Lensing bias on cosmological parameters from bright standard sirens
Sofia Canevarolo, Nora Elisa Chisari

TL;DR
This paper investigates how gravitational lensing affects the measurement of cosmological parameters using bright standard sirens from gravitational wave observations, emphasizing the importance of modeling lensing effects for accurate cosmology.
Contribution
It provides a systematic analysis of lensing bias on cosmological parameters from bright standard sirens and discusses mitigation strategies for future GW observatories.
Findings
Lensing bias can be comparable to statistical uncertainties in cosmological parameters.
Fluctuations in lensing bias vary across different mock catalog realizations.
Modeling lensing effects is crucial for accurate cosmological inference from GW standard sirens.
Abstract
Next generation gravitational waves (GWs) observatories are expected to measure GW signals with unprecedented sensitivity, opening new, independent avenues to learn about our Universe. The distance-redshift relation is a fulcrum for cosmology and can be tested with GWs emitted by merging binaries of compact objects, called standard sirens, thanks to the fact that they provide the absolute distance from the source. On the other hand, fluctuations of the intervening matter density field induce modifications on the measurement of luminosity distance compared to that of a homogeneous universe. Assuming that the redshift information is obtained through the detection of an electromagnetic counterpart, we investigate the impact that lensing of GWs might have in the inference of cosmological parameters. We treat lensing as a systematic error and check for residual bias on the values of the…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Cosmology and Gravitation Theories · Astronomy and Astrophysical Research
