论文标题

受量子信息过程启发的通用古典光学计算

Universal classical optical computing inspired by quantum information process

论文作者

Sun, Yifan, Li, Qian, Kong, Ling-Jun, Shang, Jiangwei, Zhang, Xiangdong

论文摘要

近几十年来,量子计算引起了很多关注,因为据信它可以比传统计算方法更快地解决某些问题。从理论上讲,可以通过通用门集中的量子运算符的网络获得这样的进步,该量子的网络是由CNOT Gate和单个Qubit Gates形成的一个著名示例。但是,意识到执行实用量子计算的设备很棘手。这是因为它需要一个具有较长连贯性时间和良好控制的可扩展量子系统,这对于大多数当前平台来说都是苛刻的。在这里,我们证明了基于相对稳定系统的信息过程 - 经典光学系统,可以视为通用量子计算的类比。通过通过经典梁的极化状态编码信息,显示了与通用门集对应的光学计算元素,从理论上说明了它们的一般信息过程的组合。以两级处理器为例的类比,我们在实验上验证了我们的建议效果很好。考虑到光学系统对可靠且低能消耗的计算的潜力,我们的结果为高质量和效率开辟了一种新的方法来处理高级信息处理。

Quantum computing has attracted much attention in recent decades, since it is believed to solve certain problems substantially faster than traditional computing methods. Theoretically, such an advance can be obtained by networks of the quantum operators in universal gate sets, one famous example of which is formed by CNOT gate and single qubit gates. However, realizing a device that performs practical quantum computing is tricky. This is because it requires a scalable qubit system with long coherence time and good controls, which is harsh for most current platforms. Here, we demonstrate that the information process based on a relatively stable system -- classical optical system, can be considered as an analogy of universal quantum computing. By encoding the information via the polarization state of classical beams, the optical computing elements that corresponds to the universal gate set are presented and their combination for a general information process are theoretically illustrated. Taking the analogy of two-qubit processor as an example, we experimentally verify that our proposal works well. Considering the potential of optical system for reliable and low-energy-consuming computation, our results open a new way towards advanced information processing with high quality and efficiency.

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