MIGHTEE: Total intensity radio continuum imaging and the COSMOS / XMM-LSS Early Science fields

Author:

Heywood I123ORCID,Jarvis M J14ORCID,Hale C L5ORCID,Whittam I H14ORCID,Bester H L23ORCID,Hugo B23,Kenyon J S23,Prescott M46ORCID,Smirnov O M23,Tasse C27,Afonso J M89ORCID,Best P N10,Collier J D61112,Deane R P21314,Frank B S3615,Hardcastle M J16ORCID,Knowles K23ORCID,Maddox N17ORCID,Murphy E J18,Prandoni I19ORCID,Randriamampandry S M202122ORCID,Santos M G34ORCID,Sekhar S4623ORCID,Tabatabaei F2425,Taylor A R4615,Thorat K14

Affiliation:

1. Astrophysics, Department of Physics, University of Oxford, Keble Road, Oxford, OX1 3RH, UK

2. Centre for Radio Astronomy Techniques and Technologies, Department of Physics and Electronics, Rhodes University, PO Box 94, Makhanda, 6140, South Africa

3. South African Radio Astronomy Observatory, 2 Fir Street, Black River Park, Observatory, Cape Town, 7925, South Africa

4. Physics Department, University of the Western Cape, Private Bag X17, Bellville, 7535, South Africa

5. Institute for Astronomy, Royal Observatory Edinburgh, Blackford Hill, Edinburgh, EH9 3HJ, UK

6. The Inter-University Institute for Data Intensive Astronomy (IDIA), Department of Astronomy, University of Cape Town, Private Bag X3, Rondebosch, 7701, South Africa

7. GEPI, Observatoire de Paris, CNRS, Université Paris Diderot, 5 Place Jules Janssen, 92190 Meudon, France

8. Instituto de Astrofísica e Ciências do Espaço, Universidade de Lisboa, OAL, Tapada da Ajuda, PT1349-018 Lisboa, Portugal

9. Departamento de Física, Faculdade de Ciências, Universidade de Lisboa, Edifício C8, Campo Grande, PT1749-016 Lisbon, Portugal

10. SUPA, Institute for Astronomy, Royal Observatory Edinburgh, EH9 3HJ, UK

11. School of Science, Western Sydney University, Locked Bag 1797, Penrith, NSW 2751, Australia

12. CSIRO Astronomy and Space Science, PO Box 1130, Bentley, WA, 6102, Australia

13. Wits Centre for Astrophysics, University of the Witwatersrand, 1 Jan Smuts Avenue, Braamfontein, Johannesburg 2050, South Africa

14. Department of Physics, University of Pretoria, Hatfield, Pretoria 0028, South Africa

15. Department of Astronomy, University of Cape Town, Private Bag X3, Rondebosch 7701, South Africa

16. Centre for Astrophysics Research, School of Physics, Astronomy and Mathematics, University of Hertfordshire, College Lane, Hatfield, Hertfordshire AL10 9AB, UK

17. Faculty of Physics, Ludwig-Maximilians-Universität, Scheinerstr. 1, 81679 Munich, Germany

18. National Radio Astronomy Observatory, 520 Edgemont Road, Charlottesville, VA 22903, USA

19. INAF-IRA, Via P. Gobetti 101, I-40129, Italy

20. South African Astronomical Observatory, PO Box 9, Observatory 7935, Cape Town, South Africa

21. Southern African Large Telescope, PO Box 9, Observatory 7935, Cape Town, South Africa

22. A&A, Department of Physics, Faculty of Sciences, University of Antananarivo, B.P. 906, Antananarivo 101, Madagascar

23. National Radio Astronomy Observatory, 1003 Lopezville Road, Socorro, NM 87801, USA

24. School of Astronomy, Institute for Research in Fundamental Sciences, PO Box 131, Tehran, Iran

25. Max-Planck-Institut für Astronomie, Königstuhl 17, D-69117 Heidelberg, Germany

Abstract

Abstract MIGHTEE is a galaxy evolution survey using simultaneous radio continuum, spectro-polarimetry, and spectral line observations from the South African MeerKAT telescope. When complete, the survey will image ∼20 deg2 over the COSMOS, E-CDFS, ELAIS-S1, and XMM-LSS extragalactic deep fields with a central frequency of 1284 MHz. These were selected based on the extensive multiwavelength datasets from numerous existing and forthcoming observational campaigns. Here we describe and validate the data processing strategy for the total intensity continuum aspect of MIGHTEE, using a single deep pointing in COSMOS (1.6 deg2) and a three-pointing mosaic in XMM-LSS (3.5 deg2). The processing includes the correction of direction-dependent effects, and results in thermal noise levels below 2 $\mathrm{\mu }$Jy beam−1 in both fields, limited in the central regions by classical confusion at ∼8″ angular resolution, and meeting the survey specifications. We also produce images at ∼5″ resolution that are ∼3 times shallower. The resulting image products form the basis of the Early Science continuum data release for MIGHTEE. From these images we extract catalogues containing 9,896 and 20,274 radio components in COSMOS and XMM-LSS respectively. We also process a close-packed mosaic of 14 additional pointings in COSMOS and use these in conjunction with the Early Science pointing to investigate methods for primary beam correction of broadband radio images, an analysis that is of relevance to all full-band MeerKAT continuum observations, and wide field interferometric imaging in general. A public release of the MIGHTEE Early Science continuum data products accompanies this article.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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