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Experimental demonstration of fault-tolerant state preparation with superconducting qubits

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arxiv 1705.09259 v1 pith:U2DC4QPX submitted 2017-05-25 quant-ph

Experimental demonstration of fault-tolerant state preparation with superconducting qubits

classification quant-ph
keywords quantumfault-tolerantpreparationstateerrorsinformationsuperconductingaccurately
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Robust quantum computation requires encoding delicate quantum information into degrees of freedom that are hard for the environment to change. Quantum encodings have been demonstrated in many physical systems by observing and correcting storage errors, but applications require not just storing information; we must accurately compute even with faulty operations. The theory of fault-tolerant quantum computing illuminates a way forward by providing a foundation and collection of techniques for limiting the spread of errors. Here we implement one of the smallest quantum codes in a five-qubit superconducting transmon device and demonstrate fault-tolerant state preparation. We characterize the resulting codewords through quantum process tomography and study the free evolution of the logical observables. Our results are consistent with fault-tolerant state preparation in a protected qubit subspace.

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  1. Realizing Error Suppression in Partially Fault-Tolerant Quantum Simulations with IBM Quantum Computers

    quant-ph 2026-07 conditional novelty 6.0

    Partially fault-tolerant [[4,2,2]] Iceberg-code simulations on ibm_boston improve local Ising observables over unencoded baselines by a few percent in 1D and over 200% in 2D at late times via Observable-Ranked Postselection.