English

Discrete Painleve equation, Miwa variables, and string equation in 5d matrix models

High Energy Physics - Theory 2019-10-30 v2 Mathematical Physics math.MP

Abstract

The modern version of conformal matrix model (CMM) describes conformal blocks in the Dijkgraaf-Vafa phase. Therefore it possesses a determinant representation and becomes a Toda chain τ\tau-function only after a peculiar Fourier transform in internal dimensions. Moreover, in CMM Hirota equations arise in a peculiar discrete form (when the couplings of CMM are actually Miwa time-variables). Instead, this integrability property is actually independent on the measure in the original hypergeometric integral. To get hypergeometric functions, one needs to pick up a very special τ\tau-function satisfying an additional "string equation". Usually, its role is played by the lowest L1L_{-1} Virasoro constraint, but, in the Miwa variables, it turns into a finite-difference equation with respect to the Miwa variables. One can get rid of these differences by rewriting the string equation in terms of some double ratios of the shifted τ\tau-functions, and then these ratios satisfy more sophisticated equations equivalent to the discrete Painlev\'e equations by M. Jimbo and H. Sakai (qq-PVI equation). They look much simpler in the qq-deformed ("5d""5d") matrix model, while in the "continuous" limit q1q\longrightarrow 1 to 4d4d one should consider the Miwa variables with non-unit multiplicities, what finally converts the simple discrete Painlev\'e qq-PVI into sophisticated differential Painlev\'e VI equations, which will be considered elsewhere.

Cite

@article{arxiv.1908.01278,
  title  = {Discrete Painleve equation, Miwa variables, and string equation in 5d matrix models},
  author = {A. Mironov and A. Morozov and Z. Zakirova},
  journal= {arXiv preprint arXiv:1908.01278},
  year   = {2019}
}

Comments

13 pages

R2 v1 2026-06-23T10:39:06.741Z