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Toward the first quantum simulation with quantum speedup

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arxiv 1711.10980 v1 pith:4CGELRYE submitted 2017-11-29 quant-ph

Toward the first quantum simulation with quantum speedup

classification quant-ph
keywords quantumsimulationalgorithmscircuitscomputerserrorunderstandabilities
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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With quantum computers of significant size now on the horizon, we should understand how to best exploit their initially limited abilities. To this end, we aim to identify a practical problem that is beyond the reach of current classical computers, but that requires the fewest resources for a quantum computer. We consider quantum simulation of spin systems, which could be applied to understand condensed matter phenomena. We synthesize explicit circuits for three leading quantum simulation algorithms, employing diverse techniques to tighten error bounds and optimize circuit implementations. Quantum signal processing appears to be preferred among algorithms with rigorous performance guarantees, whereas higher-order product formulas prevail if empirical error estimates suffice. Our circuits are orders of magnitude smaller than those for the simplest classically-infeasible instances of factoring and quantum chemistry.

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  1. Designing quantum technologies with a quantum computer

    quant-ph 2026-01 conditional novelty 5.0

    A hybrid quantum–classical framework using sQKFF plus Gray encoding and qubit-wise commuting aggregation simulates NV-center spin-defect dynamics and spectra with 18–30% gate-count reductions.