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Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/23760
Title: Robust Distributed Compression of Symmetrically Correlated Gaussian Sources
Authors: Zhang, Xuan
Advisor: Chen, Jun
Department: Electrical and Computer Engineering
Keywords: Distributed compression, Gaussian source, Karush-Kuhn-Tucker conditions, mean squared error, rate-distortion
Publication Date: 2018
Abstract: Consider a lossy compression system with l distributed encoders and a centralized decoder. Each encoder compresses its observed source and forwards the compressed data to the decoder for joint reconstruction of the target signals under the mean squared error distortion constraint. It is assumed that the observed sources can be expressed as the sum of the target signals and the corruptive noises, which are generated independently from two (possibly di erent) symmetric multivariate Gaussian distributions. Depending on the parameters of such Gaussian distributions, the rate-distortion limit of this lossy compression system is characterized either completely or for a subset of distortions (including, but not necessarily limited to, those su fficiently close to the minimum distortion achievable when the observed sources are directly available at the decoder). The results are further extended to the robust distributed compression setting, where the outputs of a subset of encoders may also be used to produce a non-trivial reconstruction of the corresponding target signals. In particular, we obtain in the high-resolution regime a precise characterization of the minimum achievable reconstruction distortion based on the outputs of k + 1 or more encoders when every k out of all l encoders are operated collectively in the same mode that is greedy in the sense of minimizing the distortion incurred by the reconstruction of the corresponding k target signals with respect to the average rate of these k encoders.
URI: http://hdl.handle.net/11375/23760
Appears in Collections:Open Access Dissertations and Theses

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