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cs.LG2026
Function graph transformers universally approximate operators between function spaces
Takashi Furuya, David Mis, Ivan DokmaniÄ +2
We study the approximation of nonlinear operators between function spaces by transformers. Our approach is to lift functions to measures supported on their graphs and leverage a re…
cs.LG2025
Joint Graph Rewiring and Feature Denoising via Spectral Resonance
Jonas Linkerhägner, Cheng Shi, Ivan DokmaniÄ
When learning from graph data, the graph and the node features both give noisy information about the node labels. In this paper we propose an algorithm to jointly denoise the featu…