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dc.contributor.author González, Hernán A.
dc.contributor.author Rojas, Francisco
dc.date.accessioned 2024-09-26T00:47:54Z
dc.date.available 2024-09-26T00:47:54Z
dc.date.issued 2021-06
dc.identifier.issn 1029-8479
dc.identifier.uri https://repositorio.uss.cl/handle/uss/13573
dc.description Publisher Copyright: © 2021, The Author(s).
dc.description.abstract The all-loop resummation of SU(N) gauge theory amplitudes is known to factorize into an IR-divergent (soft and collinear) factor and a finite (hard) piece. The divergent factor is universal, whereas the hard function is a process-dependent quantity. We prove that this factorization persists for the corresponding celestial amplitudes. Moreover, the soft/collinear factor becomes a scalar correlator of the product of renormalized Wilson lines defined in terms of celestial data. Their effect on the hard amplitude is a shift in the scaling dimensions by an infinite amount, proportional to the cusp anomalous dimension. This leads us to conclude that the celestial-IR-safe gluon amplitude corresponds to a expectation value of operators dressed with Wilson line primaries. These results hold for finite N. In the large N limit, we show that the soft/collinear correlator can be described in terms of vertex operators in a Coulomb gas of colored scalar primaries with nearest neighbor interactions. In the particular cases of four and five gluons in planar N = 4 SYM theory, where the hard factor is known to exponentiate, we establish that the Mellin transform converges in the UV thanks to the fact that the cusp anomalous dimension is a positive quantity. In other words, the very existence of the full celestial amplitude is owed to the positivity of the cusp anomalous dimension. en
dc.language.iso eng
dc.relation.ispartof vol. 2021 Issue: no. 6 Pages:
dc.source Journal of High Energy Physics
dc.title The structure of IR divergences in celestial gluon amplitudes en
dc.type Artículo
dc.identifier.doi 10.1007/JHEP06(2021)171


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