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arXiv · 2609.18671

Theory-agnostic nonclassicality certification in an integrated photonic circuit

Abstract

Certifying nonclassicality without assuming any particular underlying physical theory constitutes both a foundational challenge and a requirement for device-independent protocols. Realizing such theory-independent certification in scalable architectures is essential for connecting fundamental tests with emerging quantum technologies. Integrated photonic circuits are a leading platform for scalable quantum information processing, motivating the development of rigorous methods to certify the nonclassical resources underpinning quantum advantage. In this paper, we report a theory-independent certification of generalized contextuality on a three-mode integrated photonic circuit. Our approach combines theory-agnostic tomography with simplex-embeddability certification---a framework that requires no assumptions about the underlying physical theory---and applies it to experimental data from a three-mode photonic circuit seeded by single photons. An independently constructed quantum model of the experiment provides a consistency check on the observed nonclassicality, without entering the certification as a theoretical assumption. The method rules out simplex-embeddability for our experimental data, providing robust, theory-independent evidence that our photonic circuit exhibits nonclassicality.

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Vinicius P. Rossi, Emanuele Polino, Beatrice Polacchi, Valeria Cimini, David Schmid, John H. Selby, Giacomo Corrielli, Andrea Crespi, Roberto Osellame, Fabio Sciarrino, Ana Belén Sainz. 2026-09-16. Theory-agnostic nonclassicality certification in an integrated photonic circuit. https://arxiv.org/abs/2609.18671

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