Device-independent Certification of One-shot Distillable Entanglement
arXiv:1712.09369 · doi:10.1088/1367-2630/aafef6
Abstract
Entanglement sources that produce many entangled states act as a main component in applications exploiting quantum physics such as quantum communication and cryptography. Realistic sources are inherently noisy, cannot run for an infinitely long time, and do not necessarily behave in an independent and identically distributed manner. An important question then arises -- how can one test, or certify, that a realistic source produces high amounts of entanglement? Crucially, a meaningful and operational solution should allow us to certify the entanglement which is available for further applications after performing the test itself (in contrast to assuming the availability of an additional source which can produce more entangled states, identical to those which were tested). To answer the above question and lower bound the amount of entanglement produced by an uncharacterised source, we present a protocol that can be run by interacting classically with uncharacterised (but not entangled to one another) measurement devices used to measure the states produced by the source. A successful run of the protocol implies that the remaining quantum state has high amounts of one-shot distillable entanglement. That is, one can distill many maximally entangled states out of the single remaining state. Importantly, our protocol can tolerate noise and, thus, certify entanglement produced by realistic sources. With the above properties, the protocol acts as the first "operational device-independent entanglement certification protocol" and allows one to test and benchmark uncharacterised entanglement sources which may be otherwise incomparable.
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Cited by in corpus (17)
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- A framework for quantum-secure device-independent randomness expansion
- Robust self-testing of two-qubit states
- Quantum correlations on the no-signaling boundary: self-testing and more
- Naturally restricted subsets of nonsignaling correlations: typicality and convergence
- Authenticated teleportation with one-sided trust
- Interplay among entanglement, measurement incompatibility, and nonlocality
- Generalized Rényi entropy accumulation theorem and generalized quantum probability estimation
- Analytic Semi-device-independent Entanglement Quantification for Bipartite Quantum States
- Device-Independent Certification of Multipartite Distillable Entanglement
- Device-independent certification of desirable properties with a confidence interval
- Bounding conditional entropy of bipartite states with Bell operators
- Genuine multipartite entanglement is not necessary for standard device-independent conference key agreement
- Composable framework for device-independent state certification
- Parallel remote state preparation for fully device-independent verifiable blind quantum computation
- Interplay of Quantum Resources in Nonlocality Tests
- Strength of statistical evidence for genuine tripartite nonlocality