On Testing Entropic Inequalities for Superconducting Qudit
arXiv:1504.08203 · doi:10.1007/s10946-015-9522-z
Abstract
The aim of this work is to verify the new entropic and information inequalities for non-composite systems using experimental density matrix of the qudit state, measured by the tomographic method in a multi-level superconducting circuit. These inequalities are well-known for bipartite and tripartite systems, but have never been tested for superconducting qudits. Entropic inequalities can also be used to evaluate the accuracy of experimental data and the value of mutual information, deduced from them, may charachterize correlations between different degrees of freedom in a noncomposite system.
5 pages, 6 figures
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Cited by in corpus (6)
- Metric on the space of quantum states from relative entropy. Tomographic reconstruction
- New entropic inequalities for qubit and unimodal Gaussian states
- Teleportation in an indivisible quantum system
- Hidden correlations in indivisible qudits as a resource for quantum technologies on examples of superconducting circuits
- Steering in spin tomographic probability representation
- Deriving Entropic Inequalities for Two Coupled Superconducting Circuits