论文标题
用随机测量来量化多片纠缠
Quantifying multiparticle entanglement with randomized measurements
论文作者
论文摘要
随机测量构成了一个简单的测量原始测量,该测量原始测量可利用通过随机选择碱定义的局部量子测量样品的结果统计中编码的信息。在这项工作中,我们利用随机测量的潜力,以探测由多粒子并发量化的多粒子量子系统中包含的纠缠量。我们进一步介绍了使用随机矩阵理论中的分析工具对引入量化器进行自信估算所需的基本测量资源的详细统计分析。通过一系列数值实验来证明了引入的框架,该实验分析了典型多粒子纠缠状态以及由随机量子电路产生的输出状态的集合的并发。最后,我们检查了由嘈杂的量子电路产生的混合状态的多片纠缠,这些量子电路由单个和两倍的门组成,具有非呈抛光去极化误差,因此表明我们的框架直接适用于嘈杂的中间尺度制度。
Randomized measurements constitute a simple measurement primitive that exploits the information encoded in the outcome statistics of samples of local quantum measurements defined through randomly selected bases. In this work we exploit the potential of randomized measurements in order to probe the amount of entanglement contained in multiparticle quantum systems as quantified by the multiparticle concurrence. We further present a detailed statistical analysis of the underlying measurement resources required for a confident estimation of the introduced quantifiers using analytical tools from the theory of random matrices. The introduced framework is demonstrated by a series of numerical experiments analyzing the concurrence of typical multiparticle entangled states as well as of ensembles of output states produced by random quantum circuits. Finally, we examine the multiparticle entanglement of mixed states produced by noisy quantum circuits consisting of single- and two-qubit gates with non-vanishing depolarization errors, thus showing that our framework is directly applicable in the noisy intermediate-scale regime.