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Detecting bit-flip errors in a logical qubit using stabilizer measurements

机译:使用稳定器测量来检测逻辑量子位中的位翻转错误

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Quantum data are susceptible to decoherence induced by the environment and to errors in the hardware processing it. A future fault-tolerant quantum computer will use quantum error correction to actively protect against both. In the smallest error correction codes, the information in one logical qubit is encoded in a two-dimensional subspace of a larger Hilbert space of multiple physical qubits. For each code, a set of non-demolition multi-qubit measurements, termed stabilizers, can discretize and signal physical qubit errors without collapsing the encoded information. Here using a five-qubit superconducting processor, we realize the two parity measurements comprising the stabilizers of the three-qubit repetition code protecting one logical qubit from physical bit-flip errors. While increased physical qubit coherence times and shorter quantum error correction blocks are required to actively safeguard the quantum information, this demonstration is a critical step towards larger codes based on multiple parity measurements.
机译:量子数据容易受到环境引起的退相干以及处理它的硬件错误的影响。未来的容错量子计算机将使用量子错误校正来主动保护两者。在最小的纠错码中,一个逻辑量子位中的信息被编码在多个物理量子位的更大希尔伯特空间的二维子空间中。对于每个代码,称为稳定器的一组非拆卸多量子位测量可以离散化并用信号通知物理量子位错误,而不会破坏编码信息。在这里,我们使用五量子位超导处理器,实现了两个奇偶校验测量,其中包括三量子位重复码的稳定器,可保护一个逻辑量子位免受物理位翻转错误的影响。虽然需要增加物理量子位相干时间和较短的量子纠错块来主动保护量子信息,但该演示是迈向基于多个奇偶校验测量的更大代码的关键一步。

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