Distinguishing Quantum Software Bugs from Hardware Noise: A Statistical Approach
July 28, 2025 Β· Declared Dead Β· π International Conference on Quantum Computing and Engineering
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Authors
Ahmik Virani, Devraj, Anirudh Suresh, Lei Zhang, M V Panduranga Rao
arXiv ID
2507.20475
Category
cs.SE: Software Engineering
Cross-listed
quant-ph
Citations
1
Venue
International Conference on Quantum Computing and Engineering
Last Checked
5 months ago
Abstract
Quantum computing in the Noisy Intermediate-Scale Quantum (NISQ) era presents significant challenges in differentiating quantum software bugs from hardware noise. Traditional debugging techniques from classical software engineering cannot directly resolve this issue due to the inherently stochastic nature of quantum computation mixed with noises from NISQ computers. To address this gap, we propose a statistical approach leveraging probabilistic metrics to differentiate between quantum software bugs and hardware noise. We evaluate our methodology empirically using well-known quantum algorithms, including Grover's algorithm, Deutsch-Jozsa algorithm, and Simon's algorithm. Experimental results demonstrate the efficacy and practical applicability of our approach, providing quantum software developers with a reliable analytical tool to identify and classify unexpected behavior in quantum programs.
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