GWSim: Python package for creating mock GW samples for different astrophysical populations and cosmological models of binary black holes
arXiv:2210.05724 · doi:10.1051/0004-6361/202245216
Abstract
Precision cosmology with gravitational wave (GW) sources requires a deeper understanding of the interplay between GW source population and cosmological parameters governing the dynamics of the Universe. With the swift increase in GW detections, it is necessary to develop a tool for exploring many aspects of cosmology and fundamental physics; this tools allows to simulate GW mock samples for several populations and cosmological models. We have developed a new code called GWSim, which allows us to make a large sample of GW mock events from a broad range of configurations, while varying the cosmology, the merger rate, and the GW source parameters (i.e. mass and spin distributions in particular) for a given network of GW detectors. A large sample of simulated mock GW events will be useful for improving our understanding of the statistical properties of the distribution of GW sources, as long as it is detectable for a given detector noise and an astrophysical and cosmological model. It will also be useful to compare simulated samples with the observed distribution of the GW sources from data and infer the underlying population of the GW source parameters and cosmology. We restricted the cosmology to spatially flat universes, including models with varying dark energy equation of state. The GWSim code provides each mock event with a position in the sky and a redshift; these values can be those of random host galaxies coming from an isotropic and homogeneous simulated Universe or a user-supplied galaxy catalog. We used realistic detector configurations of the LIGO and Virgo network of detectors to demonstrate the performance of this code for the latest observation runs and the upcoming observation run.
18 pages, 13 figures, published in A&A. Figure 5 has been corrected with respect to the previous arxiv version
References in corpus (23)
- The NumPy array: a structure for efficient numerical computation
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Cosmic Star Formation History
- The Cosmic Evolution Survey (COSMOS) -- Overview
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- Double Compact Objects III: Gravitational Wave Detection Rates
- Mind the gap: The location of the lower edge of the pair instability supernovae black hole mass gap
- Illuminating Black Hole Binary Formation Channels with Spins in Advanced LIGO
- Very massive stars, pair-instability supernovae and intermediate-mass black holes with the SEVN code
- Distinguishing Spin-Aligned and Isotropic Black Hole Populations With Gravitational Waves
- First measurement of the Hubble constant from a dark standard siren using the Dark Energy Survey galaxies and the LIGO/Virgo binary-black-hole merger GW170814
- Constraints on the cosmic expansion history from GWTC-3
- Precision of Hubble constant derived using black hole binary absolute distances and statistical redshift information
- Spectral sirens: cosmology from the full mass distribution of compact binaries
- All-purpose, all-sky photometric redshifts for the Legacy Imaging Surveys Data Release 8
- Testing the general theory of relativity using gravitational wave propagation from dark standard sirens
- Binary black holes population and cosmology in new lights: Signature of PISN mass and formation channel in GWTC-3
- The binary black hole spin distribution likely broadens with redshift
- Cosmology and modified gravitational wave propagation from binary black hole population models
- Host galaxy properties of mergers of stellar binary black holes and their implications for advanced LIGO gravitational wave sources
- The time delay distribution and formation metallicity of LIGO-Virgo's binary black holes
- Current and future constraints on cosmology and modified gravitational wave friction from binary black holes
- The redshift dependence of black hole mass distribution: Is it reliable for standard sirens cosmology?
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