2017/09/30 by Fotios K. Anagnostopoulos, Fotios Anagnostopoulos, Spyros Basilakos · 38 citations
Earth and Planetary Sciences · Mathematics · Physics and Astronomy · #Astrophysics #Cosmological constant #Cosmology #Cosmology and Gravitation Theories #Dark energy #Energy (signal processing) #Estimator #Galaxies: Formation, Evolution, Phenomena #Geophysics and Gravity Measurements #Hubble's law #Mathematical physics #Mathematics #Monte Carlo method #Parametrization (atmospheric modeling) #Physics #Planck #Quantum mechanics #Statistics #Supernova #Type (biology) #Universe #astro-ph.CO #gr-qc #hep-ph
paper · pdf · doi:10.1103/physrevd.97.063503
published in Physical review. D/Physical review. D. 97(6) (American Physical Society) · 11 pages, 9 figures, accepted for publication by Phys. Rev. D
openalex created_date 2017/09/15 · arxiv created 2018/02/12 · openalex publication_date 2018/03/02 · arxiv updated 2018/03/07 · openalex updated_date 2026/08/05
We study the performance of the latest H(z) data in constraining the cosmological parameters of different cosmological models, including that of Chevalier-Polarski-Linder w0w1 parametrization. First, we introduce a statistical procedure in which the chi-square estimator is not affected by the value of the Hubble constant. As a result, we find that the H(z) data do not rule out the possibility of either nonflat models or dynamical dark energy cosmological models. However, we verify that the time varying equation-of-state parameter w(z) is not constrained by the current expansion data. Combining the H(z) and the Type Ia supernova data, we find that the H(z)/SNIa overall statistical analysis provides a substantial improvement of the cosmological constraints with respect to those of the H(z) analysis. Moreover, the w0\ensuremath-w1 parameter space provided by the H(z)/SNIa joint analysis is in very good agreement with that of Planck 2015, which confirms that the present analysis with the H(z) and supernova type Ia (SNIa) probes correctly reveals the expansion of the Universe as found by the team of Planck. Finally, we generate sets of Monte Carlo realizations in order to quantify the ability of the H(z) data to provide strong constraints on the dark energy model parameters. The Monte Carlo approach shows significant improvement of the constraints, when increasing the sample to 100 H(z) measurements. Such a goal can be achieved in the future, especially in the light of the next generation of surveys.