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Lingsong Ge

Publications and source records attributed to Lingsong Ge.

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Reconstructing AGN X-ray spectral parameter distributions with Bayesian methods I: Spectral analysis

X-ray spectra of active galactic nuclei (AGN) consist of several different emission and absorption components, which are often fitted manually with models chosen on a case-by-case basis. However, it becomes very hard for a survey with a large number of sources. In addition, when the signal-to-noise ratio (S/N) is low, there is a tendency to adopt an overly simplistic model, biasing the parameters and making their uncertainties unrealistic. We developed a Bayesian method for automatically fitting XMM-Newton AGN X-ray spectra with a consistent and physically motivated model including all spectral components, even when the data quality is low. An empirical model is used for the non-X-ray background. Noninformative priors were applied on the photon index (Gamma) and the hydrogen column density (N_H), while informative priors obtained from deep surveys were used to marginalize the remaining parameters. We tested this method using a realistically simulated sample of 5000 spectra reproducing typical population properties. Spectral parameters were randomly drawn from the priors, taking the luminosity function into account. Meaningful posterior probability density distributions were obtained for, for instance, N_H, Gamma, and L_X, even at low S/N, but in this case, we were unable to constrain the parameters of secondary components such as the reflection and soft excess. As a comparison, a maximum-likelihood approach with model selection among six models of different complexities was also applied to this sample. We find clear failures in the measurement of Gamma in most cases, and of N_H when the source is unabsorbed (N_H < 10^22 cm-2). The results can hardly be used to reconstruct the parent distributions of the spectral parameters, while our Bayesian method provides meaningful multidimensional posteriors that will be used in a subsequent paper to infer the population. (abridged)

astro-ph.HE

Reconstructing AGN X-ray spectral parameter distributions with Bayesian methods II: Population inference

We present a new Bayesian method for reconstructing the parent distributions of X-ray spectral parameters of active galactic nuclei (AGN) in large surveys. The method uses the probability distribution function (PDF) of posteriors obtained by fitting a consistent physical model to each object with a Bayesian method. The PDFs are often broadly distributed and may present systematic biases, such that naive point estimators or even some standard parametric modeling are not sufficient to reconstruct the parent population without obvious bias. Our method uses a transfer function computed from a large realistic simulation with the same selection as in the actual sample to redistribute the stacked PDF and then forward-fit a nonparametric model to it in a Bayesian way, so that the biases in the PDFs are properly taken into account. In this way, we are able to accurately reconstruct the parent distributions. We apply our spectral fitting and population inference methods to the XMM-COSMOS survey as a pilot study. For the 819 AGN detected in the COSMOS field, 663 (8%) of which have spectroscopic redshifts (spec-z) and the others high-quality photometric redshifts (photo-z), we find prominent bi-modality with widely separated peaks in the distribution of the absorbing hydrogen column density (N_H) and an indication that absorbed AGN have harder photon indices. A clear decreasing trend of the absorbed AGN fraction versus the intrinsic 2-10keV luminosity is observed, but there is no clear evolution in the absorbed fraction with redshift. Our method is designed to be readily applicable to large AGN samples such as the XXL survey, and eventually eROSITA.

astro-ph.HE