Resolving the blazar CGRaBS J0809+5341 in the presence of telescope systematics
arXiv:1610.03773 · doi:10.1093/mnras/stw2653
Abstract
We analyse Very Long Baseline Interferometry (VLBI) observations of the blazar CGRaBS J0809+5341 using Bayesian inference methods. The observation was carried out at 5 GHz using 8 telescopes that form part of the European VLBI Network. Imaging and deconvolution using traditional methods imply that the blazar is unresolved. To search for source structure beyond the diffraction limit, we perform Bayesian model selection between three source models (point, elliptical Gaussian, and circular Gaussian). Our modelling jointly accounts for antenna-dependent gains and system equivalent flux densities. We obtain posterior distributions for the various source and instrumental parameters along with the corresponding uncertainties and correlations between them. We find that there is very strong evidence (>1e9 :1) in favour of elliptical Gaussian structure and using this model derive the apparent brightness temperature distribution of the blazar, accounting for uncertainties in the shape estimates. To test the integrity of our method, we also perform model selection on synthetic observations and use this to develop a Bayesian criterion for the minimum resolvable source size and consequently the maximum measurable brightness temperature for a given interferometer, dependent on the signal-to-noise ratio (SNR) of the data incorporating the aforementioned systematics. We find that calibration errors play an increasingly important role in determining the over-resolution limit for SNR>>100. We show that it is possible to exploit the resolving power of future VLBI arrays down to about 5 per cent of the size of the naturally-weighted restoring beam, if the gain calibration is precise to 1 per cent or less.
12 pages, 8 figures, accepted for publication in MNRAS
References in corpus (6)
- Bayes in the sky: Bayesian inference and model selection in cosmology
- Revisiting the radio interferometer measurement equation. I. A full-sky Jones formalism
- Bayesian Inference for Radio Observations
- Montblanc: GPU accelerated Radio Interferometer Measurement Equations in support of Bayesian Inference for Radio Observations
- Very Long Baseline Interferometry with the SKA
- High Resolution Radio Astronomy Using Very Long Baseline Interferometry
Cited by in corpus (7)
- A repeating fast radio burst source localised to a nearby spiral galaxy
- The Repeating Fast Radio Burst FRB 121102 as Seen on Milliarcsecond Angular Scales
- Resolving the decades-long transient FIRST J141918.9+394036: an orphan long gamma-ray burst or a young magnetar nebula?
- The radio structure of the peculiar narrow-line Seyfert 1 galaxy candidate J1100+4421
- The expansion of the GRB 221009A afterglow
- A probabilistic approach to phase calibration: I. Effects of source structure on fringe-fitting
- SKA-VLBI Key Science Programmes