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VIS: the visible imager for Euclid

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arxiv 1608.08603 v1 pith:3QNVN4QL submitted 2016-08-30 astro-ph.IM

VIS: the visible imager for Euclid

classification astro-ph.IM
keywords willeuclidarcsecareacosmicdeg2imageimager
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Euclid-VIS is the large format visible imager for the ESA Euclid space mission in their Cosmic Vision program, scheduled for launch in 2020. Together with the near infrared imaging within the NISP instrument, it forms the basis of the weak lensing measurements of Euclid. VIS will image in a single r+i+z band from 550-900 nm over a field of view of ~0.5 deg2. By combining 4 exposures with a total of 2260 sec, VIS will reach to deeper than mAB=24.5 (10sigma) for sources with extent ~0.3 arcsec. The image sampling is 0.1 arcsec. VIS will provide deep imaging with a tightly controlled and stable point spread function (PSF) over a wide survey area of 15000 deg2 to measure the cosmic shear from nearly 1.5 billion galaxies to high levels of accuracy, from which the cosmological parameters will be measured. In addition, VIS will also provide a legacy dataset with an unprecedented combination of spatial resolution, depth and area covering most of the extra-Galactic sky. Here we will present the results of the study carried out by the Euclid Consortium during the period up to the Critical Design Review.

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Cited by 2 Pith papers

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  1. KiDS-Legacy: Joint analysis of second- and third-order cosmic shear

    astro-ph.CO 2026-06 unverdicted novelty 6.0

    Joint 2nd- and 3rd-order cosmic shear analysis on KiDS-Legacy data produces Ω_m = 0.297^{+0.056}_{-0.040} and S_8 = 0.806^{+0.025}_{-0.023}, consistent with Planck and prior KiDS results while improving Ω_m precision.

  2. A pilot sample of Planck-selected strongly lensed sub-mm galaxies: NOEMA observations and physical characterisation

    astro-ph.GA 2026-07 conditional novelty 5.0

    Four Planck-selected dusty star-forming galaxies are confirmed as strongly lensed at z≈2.3–3.3 via NOEMA CO line detections; a lens model for one source yields µ≈11.