Reassessment of the dipole in the distribution of quasars on the sky
arXiv:2405.09762 · doi:10.1088/1475-7516/2024/11/067
Abstract
We investigate recent claims by Secrest et al. of an anomalously large amplitude of the dipole in the distribution of CatWISE-selected quasars on the sky. Two main issues indicate that the systematic uncertainties in the derived quasar-density dipole are underestimated. Firstly, the spatial distribution of the quasars is not a pure dipole, possessing low-order multipoles of comparable size to the dipole. These multipoles are unexpected and presumably caused by unknown systematic effects; we cannot be confident that the dipole amplitude is not also affected by the same systematics until the origin of these fluctuations is understood. Secondly, the 50 percent sky cut associated with the quasar catalogue strongly couples the multipoles, meaning that the power estimate at ell=1 contains significant contributions from ell>1. In particular, the dominant quadrupole mode in the Galactic mask strongly couples the dipole with the octupole, leading to a large uncertainty in the dipole amplitude. Together these issues mean that the dipole in the quasar catalogue has an uncertainty large enough that consistency with the cosmic microwave background (CMB) dipole cannot be ruled out. More generally, current data sets are insufficiently clean to robustly measure the quasar dipole and future studies will require samples that are larger (preferably covering more of the sky) and free of systematic effects to make strong claims regarding their consistency with the CMB dipole.
19 pages, 9 figures
References in corpus (21)
- Planck intermediate results. LVII. Joint Planck LFI and HFI data processing
- A Test of the Cosmological Principle with Quasars
- A Challenge to the Standard Cosmological Model
- Dipoles in the Sky
- The CatWISE Preliminary Catalog: Motions from and Data
- Analyzing the Large-Scale Bulk Flow using CosmicFlows4: Increasing Tension with the Standard Cosmological Model
- The Cosmic Radio Dipole: Estimators and Frequency Dependence
- anesthetic: nested sampling visualisation
- Quaia, the Gaia-unWISE Quasar Catalog: An All-Sky Spectroscopic Quasar Sample
- Testing the Cosmological Principle with CatWISE Quasars: A Bayesian Analysis of the Number-Count Dipole
- Detecting the Cosmic Dipole Anisotropy in Large-Scale Radio Surveys
- Gauging the cosmic microwave background
- Evaluating bulk flow estimators for CosmicFlows-4 measurements
- The cosmic radio dipole: Bayesian estimators on new and old radio surveys
- Large angular scale multipoles at redshift ~0.8
- Planck intermediate results. LVI. Detection of the CMB dipole through modulation of the thermal Sunyaev-Zeldovich effect: Eppur si muove II
- Theoretical systematics in testing the Cosmological Principle with the kinematic quasar dipole
- Explaining Excess Dipole in NVSS Data Using Superhorizon Perturbation
- Resolution of the incongruency of dipole asymmetries within various large radio surveys -- implications for the Cosmological Principle
- Spatially Homogeneous Universes with Late-Time Anisotropy
- An Independent Measure of the Kinematic Dipole from SDSS
Cited by in corpus (8)
- The CosmoVerse White Paper: Addressing observational tensions in cosmology with systematics and fundamental physics
- Cosmic dipole tensions: confronting the cosmic microwave background with infrared and radio populations of cosmological sources
- Resilience and implications of adiabatic CMB cooling
- Clustering properties of the CatWISE2020 quasar catalogue and their impact on the cosmic dipole anomaly
- Matter Dipole and Hubble Tension due to Large Wavelength Perturbations
- Exploring the cosmic microwave background dipole direction using gamma-ray bursts
- Weak Lensing Low Multipoles
- The Cosmological Dipole in Tilted Anisotropic Universes