论文标题
有效地计算量子错误纠正代码中的逻辑噪声
Efficiently computing logical noise in quantum error correcting codes
论文作者
论文摘要
已经开发了量子误差校正协议,以抵消对量子系统固有的噪声的高灵敏度。但是,对于一般噪声(包括嘈杂的测量值),量子错误校正代码的行为仍然不清楚。缺乏知识在很大程度上是由于模拟量子系统的计算成本,足以执行非平凡的编码。在本文中,我们开发了将嘈杂的测量操作纳入量子误差校正代码的模拟中的一般方法,并表明读数量子器的测量误差表现为对有效逻辑噪声的重新归一化。我们还得出了一般方法,用于减少许多数量级计算确切有效逻辑噪声的计算复杂性。通过确定何时不同的恢复操作产生等效的逻辑噪声来实现这种减少。这些方法也可以用于更好地近似串联代码的软解码方案或减少查找表的大小,以加快误差校正校正校正代码实现的误差校正步骤。我们举例说明了三分之三,五分位,steane,串联和复曲面代码的减少示例。
Quantum error correction protocols have been developed to offset the high sensitivity to noise inherent in quantum systems. However, much is still unknown about the behaviour of a quantum error-correcting code under general noise, including noisy measurements. This lack of knowledge is largely due to the computational cost of simulating quantum systems large enough to perform nontrivial encodings. In this paper, we develop general methods for incorporating noisy measurement operations into simulations of quantum error-correcting codes and show that measurement errors on readout qubits manifest as a renormalization on the effective logical noise. We also derive general methods for reducing the computational complexity of calculating the exact effective logical noise by many orders of magnitude. This reduction is achieved by determining when different recovery operations produce equivalent logical noise. These methods could also be used to better approximate soft decoding schemes for concatenated codes or to reduce the size of a lookup table to speed up the error correction step in implementations of quantum error-correcting codes. We give examples of such reductions for the three-qubit, five-qubit, Steane, concatenated, and toric codes.