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arXiv · 2609.17030

Quantifying structural nonlinearity in a disordered Fabry-Pérot cavity

Abstract

Structural nonlinearity is the emergence of nonlinear input-output transformations from purely linear processes. In optics, this arises from the multiple interactions of light with input data. Current implementations achieve either a finite number of interactions, or partial modulation of the optical field. In this study, we present an architecture that combines both arbitrarily many interactions and full modulation. Our design consists of a Fabry-Pérot cavity, where one mirror is replaced by a spatial light modulator on which data is displayed. We develop an analytical model from which we derive closed-form expressions for the main metrics of nonlinearity, and find good agreement with experiment. Our analysis extends beyond the present implementation and reveals relationships that are independent of a specific physical system, providing a basis for a unified description of structural nonlinearity, and a first-principles design guide for machine learning applications.

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Morgan Facchin, Sylvain Gigan. 2026-09-15. Quantifying structural nonlinearity in a disordered Fabry-Pérot cavity. https://arxiv.org/abs/2609.17030

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