QCardEst/QCardCorr: Quantum Cardinality Estimation and Correction

September 10, 2025 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Tobias Winker, Jinghua Groppe, Sven Groppe arXiv ID 2509.08817 Category quant-ph: Quantum Computing Cross-listed cs.AI, cs.DB, cs.LG Citations 0 Venue arXiv.org Last Checked 5 months ago
Abstract
Cardinality estimation is an important part of query optimization in DBMS. We develop a Quantum Cardinality Estimation (QCardEst) approach using Quantum Machine Learning with a Hybrid Quantum-Classical Network. We define a compact encoding for turning SQL queries into a quantum state, which requires only qubits equal to the number of tables in the query. This allows the processing of a complete query with a single variational quantum circuit (VQC) on current hardware. In addition, we compare multiple classical post-processing layers to turn the probability vector output of VQC into a cardinality value. We introduce Quantum Cardinality Correction QCardCorr, which improves classical cardinality estimators by multiplying the output with a factor generated by a VQC to improve the cardinality estimation. With QCardCorr, we have an improvement over the standard PostgreSQL optimizer of 6.37 times for JOB-light and 8.66 times for STATS. For JOB-light we even outperform MSCN by a factor of 3.47.
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