Distributed quantization for compressed sensing

A Shirazinia, S Chatterjee… - 2014 IEEE International …, 2014 - ieeexplore.ieee.org
2014 IEEE International Conference on Acoustics, Speech and Signal …, 2014ieeexplore.ieee.org
We study distributed coding of compressed sensing (CS) measurements using vector
quantizer (VQ). We develop a distributed framework for realizing optimized quantizer that
enables encoding CS measurements of correlated sparse sources followed by joint
decoding at a fusion center. The optimality of VQ encoder-decoder pairs is addressed by
minimizing the sum of mean-square errors between the sparse sources and their
reconstruction vectors at the fusion center. We derive a lower-bound on the end-to-end …
We study distributed coding of compressed sensing (CS) measurements using vector quantizer (VQ). We develop a distributed framework for realizing optimized quantizer that enables encoding CS measurements of correlated sparse sources followed by joint decoding at a fusion center. The optimality of VQ encoder-decoder pairs is addressed by minimizing the sum of mean-square errors between the sparse sources and their reconstruction vectors at the fusion center. We derive a lower-bound on the end-to-end performance of the studied distributed system, and propose a practical encoder-decoder design through an iterative algorithm.
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