CFHTLenS: Galaxy bias as function of scale, stellar mass, and colour. Conflicts with predictions by semi-analytic models
arXiv:2012.12299 · doi:10.1051/0004-6361/202038119
Abstract
Galaxy models predict a tight relation between the clustering of galaxies and dark matter on cosmological scales, but predictions differ notably in the details. We used this opportunity and tested two semi-analytic models by the Munich and Durham groups with data from the Canada-France-Hawaii Telescope Lensing Survey (CFHTLenS). For the test we measured the scale-dependent galaxy bias factor and correlation factor from linear to non-linear scales of at two redshifts for galaxies with stellar mass between and . Our improved gravitational lensing technique accounts for the intrinsic alignment of sources and the magnification of lens galaxies for better constraints for the galaxy-matter correlation . Galaxy bias in CFHTLenS increases with and stellar mass, it is colour-dependent, revealing the individual footprints of galaxy types. Despite a reasonable model agreement for the relative change with both scale and galaxy properties, there is a clear conflict for with no model preference: the model galaxies are too weakly clustered. This may flag a model problem at for all stellar masses. As in the models, however, there is a high correlation between matter and galaxy density on all scales, and galaxy bias is typically consistent with a deterministic bias on linear scales. Only our blue and low-mass galaxies of about at show, contrary to the models, a weak tendency towards a stochastic bias on linear scales where . This result is of interest for cosmological probes, such as , that rely on a deterministic galaxy bias.
17+13(Appendix) pages, 13+6 figures; Figs. A.1-A.4 are key figures; accepted by A&A, in press; Monte-Carlo realisations of and will be provided as online material on http://cdsweb.u-strasbg.fr/cgi-bin/qcat?J/A+A/