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The random coupled-plaquette gauge model and the surface code under circuit-level noise
Manuel Rispler1,2, Davide Vodola3, Markus Müller1,2
1Institute for Theoretical Nanoelectronics (PGI-2), Forschungszentrum Jülich, Jülich, Germany.
Summary
We developed a new model for quantum error correction that significantly improves the surface code
Area of Science:
- Quantum Information Science
- Statistical Mechanics
- Condensed Matter Physics
Background:
- Quantum error correction is crucial for fault-tolerant quantum computation.
- Surface codes are a leading architecture for quantum error correction.
- Accurate modeling of noise, especially Y-errors, is essential for decoder performance.
Purpose of the Study:
- Introduce the random coupled-plaquette gauge model (RCPGM) for improved quantum error correction.
- Determine fundamental error thresholds for surface codes with noisy syndrome measurements.
- Investigate the performance of RCPGM under different noise models.
Main Methods:
- Utilized Parallel Tempering Monte Carlo simulations.
- Analyzed phenomenological depolarizing data and bit-flip syndrome noise.
- Applied an approximate reduction technique for circuit-level noise scenarios.
Main Results:
- Achieved a 6% error threshold for depolarizing data and bit-flip noise, outperforming the uncoupled RPGM (4.3%).
- Found a 1.4% threshold for circuit-level noise, compared to 0.7% for the uncoupled RPGM.
- Demonstrated RCPGM's effectiveness in accounting for Y-errors.
Conclusions:
- The RCPGM significantly enhances the error thresholds of surface codes.
- Results expand statistical mechanical mappings for quantum error correction.
- The findings encourage practical decoder development for fault-tolerant quantum computation.
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