Generating Hadamard matrices with transformers

April 13, 2026 ยท Grace Period ยท + Add venue

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Authors Geordie Williamson, Oded Yacobi, Paul Zinn-Justin arXiv ID 2604.11101 Category math.CO: Combinatorics Cross-listed cs.LG Citations 0
Abstract
We present a new method for constructing Hadamard matrices that combines transformer neural networks with local search in the PatternBoost framework. Our approach is designed for extremely sparse combinatorial search problems and is particularly effective for Hadamard matrices of Goethals--Seidel type, where Fourier methods permit fast scoring and optimisation. For orders between $100$ and $250$, it produces large numbers of inequivalent Hadamard matrices, and in harder cases it succeeds where local search from random initialisation fails. The largest example found by our method has order $244$. In addition to these new constructions, our experiments reveal that the transformer can discover and exploit useful hidden symmetry in the search space.
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