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Experimental magic state distillation for fault-tolerant quantum computing

机译:用于容错量子计算的实验魔术状态蒸馏

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Any physical quantum device for quantum information processing (QIP) is subject to errors in implementation. In order to be reliable and efficient, quantum computers will need error-correcting or error-avoiding methods. Fault-tolerance achieved through quantum error correction will be an integral part of quantum computers. Of the many methods that have been discovered to implement it, a highly successful approach has been to use transversal gates and specific initial states. A critical element for its implementation is the availability of high-fidelity initial states, such as |0〉 and the 'magic state'. Here, we report an experiment, performed in a nuclear magnetic resonance (NMR) quantum processor, showing sufficient quantum control to improve the fidelity of imperfect initial magic states by distilling five of them into one with higher fidelity.. ? 2011 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:用于量子信息处理(QIP)的任何物理量子设备在实施过程中都容易出错。为了可靠和高效,量子计算机将需要纠错或避免错误的方法。通过量子纠错实现的容错能力将是量子计算机不可或缺的一部分。在发现的多种实现方法中,一种非常成功的方法是使用横向门和特定的初始状态。其实现的关键要素是高保真初始状态(例如| 0〉和“魔术状态”)的可用性。在这里,我们报告一个在核磁共振(NMR)量子处理器中进行的实验,该实验显示了足够的量子控制,可以通过将五个初始状态更好地保真化来提高不完美初始魔术状态的保真度。 2011年自然出版集团(Macmillan Publishers Limited的子公司)。版权所有。

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