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arXiv · 2609.37746

Optical Fourier Architecture for Universal Nonlinear Functions

Abstract

We introduce an exact algebraic architecture that evaluates an arbitrary finite Fourier series using a two-mode ($2 \times 2$) linear optical circuit, with the only tunable components being single-mode phase shifters encoding the function argument. We prove that such a circuit must exist for every Fourier series and derive an analytical method for its construction based on spectral factorisation. The resulting optical system exhibits an $\mathcal{O}(N)$ depth for an $N$-harmonic expansion, executing function evaluations in the passive optical time-of-flight. Finally, we validate our claims numerically, demonstrating that even for sequences with thousands of Fourier terms, our proposed circuit construction correctly synthesises continuous and discontinuous nonlinear functions. Our architecture thus provides a universal, deterministic foundation for single-variable nonlinear optical computing on integrated photonic platforms.

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BibTeXRIS

Martin F. X. Mauser, Joshua Morris, Sara Galatro, Philip Walther, Borivoje Dakic. 2026-09-29. Optical Fourier Architecture for Universal Nonlinear Functions. https://arxiv.org/abs/2609.37746

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