Horizon, homogeneity and flatness problems -- do their resolutions really depend upon inflation?
arXiv:1603.01539 · doi:10.1140/epjc/s10052-024-12740-7
Abstract
We point out that the horizon problem encountered in standard text-books or review papers on cosmology is, in general, derived for world models based on Robertson-Walker line element where homogeneity and isotropy of the universe -- à la cosmological principle -- is assumed to begin with and is guaranteed for all epochs. Actually what all happens in that scenario is that in such a universe, whose evolutionary behaviour is described by a single scale factor, which may be time dependent but is otherwise independent of spatial coordinates, the light signals in a finite time might not be covering all the available space. Further, the flatness problem, as it is posed, is not even falsifiable. The usual argument offered in the literature is that the present density of the universe is very close to the critical density value and that the universe must be flat since otherwise in past at second (near the epoch of inflation) there will be extremely low departures of density from the critical density value (of the order ), requiring a sort of fine tuning. We show that even if the present value of the density parameter were very different, still at second it would differ from unity by the same fraction. Thus a use of fine tuning argument to promote model amounts to {\em a priori} rejection of all models with . Without casting any aspersions on the inflationary theory, which after all is the most promising paradigm to explain the pattern of anisotropies observed in the cosmic microwave background, we argue that one cannot use homogeneity and flatness in support of inflation.
14 pages, 2 figures, 1 table
References in corpus (19)
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Data Processing, Sky Maps, and Basic Results
- Planck 2018 results. I. Overview and the cosmological legacy of Planck
- Planck evidence for a closed Universe and a possible crisis for cosmology
- A Test of the Cosmological Principle with Quasars
- High redshift radio galaxies and divergence from the CMB dipole
- Probing the Cosmological Principle in the counts of radio galaxies at different frequencies
- The Cosmic Radio Dipole: Estimators and Frequency Dependence
- Exploring cosmic homogeneity with the BOSS DR12 galaxy sample
- Bouncing alternatives to inflation
- The Effects of Potential Shape on Inhomogeneous Inflation
- A large disparity in cosmic reference frames determined from the sky distributions of radio sources and the microwave background radiation
- Measuring the scale of cosmic homogeneity with SDSS-IV DR14 quasars
- On the relation between the isotropy of the CMB and the geometry of the universe
- Initial conditions problem in cosmological inflation revisited
- Peculiar motion of Solar system from the Hubble diagram of supernovae Ia and its implications for cosmology
- The cosmological principle is not in the sky
- Testing the Cosmological Principle in the radio sky
- Discordance of dipole asymmetries seen in recent large radio surveys with the Cosmological Principle
- Resolution of the incongruency of dipole asymmetries within various large radio surveys -- implications for the Cosmological Principle