Almost device-independent certification of GME states with minimal
measurements
- URL: http://arxiv.org/abs/2402.18522v1
- Date: Wed, 28 Feb 2024 17:54:55 GMT
- Title: Almost device-independent certification of GME states with minimal
measurements
- Authors: Shubhayan Sarkar, Alexandre C. Orthey, Jr., Gautam Sharma, Remigiusz
Augusiak
- Abstract summary: Device-independent certification of quantum states allows the characterization of quantum states present inside a device.
A major problem in this regard is to certify quantum states using minimal resources.
We consider the multipartite quantum steering scenario with an arbitrary number of parties but only one of which is trusted in the sense that the measurements performed by the trusted party are known.
- Score: 41.94295877935867
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Device-independent certification of quantum states allows the
characterization of quantum states present inside a device by making minimal
physical assumptions. A major problem in this regard is to certify quantum
states using minimal resources. In this work, we consider the multipartite
quantum steering scenario with an arbitrary number of parties but only one of
which is trusted in the sense that the measurements performed by the trusted
party are known. Consequently, the self-testing scheme is almost
device-independent. Importantly, all the parties can only perform two
measurements each which is the minimal number of measurements required to
observe any form of quantum nonlocality. Then, we propose steering inequalities
that are maximally violated by three major classes of genuinely multipartite
entangled (GME) states, one, graph states of arbitrary local dimension, two,
Schmidt states of arbitrary local dimension, and, three, $N$-qubit generalized
W states. Using the proposed inequalities, we then provide an almost
device-independent certification of the above GME states.
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