Topological signatures of heating and dark matter in the 21-cm forest
Phys. Rev. D 113, 083525 – Published 20 April, 2026
DOI: https://doi.org/10.1103/bl2w-crry
Abstract
We show that persistence-based topology of the 21 cm forest encodes information about Cosmic Dawn that is complementary to traditional amplitude- or correlation-based statistics. Applying topological data analysis to simulated one-dimensional forest spectra over a grid of x-ray heating efficiencies and warm-dark-matter (WDM) masses (which set the free-streaming scale), we construct persistence diagrams and Betti-0 curves that track the birth-merger hierarchy of absorption troughs under sublevel filtrations. From these summaries, we define three interpretable descriptors: the trough line density , the total squared persistence where denotes long-lived components, and the Betti-curve asymmetry . In a Fisher forecast around a fiducial WDM model, and provide strong local leverage on the heating axis, while retains appreciable sensitivity to the free-streaming scale and supplies an inclined constraint direction that reduces the remaining degeneracy in the plane. We further demonstrate that, under an SKA1-Low-like uncorrelated thermal-noise model, noise predominantly produces short-lived fluctuations that are removed by imposing the same persistence-lifetime cut , leaving the topology of long-lived troughs and the gross Betti-curve morphology largely intact. These results establish persistence-based descriptors as a robust non-Gaussian probe of small-scale structure and heating during Cosmic Dawn, naturally complementing power-spectrum and wavelet-based analyses.