The Role of Textualisation and Argumentation in Understanding the Machine Learning Process

نویسندگان

  • Kacper Sokol
  • Peter A. Flach
چکیده

Understanding data, models and predictions is important for machine learning applications. Due to the limitations of our spatial perception and intuition, analysing high-dimensional data is inherently difficult. Furthermore, black-box models achieving high predictive accuracy are widely used, yet the logic behind their predictions is often opaque. Use of textualisation – a natural language narrative of selected phenomena – can tackle these shortcomings. When extended with argumentation theory we could envisage machine learning models and predictions arguing persuasively for their choices.

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تاریخ انتشار 2017