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Main Authors: Pang, Shuqin, Zhang, Wenyi
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2411.11385
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author Pang, Shuqin
Zhang, Wenyi
author_facet Pang, Shuqin
Zhang, Wenyi
contents Information transmission over discrete-time channels with memoryless additive noise obeying a Cauchy, rather than Gaussian, distribution, are studied. The channel input satisfies an average power constraint. Upper and lower bounds to such additive white Cauchy noise (AWCN) channel capacity are established. In the high input power regime, the gap between upper and lower bounds is within 0.5 nats per channel use, and the lower bound can be achieved with Gaussian input. In the lower input power regime, the capacity can be asymptotically approached by employing antipodal input. It is shown that the AWCN decoder can be applied to additive white Gaussian noise (AWGN) channels with negligible rate loss, while the AWGN decoder when applied to AWCN channels cannot ensure reliable decoding. For the vector receiver case, it is shown that a linear combining receiver front end loses the channel combining gain, a phenomenon drastically different from AWGN vector channels.
format Preprint
id arxiv_https___arxiv_org_abs_2411_11385
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Information Rates of Channels with Additive White Cauchy Noise
Pang, Shuqin
Zhang, Wenyi
Information Theory
Information transmission over discrete-time channels with memoryless additive noise obeying a Cauchy, rather than Gaussian, distribution, are studied. The channel input satisfies an average power constraint. Upper and lower bounds to such additive white Cauchy noise (AWCN) channel capacity are established. In the high input power regime, the gap between upper and lower bounds is within 0.5 nats per channel use, and the lower bound can be achieved with Gaussian input. In the lower input power regime, the capacity can be asymptotically approached by employing antipodal input. It is shown that the AWCN decoder can be applied to additive white Gaussian noise (AWGN) channels with negligible rate loss, while the AWGN decoder when applied to AWCN channels cannot ensure reliable decoding. For the vector receiver case, it is shown that a linear combining receiver front end loses the channel combining gain, a phenomenon drastically different from AWGN vector channels.
title Information Rates of Channels with Additive White Cauchy Noise
topic Information Theory
url https://arxiv.org/abs/2411.11385