Exploring Joint Observation of the CSST Shear and clustering of astrophysical gravitational wave source measurements
Pengfei Su, Yan Gong, Qi Xiong, Dingao Hu, Hengjie Lin, Furen Deng, and Xuelei Chen

TL;DR
This paper forecasts how combining data from the CSST weak lensing survey and third-generation gravitational wave detectors can improve constraints on cosmological parameters and distinguish different astrophysical source scenarios.
Contribution
It develops a theoretical framework for joint analysis of GW source clustering and cosmic shear, demonstrating improved parameter constraints and source differentiation capabilities.
Findings
Achieves sub-5% precision on H0 and dark energy equation of state.
Constrains GW source bias parameters to 4-5% accuracy.
Provides a method to resolve mass-redshift degeneracies in dark siren analyses.
Abstract
We present a comprehensive forecast for cosmological constraints using the joint observation of the cosmic shear signal from the Chinese Space Station Survey Telescope (CSST) and the clustering signal from the next-generation gravitational wave (GW) detector networks, e.g. Einstein Telescope (ET) and Cosmic Explorer (CE). By leveraging the angular clustering of astrophysical gravitational wave sources (AGWS) from the third-generation detectors and CSST's weak lensing surveys, we develop a theoretical framework to compute auto- and cross-angular power spectra of AGWS clustering, cosmic shear, and their cross-correlation. Mock datasets are generated by considering the detector-specific selection functions, uncertainties in luminosity distance, and weak lensing systematics. We employ the Markov Chain Monte Carlo (MCMC) methods to constrain the cosmological…
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Taxonomy
TopicsCosmology and Gravitation Theories · Galaxies: Formation, Evolution, Phenomena · Pulsars and Gravitational Waves Research
