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Nonlocality-Assisted Enhancement of Error-Free Communication in Noisy Classical Channels
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The zero-error capacity of a noisy classical channel quantifies its ability to transmit information with absolute certainty, i.e., without any error. Unlike Shannon's standard channel capacity, which remains unaffected by pre-shared correlations, zero-error capacity can be enhanced through nonlocal correlations. In this work, we investigate zero-error communication utility of such correlations arising in the 2-2-m Bell scenario, where two parties have two inputs and m possible outcomes per input. For all m\geq2, we construct examples of noisy classical channels with zero zero-error capacity that, when assisted by extremal 2-2-m nonlocal correlations, can transmit one bit of information. While nonlocal correlations arising from quantum entangled states cannot achieve a positive zero-error capacity for these channels, they significantly enhance the probability of successfully transmitting a classical bit in a single use. Extending this analysis to the 2-m-2 Bell scenario, we identify channels with zero zero-error capacity that can nonetheless perfectly transmit log m bits of information when assisted by corresponding extremal nonlocal correlations. Our findings underscore the versatile utility of Bell nonlocal correlations in achieving zero-error communication.
Forward citations
Cited by 3 Pith papers
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Facets of Non-locality and Advantage in Entanglement-Assisted Classical Communication Tasks
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Non-signaling Assisted Capacity of a Classical Channel with Causal CSIT
Non-signaling assistance makes causal and non-causal channel-state knowledge at the transmitter have the same capacity, max_{P_{X|S}} I(X;Y|S), though the best finite-blocklength error rate still improves when the rec...
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Zero-Error Nash Equilibrium: Harnessing Nonlocal Correlation in Incomplete Information Games
A new game-theoretic condition, zero-error Nash equilibrium coordination, separates classical from quantum resources: some Bayesian games are unwinnable classically but winnable with Bell nonlocal correlations.
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