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Analog Quantum Error Correction with Encoding a Qubit into an Oscillator

机译:模拟量子误差校正与振荡器中的qubit编码

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摘要

To implement fault-tolerant quantum computation with continuous variables, Gottesman-Kitaev-Preskill (GKP) qubits have been recognized as an important technological element. However, the analog outcome of GKP qubits, which includes beneficial information to improve the error tolerance, has been wasted, because the GKP qubits have been treated as only discrete variables. In this Letter, we propose a hybrid quantum error correction approach that combines digital information with the analog information of the GKP qubits using a maximum-likelihood method. As an example, we demonstrate that the three-qubit bit-flip code can correct double errors, whereas the conventional method based on majority voting on the binary measurement outcome can correct only a single error. As another example, we show that a concatenated code known as Knill's C-4/C-6 code can achieve the hashing bound for the quantum capacity of the Gaussian quantum channel (GQC). To the best of our knowledge, this approach is the first attempt to draw both digital and analog information to improve quantum error correction performance and achieve the hashing bound for the quantum capacity of the GQC.
机译:为了实现具有连续变量的容错量子计算,Gottesman-Kitaev-Preskill(GKP)Qubits已被识别为重要的技术元素。但是,GKP Qubits的模拟结果,包括改善误差容忍的有益信息,因为GKP Qubits已被视为仅为离散变量。在这封信中,我们提出了一种混合量子误差校正方法,其使用最大似然方法将数字信息与GKP Qubits的模拟信息组合。作为示例,我们证明了三个QUBBit比特翻转码可以正确纠正双误差,而基于二元测量结果的大多数投票的传统方法只能纠正单个错误。作为另一个例子,我们表明称为Knill的C-4 / C-6代码的连接代码可以实现用于高斯量子通道(GQC)的量子容量的散列。据我们所知,这种方法是第一次尝试绘制数字和模拟信息以提高量子纠错性能,并实现GQC量子容量的散列。

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  • 来源
    《Physical review letters》 |2017年第26期|180507.1-180507.4|共4页
  • 作者单位

    Hokkaido Univ Grad Sch Informat Sci & Technol Kita Ku Kita14 Nishi9 Sapporo Hokkaido 0600814 Japan;

    Hokkaido Univ Grad Sch Informat Sci & Technol Kita Ku Kita14 Nishi9 Sapporo Hokkaido 0600814 Japan;

    Hokkaido Univ Grad Sch Informat Sci & Technol Kita Ku Kita14 Nishi9 Sapporo Hokkaido 0600814 Japan;

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