DocumentCode :
2661802
Title :
A new approach to video sequence recognition based on statistical methods
Author :
Rigoll, G. ; Kosmala, A. ; Schuster, M.
Author_Institution :
Dept. of Comput. Sci., Gerhard-Mercator Univ., Duisberg, Germany
Volume :
3
fYear :
1996
fDate :
16-19 Sep 1996
Firstpage :
839
Abstract :
A fast method for image sequence recognition is presented. The method is based on a discrete statistical model consisting of a vector quantizer and a special probabilistic neural network, which allows one to classify image sequences without applying rules depending on the content of the sequence. The simple feature extraction also allows the classification with discrete hidden Markov models. As an application we present results from a test conducted for the classification of various gestures done by human beings in front of a video camera. For both classification methods we obtained promising recognition results in real time. The system obtained 90.0% recognition rate for person-independent classification of 10 or even 15 different gestures, which we considered as a surprisingly high rate for such a complex task. The system has been demonstrated at a large industrial fair and has confirmed its high recognition rates and its robustness under real-world conditions
Keywords :
feature extraction; hidden Markov models; image classification; image sequences; motion estimation; neural nets; probability; statistical analysis; vector quantisation; video cameras; video coding; discrete hidden Markov models; discrete statistical model; feature extraction; gesture classification; image classification; image sequence recognition; moving image recognition; person-independent classification; probabilistic neural network; real time recognition results; real-world conditions; recognition rate; statistical methods; vector quantizer; video camera; video sequence recognition; Cameras; Feature extraction; Hidden Markov models; Humans; Image recognition; Image sequences; Neural networks; Robustness; Testing; Video sequences;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing, 1996. Proceedings., International Conference on
Conference_Location :
Lausanne
Print_ISBN :
0-7803-3259-8
Type :
conf
DOI :
10.1109/ICIP.1996.560878
Filename :
560878
Link To Document :
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