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Featured researches published by S. Marinoni.


Astronomy and Astrophysics | 2017

Gaia Data Release 1 - The photometric data

F. van Leeuwen; D. W. Evans; F. De Angeli; C. Jordi; G. Busso; Carla Cacciari; M. Riello; E. Pancino; Giuseppe Altavilla; A. G. A. Brown; P. Burgess; J. M. Carrasco; G. Cocozza; S. Cowell; M. Davidson; F. De Luise; C. Fabricius; S. Galleti; G. Gilmore; G. Giuffrida; Nigel Hambly; D. Harrison; Simon T. Hodgkin; G. Holland; I. Macdonald; S. Marinoni; P. Montegriffo; P. Osborne; S. Ragaini; P. J. Richards

Context. This paper presents an overview of the photometric data that are part of the first Gaia data release. Aims. The principles of the processing and the main characteristics of the Gaia photometric data are presented. Methods. The calibration strategy is outlined briefly and the main properties of the resulting photometry are presented. Results. Relations with other broadband photometric systems are provided. The overall precision for the Gaia photometry is shown to be at the milli-magnitude level and has a clear potential to improve further in future releases.


Astronomy and Astrophysics | 2016

Gaia Data Release 1 - Principles of the photometric calibration of the G band

J. M. Carrasco; D. W. Evans; P. Montegriffo; C. Jordi; F. van Leeuwen; M. Riello; H. Voss; F. De Angeli; G. Busso; C. Fabricius; Carla Cacciari; M. Weiler; E. Pancino; A. G. A. Brown; G. Holland; P. Burgess; P. Osborne; Giuseppe Altavilla; M. Gebran; S. Ragaini; S. Galleti; G. Cocozza; S. Marinoni; M. Bellazzini; A. Bragaglia; L. Federici; L. Balaguer-Núñez

Context. Gaia is an ESA cornerstone mission launched on 19 December 2013 aiming to obtain the most complete and precise 3D map of our Galaxy by observing more than one billion sources. This paper is part of a series of documents explaining the data processing and its results for Gaia Data Release 1, focussing on the G band photometry. Aims. This paper describes the calibration model of the Gaia photometric passband for Gaia Data Release 1. Methods. The overall principle of splitting the process into internal and external calibrations is outlined. In the internal calibration, a self-consistent photometric system is generated. Then, the external calibration provides the link to the absolute photometric flux scales. Results. The Gaia photometric calibration pipeline explained here was applied to the first data release with good results. Details are given of the various calibration elements including the mathematical formulation of the models used and of the extraction and preparation of the required input parameters (e.g. colour terms). The external calibration in this first release provides the absolute zero point and photometric transformations from the Gaia G passband to other common photometric systems. Conclusions. This paper describes the photometric calibration implemented for the first Gaia data release and the instrumental effects taken into account. For this first release no aperture losses, radiation damage, and other second-order effects have not yet been implemented in the calibration.


Astronomy and Astrophysics | 2018

Gaia Data Release 2. Photometric content and validation

D. W. Evans; M. Riello; F. De Angeli; J. M. Carrasco; P. Montegriffo; C. Fabricius; C. Jordi; L. Palaversa; C. Diener; G. Busso; Carla Cacciari; F. van Leeuwen; P. Burgess; M. Davidson; D. Harrison; Simon T. Hodgkin; E. Pancino; P. J. Richards; Giuseppe Altavilla; L. Balaguer-Núñez; M. A. Barstow; M. Bellazzini; A. G. A. Brown; M. Castellani; G. Cocozza; F. De Luise; A. Delgado; C. Ducourant; S. Galleti; G. Gilmore

This work presents results from the European Space Agency (ESA) space mission Gaia. Gaia data are being processed by the Gaia Data Processing and Analysis Consortium (DPAC). Funding for the DPAC is provided by national institutions, in particular the institutions participating in the Gaia MultiLateral Agreement (MLA). The Gaia mission website is https://www.cosmos.esa.int/gaia. The Gaia Archive website is http://gea.esac.esa.int/archive/. This work has been supported by the United Kingdom Rutherford Appleton Laboratory, the United Kingdom Science and Technology Facilities Council (STFC) through grant ST/L006553/1, and the United Kingdom Space Agency (UKSA) through grant ST/N000641/1. This work was supported by the MINECO (Spanish Ministry of Economy) through grant ESP2016-80079-C2-1-R (MINECO/FEDER, UE) and ESP2014-55996-C2-1-R (MINECO/FEDER, UE) and MDM-2014-0369 of ICCUB (Unidad de Excelencia “Maria de Maeztu”). This work was supported by the Italian funding agencies Agenzia Spaziale Italiana (ASI) through grants I/037/08/0, I/058/10/0, 2014-025- R.0, and 2014- 025-R.1.2015 to INAF and contracts I/008/10/0 and 2013/030/I.0 to ALTEC S.p.A and Istituto Nazionale di Astrofisica (INAF). This research has made use of the APASS database, located at the AAVSO web site. Funding for APASS has been provided by the Robert Martin Ayers Sciences Fund. We thank A. Vallenari for supplying us with spectra for the validation of the external flux calibration and passband determination


Astronomy and Astrophysics | 2017

The gaia -ESO survey: Calibration strategy

E. Pancino; C. Lardo; Giuseppe Altavilla; S. Marinoni; S. Ragaini; G. Cocozza; M. Bellazzini; Elena Sabbi; M. Zoccali; P. Donati; Ulrike Heiter; S. E. Koposov; R. Blomme; Thierry Morel; S. Simón-Díaz; A. Lobel; Caroline Soubiran; Josefina Montalbán; M. Valentini; Andrew R. Casey; S. Blanco-Cuaresma; P. Jofre; C. C. Worley; L. Magrini; A. Hourihane; P. François; Sofia Feltzing; G. Gilmore; S. Randich; Martin Asplund

The Gaia -ESO survey (GES) is now in its fifth and last year of observations and has produced tens of thousands of high-quality spectra of stars in all Milky Way components. This paper presents the strategy behind the selection of astrophysical calibration targets, ensuring that all GES results on radial velocities, atmospheric parameters, and chemical abundance ratios will be both internally consistent and easily comparable with other literature results, especially from other large spectroscopic surveys and from Gaia . The calibration of GES is particularly delicate because of (i) the large space of parameters covered by its targets, ranging from dwarfs to giants, from O to M stars; these targets have a large wide of metallicities and also include fast rotators, emission line objects, and stars affected by veiling; (ii) the variety of observing setups, with different wavelength ranges and resolution; and (iii) the choice of analyzing the data with many different state-of-the-art methods, each stronger in a different region of the parameter space, which ensures a better understanding of systematic uncertainties. An overview of the GES calibration and homogenization strategy is also given, along with some examples of the usage and results of calibrators in GES iDR4, which is the fourth internal GES data release and will form the basis of the next GES public data release. The agreement between GES iDR4 recommended values and reference values for the calibrating objects are very satisfactory. The average offsets and spreads are generally compatible with the GES measurement errors, which in iDR4 data already meet the requirements set by the main GES scientific goals.


Monthly Notices of the Royal Astronomical Society | 2017

GRAWITA: VLT Survey Telescope observations of the gravitational wave sources GW150914 and GW151226

E. Brocato; M. Capaccioli; M. Branchesi; Eliana Palazzi; M. Dadina; S. Ascenzi; L. Tomasella; S. Campana; A. Stamerra; S. Yang; G. Giuffrida; L. Stella; L. A. Antonelli; S. Marinoni; L. Limatola; Enrico Cappellaro; S. Covino; M. Lisi; P. M. Marrese; G. Cella; G. Iannicola; G. Tagliaferri; Valerio D'Elia; G. L. Israel; G. Greco; Vincenzo Testa; L. Amati; M. Razzano; F. Longo; L. Pulone

We report the results of deep optical follow-up surveys of the first two gravitational-wave sources, GW150914 and GW151226, done by the GRAvitational Wave Inaf TeAm Collaboration (GRAWITA). The VLT Survey Telescope (VST) responded promptly to the gravitational-wave alerts sent by the LIGO and Virgo Collaborations, monitoring a region of


Archive | 2017

The

E. Pancino; C. Lardo; Giuseppe Altavilla; S. Marinoni; S. Ragaini; G. Cocozza; M. Bellazzini; Elena Sabbi; M. Zoccali; P. Donati; Ulrike Heiter; S. E. Koposov; R. Blomme; Thierry Morel; S. Simón-Díaz; A. Lobel; C. Soubiran; Josefina Montalbán; M. Valentini; Andrew R. Casey; S. Blanco-Cuaresma; P. Jofre; Charlotte Clare Worley; L. Magrini; Anna Patricia Hourihane; P. Francois; Sofia Feltzing; Gerard Francis Gilmore; S. Randich; Martin Asplund

90


Archive | 2017

\textit{Gaia}

F. Arenou; C. Babusiaux; S. Blanco-Cuaresma; R. Borrachero; T. Cantat-Gaudin; C. Fabricius; K. Findeisen; Amina Helmi; A. Hutton; X. Luri; P. M. Marrese; S. Marinoni; A. C. Robin; R. Sordo; S. Soria; C. Turon; E. Utrilla Molina; A. Vallenari

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Astronomy and Astrophysics | 2017

-ESO Survey: Calibration strategy

J. M. Carrasco; D. W. Evans; P. Montegriffo; C. Jordi; F. van Leeuwen; M. Riello; H. Voss; F. De Angeli; G. Busso; C. Fabricius; Carla Cacciari; M. Weiler; E. Pancino; A. G. A. Brown; G. Holland; P. Burgess; P. Osborne; Giuseppe Altavilla; M. Gebran; S. Ragaini; S. Galleti; G. Cocozza; S. Marinoni; M. Bellazzini; A. Bragaglia; L. Federici; L. Balaguer-Núñez

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Archive | 2016

Gaia DR1 documentation Chapter 7 : Catalogue consolidation and validation

E. Pancino; C. Lardo; Giuseppe Altavilla; S. Marinoni; S. Ragaini; G. Cocozza; M. Bellazzini; Elena Sabbi; M. Zoccali; P. Donati; Ulrike Heiter; S. E. Koposov; R. Blomme; Thierry Morel; S. Simón-Díaz; A. Lobel; C. Soubiran; Josefina Montalbán; M. Valentini; Andrew R. Casey; S. Blanco-Cuaresma; P. Jofre; C. C. Worley; L. Magrini; A. Hourihane; P. Francois; Sofia Feltzing; G. Gilmore; S. Randich; Martin Asplund

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E. Pancino

Instituto Politécnico Nacional

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C. Fabricius

University of Barcelona

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D. W. Evans

University of Cambridge

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