Probing dipole and quadrupole anisotropy in Gamma-ray bursts from Swift dataset
arXiv:2606.21182 · doi:10.3390/universe12060185
Abstract
Testing the validity of the cosmological principle's assumption of large-scale isotropy remains crucial for modern cosmology. We investigate the angular distributions of gamma-ray bursts using the GRB catalog from Neil Gehrels Swift Observatory (Swift) for an independent probe of isotropy. Using the HEALPix spherical harmonic decomposition, we estimate the dipole and quadrupole amplitudes and compare them against the null hypothesis obtained from 500 isotropic Monte Carlo realizations. Our results show 2.9 dipole and 7.2 quadrupole amplitude when applied to the raw data. To account for observational biases, we then create an exposure map using the pointing history, roll angle, and the partial coding fraction of the Swift Telescope. Reevaluating the null hypothesis using this map reduces the significance of these anisotropies to less than . Therefore, our findings confirm statistical isotropy of the GRB sky using the Swift data, consistent with previous studies. We have also made the Swift exposure map publicly available.
18 pages, 17 figures. Accepted for publication in Universe
References in corpus (10)
- The Supernova -- Gamma-Ray Burst Connection
- A Challenge to the Standard Cosmological Model
- Testing the Randomness in the Sky-Distribution of Gamma-Ray Bursts
- Testing Isotropic Universe Using the Gamma-Ray Burst Data of Fermi / GBM
- Some statistical remarks on the Giant GRB Ring
- Instrumental Tip-of-the-iceberg Effects on the Prompt Emission of Swift/BAT Gamma-ray Bursts
- Probing cosmic isotropy in the Local Universe
- A study of Dipolar Signal in distant Quasars with various observables
- Probing cosmic isotropy with Gamma-ray bursts: A dipole and quadrupole analysis of BATSE and Fermi GBM data
- Reanalysing large-scale structure using an updated gamma-ray burst spatial density approach