DocumentCode :
3776483
Title :
ANOFS: Automated negotiation based online feature selection method
Author :
Fatma Ben Said;Adel M. Alimi
Author_Institution :
REGIM-Lab.: REsearch Groups in Intelligent Machines, University of Sfax, ENIS, Tunisia
fYear :
2015
Firstpage :
225
Lastpage :
230
Abstract :
Feature selection is an important technique in machine learning and pattern classification. Most existing studies of feature selection are using the batch learning methods. Such methods are not appropriate for real-world applications especially when data arrive sequentially. Recently, this problem is addressed by some feature selection techniques using online learning. Despite the advantages in efficiency of online feature selection methods, they are not always accurate enough when handling real world data. In this paper, we address this limitation by the integration of automated negotiation process. We present a novel method based on negotiation theory for online feature selection (ANOFS) and demonstrate its application to several public datasets.
Keywords :
Proposals
Publisher :
ieee
Conference_Titel :
Intelligent Systems Design and Applications (ISDA), 2015 15th International Conference on
Electronic_ISBN :
2164-7151
Type :
conf
DOI :
10.1109/ISDA.2015.7489229
Filename :
7489229
Link To Document :
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