How to optimise classification learner for a specific class
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Hi,
Is it possible in the classification learner app to prioritise the accuracy for a specific class? For example, if I have two possible reponses: True and False; I would like to maximise the prediction accuracy for the True response. I do not care about the False prediction. This objective simply becomes minimising false True.
Also, how does the machine learning toolbox treat NaNs in the predictor? I wasn't able to find documentation on this.
Thank you.
1 Comment
Ilya
on 28 Feb 2018
Re: This objective simply becomes minimising false True.
This cannot be possibly true. If your objective is really to minimize the number of false positives, classify all observations into the negative class. Then the number of positive classifications, including those that are false, will be zero.
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