English

Planar Matrices and Arrays of Feynman Diagrams: Poles for Higher $k$

High Energy Physics - Theory 2024-03-27 v2 Combinatorics

Abstract

Planar arrays of tree diagrams were introduced as a generalization of Feynman diagrams that enables the computation biadjoint amplitudes mn(k)m^{(k)}_n for k>2k>2 . In this follow-up work we investigate the poles of mn(k)m^{(k)}_n from the perspective of such arrays. For general kk we characterize the underlying polytope as a Flag Complex and propose a computation of the amplitude based solely on the knowledge of poles, which number is drastically less than the number of full arrays. As an example we first provide all the poles for the cases (k,n)=(3,7),(3,8),(4,8)(k,n)=(3,7),(3,8),(4,8) and (4,9)(4,9) in terms of their generalized Feynman diagrams. We then implement a simple compatibility criteria together with an addition operation between arrays, and recover the full collections/arrays recently presented for such cases. Along the way we implement hard and soft kinematical limits, which provide a map between poles in kinematic space and their combinatoric arrays. We use the operation to give a proof of a previously conjectured combinatorial duality for arrays in (k,n)(k,n) and (nk,n)(n-k,n). We also outline the relation to boundary maps of the hypersimplex Δk,n\Delta_{k,n} and rays in the tropical Grassmannian Tr(k,n)\textrm{Tr}(k,n).

Keywords

Cite

@article{arxiv.2007.15679,
  title  = {Planar Matrices and Arrays of Feynman Diagrams: Poles for Higher $k$},
  author = {Alfredo Guevara and Yong Zhang},
  journal= {arXiv preprint arXiv:2007.15679},
  year   = {2024}
}

Comments

comment: v2: 21 pages, 2 figures, 2 tables, references added, missing ancillary files in the Dropbox link are recovered. Planar arrays of Feynman diagrams for (k,n)=(4,9) are reconstructed just from their poles while those for (3,10) are predicted for the first time