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DRAG-Compatible Leakage Suppression in Landau--Zener Control via Isoprobability Twins

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arxiv 2506.19572 v4 pith:QPXBPYRT submitted 2025-06-24 quant-ph

classification quant-ph
keywords lmszmodelsisoprobabilityleakageleakage-suppressionmanypulserabi
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Analytically solvable models -- particularly the Landau-Majorana-St\"uckelberg-Zener (LMSZ) and Allen-Eberly-Hioe (AEH) models -- underpin many quantum-gate implementations and population-transfer protocols. However, their canonical pulse shapes are incompatible with modern leakage-suppression techniques and some systems. Most notably, the constant Rabi envelope of the LMSZ pulse prevents many leakage-suppression approaches, which require smoothness. We address both limitations by developing the concept of isoprobability twin models: distinct pairs of Rabi frequency $\Omega(t)$ and detuning $\Delta(t)$ that yield identical post-pulse transition probabilities based on the Delos-Thorson transformation. In this work, we formalise the method by experimentally demonstrating the equivalence of multiple LMSZ and AEH twin models on IBM's ibm_kyiv processor. Finally, we show a staggering leakage reduction by more than 3 orders of magnitude using a custom DRAG implementation of a cosine LMSZ isoprobability model.

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  1. Coherent excitation of a two-state system by a Lorentzian field

    quant-ph 2026-07 accept novelty 6.0 of 10

    For a Lorentzian pulse, DDP complex-time analysis gives explicit weak/strong-coupling transition-probability asymptotics, and the strong-coupling result yields an excitation linewidth that narrows as 1/Ω0 for resonant...

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