Experimentally bounding deviations from quantum theory for a photonic three-level system using theory-agnostic tomography
Michael Grabowecky, Christopher Pollack, Andrew Cameron, Robert, Spekkens, Kevin Resch

TL;DR
This study uses theory-agnostic GPT tomography on a three-level photonic system to experimentally bound deviations from quantum theory, confirming quantum predictions and constraining alternative models.
Contribution
It demonstrates a method to analyze quantum systems without prior assumptions, providing bounds on deviations from quantum theory using GPT tomography.
Findings
GPT characterization confirms quantum dimension of nine
Bounds established on deviations from quantum theory
Quantitative limits on violations of the no-restriction hypothesis
Abstract
If one seeks to test quantum theory against many alternatives in a landscape of possible physical theories, then it is crucial to be able to analyze experimental data in a theory-agnostic way. This can be achieved using the framework of Generalized Probabilistic Theories (GPTs). Here, we implement GPT tomography on a three-level system corresponding to a single photon shared among three modes. This scheme achieves a GPT characterization of each of the preparations and measurements implemented in the experiment without requiring any prior characterization of either. Assuming that the sets of realized preparations and measurements are tomographically complete, our analysis identifies the most likely dimension of the GPT vector space describing the three-level system to be nine, in agreement with the value predicted by quantum theory. Relative to this dimension, we infer the scope of GPTs…
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