论文标题
监测引起的纠缠熵和采样复杂性
Monitoring-induced Entanglement Entropy and Sampling Complexity
论文作者
论文摘要
开放量子系统的动力学通常由主方程描述,该方程描述了信息丢失到环境中。通过使用未耦合发射器的简单模型,我们说明了此信息的恢复如何取决于应用的监视方案以注册衰减点击。在这种情况下,耗散动力学是由纯态随机轨迹描述的,我们检查了同一主方程的不同分离。更确切地说,我们演示了如何通过线性光学干涉仪自发发射光子的咔嗒声序列诱导轨迹状态的纠缠。由于该模型由一系列单光子发射器组成,因此我们显示了与Fock-State Boson采样的直接等效性,并将采样量子跳跃结果的硬度与轨迹纠缠的尺度联系起来。
The dynamics of open quantum systems is generally described by a master equation, which describes the loss of information into the environment. By using a simple model of uncoupled emitters, we illustrate how the recovery of this information depends on the monitoring scheme applied to register the decay clicks. The dissipative dynamics, in this case, is described by pure-state stochastic trajectories and we examine different unravelings of the same master equation. More precisely, we demonstrate how registering the sequence of clicks from spontaneously emitted photons through a linear optical interferometer induces entanglement in the trajectory states. Since this model consists of an array of single-photon emitters, we show a direct equivalence with Fock-state boson sampling and link the hardness of sampling the outcomes of the quantum jumps with the scaling of trajectory entanglement.