论文标题
高能物理中数据分析的量子计算
Quantum computing for data analysis in high energy physics
论文作者
论文摘要
粒子物理时代的一些最大成就,例如发现希格斯玻色子,这是通过在建造和操作大型强体撞机或Tevatron(例如大型强体实验)方面所付出的巨大努力。在这些设施中,不断探究和验证在最基本层面上描述问题的最终理论。这些实验通常会产生大量需要存储,处理和分析技术的数据,这些数据通常会推动传统信息处理方案的限制。因此,高能物理(HEP)领域从信息处理的进步以及用于大型数据集的算法和工具的开发中受益。最近,已经研究了量子计算应用程序,以了解社区如何从量子信息科学的优势中受益。在本手稿中,我们概述了量子计算在HEP中数据分析的最新应用,讨论将这些新颖分析技术整合到日常分析工作流程中的挑战和机遇,以及是否存在量子优势的潜力。
Some of the biggest achievements of the modern era of particle physics, such as the discovery of the Higgs boson, have been made possible by the tremendous effort in building and operating large-scale experiments like the Large Hadron Collider or the Tevatron. In these facilities, the ultimate theory to describe matter at the most fundamental level is constantly probed and verified. These experiments often produce large amounts of data that require storing, processing, and analysis techniques that often push the limits of traditional information processing schemes. Thus, the High-Energy Physics (HEP) field has benefited from advancements in information processing and the development of algorithms and tools for large datasets. More recently, quantum computing applications have been investigated in an effort to understand how the community can benefit from the advantages of quantum information science. In this manuscript, we provide an overview of the state-of-the-art applications of quantum computing to data analysis in HEP, discuss the challenges and opportunities in integrating these novel analysis techniques into a day-to-day analysis workflow, and whether there is potential for a quantum advantage.