Publication | Open Access
Quantum-State Reconstruction by Maximizing Likelihood and Entropy
107
Citations
12
References
2011
Year
Quantum ScienceEngineeringQuantum ComputingPhysicsQuantum Optimization AlgorithmEntropyUncertainty QuantificationNatural SciencesQuantum MeasurementQuantum InformationSuch EstimatorsStatistical InferenceQuantum SystemQuantum-state ReconstructionQuantum EntanglementStatisticsIncomplete MeasurementsMeasurement Problem
Quantum-state reconstruction on a finite number of copies of a quantum system with informationally incomplete measurements, as a rule, does not yield a unique result. We derive a reconstruction scheme where both the likelihood and the von Neumann entropy functionals are maximized in order to systematically select the most-likely estimator with the largest entropy, that is, the least-bias estimator, consistent with a given set of measurement data. This is equivalent to the joint consideration of our partial knowledge and ignorance about the ensemble to reconstruct its identity. An interesting structure of such estimators will also be explored.
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