Classification multiétiquettes


Révision datée du 24 novembre 2021 à 18:26 par ClaireGorjux (discussion | contributions) (ClaireGorjux a déplacé la page Multi-label classification vers Classification multi-label)

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Multi-label classification

In machine learning, multi-label classification and the strongly related problem of multi-output classification are variants of the classification problem where multiple labels may be assigned to each instance. Multi-label classification is a generalization of multiclass classification, which is the single-label problem of categorizing instances into precisely one of more than two classes; in the multi-label problem there is no constraint on how many of the classes the instance can be assigned to.

Formally, multi-label classification is the problem of finding a model that maps inputs x to binary vectors y (assigning a value of 0 or 1 for each element (label) in y).

Source : Wikipedia Machine Learning



Contributeurs: Claire Gorjux, Imane Meziani, wiki