Mastering Cosmological Amplitudes Using Generalized Ramanujan's Theorem

Fuente: arXiv
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Autori principali: Raman, Prashanth, Yang, Qinglin
Natura: Preprint
Pubblicazione: 2025
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author Raman, Prashanth
Yang, Qinglin
author_facet Raman, Prashanth
Yang, Qinglin
contents We present a systematic method for computing cosmological amplitudes, including in-in correlators and wavefunction coefficients, in FRW spacetime. Specializing to cases with conformally-coupled external scalars and massive scalar exchanges, we introduce a decomposition into massive family trees, which capture the nested time structure common to these observables. We then evaluate these building blocks using the Method of Brackets (MoB), a multivariate extension of Ramanujan's master theorem that operates directly on the integrand, translating integrals into discrete summations via a compact set of algebraic rules. This yields infinite series representations valid across the full space of external momenta and internal energies. We also develop Feynman-like diagrammatic rules that map interaction graphs to summand structures, enabling efficient and scalable computation. The resulting expressions make time evolution manifest, smoothly interpolate to the conformal limit, and are well suited for both numerical evaluation and analytic analysis of massive field effects in cosmology.
format Preprint
id arxiv_https___arxiv_org_abs_2508_13126
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mastering Cosmological Amplitudes Using Generalized Ramanujan's Theorem
Raman, Prashanth
Yang, Qinglin
High Energy Physics - Theory
General Relativity and Quantum Cosmology
Mathematical Physics
We present a systematic method for computing cosmological amplitudes, including in-in correlators and wavefunction coefficients, in FRW spacetime. Specializing to cases with conformally-coupled external scalars and massive scalar exchanges, we introduce a decomposition into massive family trees, which capture the nested time structure common to these observables. We then evaluate these building blocks using the Method of Brackets (MoB), a multivariate extension of Ramanujan's master theorem that operates directly on the integrand, translating integrals into discrete summations via a compact set of algebraic rules. This yields infinite series representations valid across the full space of external momenta and internal energies. We also develop Feynman-like diagrammatic rules that map interaction graphs to summand structures, enabling efficient and scalable computation. The resulting expressions make time evolution manifest, smoothly interpolate to the conformal limit, and are well suited for both numerical evaluation and analytic analysis of massive field effects in cosmology.
title Mastering Cosmological Amplitudes Using Generalized Ramanujan's Theorem
topic High Energy Physics - Theory
General Relativity and Quantum Cosmology
Mathematical Physics
url https://arxiv.org/abs/2508.13126