Towards Classical Software Verification using Quantum Computers
April 29, 2024 Β· Declared Dead Β· π 2025 International Conference on Quantum Communications, Networking, and Computing (QCNC)
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Authors
Sebastian Issel, Kilian Tscharke, Pascal Debus
arXiv ID
2404.18502
Category
quant-ph: Quantum Computing
Cross-listed
cs.CR,
cs.ET
Citations
1
Venue
2025 International Conference on Quantum Communications, Networking, and Computing (QCNC)
Last Checked
5 months ago
Abstract
We explore the possibility of accelerating the formal verification of classical programs with a quantum computer. A common source of security flaws stems from the existence of common programming errors like use after free, null-pointer dereference, or division by zero. To aid in the discovery of such errors, we try to verify that no such flaws exist. In our approach, for some code snippet and undesired behaviour, a SAT instance is generated, which is satisfiable precisely if the behavior is present in the code. It is in turn converted to an optimization problem, that is solved on a quantum computer. This approach holds the potential of an asymptotically polynomial speedup. Minimal examples of common errors, like out-of-bounds and overflows, but also synthetic instances with special properties, specific number of solutions, or structure, are tested with different solvers and tried on a quantum device. We use the near-standard Quantum Approximation Optimisation Algorithm, an application of the Grover algorithm, and the Quantum Singular Value Transformation to find the optimal solution, and with it a satisfying assignment.
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