Oblivious communication game, self-testing of projective and
non-projective measurements and certification of randomness
- URL: http://arxiv.org/abs/2112.14552v1
- Date: Wed, 29 Dec 2021 13:44:29 GMT
- Title: Oblivious communication game, self-testing of projective and
non-projective measurements and certification of randomness
- Authors: A.K. Pan
- Abstract summary: We provide an interesting two-party parity oblivious communication game whose success probability is solely determined by the Bell expression.
We find that the aforementioned Bell expression has two upper bounds in an ontological model; the usual local bound and a non-trivial preparation non-contextual bound.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We provide an interesting two-party parity oblivious communication game whose
success probability is solely determined by the Bell expression. The
parity-oblivious condition in an operational quantum theory implies the
preparation non-contextuality in an ontological model of it. We find that the
aforementioned Bell expression has two upper bounds in an ontological model;
the usual local bound and a non-trivial preparation non-contextual bound
arising from the non-trivial parity-oblivious condition, which is smaller that
the local bound. We first demonstrate the communication game when both Alice
and Bob perform three measurements of dichotomic observables in their
respective sites. The optimal quantum value of the Bell expression in this
scenario enables us to device-independently self-test the maximally entangled
state and trine-set of observables, three-outcome qubit
positive-operator-valued-measures (POVMs) and 1.58 bit of local randomness.
Further, we generalize the above communication game in that both Alice and Bob
perform the same but arbitrary (odd) number ($n> 3$) of measurements. Based on
the optimal quantum value of the relevant Bell expression for any arbitrary
$n$, we have also demonstrated device-independent self-testing of state and
measurements.
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