Cosmological inference from the eBOSS QSO full-shape analysis with optimal redshift weights
Abstract
We present a full-shape power-spectrum analysis of the eBOSS DR16 quasar sample with optimal redshift weights. The DR16 QSO catalog contains 343,708 quasars over , a redshift interval broad enough to contain useful light-cone evolution but not naturally captured by a single effective-redshift measurement. We construct Karhunen--Lo\`eve weights for the parameters of interest and measure the resulting monopole and quadrupole with a cross-correlation estimator, which remains well defined for sign-changing weights. The theoretical spectra are convolved with the measured Fourier-space survey-window kernels for each Galactic cap and weighting scheme, and both the covariance matrix and the end-to-end validation are based on 1000 EZ light-cone mock catalogs. In CDM, the redshift-weighted and standard analyses give consistent constraints, as expected from the near-standard effective redshifts of the weights targeting , , and . In the Chevallier--Polarski--Linder (CPL) model, the redshift-weighted DR16 analysis reduces the marginalized uncertainties on , , and by , , and , respectively, and turns the standard one-sided constraint on into a bounded posterior, . The gain is therefore concentrated where the model contains genuine redshift evolution, demonstrating that optimal redshift weighting can recover tomographic information from a wide QSO light cone while keeping the full-shape data vector compact.
Cite
@article{arxiv.2606.28790,
title = {Cosmological inference from the eBOSS QSO full-shape analysis with optimal redshift weights},
author = {Xiaoyong Mu and Zhuo-Heng Li and Wentao Luo and Yuting Wang and Gong-Bo Zhao},
journal= {arXiv preprint arXiv:2606.28790},
year = {2026}
}
Comments
12 pages, 9 figures, comments welcome