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Demonstration of non-Markovian process characterisation and control on a quantum processor

机译:量子处理器上非马尔可夫过程表征和控制的示范

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In the scale-up of quantum computers, the framework underpinning fault-tolerance generally relies on the strong assumption that environmental noise affecting qubit logic is uncorrelated (Markovian). However, as physical devices progress well into the complex multi-qubit regime, attention is turning to understanding the appearance and mitigation of correlated — or non-Markovian — noise, which poses a serious challenge to the progression of quantum technology. This error type has previously remained elusive to characterisation techniques. Here, we develop a framework for characterising non-Markovian dynamics in quantum systems and experimentally test it on multi-qubit superconducting quantum devices. Where noisy processes cannot be accounted for using standard Markovian techniques, our reconstruction predicts the behaviour of the devices with an infidelity of 10 ?3 . Our results show this characterisation technique leads to superior quantum control and extension of coherence time by effective decoupling from the non-Markovian environment. This framework, validated by our results, is applicable to any controlled quantum device and offers a significant step towards optimal device operation and noise reduction.
机译:在量子计算机的缩放中,支撑容错框架的框架通常依赖于影响Qubit逻辑的环境噪声是不相关的强烈假设(Markovian)。然而,随着物理设备进入复杂的多奎比特制度,注意力转向了解相关 - 或非马克噪声的外观和减轻,这给量子技术的进展带来了严峻挑战。此错误类型先前仍然难以表征技术。在这里,我们开发了一个框架,用于在量子系统中表征非马尔可夫动力学,并在多Qubit超导量子器件上进行实验测试。如果无法使用标准的马尔科夫技术无法计算出嘈杂的进程,我们的重建将预测具有10?3的不忠的设备的行为。我们的结果表明,该表征技术通过有效从非马洛维亚环境解耦,导致卓越的量子控制和连贯时间的延伸。我们的结果验证的该框架适用于任何受控量子设备,并为最佳设备运行和降噪提供了重要的一步。

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