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Quantum Error Detection For Early Term Fault-Tolerant Quantum Algorithms

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arxiv 2503.10790 v2 pith:P3NNUOKJ submitted 2025-03-13 quant-ph cs.NAmath.NA

Quantum Error Detection For Early Term Fault-Tolerant Quantum Algorithms

classification quant-ph cs.NAmath.NA
keywords quantumerrordetectionfaultalgorithmsfault-tolerantsyndromealgorithm
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum error detection (QED) offers a promising pathway to fault tolerance in near-term quantum devices by balancing error suppression with minimal resource overhead. However, its practical utility hinges on optimizing design parameters-such as syndrome measurement frequency-to avoid diminishing returns from detection overhead. In this work, we present a comprehensive framework for fault-tolerant compilation and simulation of quantum algorithms using [[n, n-2, 2]] codes, which enable low-qubit-overhead error detection and a simple nearly fault-tolerant universal set of operations. We demonstrate and analyze our pipeline with a purely statistical interpretation and through the implementation of Grover's search algorithm. Our results are used to answer the question is quantum error detection a worthwhile avenue for early-term fault tolerance, and if so how can we get the most out of it? Simulations under the circuit-level noise model reveal that finding optimal syndrome schedules improves algorithm success probabilities by an average of 6.7x but eventual statistical limits from post-selection in noisy/resource-limited regimes constrain scalability. Furthermore, we propose a simple data-driven approach to predict fault tolerant compilation parameters, such as optimal syndrome schedules, and expected fault tolerant performance gains based on circuit and noise features. These results provide actionable guidelines for implementing QED in early-term quantum experiments and underscore its role as a pragmatic, constant-overhead error mitigation layer for shallow algorithms. To aid in further research, we release all simulation data computed for this work and provide an experimental QED compiler at https://codeqraft.xyz/qed.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Logical Compilation for Multi-Qubit Iceberg Patches

    quant-ph 2026-04 unverdicted novelty 8.0

    A new heuristic compiler for multi-qubit iceberg patches reduces circuit depth by 34 percent, cuts gate counts, and improves fidelity metrics on 71 benchmarks compared with naive mapping.

  2. Universal Weakly Fault-Tolerant Quantum Computation via Code Switching in the [[8,3,2]] Code

    quant-ph 2026-03 unverdicted novelty 7.0

    A code-switching protocol in the [[8,3,2]] code yields a universal scheme for postselected fault-tolerant quantum computation with quadratic logical error suppression.

  3. Iceberg Beyond the Tip: Co-Compilation of a Quantum Error Detection Code and a Quantum Algorithm

    quant-ph 2025-04 unverdicted novelty 7.0

    Co-optimization of flexible Iceberg error-detection gadgets with QAOA via tree search improves success probability and post-selection on Quantinuum H2-1 hardware up to 34 algorithmic qubits.

  4. Hardware-aware Low-latency Quantum Compilation with Data-driven Lightweight Error Detection for Early Fault-Tolerant Systems

    quant-ph 2026-06 unverdicted novelty 5.0

    An integrated compilation and data-driven QED framework raises algorithmic success probability by up to 68% over SABRE on an 8-qubit VQE instance in simulations.