论文标题

通过连续测量进行感测的有效信息检索

Efficient Information Retrieval for Sensing via Continuous Measurement

论文作者

Yang, Dayou, Huelga, Susana F., Plenio, Martin B.

论文摘要

连续监测驱动的量子光学系统是实施量子计量学的关键要素,为实现超出经典限制的高度精确测量提供了基本策略。在这种情况下,相关的功绩是由驱动 - 驱动传感器发出的辐射场的量子渔民信息。通常,量子cramer-rao结合所定义的相应精度极限的饱和通常不是通过常规的,时间局部连续的测量方案(例如计数或同质)来实现的。为了解决有效检索发射场量子渔民信息的杰出开放挑战,我们设计了一种新型的连续测量策略,该策略采用了矩阵产品状态捕获的时间上的跨粒细胞测量基础。可以通过将传感器的发射场注入辅助开放系统,即“量子解码器”模块,从而有效地实现此类测量,该模块将“解码”特定的输入矩阵乘积将其作为其输出字段,并在输出时执行常规的连续测量。我们通过利用量子光学输入输出通道的时间逆转转换来设计一种通用配方,以构建解码器,从而建立了一种通用方法,以实现基于连续测量的通用传感器的量子cramer-rao精度极限。作为副产品,我们建立了一个有效的公式,用于评估通用驱动式开放传感器的发射场的量子渔民信息。我们使用顺磁性开放传感器设计(包括线性力传感器,纤维间隔非线性发射器和驱动驱动的多体传感器)来说明我们方案的功能,并证明它可以在逼真的实验性不完美效果下实现。

Continuous monitoring of driven-dissipative quantum optical systems is a crucial element in the implementation of quantum metrology, providing essential strategies for achieving highly precise measurements beyond the classical limit. In this context, the relevant figure of merit is the quantum Fisher information of the radiation field emitted by the driven-dissipative sensor. Saturation of the corresponding precision limit as defined by the quantum Cramer-Rao bound is typically not achieved by conventional, temporally local continuous measurement schemes such as counting or homodyning. To address the outstanding open challenge of efficient retrieval of the quantum Fisher information of the emission field, we design a novel continuous measurement strategy featuring temporally quasilocal measurement bases as captured by matrix product states. Such measurement can be implemented effectively by injecting the emission field of the sensor into an auxiliary open system, a `quantum decoder' module, which `decodes' specific input matrix product states into simple product states as its output field, and performing conventional continuous measurement at the output. We devise a universal recipe for the construction of the decoder by exploiting time reversal transformation of quantum optical input-output channels, thereby establishing a universal method to achieve the quantum Cramer-Rao precision limit for generic sensors based on continuous measurement. As a by-product, we establish an effective formula for the evaluation of the quantum Fisher information of the emission field of generic driven-dissipative open sensors. We illustrate the power of our scheme with paramagnetic open sensor designs including linear force sensors, fibre-interfaced nonlinear emitters, and driven-dissipative many-body sensors, and demonstrate that it can be robustly implemented under realistic experimental imperfections.

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