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Identifying transient and variable sources in radio images

机译:在无线图像中识别瞬态和可变源

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摘要

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 simulated datasets to demonstrate different machine learning strategies that can be used to train these parameters. We use a simple anomaly detection algorithm and a penalised logistic regression algorithm. The datasets used are from LOFAR observations and we process the data using the LOFAR Transients Pipeline; however the strategies developed are applicable to any light curve datasets at different frequencies and can be adapted to different automated pipelines. These machine learning strategies are publicly available as Python tools that can be downloaded and adapted to different datasets (https://github.com/AntoniaR/TraP_ML_tools).
机译:None

著录项

  • 来源
    《Astronomy and Computing》 |2019年第1期|共19页
  • 作者单位

    Anton Pannekoek Institute University of Amsterdam Postbus 94249 1090 GE Amsterdam The Netherlands;

    Sydney Institute for Astronomy School of Physics The University of Sydney Sydney NSW 2006 Australia;

    ASTRON the Netherlands Institute for Radio Astronomy Postbus 2 NL-7990 AA Dwingeloo The Netherlands;

    University of Washington Department of Astronomy Box 351580 Seattle WA 98195 USA;

    Anton Pannekoek Institute University of Amsterdam Postbus 94249 1090 GE Amsterdam The Netherlands;

    Department of Physics and Astronomy Texas Tech University Box 1051 Lubbock TX 79409-1051 USA;

    Dunlap Institute for Astronomy and Astrophysics University of Toronto ON M5S 3H4 Canada;

    Astrophysics Department of Physics University of Oxford Keble Road Oxford OX1 3RH UK;

    Department of Physics the George Washington University 725 21st Street NW Washington DC 20052 USA;

    Department of Physics &

    Electronics Rhodes University Grahamstown South Africa;

    CWI Centrum Wiskunde &

    Informatica PO Box 94079 1090 GB Amsterdam The Netherlands;

    Astrophysics Department of Physics University of Oxford Keble Road Oxford OX1 3RH UK;

    Sydney Institute for Astronomy School of Physics The University of Sydney Sydney NSW 2006 Australia;

    LPC2E - Université d'Orléans / CNRS 45071 Orléans cedex 2 France;

    University of Technology Sydney 15 Broadway Ultimo NSW 2007 Australia;

    Thüringer Landessternwarte Sternwarte 5 D-07778 Tautenburg Germany;

    Department of Astronomy and Radio Astronomy Lab University of California Berkeley CA 94720 USA;

    ASTRON the Netherlands Institute for Radio Astronomy Postbus 2 NL-7990 AA Dwingeloo The Netherlands;

    LESIA Observatoire de Paris CNRS PSL SU UPD SPC Place J. Janssen Meudon France;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 天文学;
  • 关键词

    Methods; Data analysis; Methods; Statistical; Radio continuum; General;

    机译:方法;数据分析;方法;统计;无线电连续管;一般;

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