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Training and testing procedure for k-NN?
Training
Basically non-existing. Store the training samples and maybe perform some preprocessing to speed up queries (feature extraction, dimensionality reduction)
Testing
For classification look at the k nearest neighbors and pick the class with the most votes.
For regression average the values of the k nearest neighbors.
Basically non-existing. Store the training samples and maybe perform some preprocessing to speed up queries (feature extraction, dimensionality reduction)
Testing
For classification look at the k nearest neighbors and pick the class with the most votes.
For regression average the values of the k nearest neighbors.
Tags:
Quelle: CI Teil 1 Lecture 6
Quelle: CI Teil 1 Lecture 6
Karteninfo:
Autor: Sepp Samuel
Oberthema: Telematik
Thema: Computational Intelligence
Schule / Uni: TU Graz
Veröffentlicht: 02.07.2014