Self-reproduction in k-inflation
Ferdinand Helmer, Sergei Winitzki

TL;DR
This paper analyzes the conditions for self-reproduction in k-inflation models, showing that large quantum fluctuations lead to eternal inflation and identifying constraints on model parameters to avoid breakdown.
Contribution
It develops a general criterion for attractors in k-inflation and demonstrates that self-reproduction is a generic feature, providing formal analysis via Fokker-Planck equations.
Findings
Self-reproduction is a generic feature of k-inflation.
Quantum fluctuations are of order c_s H^{-1}, leading to eternal inflation.
Constraints on initial conditions prevent breakdown at the upper boundary.
Abstract
We study cosmological self-reproduction in models of inflation driven by a scalar field with a noncanonical kinetic term (-inflation). We develop a general criterion for the existence of attractors and establish conditions selecting a class of -inflation models that admit a unique attractor solution. We then consider quantum fluctuations on the attractor background. We show that the correlation length of the fluctuations is of order , where is the speed of sound. By computing the magnitude of field fluctuations, we determine the coefficients of Fokker-Planck equations describing the probability distribution of the spatially averaged field . The field fluctuations are generally large in the inflationary attractor regime; hence, eternal self-reproduction is a generic feature of -inflation. This is established more formally by demonstrating the…
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