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Towards violations of Local Friendliness with quantum computers

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arxiv 2409.15302 v3 pith:WWLYNYMF submitted 2024-09-04 quant-ph

classification quant-ph
keywords quantumviolationsbranchfactorcircuitcomputersewfsexperimental
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Local Friendliness (LF) inequalities follow from seemingly reasonable assumptions about reality: (i) ``absoluteness of observed events'' (e.g., every observed event happens for all observers) and (ii) ``local agency'' (e.g., free choices can be made uncorrelated with other events outside their future light cone). Extended Wigner's Friend Scenario (EWFS) thought experiments show that textbook quantum mechanics violates these inequalities. Thus, experimental evidence of these violations would make these two assumptions incompatible. In [Nature Physics 16, 1199 (2020)], the authors experimentally implemented an EWFS, using a photonic qubit to play the role of each of the ``friends'' and measured violations of LF. One may question whether a photonic qubit is a physical system that counts as an ``observer'' and thereby question whether the experiment's outcome is significant. Intending to measure increasingly meaningful violations, we propose using a statistical measure called the ``branch factor'' to quantify the ``observerness'' of the system. We then encode the EWFS as a quantum circuit such that the components of the circuit that define the friend are quantum systems of increasing branch factor. We run this circuit on quantum simulators and hardware devices, observing LF violations as the system sizes scale. As errors in quantum computers reduce the significance of the violations, better quantum computers can produce better violations. Our results extend the state of the art in proof-of-concept experimental violations from branch factor 0.0 to branch factor 16.0. This is an initial result in an experimental program for measuring LF violations at increasingly meaningful branch factors using increasingly more powerful quantum processors and networks. We introduce this program as a fundamental science application for near-term and developing quantum technology.

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Cited by 2 Pith papers

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

  1. Emergence of Classicality in Wigner's Friend Scenarios

    quant-ph 2025-07 conditional novelty 6.0 of 10

    Wigner's Friend effects survive in a quantum-Darwinism decoherence model, but they are confounded by classical ignorance and suppressed as the Friend grows larger.

  2. Closing objectivity loophole in Bell tests on a public quantum computer

    quant-ph 2025-06 conditional novelty 4.0 of 10

    A three-observer unanimity Bell test on IBM and IonQ devices violates CHSH in several qubit groups while also revealing statistically significant signaling.

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