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Research PaperResearchia:202602.10058[Quantum Computing > Quantum Physics]

Differentiable Logical Programming for Quantum Circuit Discovery and Optimization

Antonin Sulc

Abstract

Designing high-fidelity quantum circuits remains challenging, and current paradigms often depend on heuristic, fixed-ansatz structures or rule-based compilers that can be suboptimal or lack generality. We introduce a neuro-symbolic framework that reframes quantum circuit design as a differentiable logic programming problem. Our model represents a scaffold of potential quantum gates and parameterized operations as a set of learnable, continuous truth values'' or switches,'' s[0,1]Ns \in [0, 1]^N. These switches are optimized via standard gradient descent to satisfy a user-defined set of differentiable, logical axioms (e.g., correctness, simplicity, robustness). We provide a theoretical formulation bridging continuous logic (via T-norms) and unitary evolution (via geodesic interpolation), while addressing the barren plateau problem through biased initialization. We illustrate the approach on tasks including discovery of a 4-qubit Quantum Fourier Transform (QFT) from a scaffold of 21 candidate gates. We also report a hardware-aware adaptation experiment on the 133-qubit IBM Torino processor, where the method improved fidelity by 59.3 percentage points in a localized routing task while adapting to hardware failures.


Source: arXiv:2602.08880v1 - http://arxiv.org/abs/2602.08880v1 PDF: https://arxiv.org/pdf/2602.08880v1 Original Link: http://arxiv.org/abs/2602.08880v1

Submission:2/10/2026
Comments:0 comments
Subjects:Quantum Physics; Quantum Computing
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arXiv: This paper is hosted on arXiv, an open-access repository
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