Non-linear Sigma Model for the Surface Code with Coherent Errors
Stephen W. Yan, Yimu Bao, Sagar Vijay

TL;DR
This paper develops a non-linear sigma model to analyze the surface code's threshold under coherent errors, revealing a phase distinction between optimal and suboptimal decoding and predicting decoding fidelity behavior.
Contribution
It introduces a microscopic sigma model framework for the surface code with coherent errors, distinguishing optimal and suboptimal decoding regimes and their phase behaviors.
Findings
Suboptimal decoding supports a non-decodable 'thermal-metal' phase.
Optimal decoding's fixed point is unstable in the metallic phase.
Decoding fidelity relates to twist defects in the sigma model.
Abstract
The surface code is a promising platform for a quantum memory, but its threshold under coherent errors remains incompletely understood. We study maximum-likelihood decoding of the square-lattice surface code in the presence of single-qubit unitary rotations that create electric anyon excitations. We microscopically derive a non-linear sigma model with target space as the effective long-distance theory of this decoding problem, with distinct replica limits: for optimal decoding, which assumes knowledge of the coherent rotation angle, and for suboptimal decoding with imperfect angle information. This exposes a sharp distinction between the two decoders. The suboptimal decoder supports a "thermal-metal" phase, a non-decodable regime that is qualitatively distinct from the conventional non-decodable phase of the surface code under incoherent…
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