论文标题
DESI明亮的星系调查:最终目标选择,设计和验证
DESI Bright Galaxy Survey: Final Target Selection, Design, and Validation
论文作者
论文摘要
在接下来的五年中,黑暗能光谱仪器(DESI)将在基特峰国家天文台的4M Mayall望远镜上使用10张光谱仪,并在4M Mayall望远镜上进行第一阶段IV的深色能源银河系调查。 Desi Bright Galaxy Survey(BGS)在$ z <0.6 $时,将在黑暗能源主导的时代中生产最详细的宇宙地图,红移超过14,000摄氏度$^2 $。在这项工作中,我们介绍并验证最终的BGS目标选择和调查设计。从传统调查中,BGS将以$ r <19.5 $的限制样本(BGS Bright)目标。 $ 19.5 <r <20.175 $样本,颜色选择为高红移效率(BGS淡淡);和较小的低Z类样品。 BGS将使用曝光时间观察这些目标,缩放以达到均匀的完整性,并在脚印上访问每个点三遍。我们使用在主要调查之前进行的调查验证计划的观察以及逼真的模拟,以表明BG可以完成其策略并最佳地使用“明亮”时间。我们证明BGS靶标具有恒星污染<1%,并且其密度不取决于成像性能。我们还确认BGS Bright将达到> 80%的光纤分配效率。最后,我们表明BGS明亮和微弱的红移成功率将达到> 95%的成功率,而对观察条件无显着依赖。 BGS符合广泛的科学应用的要求。 BGS将产生最精确的Baryon声学振荡,并在$ z <0.4 $的情况下进行红移空间扭曲测量值。它还提供了利用需要高度完整且密集的星系样本(例如N点统计,多跟踪)的新方法的机会。 BGS进一步提供了一个强大的工具来研究星系种群以及星系与暗物质之间的关系。
Over the next five years, the Dark Energy Spectroscopic Instrument (DESI) will use 10 spectrographs with 5000 fibers on the 4m Mayall Telescope at Kitt Peak National Observatory to conduct the first Stage-IV dark energy galaxy survey. At $z < 0.6$, the DESI Bright Galaxy Survey (BGS) will produce the most detailed map of the Universe during the dark energy dominated epoch with redshifts of >10 million galaxies over 14,000 deg$^2$. In this work, we present and validate the final BGS target selection and survey design. From the Legacy Surveys, BGS will target a $r < 19.5$ magnitude-limited sample (BGS Bright); a fainter $19.5 < r < 20.175$ sample, color-selected to have high redshift efficiency (BGS Faint); and a smaller low-z quasar sample. BGS will observe these targets using exposure times, scaled to achieve uniform completeness, and visit each point on the footprint three times. We use observations from the Survey Validation programs conducted prior to the main survey along with realistic simulations to show that BGS can complete its strategy and make optimal use of `bright' time. We demonstrate that BGS targets have stellar contamination <1% and that their densities do not depend strongly on imaging properties. We also confirm that BGS Bright will achieve >80% fiber assignment efficiency. Finally, we show that BGS Bright and Faint will achieve >95% redshift success rates with no significant dependence on observing conditions. BGS meets the requirements for an extensive range of scientific applications. BGS will yield the most precise Baryon Acoustic Oscillations and Redshift-Space Distortions measurements at $z < 0.4$. It also presents opportunities to exploit new methods that require highly complete and dense galaxy samples (e.g. N-point statistics, multi-tracers). BGS further provides a powerful tool to study galaxy populations and the relations between galaxies and dark matter.