Evolutionary feature extraction to infer behavioral patterns in ambient intelligence

Leila S. Shafti, Pablo A. Haya, Manuel García-Herranz, Eduardo Pérez

Research output: Chapter in Book/Report/Conference proceedingConference contribution book

1 Citation (Scopus)

Abstract

Machine learning methods have been applied to infer activities of users. However, the small number of training samples and their primitive representation often complicates the learning task. In order to correctly infer inhabitant’s behavior a long time of observation and data collection is needed. This article suggests the use of MFE3/GADR, an evolutionary constructive induction method. Constructive induction has been used to improve learning accuracy through transforming the primitive representation of data into a new one where regularities are more apparent. The use of MFE3/GADR is expected to improve the representation of data and behavior learning process in an intelligent environment. The results of the research show that by applying MFE3/GADR a standard learner needs considerably less data to correctly infer user’s behavior.

Original languageEnglish
Title of host publicationAmbient Intelligence - 3rd International Joint Conference, AmI 2012, Proceedings
EditorsFabio Paterno, Carmen Santoro, Boris de Ruyter, Evert van Loenen, Panos Markopoulos, Kris Luyten
PublisherSpringer-Verlag
Pages256-271
Number of pages16
ISBN (Print)9783642348976
DOIs
Publication statusPublished - 2012
Event3rd International Joint Conference on Ambient Intelligence, AmI 2012 - Pisa, Italy
Duration: 13 Nov 201215 Nov 2012

Publication series

NameLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Volume7683 LNCS
ISSN (Print)0302-9743
ISSN (Electronic)1611-3349

Conference

Conference3rd International Joint Conference on Ambient Intelligence, AmI 2012
Country/TerritoryItaly
City Pisa
Period13/11/1215/11/12

Keywords

  • Behavioral inference
  • Constructive induction
  • Feature construction
  • Genetic algorithms
  • Intelligent environments
  • Machine learning

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