English

Mapping and simulating systematics due to spatially-varying observing conditions in DES Science Verification data

Cosmology and Nongalactic Astrophysics 2016-10-26 v1

Abstract

Spatially-varying depth and characteristics of observing conditions, such as seeing, airmass, or sky background, are major sources of systematic uncertainties in modern galaxy survey analyses, in particular in deep multi-epoch surveys. We present a framework to extract and project these sources of systematics onto the sky, and apply it to the Dark Energy Survey (DES) to map the observing conditions of the Science Verification (SV) data. The resulting distributions and maps of sources of systematics are used in several analyses of DES SV to perform detailed null tests with the data, and also to incorporate systematics in survey simulations. We illustrate the complementarity of these two approaches by comparing the SV data with the BCC-UFig, a synthetic sky catalogue generated by forward-modelling of the DES SV images. We analyse the BCC-UFig simulation to construct galaxy samples mimicking those used in SV galaxy clustering studies. We show that the spatially-varying survey depth imprinted in the observed galaxy densities and the redshift distributions of the SV data are successfully reproduced by the simulation and well-captured by the maps of observing conditions. The combined use of the maps, the SV data and the BCC-UFig simulation allows us to quantify the impact of spatial systematics on N(z)N(z), the redshift distributions inferred using photometric redshifts. We conclude that spatial systematics in the SV data are mainly due to seeing fluctuations and are under control in current clustering and weak lensing analyses. The framework presented here is relevant to all multi-epoch surveys, and will be essential for exploiting future surveys such as the Large Synoptic Survey Telescope (LSST), which will require detailed null-tests and realistic end-to-end image simulations to correctly interpret the deep, high-cadence observations of the sky.

Keywords

Cite

@article{arxiv.1507.05647,
  title  = {Mapping and simulating systematics due to spatially-varying observing conditions in DES Science Verification data},
  author = {B. Leistedt and H. V. Peiris and F. Elsner and A. Benoit-Lévy and A. Amara and A. H. Bauer and M. R. Becker and C. Bonnett and C. Bruderer and M. T. Busha and M. Carrasco Kind and C. Chang and M. Crocce and L. N. da Costa and E. Gaztanaga and E. M. Huff and O. Lahav and A. Palmese and W. J. Percival and A. Refregier and A. J. Ross and E. Rozo and E. S. Rykoff and C. Sánchez and I. Sadeh and I. Sevilla-Noarbe and F. Sobreira and E. Suchyta and M. E. C. Swanson and R. H. Wechsler and F. B. Abdalla and S. Allam and M. Banerji and G. M. Bernstein and R. A. Bernstein and E. Bertin and S. L. Bridle and D. Brooks and E. Buckley-Geer and D. L. Burke and D. Capozzi and A. Carnero Rosell and J. Carretero and C. E. Cunha and C. B. D'Andrea and D. L. DePoy and S. Desai and H. T. Diehl and P. Doel and T. F. Eifler and A. E. Evrard and A. Fausti Neto and B. Flaugher and P. Fosalba and J. Frieman and D. W. Gerdes and D. Gruen and R. A. Gruendl and G. Gutierrez and K. Honscheid and D. J. James and M. Jarvis and S. Kent and K. Kuehn and N. Kuropatkin and T. S. Li and M. Lima and M. A. G. Maia and M. March and J. L. Marshall and P. Martini and P. Melchior and C. J. Miller and R. Miquel and R. C. Nichol and B. Nord and R. Ogando and A. A. Plazas and K. Reil and A. K. Romer and A. Roodman and E. Sanchez and B. Santiago and V. Scarpine and M. Schubnell and R. C. Smith and M. Soares-Santos and G. Tarle and J. Thaler and D. Thomas and V. Vikram and A. R. Walker and W. Wester and Y. Zhang and J. Zuntz},
  journal= {arXiv preprint arXiv:1507.05647},
  year   = {2016}
}

Comments

13 pages, 12 figures