Logical Error Rates for the Surface Code Under a Mixed Coherent and Stochastic Circuit-Level Noise Model Inspired by Trapped Ions
- URL: http://arxiv.org/abs/2508.14227v1
- Date: Tue, 19 Aug 2025 19:37:09 GMT
- Title: Logical Error Rates for the Surface Code Under a Mixed Coherent and Stochastic Circuit-Level Noise Model Inspired by Trapped Ions
- Authors: Tyler LeBlond, Peter Groszkowski, Justin G. Lietz, Christopher M. Seck, Ryan S. Bennink,
- Abstract summary: We consider logical error rates for the surface code implemented on a hypothetical grid-based trapped-ion quantum charge-coupled device (QCCD) architecture.<n>Specifically, we construct logical channels for the idling surface code and examine its diamond error under a mixed coherent and circuit-level noise model.
- Score: 0.5767156832161817
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: With fault-tolerant quantum computing (FTQC) on the horizon, it is critical to understand sources of logical error in plausible hardware implementations of quantum error-correcting codes (QECC). In this work, we consider logical error rates for the surface code implemented on a hypothetical grid-based trapped-ion quantum charge-coupled device (QCCD) architecture. Specifically, we construct logical channels for the idling surface code and examine its diamond error under a mixed coherent and stochastic circuit-level noise model inspired by trapped ions. We include the coherent dephasing noise that is known to accumulate during physical qubit idling and transport in these systems, determining idling and transport durations using the time-resolved output of the trapped-ion surface code compiler (TISCC). To estimate expectation values of logical Pauli observables following hardware circuits containing non-Clifford sources of noise, we utilize a Monte Carlo technique to sample from an underlying quasi-probability distribution of Clifford circuits that we independently simulate in a phase-sensitive fashion. We verify error suppression up to code distance $d=11$ at coherent dephasing rates near and below those of current-generation trapped-ion quantum computers and find that logical error rates align with those of analogous fully stochastic simulations in this regime. Exploring higher dephasing rates at $d=3-5$, we find evidence for growing coherent rotations about all three logical Pauli axes, increased diagonal logical error process matrix elements relative to those of stochastic simulations, and a reduced dephasing rate threshold. Overall, our work paves a way toward realistic hardware emulation of small fault-tolerant quantum processes, e.g., members of a FTQC instruction set.
Related papers
- CQM: Cyclic Qubit Mappings [0.3823356975862005]
We show promise as a path towards fault tolerant quantum computing.<n>We propose cyclic qubit mappings (CQM), a dynamic remapping technique.<n>CQM shows initial promise given it's minimal execution time overhead and effective resource utilization.
arXiv Detail & Related papers (2026-02-23T18:38:04Z) - Continual Quantum Architecture Search with Tensor-Train Encoding: Theory and Applications to Signal Processing [68.35481158940401]
CL-QAS is a continual quantum architecture search framework.<n>It mitigates challenges of costly encoding amplitude and forgetting in variational quantum circuits.<n>It achieves controllable robustness expressivity, sample-efficient generalization, and smooth convergence without barren plateaus.
arXiv Detail & Related papers (2026-01-10T02:36:03Z) - Spacetime Spins: Statistical mechanics for error correction with stabilizer circuits [0.0]
Recent progress in quantum error correction has prompted new paradigms where codes emerge from stabilizer circuits in spacetime.<n>We show how to construct statistical mechanical models for stabilizer circuits subject to independent Pauli errors.<n>Our framework offers a universal prescription to analyze, simulate, and compare the decoding properties of any stabilizer circuit.
arXiv Detail & Related papers (2025-12-26T11:25:02Z) - Quantum LDPC codes for erasure-biased atomic quantum processors [0.0]
Quantum Low-Density Parity-Check (LDPC) codes have been recently shown to provide a path towards fault-tolerant quantum computing.<n>We demonstrate that when the dominant errors are erasures, quantum LDPC codes additionally provide high thresholds and even stronger logical error suppression.
arXiv Detail & Related papers (2025-02-27T15:23:40Z) - Universal quantum computation via scalable measurement-free error correction [45.29832252085144]
We show that universal quantum computation can be made fault-tolerant in a scenario where the error-correction is implemented without mid-circuit measurements.<n>We introduce a measurement-free deformation protocol of the Bacon-Shor code to realize a logical $mathitCCZ$ gate.<n>In particular, our findings support that below-breakeven logical performance is achievable with a circuit-level error rate below $10-3$.
arXiv Detail & Related papers (2024-12-19T18:55:44Z) - Tensor-network decoders for process tensor descriptions of non-Markovian noise [0.0]
Quantum error correction (QEC) is essential for fault-tolerant computation.<n>Here, we examine the performance of two paradigmatic QEC codes.
arXiv Detail & Related papers (2024-12-18T11:17:09Z) - Fault-tolerant compiling of classically hard IQP circuits on hypercubes [34.225996865725605]
We develop a hardware-efficient, fault-tolerant approach to realizing quantum sampling circuits.<n>We develop a theory of second-moment properties of degree-$D$ IQP circuits for analyzing hardness and verification of random sampling.<n>Our results highlight fault-tolerant compiling as a powerful tool in co-configurable algorithms with specific error-correcting codes and realistic hardware.
arXiv Detail & Related papers (2024-04-29T18:00:03Z) - MITS: A Quantum Sorcerer Stone For Designing Surface Codes [2.348041867134616]
We present MITS, a tool designed to reverse-engineer the well-known simulator STIM for designing QEC codes.
MITS accepts the specific noise model of a quantum computer and a target logical error rate as input and outputs the optimal surface code rounds and code distances.
arXiv Detail & Related papers (2024-02-16T19:17:53Z) - Fault-tolerant quantum architectures based on erasure qubits [49.227671756557946]
We exploit the idea of erasure qubits, relying on an efficient conversion of the dominant noise into erasures at known locations.
We propose and optimize QEC schemes based on erasure qubits and the recently-introduced Floquet codes.
Our results demonstrate that, despite being slightly more complex, QEC schemes based on erasure qubits can significantly outperform standard approaches.
arXiv Detail & Related papers (2023-12-21T17:40:18Z) - Mitigating crosstalk errors by randomized compiling: Simulation of the
BCS model on a superconducting quantum computer [41.94295877935867]
Crosstalk errors, stemming from CNOT two-qubit gates, are a crucial source of errors on numerous quantum computing platforms.
We develop and apply an extension of the randomized compiling protocol that includes a special treatment of neighboring qubits.
Our twirling of neighboring qubits is shown to dramatically improve the noise estimation protocol without the need to add new qubits or circuits.
arXiv Detail & Related papers (2023-05-03T18:00:02Z) - Deep Quantum Error Correction [73.54643419792453]
Quantum error correction codes (QECC) are a key component for realizing the potential of quantum computing.
In this work, we efficiently train novel emphend-to-end deep quantum error decoders.
The proposed method demonstrates the power of neural decoders for QECC by achieving state-of-the-art accuracy.
arXiv Detail & Related papers (2023-01-27T08:16:26Z) - Witnessing entanglement in trapped-ion quantum error correction under
realistic noise [41.94295877935867]
Quantum Error Correction (QEC) exploits redundancy by encoding logical information into multiple physical qubits.
We present a detailed microscopic error model to estimate the average gate infidelity of two-qubit light-shift gates used in trapped-ion platforms.
We then apply this realistic error model to quantify the multipartite entanglement generated by circuits that act as QEC building blocks.
arXiv Detail & Related papers (2022-12-14T20:00:36Z) - Logical blocks for fault-tolerant topological quantum computation [55.41644538483948]
We present a framework for universal fault-tolerant logic motivated by the need for platform-independent logical gate definitions.
We explore novel schemes for universal logic that improve resource overheads.
Motivated by the favorable logical error rates for boundaryless computation, we introduce a novel computational scheme.
arXiv Detail & Related papers (2021-12-22T19:00:03Z) - Performance of teleportation-based error correction circuits for bosonic
codes with noisy measurements [58.720142291102135]
We analyze the error-correction capabilities of rotation-symmetric codes using a teleportation-based error-correction circuit.
We find that with the currently achievable measurement efficiencies in microwave optics, bosonic rotation codes undergo a substantial decrease in their break-even potential.
arXiv Detail & Related papers (2021-08-02T16:12:13Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.