Automated Measurement of Quasar Redshift with a Gaussian Process
arXiv:2006.07343 · doi:10.1093/mnras/staa2826
Abstract
We develop an automated technique to measure quasar redshifts in the Baryon Oscillation Spectroscopic Survey (BOSS) of the Sloan Digital Sky Survey (SDSS). Our technique is an extension of an earlier Gaussian process method for detecting damped Lyman-alpha absorbers (DLAs) in quasar spectra with known redshifts. We apply this technique to a subsample of SDSS DR12 with BAL quasars removed and redshift larger than 2.15. We show that we are broadly competitive to existing quasar redshift estimators, disagreeing with the PCA redshift by more than 0.5 in only 0.38% of spectra. Our method produces a probabilistic density function for the quasar redshift, allowing quasar redshift uncertainty to be propagated to downstream users. We apply this method to detecting DLAs, accounting in a Bayesian fashion for redshift uncertainty. Compared to our earlier method with a known quasar redshift, we have a moderate decrease in our ability to detect DLAs, predominantly in the noisiest spectra. The area under curve drops from 0.96 to 0.91. Our code is publicly available.
14 pages, 11 figures, accepted by MNRAS with some improvements and clarifications to discussion
References in corpus (8)
- The DESI Experiment Part I: Science,Targeting, and Survey Design
- The Sloan Digital Sky Survey Quasar Catalog: twelfth data release
- CIV 1549 as an Eigenvector 1 Parameter for Active Galactic Nuclei
- An improved measurement of the flux distribution of the Ly-alpha forest in QSO absorption spectra: the effect of continuum fitting, metal contamination and noise properties
- Damped Lyman-alpha absorbers as a probe of stellar feedback
- Statistical properties of damped Lyman-alpha systems from Sloan Digital Sky Survey DR12
- Fully probabilistic quasar continua predictions near Lyman-α with conditional neural spline flows
- Evaluating and Improving the Redshifts of z>2.2 Quasars