Euclid preparation

Astronomy & Astrophysics EDP Sciences 689 (2024) a252

Authors:

M Sereno, S Farrens, L Ingoglia, GF Lesci, L Baumont, G Covone, C Giocoli, F Marulli, S Miranda La Hera, M Vannier, A Biviano, S Maurogordato, L Moscardini, N Aghanim, S Andreon, N Auricchio, M Baldi, S Bardelli, F Bellagamba, C Bodendorf, D Bonino, E Branchini, M Brescia, J Brinchmann, S Camera, V Capobianco, C Carbone, VF Cardone, J Carretero, S Casas, M Castellano, S Cavuoti, A Cimatti, R Cledassou, G Congedo, CJ Conselice, L Conversi, Y Copin, L Corcione, F Courbin, HM Courtois, M Cropper, A Da Silva, H Degaudenzi, AM Di Giorgio, J Dinis, F Dubath, CAJ Duncan, X Dupac, S Dusini, M Farina, S Ferriol, M Frailis, E Franceschi, M Fumana, S Galeotta, B Garilli, B Gillis, A Grazian, F Grupp, SVH Haugan, W Holmes, I Hook, F Hormuth, A Hornstrup, P Hudelot, K Jahnke, B Joachimi, E Keihänen, S Kermiche, A Kiessling, B Kubik, M Kunz, H Kurki-Suonio, S Ligori, PB Lilje, V Lindholm, I Lloro, D Maino, E Maiorano, O Mansutti, O Marggraf, K Markovic, N Martinet, R Massey, E Medinaceli, S Mei, Y Mellier, M Meneghetti, E Merlin, G Meylan, M Moresco, E Munari, S-M Niemi, T Nutma, C Padilla, S Paltani, F Pasian, K Pedersen, V Pettorino, S Pires, G Polenta, M Poncet, LA Popa, F Raison, R Rebolo, A Renzi, J Rhodes, G Riccio, E Romelli, M Roncarelli, E Rossetti, R Saglia, D Sapone, B Sartoris, M Schirmer, P Schneider, T Schrabback, A Secroun, G Seidel, S Serrano, C Sirignano, G Sirri, L Stanco, J-L Starck, P Tallada-Crespí, AN Taylor, I Tereno, R Toledo-Moreo, F Torradeflot, I Tutusaus, EA Valentijn, L Valenziano, T Vassallo, A Veropalumbo, Y Wang, J Weller, A Zacchei, G Zamorani, J Zoubian, E Zucca, A Boucaud, E Bozzo, C Cerna, C Colodro-Conde, D Di Ferdinando, R Farinelli, H Israel, N Mauri, C Neissner, V Scottez, M Tenti, M Wiesmann, Y Akrami, V Allevato, C Baccigalupi, M Ballardini, D Benielli, S Borgani, AS Borlaff, C Burigana, R Cabanac, A Cappi, CS Carvalho, G Castignani, T Castro, G Cañas-Herrera, KC Chambers, AR Cooray, J Coupon, S Davini, G De Lucia, G Desprez, S Di Domizio, H Dole, JA Escartin Vigo, S Escoffier, I Ferrero, L Gabarra, E Gaztanaga, K George, F Giacomini, G Gozaliasl, H Hildebrandt, JJE Kajava, V Kansal, CC Kirkpatrick, L Legrand, P Liebing, A Loureiro, J Macias-Perez, M Magliocchetti, G Mainetti, R Maoli, M Martinelli, CJAP Martins, SZ Matthew, M Maturi, L Maurin, RB Metcalf, P Monaco, G Morgante, S Nadathur, AA Nucita, L Patrizii, A Peel, M Pöntinen, V Popa, C Porciani, D Potter, P Reimberg, Z Sakr, AG Sánchez, A Schneider, E Sefusatti, P Simon, A Spurio Mancini, J Stadel, SA Stanford, J Steinwagner, R Teyssier, J Valiviita, M Viel

Euclid preparation

Astronomy & Astrophysics EDP Sciences 685 (2024) a109

Authors:

T Castro, S Borgani, M Costanzi, J Dakin, K Dolag, A Fumagalli, A Ragagnin, A Saro, AMC Le Brun, N Aghanim, A Amara, S Andreon, N Auricchio, M Baldi, S Bardelli, C Bodendorf, D Bonino, E Branchini, M Brescia, J Brinchmann, S Camera, V Capobianco, C Carbone, J Carretero, S Casas, M Castellano, S Cavuoti, A Cimatti, G Congedo, CJ Conselice, L Conversi, Y Copin, L Corcione, F Courbin, HM Courtois, M Cropper, A Da Silva, H Degaudenzi, AM Di Giorgio, J Dinis, F Dubath, CAJ Duncan, X Dupac, M Farina, S Farrens, S Ferriol, M Frailis, E Franceschi, M Fumana, S Galeotta, B Gillis, C Giocoli, A Grazian, F Grupp, SVH Haugan, W Holmes, F Hormuth, A Hornstrup, K Jahnke, E Keihänen, S Kermiche, A Kiessling, M Kilbinger, B Kubik, M Kunz, H Kurki-Suonio, S Ligori, PB Lilje, V Lindholm, I Lloro, E Maiorano, O Mansutti, O Marggraf, K Markovic, N Martinet, F Marulli, R Massey, S Maurogordato, E Medinaceli, M Meneghetti, E Merlin, G Meylan, M Moresco, L Moscardini, E Munari, S-M Niemi, C Padilla, S Paltani, F Pasian, V Pettorino, S Pires, G Polenta, M Poncet, LA Popa, L Pozzetti, F Raison, R Rebolo, A Renzi, J Rhodes, G Riccio, E Romelli, M Roncarelli, R Saglia, D Sapone, B Sartoris, P Schneider, T Schrabback, A Secroun, G Seidel, S Serrano, C Sirignano, G Sirri, L Stanco, J-L Starck, P Tallada-Crespí, AN Taylor, I Tereno, R Toledo-Moreo, F Torradeflot, I Tutusaus, EA Valentijn, L Valenziano, T Vassallo, A Veropalumbo, Y Wang, J Weller, A Zacchei, G Zamorani, J Zoubian, E Zucca, A Biviano, E Bozzo, C Cerna, C Colodro-Conde, D Di Ferdinando, N Mauri, C Neissner, Z Sakr, V Scottez, M Tenti, M Viel, M Wiesmann, Y Akrami, S Anselmi, C Baccigalupi, M Ballardini, AS Borlaff, S Bruton, C Burigana, R Cabanac, A Cappi, CS Carvalho, G Castignani, G Cañas-Herrera, KC Chambers, AR Cooray, J Coupon, O Cucciati, A Díaz-Sánchez, S Davini, S de la Torre, G De Lucia, G Desprez, S Di Domizio, H Dole, S Escoffier, I Ferrero, F Finelli, L Gabarra, K Ganga, J Garcia-Bellido, F Giacomini, G Gozaliasl, H Hildebrandt, S Ilić, A Jimanez Munñoz, JJE Kajava, V Kansal, CC Kirkpatrick, L Legrand, A Loureiro, J Macias-Perez, M Magliocchetti, G Mainetti, R Maoli, M Martinelli, CJAP Martins, S Matthew, M Maturi, L Maurin, RB Metcalf, M Migliaccio, P Monaco, G Morgante, S Nadathur, L Patrizii, A Pezzotta, V Popa, C Porciani, D Potter, M Pöntinen, P Reimberg, P-F Rocci, AG Sánchez, J Schaye, A Schneider, E Sefusatti, M Sereno, P Simon, A Spurio Mancini, J Stadel, SA Stanford, J Steinwagner, G Testera, M Tewes, R Teyssier, S Toft, S Tosi, A Troja, M Tucci, J Valiviita, D Vergani

Euclid preparation

Astronomy & Astrophysics EDP Sciences 684 (2024) A139-A139

Authors:

GF Lesci, M Sereno, M Radovich, G Castignani, L Bisigello, F Marulli, L Moscardini, L Baumont, G Covone, S Farrens, C Giocoli, L Ingoglia, S Miranda La Hera, M Vannier, A Biviano, S Maurogordato, N Aghanim, A Amara, S Andreon, N Auricchio, M Baldi, S Bardelli, R Bender, C Bodendorf, D Bonino, CAJ Duncan

Abstract:

Aims. We derived galaxy colour selections from Euclid and ground-based photometry, aiming to accurately define background galaxy samples in cluster weak-lensing analyses. These selections have been implemented in the Euclid data analysis pipelines for galaxy clusters. Methods. Given any set of photometric bands, we developed a method for the calibration of optimal galaxy colour selections that maximises the selection completeness, given a threshold on purity. Such colour selections are expressed as a function of the lens redshift. Results. We calibrated galaxy selections using simulated ground-based griz and EuclidY$_{E}$J$_{E}$H$_{E}$ photometry. Both selections produce a purity higher than 97%. The griz selection completeness ranges from 30% to 84% in the lens redshift range z$_{l}$ ∈ [0.2, 0.8]. With the full grizY$_{E}$J$_{E}$H$_{E}$ selection, the completeness improves by up to 25 percentage points, and the z$_{l}$ range extends up to z$_{l}$ = 1.5. The calibrated colour selections are stable to changes in the sample limiting magnitudes and redshift, and the selection based on griz bands provides excellent results on real external datasets. Furthermore, the calibrated selections provide stable results using alternative photometric aperture definitions obtained from different ground-based telescopes. The griz selection is also purer at high redshift and more complete at low redshift compared to colour selections found in the literature. We find excellent agreement in terms of purity and completeness between the analysis of an independent, simulated Euclid galaxy catalogue and our calibration sample, except for galaxies at high redshifts, for which we obtain up to 50 percentage points higher completeness. The combination of colour and photo-z selections applied to simulated Euclid data yields up to 95% completeness, while the purity decreases down to 92% at high z$_{l}$. We show that the calibrated colour selections provide robust results even when observations from a single band are missing from the ground-based data. Finally, we show that colour selections do not disrupt the shear calibration for stage III surveys. The first Euclid data releases will provide further insights into the impact of background selections on the shear calibration

Euclid preparation

Astronomy & Astrophysics EDP Sciences 684 (2024) a138

Authors:

AC Deshpande, T Kitching, A Hall, ML Brown, N Aghanim, L Amendola, S Andreon, N Auricchio, M Baldi, S Bardelli, R Bender, D Bonino, E Branchini, M Brescia, J Brinchmann, S Camera, GP Candini, V Capobianco, C Carbone, VF Cardone, J Carretero, S Casas, FJ Castander, M Castellano, S Cavuoti, A Cimatti, R Cledassou, G Congedo, CJ Conselice, L Conversi, L Corcione, F Courbin, HM Courtois, M Cropper, A Da Silva, H Degaudenzi, M Douspis, F Dubath, CAJ Duncan, X Dupac, M Farina, S Farrens, S Ferriol, P Fosalba, M Frailis, E Franceschi, M Fumana, S Galeotta, B Garilli, B Gillis, C Giocoli, A Grazian, F Grupp, SVH Haugan, H Hoekstra, W Holmes, A Hornstrup, P Hudelot, K Jahnke, E Keihänen, S Kermiche, M Kilbinger, M Kunz, H Kurki-Suonio, S Ligori, PB Lilje, V Lindholm, I Lloro, E Maiorano, O Mansutti, O Marggraf, K Markovic, N Martinet, F Marulli, R Massey, S Mei, Y Mellier, M Meneghetti, G Meylan, L Moscardini, S-M Niemi, JW Nightingale, T Nutma, C Padilla, S Paltani, F Pasian, K Pedersen, V Pettorino, S Pires, G Polenta, J Pollack, M Poncet, LA Popa, F Raison, A Renzi, J Rhodes, G Riccio, E Romelli, M Roncarelli, E Rossetti, R Saglia, D Sapone, B Sartoris, P Schneider, T Schrabback, A Secroun, G Seidel, S Serrano, C Sirignano, G Sirri, L Stanco, P Tallada-Crespí, AN Taylor, I Tereno, R Toledo-Moreo, F Torradeflot, I Tutusaus, EA Valentijn, L Valenziano, T Vassallo, Y Wang, J Weller, A Zacchei, G Zamorani, J Zoubian, E Zucca, A Boucaud, E Bozzo, C Colodro-Conde, D Di Ferdinando, G Fabbian, J Graciá-Carpio, N Mauri, V Scottez, M Tenti, Y Akrami, C Baccigalupi, A Balaguera-Antolínez, M Ballardini, F Bernardeau, A Biviano, A Blanchard, AS Borlaff, C Burigana, R Cabanac, A Cappi, CS Carvalho, G Castignani, T Castro, KC Chambers, AR Cooray, J Coupon, S Davini, S de la Torre, G De Lucia, G Desprez, H Dole, JA Escartin, S Escoffier, I Ferrero, F Finelli, J Garcia-Bellido, K George, F Giacomini, G Gozaliasl, H Hildebrandt, JJE Kajava, V Kansal, CC Kirkpatrick, L Legrand, A Loureiro, J Macias-Perez, M Magliocchetti, G Mainetti, R Maoli, M Martinelli, CJAP Martins, S Matthew, L Maurin, RB Metcalf, P Monaco, G Morgante, S Nadathur, AA Nucita, L Patrizii, A Peel, M Pöntinen, V Popa, C Porciani, D Potter, A Pourtsidou, P Reimberg, Z Sakr, AG Sánchez, A Schneider, E Sefusatti, M Sereno, A Shulevski, A Spurio Mancini, J Steinwagner, R Teyssier, M Viel, IA Zinchenko, P Fleury

A novel Bayesian approach for decomposing the radio emission of quasars: I. Modelling the radio excess in red quasars

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 529:4 (2024) 3939-3957

Authors:

B-H Yue, PN Best, KJ Duncan, G Calistro-Rivera, LK Morabito, JW Petley, I Prandoni, HJA Röttgering, DJB Smith

Abstract:

ABSTRACT Studies show that both radio jets from the active galactic nuclei (AGNs) and the star formation (SF) activity in quasar host galaxies contribute to the quasar radio emission; yet their relative contributions across the population remain unclear. Here, we present an improved parametric model that allows us to statistically separate the SF and AGN components in observed quasar radio flux density distributions, and investigate how their relative contributions evolve with AGN bolometric luminosity ($L_\mathrm{bol}$) and redshift (z) using a fully Bayesian method. Based on the newest data from LOw-Frequency ARray Two-metre Sky Survey data release 2, our model gives robust fitting results out to $z\sim 4$, showing a quasar host galaxy SF rate (SFR) evolution that increases with bolometric luminosity and with redshift out to $z\sim 4$. This differs from the global cosmic SFR density, perhaps due to the importance of galaxy mergers. The prevalence of radio AGN emissions increases with quasar luminosity, but has little dependence on redshift. Furthermore, our new methodology and large sample size allow us to subdivide our data set to investigate the role of other parameters. Specifically, in this paper, we explore quasar colour and demonstrate that the radio excess in red quasars is due to an enhancement in AGN-related emission, since the host galaxy SF contribution to the total radio emission is independent of quasar colour. We also find evidence that this radio enhancement occurs mostly in quasars with weak or intermediate radio power.