knnTree Construct or predict with k-nearest-neighbor classifiers, using cross-validation to select k, choose variables (by forward or backwards selection), and choose scaling (from among no scaling, scaling each column by its SD, or scaling each column by its MAD). The finished classifier will consist of a classification tree with one such k-nn classifier in each leaf.

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Il s'agit de prédire la valeur d'une variables qualitative, i.e., de mettre les individus dans des classes. (Par exemple : aide au diagnostic médical, reconnaissance des mauvais payeurs par une banque, etc.) On cherche des "fonctions linéaires discirminantes (des combinaisons linéaires dea variables, qui maximisent la variance interclasse et minimisent la variance intraclasse) 

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knnTree Construct or predict with k-nearest-neighbor classifiers, using cross-validation to select k, choose variables (by forward or backwards selection), and choose scaling (from among no scaling, scaling each column by its SD, or scaling each column by its MAD). The finished classifier will consist of a classification tree with one such k-nn classifier in each leaf.

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