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How to handle imbalanced data?

This Shiny visualization might give us a clue! Here binary classification is used for simple illustration, you may toggle classifier, or sampling method and see how 1)decision boundary and 2) prediction measurements are changed.

Have fun!

a gif of my submission

TODO

  • add penalty, different to each class (e.g. consider two scenarios - fraud detection or cancer identification)

  • consider add more classes, make it interactive

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