English

Contextuality bounds the efficiency of classical simulation of quantum processes

Quantum Physics 2018-02-23 v1

Abstract

Contextuality has been conjectured to be a super-classical resource for quantum computation, analogous to the role of non-locality as a super-classical resource for communication. We show that the presence of contextuality places a lower bound on the amount of classical memory required to simulate any quantum sub-theory, thereby establishing a quantitative connection between contextuality and classical simulability. We apply our result to the qubit stabilizer sub-theory, where the presence of state-independent contextuality has been an obstacle in establishing contextuality as a quantum computational resource. We find that the presence of contextuality in this sub-theory demands that the minimum number of classical bits of memory required to simulate a multi-qubit system must scale quadratically in the number of qubits; notably, this is the same scaling as the Gottesman-Knill algorithm. We contrast this result with the (non-contextual) qudit case, where linear scaling is possible.

Keywords

Cite

@article{arxiv.1802.07744,
  title  = {Contextuality bounds the efficiency of classical simulation of quantum processes},
  author = {Angela Karanjai and Joel J. Wallman and Stephen D. Bartlett},
  journal= {arXiv preprint arXiv:1802.07744},
  year   = {2018}
}

Comments

6 pages, comments welcome

R2 v1 2026-06-23T00:29:15.906Z