Exact calculations beyond charge neutrality in timelike Liouville field theory
Sourav Chatterjee

TL;DR
This paper presents exact calculations in timelike Liouville field theory beyond charge neutrality by exploiting special mathematical structures at a specific coupling, leading to explicit formulas for correlation functions and the partition function.
Contribution
It introduces a method to compute timelike Liouville path integrals beyond charge neutrality at coupling b=1/√2 using determinantal structures, providing the first rigorous exact results in this regime.
Findings
Derived Mellin-Barnes representations for correlation functions.
Explicit renormalized partition function obtained.
Compared results with recent physics prescriptions.
Abstract
Timelike Liouville field theory (also known as imaginary Liouville theory or imaginary Gaussian multiplicative chaos) is expected to describe two-dimensional quantum gravity in a positive-curvature regime, but its path integral is not a probability measure and rigorous exact computations are currently available only in the charge-neutral (integer screening) case. In this paper we show that at the special coupling , the Coulomb-gas expansion of the timelike path integral becomes explicitly computable beyond charge neutrality. The reason is that the -fold integrals generated by the interaction acquire a Vandermonde/determinantal structure at , which allows exact evaluation in terms of classical special functions. We derive Mellin-Barnes type representations (involving the Barnes -function and, in a three-point case, Gauss hypergeometric functions) for the…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Black Holes and Theoretical Physics · High-Energy Particle Collisions Research
