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arxiv: 2601.19966 · v2 · pith:L4L2OZD7new · submitted 2026-01-27 · ❄️ cond-mat.mtrl-sci · cs.LG· physics.chem-ph· physics.comp-ph

Global Plane Waves From Local Gaussians: Periodic Charge Densities in a Blink

classification ❄️ cond-mat.mtrl-sci cs.LGphysics.chem-phphysics.comp-ph
keywords periodicchargeelectrafidensitiesaccuracycostdensityend-to-end
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We introduce ELECTRAFI, a fast, end-to-end differentiable model for predicting periodic charge densities in crystalline materials. ELECTRAFI constructs anisotropic Gaussians in real space and exploits their closed-form Fourier transforms to analytically evaluate plane-wave coefficients via the Poisson summation formula. This formulation delegates non-local and periodic behavior to analytic transforms, enabling reconstruction of the full periodic charge density with a single inverse FFT. By avoiding explicit real-space grid probing, periodic image summation, and spherical harmonic expansions, ELECTRAFI matches or exceeds state-of-the-art accuracy across periodic benchmarks while being up to $633 \times$ faster than the strongest competing method, reconstructing crystal charge densities in a fraction of a second. When used to initialize DFT calculations, ELECTRAFI reduces total DFT compute cost by up to ~20%, whereas slower charge density models negate savings due to high inference times. Our results show that accuracy and inference cost jointly determine end-to-end DFT speedups, and motivate our focus on efficiency.

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