Optimal evaluation of symmetry-adapted n-correlations via recursive contraction of sparse symmetric tensors
Illia Kaliuzhnyi,
Christoph Ortner
Abstract:We present a comprehensive analysis of an algorithm for evaluating high-dimensional polynomials that are invariant (or equi-variant) under permutations and rotations. This task arises in the evaluation linear models as well as equivariant neural network models of many-particle systems. The theoretical bottleneck is the contraction of a high-dimensional symmetric and sparse tensor with a specific sparsity pattern that is directly related to the symmetries imposed on the polynomial. The sparsity of this tensor m… Show more
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