Perturbative Correlation Functions and Scattering Amplitudes in Planar $\mathcal{N}=4$ Supersymmetric Yang-Mills
Vuong-Viet Tran

TL;DR
This thesis develops a method to compute high-loop integrands of correlation functions and scattering amplitudes in planar $ ext{N}=4$ SYM, extending to ten loops and exploring dualities with new basis constructions.
Contribution
It introduces the `triangle' and `pentagon' rules for ten-loop integrand construction and develops conformal bases for amplitude extraction at six and seven points.
Findings
Constructed integrands up to ten loops using graphical rules.
Extracted one- and two-loop amplitude integrands for six and seven particles.
Developed alternative basis with conformal cross-ratio coefficients.
Abstract
In this thesis, we study the integrands of a special four-point correlation function formed of protected half-BPS operators and scattering amplitudes in planar supersymmetric Yang-Mills. We use the `soft-collinear bootstrap' method to construct integrands of the aforementioned correlator and four-point scattering amplitudes to eight loops. The result is then extended to ten loops, by introducing two graphical relations, called the `triangle' and `pentagon' rules. These relations provide consistency conditions on the coefficients, and when combined with the `square' rule, prove sufficient to fix the answer to ten loops. We then proceed to study the correlator/amplitude duality by taking six and seven adjacent points of the four-point correlator to be light-like separated. A conformal basis (with rational coefficients) is used to extract amplitude integrands for both six…
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Taxonomy
TopicsAlgebraic structures and combinatorial models · Black Holes and Theoretical Physics · Quantum Chromodynamics and Particle Interactions
