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December 4, 2025PRX Quantum2 citationsOpen Access

Measurement-Free Quantum Error Correction Optimized for Biased Noise

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FBFriederike ButtHBHans Peter Büchler

Key Points

  • Error rates in logical gate operations can be significantly reduced with improved quantum error correction.
  • Optimized measurement-free protocols adapt to a noise biased model observed in neutral-atom platforms.
  • Analysis focuses on minimizing dominant Rydberg interaction-induced noise with robust circuit designs.
  • Supports scalable quantum error-correction schemes that are vital for advancing quantum computing technologies.

Abstract

In this paper, we derive optimized measurement-free protocols for quantum error correction and the implementation of a universal gate set optimized for an error model that is noise biased. The noise bias is adapted for neutral-atom platforms, where two- and multi-qubit gates are realized with Rydberg interactions and are thus expected to be the dominant source of noise. Careful design of the gates allows us to further reduce the noise model to Pauli- Z errors. In addition, the presented circuits are robust to arbitrary single-qubit gate errors, and we demonstrate that the break-even point can be significantly improved compared to fully fault-tolerant measurement-free schemes. The obtained logical qubits with their suppressed error rates on logical gate operations can then be used as building blocks in a first step of error correction in order to push the effective error rates below the threshold of a fully fault-tolerant and scalable quantum error-correction scheme.

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Cite This Study

Butt et al. (2025) studied this question.

synapsesocial.com/papers/6930e8bdea1aef094cca3203https://doi.org/10.1103/wsnf-prwl
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