Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published November 2021 | Accepted Version + Published
Journal Article Open

Euclid preparation. XII. Optimizing the photometric sample of the Euclid survey for galaxy clustering and galaxy-galaxy lensing analyses

Pocino, A.
Tutusaus, I. ORCID icon
Castander, F. J. ORCID icon
Fosalba, P. ORCID icon
Crocce, M.
Porredon, A. ORCID icon
Camera, S. ORCID icon
Cardone, V.
Casas, S.
Kitching, T. ORCID icon
Lacasa, F.
Martinelli, M.
Pourtsidou, A. ORCID icon
Sakr, Z.
Andreon, S. ORCID icon
Auricchio, N. ORCID icon
Baccigalupi, C. ORCID icon
Balaguera-Antolínez, A. ORCID icon
Baldi, M. ORCID icon
Balestra, A. ORCID icon
Bardelli, S. ORCID icon
Bender, R. ORCID icon
Biviano, A. ORCID icon
Bodendorf, C.
Bonino, D. ORCID icon
Boucaud, A. ORCID icon
Bozzo, E. ORCID icon
Branchini, E. ORCID icon
Brescia, M. ORCID icon
Brinchmann, J. ORCID icon
Burigana, C. ORCID icon
Cabanac, R. ORCID icon
Capobianco, V. ORCID icon
Cappi, A. ORCID icon
Carvalho, C. S.
Castellano, M. ORCID icon
Castignani, G. ORCID icon
Cavuoti, S. ORCID icon
Cimatti, A. ORCID icon
Cledassou, R. ORCID icon
Colodro-Conde, C.
Congedo, G. ORCID icon
Conselice, C. J. ORCID icon
Conversi, L. ORCID icon
Copin, Y. ORCID icon
Corcione, L. ORCID icon
Costille, A.
Coupon, J.
Courtois, H. M. ORCID icon
Cropper, M. ORCID icon
Cuby, J.-G. ORCID icon
Da Silva, A.
de la Torre, S. ORCID icon
Di Ferdinando, D.
Dubath, F.
Duncan, C.
Dupac, X.
Dusini, S. ORCID icon
Farrens, S. ORCID icon
Ferreira, P. G.
Ferrero, I. ORCID icon
Finelli, F. ORCID icon
Fotopoulou, S. ORCID icon
Frailis, M. ORCID icon
Franceschi, E. ORCID icon
Galeotta, S. ORCID icon
Garilli, B. ORCID icon
Gillard, W. ORCID icon
Gillis, B. ORCID icon
Giocoli, C. ORCID icon
Gozaliasl, G. ORCID icon
Graciá-Carpio, J. ORCID icon
Grupp, F.
Guzzo, L.
Holmes, W.
Hormuth, F.
Jahnke, K. ORCID icon
Keihanen, E. ORCID icon
Kermiche, S. ORCID icon
Kiessling, A.
Kirkpatrick, C. C.
Kunz, M. ORCID icon
Kurki-Suonio, H. ORCID icon
Ligori, S. ORCID icon
Lilje, P. B.
Lloro, I. ORCID icon
Maino, D. ORCID icon
Maiorano, E. ORCID icon
Mansutti, O. ORCID icon
Marggraf, O. ORCID icon
Martinet, N. ORCID icon
Marulli, F. ORCID icon
Massey, R. ORCID icon
Maurogordato, S.
Medinaceli, E. ORCID icon
Mei, S.
Meneghetti, M. ORCID icon
Metcalf, R. Benton ORCID icon
Meylan, G.
Moresco, M. ORCID icon
Morin, B.
Moscardini, L. ORCID icon
Munari, E.
Nakajima, R.
Neissner, C. ORCID icon
Nichol, R. C. ORCID icon
Niemi, S.
Nightingale, J. ORCID icon
Padilla, C. ORCID icon
Paltani, S. ORCID icon
Pasian, F.
Patrizii, L. ORCID icon
Pedersen, K.
Percival, W. J. ORCID icon
Pettorino, V. ORCID icon
Pires, S. ORCID icon
Polenta, G. ORCID icon
Poncet, M.
Popa, L.
Potter, D.
Pozzetti, L. ORCID icon
Raison, F.
Renzini, A. ORCID icon
Rhodes, J. ORCID icon
Riccio, G. ORCID icon
Romelli, E. ORCID icon
Roncarelli, M. ORCID icon
Rossetti, E.
Saglia, R. ORCID icon
Sánchez, A. G. ORCID icon
Sapone, D. ORCID icon
Scaramella, R. ORCID icon
Schneider, P. ORCID icon
Scottez, V.
Secroun, A. ORCID icon
Seidel, G.
Serrano, S.
Sirignano, C.
Sirri, G.
Stanco, L.
Sureau, F.
Taylor, A. N.
Tenti, M. ORCID icon
Tereno, I. ORCID icon
Teyssier, R. ORCID icon
Toledo-Moreo, R. ORCID icon
Tramacere, A. ORCID icon
Valentijn, E. A. ORCID icon
Valenziano, L. ORCID icon
Valiviita, J. ORCID icon
Vassallo, T.
Viel, M. ORCID icon
Wang, Y. ORCID icon
Welikala, N.
Whittaker, L.
Zacchei, A. ORCID icon
Zamorani, G. ORCID icon
Zoubian, J.
Zucca, E. ORCID icon
Euclid Collaboration

Abstract

Photometric redshifts (photo-zs) are one of the main ingredients in the analysis of cosmological probes. Their accuracy particularly affects the results of the analyses of galaxy clustering with photometrically selected galaxies (GC_(ph)) and weak lensing. In the next decade, space missions such as Euclid will collect precise and accurate photometric measurements for millions of galaxies. These data should be complemented with upcoming ground-based observations to derive precise and accurate photo-zs. In this article we explore how the tomographic redshift binning and depth of ground-based observations will affect the cosmological constraints expected from the Euclid mission. We focus on GC_(ph) and extend the study to include galaxy-galaxy lensing (GGL). We add a layer of complexity to the analysis by simulating several realistic photo-z distributions based on the Euclid Consortium Flagship simulation and using a machine learning photo-z algorithm. We then use the Fisher matrix formalism together with these galaxy samples to study the cosmological constraining power as a function of redshift binning, survey depth, and photo-z accuracy. We find that bins with an equal width in redshift provide a higher figure of merit (FoM) than equipopulated bins and that increasing the number of redshift bins from ten to 13 improves the FoM by 35% and 15% for GC_(ph) and its combination with GGL, respectively. For GC_(ph), an increase in the survey depth provides a higher FoM. However, when we include faint galaxies beyond the limit of the spectroscopic training data, the resulting FoM decreases because of the spurious photo-zs. When combining GC_(ph) and GGL, the number density of the sample, which is set by the survey depth, is the main factor driving the variations in the FoM. Adding galaxies at faint magnitudes and high redshift increases the FoM, even when they are beyond the spectroscopic limit, since the number density increase compensates for the photo-z degradation in this case. We conclude that there is more information that can be extracted beyond the nominal ten tomographic redshift bins of Euclid and that we should be cautious when adding faint galaxies into our sample since they can degrade the cosmological constraints.

Additional Information

© ESO 2021. Article published by EDP Sciences. Received 12 April 2021; Accepted 5 July 2021; Published online 11 November 2021. A. Pocino acknowledges financial support from the Secretaria d'Universitats i Recerca del Departament d'Empresa i Coneixement de la Generalitat de Catalunya with additional funding from the European FEDER/ERF funds, L'FSE inverteix en el teu futur. I. Tutusaus acknowledges support from the Spanish Ministry of Science, Innovation and Universities through grant ESP2017-89838, and the H2020 programme of the European Commission through grant 776247. S. Camera acknowledges support from the 'Departments of Excellence 2018-2022' Grant awarded by the Italian Ministry of Education, University and Research (MIUR) L. 232/2016. S. Camera is supported by MIUR through Rita Levi Montalcini project 'PROMETHEUS – Probing and Relating Observables with Multi-wavelength Experiments To Help Enlightening the Universe's Structure'. A. Pourtsidou is a UK Research and Innovation Future Leaders Fellow, grant MR/S016066/1. The Euclid Consortium acknowledges the European Space Agency and a number of agencies and institutes that have supported the development of Euclid, in particular the Academy of Finland, the Agenzia Spaziale Italiana, the Belgian Science Policy, the Canadian Euclid Consortium, the Centre National d'Etudes Spatiales, the Deutsches Zentrum für Luftund Raumfahrt, the Danish Space Research Institute, the Fundação para a Ciência e a Tecnologia, the Ministerio de Economia y Competitividad, the National Aeronautics and Space Administration, the Netherlandse Onderzoekschool Voor Astronomie, the Norwegian Space Agency, the Romanian Space Agency, the State Secretariat for Education, Research and Innovation (SERI) at the Swiss Space Office (SSO), and the United Kingdom Space Agency. A complete and detailed list is available on the Euclid web site (http://www.euclid-ec.org).

Attached Files

Published - aa41061-21.pdf

Accepted Version - 2104.05698.pdf

Files

2104.05698.pdf
Files (5.7 MB)
Name Size Download all
md5:568ebfbb7b309530e97e23a8016210f8
2.2 MB Preview Download
md5:15d38a807ad931df952b1666d39f0b5c
3.5 MB Preview Download

Additional details

Created:
August 22, 2023
Modified:
October 23, 2023