogEngelsk
TidsskriftI E E E Transactions on Signal Processing
Vol/bind64
Udgave nummer22
Sider (fra-til)5943-5958
Antal sider16
ISSN1053-587X
DOI
StatusUdgivet - nov. 2016

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