A SIMPLE LOCALLY ADAPTIVE NEAREST NEIGHBOR RULE WITH APPLICATION TO POLLUTION FORECASTING

Author:

NOCK RICHARD1,SEBBAN MARC2,BERNARD DIDIER3

Affiliation:

1. Grimaag-Département Scientifique Interfacultaire, Université des Antilles-Guyane, Campus de Schoelcher, BP 7209, 97275 Schoelcher, France

2. Eurise-Département d'Informatique, Université Jean Monnet, 23, Rue du Docteur Paul Michelon, 42023 Saint-Etienne Cedex 2, France

3. Laboratoire de Physique de l'Atmosphère Tropicale, Université des Antilles-Guyane, Campus de Fouillole, 97159 Pointe-À-Pitre, France

Abstract

In this paper, we propose a thorough investigation of a nearest neighbor rule which we call the "Symmetric Nearest Neighbor (sNN) rule". Basically, it symmetrises the classical nearest neighbor relationship from which are computed the points voting for some instances. Experiments on 29 datasets, most of which are readily available, show that the method significantly outperforms the traditional Nearest Neighbors methods. Experiments on a domain of interest related to tropical pollution normalization also show the greater potential of this method. We finally discuss the reasons for the rule's efficiency, provide methods for speeding-up the classification time, and derive from the sNN rule a reliable and fast algorithm to fix the parameter k in the k-NN rule, a longstanding problem in this field.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

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