Universal Quantum Channel Simulation in Duality Quantum Computing

Shijie Wei, T. Xin, G. Long
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Abstract

Quantum channels describe general transformations of the state of a physical system and play a fundamental role in many fields. It promises wide range of applications, because any physical process can be represented as a quantum channel transforming an initial state into a final state. The evolution of system undergoing a quantum channel is not necessary unitary which makes it unrealisable without ancillary system. Inspired by the method performing non-unitary operator by the linear combination of unitary operations, we proposed a quantum algorithm for the simulation of universal single-qubit channel, described by a convex combination of two generalized extreme channels corresponding to four Kraus operators, and is scalable to arbitrary higher dimension. We demonstrate the whole algorithm experimentally using the universal IBM cloud quantum computer and study properties of different qubit quantum channels. We illustrate the quantum capacity of the general qubit quantum channels, which quantifies the amount of quantum information that can be protected. There is a general agreement between the theoretical predictions and the experiments, which strongly supported our method. By realizing arbitrary qubit channel, this work provides a universal way to explore various properties of quantum channel and novel prospect of quantum communication.
对偶量子计算中的通用量子信道模拟
量子通道描述了物理系统状态的一般转换,在许多领域发挥着重要作用。它有广泛的应用前景,因为任何物理过程都可以表示为将初始状态转换为最终状态的量子通道。经历量子信道的系统的演化不是必然酉的,没有辅助系统是不可能实现的。受幺正算子线性组合非幺正算子方法的启发,我们提出了一种模拟通用单量子比特信道的量子算法,该算法由四个Kraus算子对应的两个广义极值信道的凸组合来描述,并且可扩展到任意高维。我们利用通用IBM云量子计算机对整个算法进行了实验验证,并研究了不同量子比特量子通道的特性。我们举例说明了一般量子比特量子通道的量子容量,它量化了可以保护的量子信息量。理论预测与实验结果基本一致,有力地支持了我们的方法。通过实现任意量子比特信道,本工作为探索量子信道的各种特性和量子通信的新前景提供了一种通用的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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