Galaxy Clustering Analysis with SimBIG and the Wavelet Scattering Transform
Abstract
The non-Gaussisan spatial distribution of galaxies traces the large-scale structure of the Universe and therefore constitutes a prime observable to constrain cosmological parameters. We conduct Bayesian inference of the CDM parameters , , , , and from the BOSS CMASS galaxy sample by combining the wavelet scattering transform (WST) with a simulation-based inference approach enabled by the forward model. We design a set of reduced WST statistics that leverage symmetries of redshift-space data. Posterior distributions are estimated with a conditional normalizing flow trained on 20,000 simulated galaxy catalogs with survey realism. We assess the accuracy of the posterior estimates using simulation-based calibration and quantify generalization and robustness to the change of forward model using a suite of 2,000 test simulations. When probing scales down to , we are able to derive accurate posterior estimates that are robust to the change of forward model for all parameters, except . We mitigate the robustness issues with by removing the WST coefficients that probe scales smaller than . Applied to the BOSS CMASS sample, our WST analysis yields seemingly improved constraints obtained from a standard PT-based power spectrum analysis with for all parameters except . However, we still raise concerns on these results. The observational predictions significantly vary across different normalizing flow architectures, which we interpret as a form of model misspecification. This highlights a key challenge for forward modeling approaches when using summary statistics that are sensitive to detailed model-specific or observational imprints on galaxy clustering.
Keywords
Cite
@article{arxiv.2310.15250,
title = {Galaxy Clustering Analysis with SimBIG and the Wavelet Scattering Transform},
author = {Bruno Régaldo-Saint Blancard and ChangHoon Hahn and Shirley Ho and Jiamin Hou and Pablo Lemos and Elena Massara and Chirag Modi and Azadeh Moradinezhad Dizgah and Liam Parker and Yuling Yao and Michael Eickenberg},
journal= {arXiv preprint arXiv:2310.15250},
year = {2024}
}
Comments
11+5 pages, 8+2 figures, published in Physical Review D