English

Weighted Webs: Morphology-Informed Marked Fields

Cosmology and Nongalactic Astrophysics 2026-07-28 v1

Abstract

The morphology of the cosmic web formed by the late-time matter distribution encodes cosmological information beyond that contained in standard two-point statistics. Marked power spectra provide a computationally efficient framework to access this higher-order information, by studying the two-point statistics of the density field ``marked'' (i.e. weighted) by a function of its local environmental density. In this work we explore the potential of marks that are sensitive to the morphology of this local environment, rather than simply its density. We study a broad range of such marks, considering mark functions based on the smoothed density, tidal shear amplitude, local degree of isotropy and filamentarity, Gaussian transformations of these quantities and a local fractal dimension estimator. We quantify the merit of different marks in terms of their constraints on key cosmological parameters, including the matter abundance Ωm\Omega_m, the amplitude of fluctuations σ8\sigma_8, and the mass of neutrinos MνM_\nu. We have found that density-dependent marks continue to provide the largest improvements over the standard power spectrum, while morphology-based marks yield more modest improvements on their own. Nevertheless, combining density- and morphology-based marks consistently enhances cosmological constraints beyond what either class achieves separately, demonstrating that they probe complementary aspects of the underlying matter distribution. These results provide a systematic assessment of morphology-based marked statistics and explore which geometric properties of the cosmic web contribute most effectively to cosmological parameter inference. They also establish a physically motivated framework for future investigations of optimal marks and their perturbative connection to higher-order correlation functions.

Cite

@article{arxiv.2607.26021,
  title  = {Weighted Webs: Morphology-Informed Marked Fields},
  author = {Mikel Martin Barandiaran and Jessica A. Cowell and David Alonso and Javier Carrón Duque and Juan García-Bellido},
  journal= {arXiv preprint arXiv:2607.26021},
  year   = {2026}
}

Comments

35 pages, 13 figures. Abstract abridged