Mitigating Systematic Errors in Angular Correlation Function Measurements from Wide Field Surveys
arXiv:1509.04290 · doi:10.1093/mnras/stv2103
Abstract
We present an investigation into the effects of survey systematics such as varying depth, point spread function (PSF) size, and extinction on the galaxy selection and correlation in photometric, multi-epoch, wide area surveys. We take the Canada-France-Hawaii Telescope Lensing Survey (CFHTLenS) as an example. Variations in galaxy selection due to systematics are found to cause density fluctuations of up to 10% for some small fraction of the area for most galaxy redshift slices and as much as 50% for some extreme cases of faint high-redshift samples. This results in correlations of galaxies against survey systematics of order 1% when averaged over the survey area. We present an empirical method for mitigating these systematic correlations from measurements of angular correlation functions using weighted random points. These weighted random catalogs are estimated from the observed galaxy over densities by mapping these to survey parameters. We are able to model and mitigate the effect of systematic correlations allowing for non-linear dependencies of density on systematics. Applied to CFHTLenS we find that the method reduces spurious correlations in the data by a factor two for most galaxy samples and as much as an order of magnitude in others. Such a treatment is particularly important for an unbiased estimation of very small correlation signals, as e.g. from weak gravitational lensing magnification bias. We impose a criterion for using a galaxy sample in a magnification measurement of the majority of the systematic correlations show improvement and are less than 10% of the expected magnification signal when combined in the galaxy cross correlation. After correction the galaxy samples in CFHTLenS satisfy this criterion for and will be used in a future analysis of magnification.
15 pages, 15 figures Accepted to MNRas
References in corpus (2)
Cited by in corpus (23)
- KiDS-450: Cosmological parameter constraints from tomographic weak gravitational lensing
- Weak lensing for precision cosmology
- RCSLenS: The Red Cluster Sequence Lensing Survey
- Dark Energy Survey Year 1 Results: Cross-Correlation Redshifts - Methods and Systematics Characterization
- Dark Energy Survey Year 3 Results: Galaxy clustering and systematics treatment for lens galaxy samples
- The-wiZZ: Clustering redshift estimation for everyone
- CFHTLenS and RCSLenS: Testing Photometric Redshift Distributions Using Angular Cross-Correlations with Spectroscopic Galaxy Surveys
- Mitigating contamination in LSS surveys: a comparison of methods
- Unbiased methods for removing systematics from galaxy clustering measurements
- Weak lensing magnification in the Dark Energy Survey Science Verification Data
- Disentangling magnification in combined shear-clustering analyses
- Luminous red galaxies in the Kilo Degree Survey: selection with broad-band photometry and weak lensing measurements
- Organised Randoms: Learning and correcting for systematic galaxy clustering patterns in KiDS using self-organising maps
- Constraints on Cosmology and Baryonic Feedback with the Deep Lens Survey Using Galaxy-Galaxy and Galaxy-Mass Power Spectra
- On cosmological bias due to the magnification of shear and position samples in modern weak lensing analyses
- Using angular two-point correlations to self-calibrate the photometric redshift distributions of DECaLS DR9
- DESI Legacy Imaging Surveys Data Release 9: Cosmological Constraints from Galaxy Clustering and Weak Lensing using the Minimal Bias Model
- Clustering of red-sequence galaxies in the fourth data release ofthe Kilo-Degree Survey
- Angular Correlation Function Estimators Accounting for Contamination from Probabilistic Distance Measurements
- KiDS-Legacy: Angular galaxy clustering from deep surveys with complex selection effects
- A Generalized Method for Measuring Weak Lensing Magnification With Weighted Number Counts
- Weak Lensing Reconstruction by Counting DECaLS Galaxies
- Forecasting the potential of weak lensing magnification to enhance LSST large-scale structure analyses