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Random access codes via quantum contextual redundancy

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arxiv 2103.01204 v3 pith:PMXIJKBU submitted 2021-03-01 quant-ph

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keywords accessquantumrandomdataprotocolclassicalcodecodes
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abstract

We propose a protocol to encode classical bits in the measurement statistics of many-body Pauli observables, leveraging quantum correlations for a random access code. Measurement contexts built with these observables yield outcomes with intrinsic redundancy, something we exploit by encoding the data into a set of convenient context eigenstates. This allows to randomly access the encoded data with few resources. The eigenstates used are highly entangled and can be generated by a discretely-parametrized quantum circuit of low depth. Applications of this protocol include algorithms requiring large-data storage with only partial retrieval, as is the case of decision trees. Using $n$-qubit states, this Quantum Random Access Code has greater success probability than its classical counterpart for $n\ge 14$ and than previous Quantum Random Access Codes for $n \ge 16$. Furthermore, for $n\ge 18$, it can be amplified into a nearly-lossless compression protocol with success probability $0.999$ and compression ratio $O(n^2/2^n)$. The data it can store is equal to Google-Drive server capacity for $n= 44$, and to a brute-force solution for chess (what to do on any board configuration) for $n= 100$.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Empirical Demonstration of Quantum Contextuality on NISQ Computers

    quant-ph 2025-05 reject novelty 4.0 of 10

    The Rio Negro results violate noncontextual bounds on IBM Heron R2, but the paper's own Table 2 shows Mermin game success rates at or below the classical limits.

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