DocumentCode :
2562037
Title :
Feature Set Selection and Optimal Classifier for Human Activity Recognition
Author :
Lösch, M. ; Schmidt-Rohr, S. ; Knoop, S. ; Vacek, S. ; Dillmann, R.
Author_Institution :
Univ. of Karlsruhe, Karlsruhe
fYear :
2007
fDate :
26-29 Aug. 2007
Firstpage :
1022
Lastpage :
1027
Abstract :
Human activity recognition is an essential ability for service robots and other robotic systems which are in interaction with human beings. To be proactive, the system must be able to evaluate the current state of the user it is dealing with. Also future surveillance systems will benefit from robust activity recognition if realtime constraints are met, allowing to automate tasks that have to be fulfilled by humans yet. In this paper, a thorough analysis of features and classifiers aimed at human activity recognition is presented. Based on a set of 10 activities, the use of different feature selection algorithms is evaluated, as well as the results different classifiers (SVMs, Neural Networks, Bayesian Classifiers) provide in this context. Also the interdependency between feature selection method and chosen classifier is investigated. Furthermore, the optimal number of features to be used for an activity is examined.
Keywords :
feature extraction; human computer interaction; image classification; object recognition; robot vision; service robots; user interfaces; feature set selection; human activity recognition; human-robot interaction; optimal classifier; service robots; surveillance system; Bayesian methods; Computer science; Hidden Markov models; Human robot interaction; Neural networks; Object detection; Robotics and automation; Service robots; Surveillance; Tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Robot and Human interactive Communication, 2007. RO-MAN 2007. The 16th IEEE International Symposium on
Conference_Location :
Jeju
Print_ISBN :
978-1-4244-1634-9
Electronic_ISBN :
978-1-4244-1635-6
Type :
conf
DOI :
10.1109/ROMAN.2007.4415232
Filename :
4415232
Link To Document :
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