Detection of the significant impact of source clustering on higher-order statistics with DES Year 3 weak gravitational lensing data
Abstract
We demonstrate and measure the impact of source galaxy clustering on higher-order summary statistics of weak gravitational lensing data. By comparing simulated data with galaxies that either trace or do not trace the underlying density field, we show this effect can exceed measurement uncertainties for common higher-order statistics for certain analysis choices. Source clustering effects are larger at small scales and for statistics applied to combinations of low and high redshift samples, and diminish at high redshift. We evaluate the impact on different weak lensing observables, finding that third moments and wavelet phase harmonics are more affected than peak count statistics. Using Dark Energy Survey Year 3 data we construct null tests for the source-clustering-free case, finding a -value of (2.6 ) using third-order map moments and (6.5 ) using wavelet phase harmonics. The impact of source clustering on cosmological inference can be either be included in the model or minimized through \textit{ad-hoc} procedures (e.g. scale cuts). We verify that the procedures adopted in existing DES Y3 cosmological analyses (using map moments and peaks) were sufficient to render this effect negligible. Failing to account for source clustering can significantly impact cosmological inference from higher-order gravitational lensing statistics, e.g. higher-order N-point functions, wavelet-moment observables (including phase harmonics and scattering transforms), and deep learning or field level summary statistics of weak lensing maps. We provide recipes both to minimise the impact of source clustering and to incorporate source clustering effects into forward-modelled mock data.
Keywords
Cite
@article{arxiv.2307.13860,
title = {Detection of the significant impact of source clustering on higher-order statistics with DES Year 3 weak gravitational lensing data},
author = {M. Gatti and N. Jeffrey and L. Whiteway and V. Ajani and T. Kacprzak and D. Zürcher and C. Chang and B. Jain and J. Blazek and E. Krause and A. Alarcon and A. Amon and K. Bechtol and M. Becker and G. Bernstein and A. Campos and R. Chen and A. Choi and C. Davis and J. Derose and H. T. Diehl and S. Dodelson and C. Doux and K. Eckert and J. Elvin-Poole and S. Everett and A. Ferte and D. Gruen and R. Gruendl and I. Harrison and W. G. Hartley and K. Herner and E. M. Huff and M. Jarvis and N. Kuropatkin and P. F. Leget and N. MacCrann and J. McCullough and J. Myles and A. Navarro-Alsina and S. Pandey and J. Prat and M. Raveri and R. P. Rollins and A. Roodman and C. Sanchez and L. F. Secco and I. Sevilla-Noarbe and E. Sheldon and T. Shin and M. Troxel and I. Tutusaus and T. N. Varga and B. Yanny and B. Yin and Y. Zhang and J. Zuntz and S. S. Allam and O. Alves and M. Aguena and D. Bacon and E. Bertin and D. Brooks and D. L. Burke and A. Carnero Rosell and J. Carretero and R. Cawthon and L. N. da Costa and T. M. Davis and J. De Vicente and S. Desai and P. Doel and J. García-Bellido and G. Giannini and G. Gutierrez and I. Ferrero and J. Frieman and S. R. Hinton and D. L. Hollowood and K. Honscheid and D. J. James and K. Kuehn and O. Lahav and J. L. Marshall and J. Mena-Fernández and R. Miquel and R. L. C. Ogando and A. Palmese and M. E. S. Pereira and A. A. Plazas Malagón and M. Rodriguez-Monroy and S. Samuroff and E. Sanchez and M. Schubnell and M. Smith and F. Sobreira and E. Suchyta and M. E. C. Swanson and G. Tarle and N. Weaverdyck and P. Wiseman},
journal= {arXiv preprint arXiv:2307.13860},
year = {2023}
}
Comments
5 pages, 2 figures, submitted to MNRAS Letters