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arxiv: 2606.00584 · v1 · pith:5A7KOMSGnew · submitted 2026-05-30 · 📊 stat.ML · cs.LG

Spectra-Guided Neural Tucker Factorization

classification 📊 stat.ML cs.LG
keywords sg-ntfcompletionfactorizationneuralspectra-guidedtuckerabstractaccuracy
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This paper proposes Spectra-Guided Neural Tucker Factorization (SG-NTF) for High-Dimensional and Incomplete (HDI) tensor completion. Circumventing discrete representational limits, SG-NTF maps scalar timestamps into a continuous spectral space to abstract temporal periodicities. Concurrently, a Spatio-Temporal Co-Gating (STCG) mechanism explicitly filters latent interactions via multiplicative modulation on spatiotemporal contexts. Evaluations on real-world HDI tensors verify that SG-NTF maintains competitive completion accuracy with parameter efficiency.

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