English

From Reachability to Learnability: Geometric Design Principles for Quantum Neural Networks

Quantum Physics 2026-03-26 v2 Machine Learning High Energy Physics - Experiment High Energy Physics - Phenomenology Machine Learning

Abstract

Classical deep networks are effective because depth enables adaptive geometric deformation of data representations. In quantum neural networks (QNNs), however, depth or state reachability alone does not guarantee this feature-learning capability. We study this question in the pure-state setting by viewing encoded data as an embedded manifold in CP2n1\mathbb{C}P^{2^n-1} and analysing infinitesimal unitary actions through Lie-algebra directions. We introduce Classical-to-Lie-algebra (CLA) maps and the criterion of almost Complete Local Selectivity (aCLS), which combines directional completeness with data-dependent local selectivity. Within this framework, we show that data-independent trainable unitaries are complete but non-selective, i.e. learnable rigid reorientations, whereas pure data encodings are selective but non-tunable, i.e. fixed deformations. Hence, geometric flexibility requires a non-trivial joint dependence on data and trainable weights. We further show that accessing high-dimensional deformations of many-qubit state manifolds requires parametrised entangling directions; fixed entanglers such as CNOT alone do not provide adaptive geometric control. Numerical examples validate that aCLS-satisfying data re-uploading models outperform non-tunable schemes while requiring only a quarter of the gate operations. Thus, the resulting picture reframes QNN design from state reachability to controllable geometry of hidden quantum representations.

Keywords

Cite

@article{arxiv.2603.03071,
  title  = {From Reachability to Learnability: Geometric Design Principles for Quantum Neural Networks},
  author = {Vishal S. Ngairangbam and Michael Spannowsky},
  journal= {arXiv preprint arXiv:2603.03071},
  year   = {2026}
}

Comments

Added acknowledgements and corrected typos

R2 v1 2026-07-01T11:01:12.806Z