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Practical quantum advantage on partially fault-tolerant quantum computer

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arxiv 2408.14848 v1 pith:YYUPL5KD submitted 2024-08-27 quant-ph cond-mat.str-el

classification quant-phcond-mat.str-el
keywords quantumframeworkdeviceserrorfault-tolerantpracticaltextapplications
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Achieving quantum speedups in practical tasks remains challenging for current noisy intermediate-scale quantum (NISQ) devices. These devices always encounter significant obstacles such as inevitable physical errors and the limited scalability of current near-term algorithms. Meanwhile, assuming a typical architecture for fault-tolerant quantum computing (FTQC), realistic applications inevitably require a vast number of qubits, typically exceeding $10^6$, which seems far beyond near-term realization. In this work, to bridge the gap between the NISQ and FTQC eras, we propose an alternative approach to achieve practical quantum advantages on early-FTQC devices. Our framework is based on partially fault-tolerant logical operations to minimize spatial overhead and avoids the costly distillation techniques typically required for executing non-Clifford gates. To this end, we develop a space-time efficient state preparation protocol to generate an ancillary non-Clifford state consumed for implementing an analog rotation gate with an arbitrary small angle $\theta$ and a remarkably low worst-case error rate below $\mathcal{O}(|\theta| p_{\text{ph}})$, where $p_{\text{ph}}$ is the physical error rate. Furthermore, we propose several error suppression schemes tailored to our preparation protocol, which are essential to minimize the overhead for mitigating errors. Based on this framework, we present several promising applications that leverage the potential of our framework, including the Trotter simulation and quantum phase estimation (QPE). Notably, we demonstrate that our framework allows us to perform the QPE for $(8\times 8)$-site Hubbard model with fewer than $4.9\times 10^4$ qubits and an execution time of 9 days (or 12 minutes with full parallelization) under $p_{\text{ph}}=10^{-4}$, which is significantly faster than recent classical estimation with tensor network techniques (DMRG and PEPS).

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Cited by 4 Pith papers

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

  1. Genuine Multipartite Entanglement between Logical Qubits via Cross-Code Lattice Surgery

    quant-ph 2026-07 accept novelty 7.5 of 10

    Cross-code lattice surgery between surface and 3D colour codes yields certified logical GHZ and |CCZ> GME plus arbitrary logical rotations on a trapped-ion processor.

  2. Creation of Wave Packets for Quantum Chromodynamics on Quantum Computers

    quant-ph 2025-01 conditional novelty 7.0 of 10

    A quantum algorithm based on Haag-Ruelle theory and LCU proposes to prepare hadron wave packets from the vacuum in 3D lattice QCD, with a success probability that shrinks polynomially with lattice spacing, energy, and...

  3. Transversal architecture for megaquop-scale quantum simulation with neutral atoms

    quant-ph 2025-09 conditional novelty 6.0 of 10

    A neutral-atom co-designed 'transversal STAR' architecture could reach megaquop-scale Hamiltonian simulation with about 10,000 physical qubits at 1e-3 error rates, corresponding to over 1e6 to 1e7 T gates.

  4. High-fidelity initialization a logical qubit with multiple injections

    quant-ph 2025-02 reject novelty 4.0 of 10

    The paper proposes multiple-chain injection for surface code logical rotations, but the key error formulas are algebraically incorrect, so the claimed advantage is not established.

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