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Few-Shot, Robust Calibration of Single Qubit Gates Using Bayesian Robust Phase Estimation
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abstract
Accurate calibration of control parameters in quantum gates is crucial for high-fidelity operations, yet it represents a significant time and resource challenge, necessitating periods of downtime for quantum computers. Robust Phase Estimation (RPE) has emerged as a practical and effective calibration technique aimed at tackling this challenge. It combines a provably efficient number of control pulses with a classical post-processing algorithm to estimate the phase accumulated by a quantum gate. We introduce Bayesian Robust Phase Estimation (BRPE), an innovative approach that integrates Bayesian parameter estimation into the classical post-processing phase to reduce the sampling overhead. Our numerical analysis shows that BRPE markedly reduces phase estimation errors, requiring approximately $50\%$ fewer samples than standard RPE. Specifically, in an ideal, noise-free setting, it achieves up to a $96\%$ reduction in average absolute estimation error for a fixed sample cost of $88$ shots when compared to RPE. Under a depolarizing noise model, it attains up to a $47\%$ reduction for a fixed cost of $176$ shots. Additionally, we adapt BRPE for Ramsey spectroscopy applications and successfully implement it experimentally in a trapped ion system.
Forward citations
Cited by 2 Pith papers
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Separate and efficient characterization of state-preparation and measurement errors using single-qubit operations
A protocol for separate, efficient characterization of state-preparation and measurement errors via single-qubit operations with depth independent of system size.
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Efficient Qubit Calibration by Binary-Search Hamiltonian Tracking
A binary-search Bayesian estimator running on an FPGA calibrates a transmon qubit's frequency in a handful of single-shot measurements, improving coherence and gate fidelity.
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