English

A model-independent determination of the Hubble constant from lensed quasars and supernovae using Gaussian process regression

Cosmology and Nongalactic Astrophysics 2019-12-18 v2

Abstract

Strongly lensed quasar systems with time delay measurements provide "time delay distances", which are a combination of three angular diameter distances and serve as powerful tools to determine the Hubble constant H0H_0. However, current results often rely on the assumption of the Λ\LambdaCDM model. Here we use a model-independent method based on Gaussian process to directly constrain the value of H0H_0. By using Gaussian process regression, we can generate posterior samples of unanchored supernova distances independent of any cosmological model and anchor them with strong lens systems. The combination of a supernova sample with large statistics but no sensitivity to H0H_0 with a strong lens sample with small statistics but H0H_0 sensitivity gives a precise H0H_0 measurement without the assumption of any cosmological model. We use four well-analyzed lensing systems from the state-of-art lensing program H0LiCOW and the Pantheon supernova compilation in our analysis. Assuming the Universe is flat, we derive the constraint H0=72.2±2.1H_0=72.2 \pm 2.1\,km/s/Mpc, a precision of 2.9%2.9\%. Allowing for cosmic curvature with a prior of Ωk=[0.2,0.2]\Omega_{k}=[-0.2,0.2], the constraint becomes H0=73.03.0+2.8H_0=73.0_{-3.0}^{+2.8}\,km/s/Mpc.

Keywords

Cite

@article{arxiv.1908.04967,
  title  = {A model-independent determination of the Hubble constant from lensed quasars and supernovae using Gaussian process regression},
  author = {Kai Liao and Arman Shafieloo and Ryan E. Keeley and Eric V. Linder},
  journal= {arXiv preprint arXiv:1908.04967},
  year   = {2019}
}

Comments

7 pages, 5 figures. Accepted for publication in ApJ Letters