Publication | Open Access
Iterative maximum-likelihood reconstruction in quantum homodyne tomography
281
Citations
24
References
2004
Year
Image ReconstructionEngineeringQuantum Optical EnsembleQuantum ComputingQuantum Optimization AlgorithmQuantum Machine LearningMarginal DistributionsBalanced Homodyne MeasurementsQuantum Homodyne TomographyOptical SystemsQuantum EntanglementQuantum SciencePhotonicsQuantum TomographyReconstruction TechniqueMedical ImagingPhysicsQuantum AlgorithmInverse ProblemsNatural SciencesBiomedical Imaging
I propose an iterative expectation maximization algorithm for reconstructing a quantum optical ensemble from a set of balanced homodyne measurements performed on an optical state. The algorithm applies directly to the acquired data, bypassing the intermediate step of calculating marginal distributions. The advantages of the new method are made manifest by comparing it with the traditional inverse Radon transformation technique.
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