Erratum: The SLUGGS Survey: a comparison of total-mass profiles of early-type galaxies from observations and cosmological simulations, to ∼4 effective radii
Notice bibliographique
Résumé
This is an erratum to the paper “The SLUGGS Survey: A comparison of total-mass profiles of early-type galaxies from observations and cosmological simulations, to ∼4 effective radii” that was published in 2018, MNRAS, 476, 4543, which we refer to as the original paper. Here we correct a bug identified in the code that generated 1D profiles for the model 2 stellar mass component from the 2D luminosity distribution (the deprojection of the Multi-Gaussian Expansion). This bug scaled the stellar mass component by the (M/L)* factor twice instead of only once, resulting in an overcontribution to the total profile by the stellar mass component. Since this process occurs in the final analysis stage of our code, none of the best-fitting parameters derived through the MCMC process is affected. Rather, only the final total-mass density profile for model 2 is affected, and the effect is greatest for galaxies with (M/L)* > 1. As a result, the published total-mass density profile slope values determined by model 2 published in the original paper were too steep by an average of ∼0.1. The updated γtot values (measured over three separate radial intervals, including the radial range 0.4 − 4Re) can be found in Table 1. We highlight that when the (M/L)* value is correctly implemented, the total-mass profiles determined by models 1 and 2 are in good agreement in the central regions of the galaxy. This is apparent in Fig. 1, in which the comparison of γtot values derived by models 1 and 2 show a much better agreement than in the original paper. The updated profiles for the eight galaxies we focus on in the original paper are plotted in Fig. 2. As discussed in the original paper, the galaxies for which the discrepancy between γtot still exists are those for which model 1 produces a visually bad kinematic fit to the input data. Updated comparison of common parameters between models 1 and 2. The top panel is a comparison of the inclination measurements, the middle panel shows the anisotropy measurements, and the bottom panel shows the total-mass density profile measurements. Within the bottom panel, γtot values derived from model 2 have been fitted in the radial range 0.1 Re − 4 Re. Open circles indicate galaxies for which model 1 provides a visually bad fit to the data. The top two panels are identical to that published in the original paper, but we note that the agreement between the two models of γtot (bottom panel) has been significantly improved. Updated comparison of common parameters between models 1 and 2. The top panel is a comparison of the inclination measurements, the middle panel shows the anisotropy measurements, and the bottom panel shows the total-mass density profile measurements. Within the bottom panel, γtot values derived from model 2 have been fitted in the radial range 0.1 Re − 4 Re. Open circles indicate galaxies for which model 1 provides a visually bad fit to the data. The top two panels are identical to that published in the original paper, but we note that the agreement between the two models of γtot (bottom panel) has been significantly improved. Updated mass density profiles generated with the separate models. Dashed grey lines show the total-mass density slopes generated by model 1 for each individual galaxy. Since model 2 separates the total mass into stellar and dark components, we plot three lines for model 2. The orange solid line shows the stellar component, while the blue solid line shows the dark matter component. The dashed black line represents the total-mass density slope for model 2. The vertical dashed green line shows the assumed break radius (fixed to be 20 kpc) for each galaxy, whereas the vertical solid cyan line indicates the effective radius (Re) for each galaxy. The shaded grey region indicates the radial extent of the observational data used for each galaxy. Here, the stellar profiles have a lower normalisation than in the original paper, resulting in a better agreement between the total mass profiles of models 1 and 2 in this plot, especially in the inner regions. Updated mass density profiles generated with the separate models. Dashed grey lines show the total-mass density slopes generated by model 1 for each individual galaxy. Since model 2 separates the total mass into stellar and dark components, we plot three lines for model 2. The orange solid line shows the stellar component, while the blue solid line shows the dark matter component. The dashed black line represents the total-mass density slope for model 2. The vertical dashed green line shows the assumed break radius (fixed to be 20 kpc) for each galaxy, whereas the vertical solid cyan line indicates the effective radius (Re) for each galaxy. The shaded grey region indicates the radial extent of the observational data used for each galaxy. Here, the stellar profiles have a lower normalisation than in the original paper, resulting in a better agreement between the total mass profiles of models 1 and 2 in this plot, especially in the inner regions. Updated γtot values for table 5 in the original paper, also including γtot values measured in the radial range 0.4 − 4Re. Columns: (1) Galaxy name. (2) Fitted slope of the total density profile, measured at 0.1 − 4 Re (Column 6 in the original paper). (3) Fitted slope of the total density profile, measured at 0.0 − 4 Re (Column 7 in the original paper). (4) Fitted slope of the total density profile, measured at 0.4 − 4 Re. Updated γtot values for table 5 in the original paper, also including γtot values measured in the radial range 0.4 − 4Re. Columns: (1) Galaxy name. (2) Fitted slope of the total density profile, measured at 0.1 − 4 Re (Column 6 in the original paper). (3) Fitted slope of the total density profile, measured at 0.0 − 4 Re (Column 7 in the original paper). (4) Fitted slope of the total density profile, measured at 0.4 − 4 Re. The average value of slopes has been updated to γtot = −2.12 ± 0.05. As in the original paper, this value is steeper than the isothermal value of −2, and hence the conclusions of the original paper in this respect have not changed. In section 6.2 of the original paper we describe the slopes we measured to be fully consistent with the value of γtot = −2.25 measured by Yıldırım et al. (2017). With our updated mean γtot value of −2.12 ± 0.05, this is no longer true, and the Yıldırım et al. (2017) value is now steeper than what is measured for SLUGGS galaxies. The normalised profiles presented in figure 5 of the original paper have changed imperceptably, and hence we have not provided an updated version of that plot. We provide an updated version of figure 6 in the original paper comparing the γtot values to other observations (Poci, Cappellari & McDermid 2017; Serra et al. 2016; Tortora et al. 2014; Auger et al. 2010; Sonnenfeld et al. 2013) in Fig. 3. Although the new values are slightly shallower than those presented in the original paper, the agreement between our values and those of other studies is still excellent. Updated variation of total-mass density slopes with stellar mass of the SLUGGS galaxies, compared with observations from the literature. The values measured for the SLUGGS galaxies in this work are plotted as orange squares. Observational measurements from Auger et al. (2010), Sonnenfeld et al. (2013), Tortora et al. (2014), Serra et al. (2016), and Poci et al. (2017) are included. We note that these studies did not use homogeneous mass models nor radial ranges in calculating total mass density slopes. The moving median of all observations is shown by the dashed line, with the 16th–84th percentile range shaded in grey. We note that none of the conclusions resulting from the original version of this plot has changed. Updated variation of total-mass density slopes with stellar mass of the SLUGGS galaxies, compared with observations from the literature. The values measured for the SLUGGS galaxies in this work are plotted as orange squares. Observational measurements from Auger et al. (2010), Sonnenfeld et al. (2013), Tortora et al. (2014), Serra et al. (2016), and Poci et al. (2017) are included. We note that these studies did not use homogeneous mass models nor radial ranges in calculating total mass density slopes. The moving median of all observations is shown by the dashed line, with the 16th–84th percentile range shaded in grey. We note that none of the conclusions resulting from the original version of this plot has changed. When comparing the total-mass density slopes to simulated values, which was conducted in the original paper in the radial range 0.4 − 4Re, the effect of an artificially high (M/L)* is augmented, as the dark matter dominance in this radial range is higher. As a result, the effect of the identified bug is large when comparing the results to simulations. We confirm that our identified bug did not affect any of the γtot measurements made for simulated galaxies. In the original paper, a large offset was noted in the slopes between the SLUGGS galaxies, and those of the simulated Magneticum and EAGLE glaxies. The updated offset has now been reduced by ∼0.2, and hence the offset between SLUGGS galaxies and Magneticum is now only 0.1 (reducing the discrepancy from 4.4 σ to 1.5 σ), whilst the offset with EAGLE galaxies is now 0.3 (reducing the discrepancy from 6.6 σ to 3.4 σ). We provide an updated figure comparing these measurements to the simulations in Fig. 4. Updated variation of total-mass density slopes with stellar mass of the SLUGGS galaxies, compared to the simulated values of the Magneticum and the EAGLE simulations. Due to inner resolution effects within the simulations, we fit γtot only over the radial range 0.4 Re − 4 Re. We therefore plot the observations from our work fitted in the corresponding radial interval. The main EAGLE and Magneticum moving medians have been shown as dashed cyan and black lines, with their 16th–84th percentile regions shaded in cyan and grey respectively. We note that at M* > 1011 M⊙, the main EAGLE galaxies display an upturn in γtot values, whereas this is not the case for the Magneticum galaxies. We include as blue squares the γtot values for galaxies from the EAGLE high-res run.. Here, the SLUGGS values are shallower than in the original paper by ∼0.2, resulting in a significantly better agreement with the simulations in this measured radial range. The two largest outliers are NGC 2699, and NGC 4551, both of which have a suppressed dark matter component. The mean offset with Magneticum is now ∼0.1, and the mean offset with EAGLE values is now ∼0.3. Updated variation of total-mass density slopes with stellar mass of the SLUGGS galaxies, compared to the simulated values of the Magneticum and the EAGLE simulations. Due to inner resolution effects within the simulations, we fit γtot only over the radial range 0.4 Re − 4 Re. We therefore plot the observations from our work fitted in the corresponding radial interval. The main EAGLE and Magneticum moving medians have been shown as dashed cyan and black lines, with their 16th–84th percentile regions shaded in cyan and grey respectively. We note that at M* > 1011 M⊙, the main EAGLE galaxies display an upturn in γtot values, whereas this is not the case for the Magneticum galaxies. We include as blue squares the γtot values for galaxies from the EAGLE high-res run.. Here, the SLUGGS values are shallower than in the original paper by ∼0.2, resulting in a significantly better agreement with the simulations in this measured radial range. The two largest outliers are NGC 2699, and NGC 4551, both of which have a suppressed dark matter component. The mean offset with Magneticum is now ∼0.1, and the mean offset with EAGLE values is now ∼0.3. Overall our general conclusions are unchanged.
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Comment cette classification a été obtenuedéplier
Prédiction machine sur la base complète
Imitation des enseignantsNi prévalence calibrée, ni vérité terrain. Validation humaine à venir. Le volet Gemma est une étiquette directe du modèle pour chaque travail de la base, lue sur la notice réduite au titre. Le volet Codex est un classifieur appris des 10 348 étiquettes directes de Codex et calibré sur les taux pondérés de l'échantillon; les champs sans appui suffisant ne portent aucun appel Codex. Le mode candidate est l'union des deux volets; le consensus est leur intersection. Ces sorties portent le statut machine_predicted_unvalidated et ne sont pas des étiquettes humaines.
Scores du classifieur distillé par catégorie (deux têtes)
| Catégorie | Codex | Gemma |
|---|---|---|
| Métarecherche | 0,002 | 0,027 |
| Méta-épidémiologie (sens strict) | 0,001 | 0,001 |
| Méta-épidémiologie (sens large) | 0,001 | 0,001 |
| Bibliométrie | 0,004 | 0,004 |
| Études des sciences et des technologies | 0,002 | 0,001 |
| Communication savante | 0,002 | 0,002 |
| Science ouverte | 0,001 | 0,002 |
| Intégrité de la recherche | 0,001 | 0,003 |
| Charge utile insuffisante (le modèle a refusé de juger) | 0,034 | 0,027 |
Scores machine (provisoires)
Les deux têtes enseignantes du modèle étudiant, lues sur ce travail. Un score ordonne la base pour la relecture; il n'affirme jamais une catégorie, et le statut de validation accompagne chaque rangée tel quel.
Scores de référence d'un modèle non mature (critères de maturité non atteints, 7 itérations). Un score ordonne; il n'affirme jamais une catégorie.
score_only:v0-immature-baseline · tel quel depuis la passe de notation : score_only signifie que le nombre peut ordonner les travaux, et qu'aucune étiquette de catégorie n'en découleClassification
machine, non validéePrédiction automatique; un appel candidat d’une seule source (Gemma direct ou Codex distillé), pas un consensus.
Le détail, modèle par modèle et score par score, se trouve en fin de page sous « Comment cette classification a été obtenue ».