Steering witnesses for unknown Gaussian quantum states
- URL: http://arxiv.org/abs/2304.11239v1
- Date: Fri, 21 Apr 2023 20:14:48 GMT
- Title: Steering witnesses for unknown Gaussian quantum states
- Authors: Tatiana Mihaescu, Hermann Kampermann, Aurelian Isar, Dagmar Bru{\ss}
- Abstract summary: We study the efficiency of steering detection for two-mode squeezed vacuum states, for two-mode general unknown states, and for three-mode continuous variable GHZ states.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We define and fully characterize the witnesses based on second moments
detecting steering in Gaussian states by means of Gaussian measurements. All
such tests, which arise from linear combination of variances or second moments
of canonical operators, are easily implemented in experiments. We propose also
a set of linear constraints fully characterizing steering witnesses when the
steered party has one bosonic mode, while in the general case the constraints
restrict the set of tests detecting steering. Given an unknown quantum state we
implement a semidefinite program providing the appropriate steering test with
respect to the number of random measurements performed. Thus, it is a
"repeat-until-success" method allowing for steering detection with less
measurements than in full tomography. We study the efficiency of steering
detection for two-mode squeezed vacuum states, for two-mode general unknown
states, and for three-mode continuous variable GHZ states. In addition, we
discuss the robustness of this method to statistical errors.
Related papers
- Demonstration of monogamy laws for Gaussian steering in optomechanics [0.0]
We study the distribution of Gaussian steering over an asymmetric three-mode optomechanical state.
We show that a single-mode cannot be jointly steered by the two others, and further verify the monogamy inequalities of Gaussian steering.
Our model exhibits an extreme level of steering, where two single-mode cannot steer individually the third mode, while, they can collectively.
arXiv Detail & Related papers (2024-01-27T22:46:36Z) - Quantum randomness certification with untrusted measurements and few
probe states [0.0]
We present a scheme for quantum random-number generation from an untrusted measurement device and a trusted source.
No assumptions about noise or imperfections in the measurement are required, and the scheme is simple to implement with existing technology.
We show that randomness can be certified in the presence of both Gaussian additive noise and non-Gaussian imperfections.
arXiv Detail & Related papers (2022-10-24T21:18:22Z) - Homodyne detection of non-Gaussian quantum steering [0.0]
We propose a protocol based on Fisher information for witnessing steering in general continuous-variable bipartite states.
It proves to be relevant for the detection of non-Gaussian steering in scenarios where witnesses based on Gaussian features like the covariance matrix are shown to fail.
arXiv Detail & Related papers (2022-01-27T10:53:25Z) - Experimentally determining the incompatibility of two qubit measurements [55.41644538483948]
We describe and realize an experimental procedure for assessing the incompatibility of two qubit measurements.
We demonstrate this fact in an optical setup, where the qubit states are encoded into the photons' polarization degrees of freedom.
arXiv Detail & Related papers (2021-12-15T19:01:44Z) - Steering-based randomness certification with squeezed states and
homodyne measurements [0.0]
We present a scheme for quantum randomness certification based on quantum steering.
The protocol is one-sided device independent, providing high security, but requires only states and measurements that are simple to realise on quantum optics platforms.
arXiv Detail & Related papers (2021-11-11T13:05:18Z) - Machine-Learning-Derived Entanglement Witnesses [55.76279816849472]
We show a correspondence between linear support vector machines (SVMs) and entanglement witnesses.
We use this correspondence to generate entanglement witnesses for bipartite and tripartite qubit (and qudit) target entangled states.
arXiv Detail & Related papers (2021-07-05T22:28:02Z) - Optimal Adaptive Strategies for Sequential Quantum Hypothesis Testing [87.17253904965372]
We consider sequential hypothesis testing between two quantum states using adaptive and non-adaptive strategies.
We show that these errors decrease exponentially with decay rates given by the measured relative entropies between the two states.
arXiv Detail & Related papers (2021-04-30T00:52:48Z) - Efficient and robust certification of genuine multipartite entanglement
in noisy quantum error correction circuits [58.720142291102135]
We introduce a conditional witnessing technique to certify genuine multipartite entanglement (GME)
We prove that the detection of entanglement in a linear number of bipartitions by a number of measurements scales linearly, suffices to certify GME.
We apply our method to the noisy readout of stabilizer operators of the distance-three topological color code and its flag-based fault-tolerant version.
arXiv Detail & Related papers (2020-10-06T18:00:07Z) - Neural network quantum state tomography in a two-qubit experiment [52.77024349608834]
Machine learning inspired variational methods provide a promising route towards scalable state characterization for quantum simulators.
We benchmark and compare several such approaches by applying them to measured data from an experiment producing two-qubit entangled states.
We find that in the presence of experimental imperfections and noise, confining the variational manifold to physical states greatly improves the quality of the reconstructed states.
arXiv Detail & Related papers (2020-07-31T17:25:12Z) - Detecting entanglement of unknown continuous variable states with random
measurements [0.0]
We propose new linear constraints characterizing the entanglement witnesses based on second moments.
We use them in a semidefinite program providing the optimal entanglement test for given random measurements.
arXiv Detail & Related papers (2020-07-10T23:56:39Z) - Gaussian conversion protocols for cubic phase state generation [104.23865519192793]
Universal quantum computing with continuous variables requires non-Gaussian resources.
The cubic phase state is a non-Gaussian state whose experimental implementation has so far remained elusive.
We introduce two protocols that allow for the conversion of a non-Gaussian state to a cubic phase state.
arXiv Detail & Related papers (2020-07-07T09:19:49Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.