Abstract
We simulate the distribution of very rare, large excursions in the primordial density field produced in models of inflation in the very early universe which include a strong enhancement of the power spectrum. The stochastic delta N formalism is used to identify the probability distribution for the primordial curvature perturbation with the first-passage-time distribution, P(delta N), and we compare our stochastic results with those obtained in the classical delta N approach. We extend the PyFPT numerical code to simulate the full 2D phase space, and apply importance sampling which allows very rare fluctuations to be simulated in O(10) minutes on a single CPU, where previous direct simulations required supercomputers. We demonstrate that the stochastic noise due to quantum fluctuations after a sudden transition to ultra-slow roll can be accurately modelled using an analytical Bessel-function ansatz to identify the homogeneous growing mode. The stochastic noise found in this way is a function of the field value only. This enables us to coarse grain the inflation field at the Hubble scale and include non-linear, stochastic evolution on all super-Hubble length scales.
Original language | English |
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Article number | 073 |
Number of pages | 30 |
Journal | Journal of Cosmology and Astroparticle Physics |
Volume | 2025 |
Issue number | 04 |
DOIs | |
Publication status | Published - 24 Apr 2025 |
Keywords
- inflation
- stochastic
- importance sampling
- slow roll