论文标题
使用Pytheus进行100种不同量子实验的数字发现
Digital Discovery of 100 diverse Quantum Experiments with PyTheus
论文作者
论文摘要
光子是进行量子力学基础实验测试的首选物理系统。此外,光子量子技术是第二次量子革命的主要参与者,有望开发更好的传感器,安全的通信和量子增强的计算。这些努力需要生成特定的量子状态或有效执行量子任务。相应的光学实验的设计在历史上是由人类创造力提供支持的,但最近通过先进的计算机算法和人工智能自动化。虽然已经实现了一些计算机设计的实验,但这种方法尚未被更广泛的光子量子光学界广泛采用。主要的障碍包括大多数封闭源,效率低下或针对难以推广的非常特定的用例。在这里,我们通过高效,开源的数字发现框架Pytheus克服了这些问题,该框架可以使用现代量子实验室的各种实验设备来解决各种任务。这包括发现高度纠缠的量子状态,量子测量方案,量子通信协议,多粒子量子门,以及量子实验或量子状态的连续和离散特性的优化。 Pytheus为复杂的实验问题提供了可解释的设计,人类研究人员通常可以轻松地概念化这些问题。 Pytheus是一个强大的框架的一个例子,可以导致科学发现 - 科学中人工智能的核心目标之一。我们希望这将有助于加速量子光学器件的开发,并在量子硬件和技术中提供新的想法。
Photons are the physical system of choice for performing experimental tests of the foundations of quantum mechanics. Furthermore, photonic quantum technology is a main player in the second quantum revolution, promising the development of better sensors, secure communications, and quantum-enhanced computation. These endeavors require generating specific quantum states or efficiently performing quantum tasks. The design of the corresponding optical experiments was historically powered by human creativity but is recently being automated with advanced computer algorithms and artificial intelligence. While several computer-designed experiments have been experimentally realized, this approach has not yet been widely adopted by the broader photonic quantum optics community. The main roadblocks consist of most systems being closed-source, inefficient, or targeted to very specific use-cases that are difficult to generalize. Here, we overcome these problems with a highly-efficient, open-source digital discovery framework PyTheus, which can employ a wide range of experimental devices from modern quantum labs to solve various tasks. This includes the discovery of highly entangled quantum states, quantum measurement schemes, quantum communication protocols, multi-particle quantum gates, as well as the optimization of continuous and discrete properties of quantum experiments or quantum states. PyTheus produces interpretable designs for complex experimental problems which human researchers can often readily conceptualize. PyTheus is an example of a powerful framework that can lead to scientific discoveries -- one of the core goals of artificial intelligence in science. We hope it will help accelerate the development of quantum optics and provide new ideas in quantum hardware and technology.