1. Identifying transient and variable sources in radio images
- Author
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Rowlinson, A., Stewart, A.J., Broderick, J.W., Swinbank, J.D., Wijers, R.A.M.J. (Ralph), Carbone, D., Cendes, Y.N., Fender, R.P., Horst, A.J. van der, Molenaar, G.J., Scheers, L.H.A. (Bart), Staley, T.D., Farrell, S.A. (Sean), Grießmeier, J.-M., Bell, M.R. (Michael), Eislöffel, J., Law, C.J., Leeuwen, J. van, Zarka, P., Rowlinson, A., Stewart, A.J., Broderick, J.W., Swinbank, J.D., Wijers, R.A.M.J. (Ralph), Carbone, D., Cendes, Y.N., Fender, R.P., Horst, A.J. van der, Molenaar, G.J., Scheers, L.H.A. (Bart), Staley, T.D., Farrell, S.A. (Sean), Grießmeier, J.-M., Bell, M.R. (Michael), Eislöffel, J., Law, C.J., Leeuwen, J. van, and Zarka, P.
- Abstract
With the arrival of a number of wide-field snapshot image-plane radio transient surveys, there will be a huge influx of images in the coming years making it impossible to manually analyse the datasets. Automated pipelines to process the information stored in the images are being developed, such as the LOFAR Transients Pipeline, outputting light curves and various transient parameters. These pipelines have a number of tuneable parameters that require training to meet the survey requirements. This paper utilises both observed and s
- Published
- 2019
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