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Eigenvalue hypothesis for multi-strand braids

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Computing polynomial form of the colored HOMFLY-PT for non-arborescent knots obtained from three or more strand braids is still an open problem. One of the efficient methods suggested for the three-strand braids relies on the eigenvalue hypothesis which uses the Yang-Baxter equation to express the answer through the eigenvalues of the ${\cal R}$-matrix. In this paper, we generalize the hypothesis to higher number of strands in the braid where commuting relations of non-neighbouring $\mathcal{R}$ matrices are also incorporated. By solving these equations, we determine the explicit form for $\mathcal{R}$-matrices and the inclusive Racah matrices in terms of braiding eigenvalues (for matrices of size up to 6 by 6). For comparison, we briefly discuss the highest weight method for four-strand braids carrying fundamental and symmetric rank two $SU_q(N)$ representation. Specifically, we present all the inclusive Racah matrices for representation $[2]$ and compare with the matrices obtained from eigenvalue hypothesis.

fields

hep-th 2

years

2026 2

verdicts

UNVERDICTED 2

representative citing papers

Entangling gates for the SU(N) anyons

hep-th · 2026-05-05 · unverdicted · novelty 3.0

The paper outlines the generalization of cabling-based entangling gates to SU(N) anyons and identifies differences and new problems that arise.

citing papers explorer

Showing 2 of 2 citing papers.

  • Racah matrices for the symmetric representation of the SO(5) group hep-th · 2026-03-23 · unverdicted · none · ref 18 · internal anchor

    Explicit R and Racah matrices are given for the symmetric representation of SO(5) to compute Kauffman polynomials via a generalized Reshetikhin-Turaev construction.

  • Entangling gates for the SU(N) anyons hep-th · 2026-05-05 · unverdicted · none · ref 33

    The paper outlines the generalization of cabling-based entangling gates to SU(N) anyons and identifies differences and new problems that arise.