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ICLR2026顶会

Parameterized Hardness of Zonotope Containment and Neural Network Verification

Vincent Froese, Moritz Grillo, Christoph Hertrich, Moritz Stargalla

2026年份
9被引次数
2顶会引用

摘要

Neural networks with ReLU activations are a widely used model in machine learning. It is thus important to have a profound understanding of the properties of the functions computed by such networks. Recently, there has been increasing interest in the (parameterized) computational complexity of determining these properties. In this work, we close several gaps and resolve an open problem posed by Froese et al. [COLT'25] regarding the parameterized complexity of various problems related to network verification. In particular, we prove that, for all ℓ≥2\ell\ge 2, deciding positivity (and thus surjectivity) of a function f:Rd→Rf:\mathbb{R}^d\to\mathbb{R} computed by an ℓ\ell-layer ReLU network is W[ℓ−1\ell-1]-hard when parameterized by the input dimension dd. The case ℓ=2\ell=2 implies that zonotope non-containment (a problem that is of independent interest in computational geometry, control theory, and robotics) is W[1]-hard with respect to the ambient dimension dd. Moreover, we show that approximating the maximum within any multiplicative factor and computing the LpL_p-Lipschitz constant for p∈(0,∞]p\in(0,\infty] in ℓ\ell-layer networks is NP-hard and W[ℓ−1\ell-1]-hard with respect to dd. For ℓ≥3\ell\ge 3, approximating the LpL_p-Lipschitz constant is NP- and W[ℓ−2\ell-2]-hard. We further show that the above problems are NP- and W[tt]-hard (for all t≥1t\ge 1) with respect to ℓ\ell for constant dd. Notably, our hardness results imply that the naive enumeration-based methods for these fundamental problems running in n(ℓ−1)d⋅poly⁡(N)n^{(\ell-1) d}\cdot\operatorname{poly}(N) time are all essentially optimal under the Exponential Time Hypothesis.

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