论文标题
粒子碰撞中的能量流
Energy Flow in Particle Collisions
论文作者
论文摘要
在本论文中,我引入了一种新的自下而上方法,以从可观察到的能量流开始:粒子碰撞产生的能量分布开始。首先,我通过比较它们的能量流来建立碰撞事件的度量空间。我统一了许多数十年的想法,例如可观察物和喷气机,就像这个新空间中的简单几何对象。其次,我通过系统地扩展粒子能量和角度来开发可观察到的基础,涵盖了许多现有的可观察物并发现新的分析结构。我强调,由于使用粒子而不是其能量流的事件描述事件的冗余,理论可计算性的传统标准如何出现为一致性条件。最后,我提出了粒子类型或风味的定义,该定义仅利用可观察的信息。该定义需要将风味从每个事件标签提高到统计类别的概念,我在山脉中展示了其直接的实验适用性。在整个过程中,我将概念从粒子物理学综合了统计和计算机科学的思想,以扩大对粒子相互作用的理论理解并增强对撞机数据分析技术的实验能力。
In this thesis, I introduce a new bottom-up approach to quantum field theory and collider physics, beginning from the observable energy flow: the energy distribution produced by particle collisions. First, I establish a metric space for collision events by comparing their energy flows. I unify many ideas spanning multiple decades, such as observables and jets, as simple geometric objects in this new space. Second, I develop a basis of observables by systematically expanding in particle energies and angles, encompassing many existing observables and uncovering new analytic structures. I highlight how the traditional criteria for theoretical calculability emerge as consistency conditions, due to the redundancy of describing an event using particles rather than its energy flow. Finally, I propose a definition of particle type, or flavor, which makes use of only observable information. This definition requires refining the notion of flavor from a per-event label to a statistical category, and I showcase its direct experimental applicability at colliders. Throughout, I synthesize concepts from particle physics with ideas from statistics and computer science to expand the theoretical understanding of particle interactions and enhance the experimental capabilities of collider data analysis techniques.