DocumentCode :
3496600
Title :
Human Activity Detection in Smart Home Environment with Self-Adaptive Neural Networks
Author :
Zheng, Huiru ; Wang, Haiying ; Black, Norman
Author_Institution :
Ulster Univ., Coleraine
fYear :
2008
fDate :
6-8 April 2008
Firstpage :
1505
Lastpage :
1510
Abstract :
One of key components in the development of smart home technology is the detection and recognition of activities of daily life. Based on a self-adaptive neural network called growing self-organizing maps (GSOM), this paper presents a new computational approach to cluster analysis of human activities of daily living within smart home environment. It was tested on a dataset collected from a set of simple state-change sensors installed on a one-bedroom apartment during a period of about two weeks. The results obtained indicate that, due to its advanced evolving, self- adaptive properties, the GSOM exhibits several appealing features in the analysis of useful patterns encoded in daily activity data. The approaches described in this paper contribute to the development of a user-friendly and interactive data-mining platform for the analysis of human activities within smart home environment through the improvement of pattern discovery, visualization and interpretation.
Keywords :
data mining; home automation; human computer interaction; pattern clustering; self-organising feature maps; statistical analysis; cluster analysis; human activity detection; interactive data mining; pattern discovery; pattern visualization; self-adaptive neural network; self-organizing map; smart home environment; user-friendly; Computer networks; Data visualization; Home computing; Humans; Intelligent sensors; Neural networks; Pattern analysis; Self organizing feature maps; Smart homes; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Networking, Sensing and Control, 2008. ICNSC 2008. IEEE International Conference on
Conference_Location :
Sanya
Print_ISBN :
978-1-4244-1685-1
Electronic_ISBN :
978-1-4244-1686-8
Type :
conf
DOI :
10.1109/ICNSC.2008.4525459
Filename :
4525459
Link To Document :
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