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Simulation of noisy Clifford circuits without fault propagation

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abstract

The design and optimization of a large-scale fault-tolerant quantum computer architecture relies extensively on numerical simulations to assess the performance of each component of the architecture. The simulation of fault-tolerant gadgets, which are typically implemented by Clifford circuits, is done by sampling circuit faults and propagating them through the circuit to check that they do not corrupt the logical data. One may have to repeat this fault propagation trillions of times to extract an accurate estimate of the performance of a fault-tolerant gadget. For some specific circuits, such as the standard syndrome extraction circuit for surface codes, we can exploit the natural graph structure of the set of faults to perform a simulation without fault propagation. We propose a simulation algorithm for all Clifford circuits that does not require fault propagation and instead exploits the mathematical structure of the spacetime code of the circuit. Our algorithm, which we name adjoint-based code (ABC) simulation, relies on the fact that propagation forward is the adjoint of propagation backward in the sense of Proposition 3 from [14]. We use this result to replace the propagation of trillions of fault-configurations by the backward propagation of a small number of Pauli operators which can be precomputed once and for all.

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quant-ph 1

years

2025 1

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CONDITIONAL 1

representative citing papers

Low-overhead error detection with spacetime codes

quant-ph · 2025-04-22 · conditional · novelty 7.0

Spacetime coherent Pauli checks, found by reducing check search to a linear-code decoding problem, detect errors in Clifford circuits with mild overhead and improve single-shot state fidelity by up to 236x in experiments with up to 50 logical qubits.

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  • Low-overhead error detection with spacetime codes quant-ph · 2025-04-22 · conditional · none · ref 25 · internal anchor

    Spacetime coherent Pauli checks, found by reducing check search to a linear-code decoding problem, detect errors in Clifford circuits with mild overhead and improve single-shot state fidelity by up to 236x in experiments with up to 50 logical qubits.