论文标题

量子遥感下的效果

Quantum remote sensing under the effect of dephasing

论文作者

Okane, Hideaki, Hakoshima, Hideaki, Takeuchi, Yuki, Seki, Yuya, Matsuzaki, Yuichiro

论文摘要

量子遥感(QRS)是一个方案,可以为基于Qubit的传感器的测量结果增加安全性。客户端将测量任务委托给具有量子传感器的远程服务器,而Eavesdropper(EVE)窃取了存储在服务器端的每个经典信息。通过使用量子属性,QRS提供了有关信息增益的不对称性,而客户获得了比EVE获得更多有关感应结果的信息。但是,量子状态在反抗上是脆弱的,因此尚不清楚这种QRS在逼真的噪声效果下是否实际上是有用的。在这里,我们在与目标字段的交互过程中研究了QRS的性能。在QRS中,客户端和服务器需要共享铃铛对,钟形对的不完美会导致状态准备错误,以系统的方式在服务器端进行感应。我们考虑脱去和状态准备误差的效果。客户端的不确定性随着小$ m $的重复数$ m $的平方根而降低,这与标准量子计量学的比例相同。另一方面,对于大型$ m $,状态准备错误变得与dephasing一样重要,并且不确定性用$ m $降低对数。我们比较客户和夏娃之间的信息增益。这使我们获得了即使在剥离效果下保持不对称增益的条件。

The quantum remote sensing (QRS) is a scheme to add security about the measurement results of a qubit-based sensor. A client delegates a measurement task to a remote server that has a quantum sensor, and eavesdropper (Eve) steals every classical information stored in the server side. By using quantum properties, the QRS provides an asymmetricity about the information gain where the client gets more information about the sensing results than Eve. However, quantum states are fragile against decoherence, and so it is not clear whether such a QRS is practically useful under the effect of realistic noise. Here, we investigate the performance of the QRS with dephasing during the interaction with the target fields. In the QRS, the client and server need to share a Bell pair, and an imperfection of the Bell pair leads to a state preparation error in a systematic way on the server side for the sensing. We consider the effect of both dephasing and state preparation error. The uncertainty of the client side decreases with the square root of the repetition number $M$ for small $M$, which is the same scaling as the standard quantum metrology. On the other hand, for large $M$, the state preparation error becomes as relevant as the dephasing, and the uncertainty decreases logarithmically with $M$. We compare the information gain between the client and Eve. This leads us to obtain the conditions for the asymmetric gain to be maintained even under the effect of dephasing.

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