Behavior of the maximum likelihood in quantum state tomography
arXiv:1609.04385 · doi:10.1088/1367-2630/aaa7e2
Abstract
Quantum state tomography on a d-dimensional system demands resources that grow rapidly with d. They may be reduced by using model selection to tailor the number of parameters in the model (i.e., the size of the density matrix). Most model selection methods typically rely on a test statistic and a null theory that describes its behavior when two models are equally good. Here, we consider the loglikelihood ratio. Because of the positivity constraint , quantum state space does not generally satisfy local asymptotic normality, meaning the classical null theory for the loglikelihood ratio (the Wilks theorem) should not be used. Thus, understanding and quantifying how positivity affects the null behavior of this test statistic is necessary for its use in model selection for state tomography. We define a new generalization of local asymptotic normality, metric-projected local asymptotic normality, show that quantum state space satisfies it, and derive a replacement for the Wilks theorem. In addition to enabling reliable model selection, our results shed more light on the qualitative effects of the positivity constraint on state tomography.
16 pages, 14 figures. Close to published version. Relative to the previous version, minor text and content edits, including an asymptotic expression for our main result, Eq. 19. Supplemental information (data sets and code to reproduce figures) is available at https://github.com/Travis-S/arxiv_1609.04385
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