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Training Fully Connected Neural Networks is $\exists\mathbb{R}$-Complete

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arxiv 2204.01368 v3 pith:E27G7UIV submitted 2022-04-04 cs.CC cs.LGcs.NE

classification cs.CCcs.LGcs.NE
keywords connectedexistsfullymathbbresultcompletedatainstances
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abstract

We consider the problem of finding weights and biases for a two-layer fully connected neural network to fit a given set of data points as well as possible, also known as EmpiricalRiskMinimization. Our main result is that the associated decision problem is $\exists\mathbb{R}$-complete, that is, polynomial-time equivalent to determining whether a multivariate polynomial with integer coefficients has any real roots. Furthermore, we prove that algebraic numbers of arbitrarily large degree are required as weights to be able to train some instances to optimality, even if all data points are rational. Our result already applies to fully connected instances with two inputs, two outputs, and one hidden layer of ReLU neurons. Thereby, we strengthen a result by Abrahamsen, Kleist and Miltzow [NeurIPS 2021]. A consequence of this is that a combinatorial search algorithm like the one by Arora, Basu, Mianjy and Mukherjee [ICLR 2018] is impossible for networks with more than one output dimension, unless $\mathsf{NP}=\exists\mathbb{R}$.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 7 citations worldwide. Full citation record

  1. New Complexity-Theoretic Frontiers of Tractability for Neural Network Training

    cs.LG 2026-07 conditional novelty 7.0 of 10

    Constant-size ReLU networks with hidden out-degree 1 and linear networks admitting an 'untangling' are optimizable in polynomial time, via hyperplane-partition enumeration and constrained linear regression.

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