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a maximalist but larp-friendly intro to supervised machine learning by a maxxed out noob

  • follows a basic classification problem
  • settles on and 'tracks' a logistic regression model
  • covers all the 'talking points'; problem formulation, EDA, preprocessing, model selection, training, evaluation, metrics, tuning, classification report, error analysis, interpretation, possible improvement, deplyoment*
  • a learning experience of oat (odongonocap ?)
  • you can genuinely feel the larp

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where WE larp to become.

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